Claims
- 1. An inflated bladder stress reduction apparatus comprising a substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element.
- 2. An inflated bladder stress reduction apparatus as described in claim 1 wherein said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element is a minimum deflated bladder fold membrane curvature radius increase element.
- 3. An inflated bladder stress reduction apparatus as described in claim 1 wherein said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element is a removable, deflated bladder fold membrane insert element.
- 4. An inflated bladder stress reduction apparatus as described in claim 1 wherein said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element is a cross-sectionally drop shaped, minimum deflated bladder fold membrane curvature radius increase element.
- 5. An inflated bladder stress reduction apparatus as described in claim 1 wherein said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element is an extrusion.
- 6. An inflated bladder stress reduction apparatus as described in claim 1 wherein said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element is elastomeric.
- 7. An inflated bladder stress reduction apparatus as described in claim 1 wherein said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element comprising a substantially elongated, smooth cross-sectionally curved, half-cylinder shaped, inner deflated bladder fold membrane surface contactable element; two substantially opposing, substantially planar, inner deflated bladder fold adjacent membrane surface contactable elements responsive to said substantially elongated, smooth cross-sectionally curved, half-cylinder shaped, inner deflated bladder fold membrane surface contactable element; a substantially linear, inner deflated bladder fold adjacent membrane surface contactable element intersection vertex element responsive to said two substantially opposing, substantially planar, inner deflated bladder fold adjacent membrane surface contactable elements; and a deflated bladder fold membrane insert element body element established internally of each said substantially elongated, smooth cross-sectionally curved, half-cylinder shaped, inner deflated bladder fold membrane surface contactable element; said two substantially opposing, substantially planar, inner deflated bladder fold adjacent membrane surface contactable elements; and said substantially linear, inner deflated bladder fold adjacent membrane surface contactable element intersection vertex element.
- 8. An inflated bladder stress reduction apparatus as described in claim 7 wherein at least a majority surficial portion of one of said two substantially opposing, substantially planar, inner deflated bladder fold adjacent membrane surface contactable elements is adherable to a deflated bladder fold adjacent membrane surface.
- 9. An inflated bladder stress reduction apparatus as described in claim 1 wherein said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element is a longitudinal spatial void enclosing deflated bladder fold membrane insert element.
- 10. An inflated bladder stress reduction apparatus as described in claim 9 wherein said longitudinal spatial void enclosing deflated bladder fold membrane insert element is a compressed fluid conveyable, longitudinal spatial void enclosing deflated bladder fold membrane insert element.
- 11. An inflated bladder stress reduction apparatus as described in claim 10 wherein said compressed fluid conveyable, longitudinal spatial void enclosing deflated bladder fold membrane insert element comprises at least one bladder interior-to-longitudinal spatial void fluid conveyance hole fluidicly responsive to a longitudinal spatial void established by said longitudinal spatial void enclosing deflated bladder fold membrane insert element.
- 12. An inflated bladder stress reduction apparatus as described in claim 1 further comprising an inflatable bladder membrane responsive to said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element at at least one deflated bladder fold membrane; and a pressurized fluid inlet element responsive to said inflatable bladder membrane.
- 13. An inflated bladder stress reduction apparatus as described in claim 3 wherein said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element is a dissolvable deflated bladder fold membrane insert element.
- 14. An inflated bladder stress reduction apparatus as described in claim 13 wherein a segment of at least one layer of said inflatable bladder membrane is adapted to surround a membrane spatial void that is fluidicly responsive to a spatial void formed by said pressurized fluid inlet element and to a longitudinal spatial void enclosed by said longitudinal spatial void enclosing insert element.
- 15. An inflated bladder stress reduction apparatus as described in claim 14 wherein said membrane spatial void is also fluidicly responsive to at least one bladder interior-to-longitudinal spatial void fluid conveyance hole.
- 16. An inflated bladder stress reduction apparatus as described in claim 1 further comprising a substantially cross-sectionally drop-shaped, deflated bladder corner fold membrane insert element.
- 17. An inflated bladder stress reduction apparatus as described in claim 1 further comprising a pressurizable article having at least one deflated bladder fold membrane that is responsive to said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element.
- 18. An inflated bladder stress reduction apparatus as described in claim 17 wherein said pressurizable article is a single stage vulcanized pressurizable article.
- 19. An inflated bladder stress reduction apparatus as described in claim 17 wherein said pressurizable article is a fluid conveyance hose.
- 20. An inflated bladder stress reduction apparatus as described in claim 17 wherein said at least one deflated bladder fold membrane is two longitudinal, substantially parallel deflated bladder fold membranes.
- 21. An inflated bladder stress reduction apparatus as described in claim 20 wherein said pressurizable article is a fluid conveyance hose that comprises a pressurized fluid inlet element, a fluid conveyance element to which said pressurized fluid inlet element is responsive, and a discrete pressurized fluid outlet element responsive to said fluid conveyance element, wherein said fluid conveyance hose is responsive to said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element at said two longitudinal, substantially parallel deflated bladder fold membranes.
- 22. An inflated bladder stress reduction apparatus as described in claim 1 further comprising an inflatable article having at least one deflated bladder fold membrane that is responsive to said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element.
- 23. An inflated bladder stress reduction apparatus as described in claim 22 wherein said inflatable article is a single stage vulcanized inflatable article.
- 24. An inflated bladder stress reduction apparatus as described in claim 22 wherein said inflatable article is an inflatable article selected from the group of inflatable articles consisting of: inflation jack, expansion hose, inflatable elastomeric dam, inflatable seal, inflatable bottom-hinged water gate panel actuator, fluid conveyance hose, and dock bumper.
- 25. An inflated bladder stress reduction apparatus as described in claim 22 wherein said at least one deflated bladder fold membrane is two longitudinal, substantially parallel deflated bladder fold membranes.
- 26. An inflated bladder stress reduction apparatus as described in claim 25 wherein said inflatable article is an expansion hose that comprise an expansion hose element and a pressurized fluid inlet element responsive to said expansion hose element, wherein said expansion hose element is responsive to said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element at said two longitudinal, substantially parallel deflated bladder fold membranes.
- 27. An inflated bladder stress reduction apparatus as described in claim 25 wherein said inflatable article is a dock bumper that comprises an inflatable dock bumper element and a pressurized fluid inlet element responsive to said inflatable dock bumper element, wherein said dock bumper is responsive to said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element at said two longitudinal, substantially parallel deflated bladder fold membranes.
- 28. An inflated bladder stress reduction apparatus as described in claim 25 wherein said inflatable article is a fluid conveyance hose that comprises a fluid conveyance hose element and a pressurized fluid inlet element responsive to said fluid conveyance hose element, wherein said fluid conveyance hose element is responsive to said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element at said two longitudinal, substantially parallel deflated bladder fold membranes.
- 29. An inflated bladder stress reduction apparatus as described in claim 22 said at least one deflated bladder fold membrane is one smooth continuous deflated bladder fold membrane.
- 30. An inflated bladder stress reduction apparatus as described in claim 29 wherein said inflatable article is an inflatable seal that comprises an inflatable seal element and a pressurized fluid inlet element responsive to said inflatable seal element, wherein said inflatable seal is responsive to said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element at said one smooth continuous deflated bladder fold membrane.
- 31. An inflated bladder stress reduction apparatus as described in claim 29 wherein said inflatable article is an inflation jack that comprises an inflatable jack element and a pressurized fluid inlet element responsive to said inflatable jack element, wherein said inflatable jack element is responsive to said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element at said one smooth continuous deflated bladder fold membrane.
- 32. An inflated bladder stress reduction apparatus as described in claim 29 wherein said inflatable article is a dock bumper that comprises an inflatable dock bumper element and a pressurized fluid inlet element responsive to said inflatable dock bumper element, wherein said dock bumper is responsive to said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element at said one smooth continuous deflated bladder fold membrane.
- 33. An inflated bladder stress reduction apparatus as described in claim 22 said at least one deflated bladder fold membrane is four rectangularly situated deflated bladder fold membranes.
- 34. An inflated bladder stress reduction apparatus as described in claim 33 wherein said inflatable article is an inflation jack that comprises a substantially rectangular inflatable jack element and a pressurized fluid inlet element responsive to said substantially rectangular inflatable element, wherein said inflation jack is responsive to said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element at said four rectangularly situated deflated bladder fold membranes.
- 35. An inflated bladder stress reduction apparatus as described in claim 33 wherein said inflatable article is a dock bumper that comprises an inflatable dock bumper element and a pressurized fluid inlet element responsive to said inflatable dock bumper element, wherein said dock bumper is responsive to said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element at said four rectangularly situated deflated bladder fold membranes.
- 36. An inflated bladder stress reduction apparatus as described in claim 22 said at least one deflated bladder fold membrane is one overflow orthogonal, longitudinal deflated bladder fold membrane.
- 37. An inflated bladder stress reduction apparatus as described in claim 36 wherein said inflation article is an inflatable, bottom hinged water gate panel actuator apparatus that comprises an inflatable actuator bladder, a gate panel actuator-to-foundation attachment element; a pressurized fluid inlet element responsive to said inflatable actuator bladder; and a water gate panel hinge flap responsive to said gate panel actuator-to-foundation attachment element, wherein said inflatable, bottom hinged water gate panel actuator apparatus is responsive to said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element at said one overflow orthogonal, longitudinal deflated bladder fold membrane.
- 38. An inflated bladder stress reduction apparatus as described in claim 36 wherein said inflatable article is an inflatable elastomeric dam that comprises an inflatable elastomeric dam bladder; an inflatable dam-to-foundation attachment element to which said inflatable elastomeric dam bladder is responsive; and a pressurized fluid inlet element responsive to said inflatable elastomeric dam bladder, wherein said inflatable elastomeric dam is responsive to said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element at said one overflow orthogonal, longitudinal deflated bladder fold membrane.
- 39. An inflated bladder stress reduction apparatus as described in claim 22 said at least one deflated bladder fold membrane is one overflow orthogonal, longitudinal deflated bladder fold membrane and two parallel, overflow aligned, deflated bladder end fold membranes.
- 40. An inflated bladder stress reduction apparatus as described in claim 39 wherein said inflatable article is an inflatable, bottom hinged water gate panel actuator apparatus that comprises an inflatable actuator bladder, a gate panel actuator-to-foundation attachment element; a pressurized fluid inlet element responsive to said inflatable actuator bladder; and a water gate panel hinge flap responsive to said gate panel actuator-to-foundation attachment element, wherein said inflatable, bottom hinged water gate panel actuator apparatus is responsive to said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element at said one overflow orthogonal, longitudinal deflated bladder fold membrane and said two parallel, overflow aligned, deflated bladder end fold membranes.
- 41. An inflated bladder stress reduction apparatus as described in claim 39 wherein said inflatable article is an inflatable elastomer dam that comprises an inflatable elastomeric dam bladder; an inflatable dam-to-foundation attachment element to which said inflatable elastomeric dam bladder is responsive; and a pressurized fluid inlet element responsive to said inflatable elastomeric dam bladder, wherein said inflatable elastomeric dam is responsive to said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element at said one overflow orthogonal, longitudinal deflated bladder fold membrane and said two parallel, overflow aligned, deflated bladder end fold membranes.
- 42. An inflated bladder stress reduction apparatus as described in claim 22 said at least one deflated bladder fold membrane is one deflated bladder end fold membrane and two parallel, deflated bladder fold membranes orthogonal to said one deflated bladder end fold membrane.
- 43. An inflated bladder stress reduction apparatus as described in claim 42 wherein said inflatable article is an expansion hose that comprises an expansion hose element and a pressurized fluid inlet element responsive to said expansion hose element, wherein said expansion hose element is responsive to said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element at said one deflated bladder end fold membrane and two parallel, deflated bladder fold membranes orthogonal to said one deflated bladder end fold membrane.
- 44. An inflated bladder stress reduction apparatus as described in claim 2 wherein a minimum deflated bladder fold membrane curvature radius occurs co-radially and internally of an inflatable elastomeric dam overtop flow-deflection fin.
- 45. An inflated bladder stress reduction apparatus as described in claim 1 further comprising an inflatable water gate panel actuator apparatus responsive to said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element at at least an overflow orthogonal longitudinal deflated bladder fold membrane, wherein said inflatable bottom-hinged water gate panel actuator apparatus comprises an inflatable bladder, a gate panel actuator-to-foundation attachment element; a pressurized fluid inlet element responsive to said inflatable bladder; and a water gate panel hinge flap responsive to said inflatable bladder.
- 46. An inflated bladder stress reduction apparatus as described in claim 45 wherein said gate panel actuator-to-foundation attachment element a gate panel actuator-to-foundation clampable retention element and a gate panel actuator-to-foundation clamp retention enhancement element responsive to said gate panel actuator-to-foundation clampable retention element.
- 47. An inflated bladder stress reduction apparatus as described in claim 46 wherein said inflatable bottom-hinged water gate panel actuator apparatus is formed using single stage vulcanization.
- 48. An inflated bladder stress reduction apparatus as described in claim 1 further comprising an inflatably actuated water gate panel system responsive to at least one plurality of water gate actuator that comprises the substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element described in claim 1.
- 49. An inflated bladder stress reduction method comprising the steps of:
creating a substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element.
- 50. An inflated bladder stress reduction method as described in claim 49 wherein said step of creating a substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element comprises the step of creating a minimum deflated bladder fold membrane curvature radius increase element.
- 51. An inflated bladder stress reduction method as described in claim 49 wherein said step of creating a substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element comprises the step of moldedly manufacturing a substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element.
- 52. An inflated bladder stress reduction method as described in claim 49 wherein said step of creating a substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element comprises the step of extrudedly manufacturing a substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element.
- 53. An inflated bladder stress reduction method as described in claim 49 further comprising the step of creating a substantially cross-sectionally drop-shaped, deflated bladder corner fold membrane insert element.
- 54. An inflated bladder stress reduction method as described in claim 49 further comprising the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along at least one deflated bladder fold membrane interior surface of an inflatable bladder membrane.
- 55. An inflated bladder stress reduction method as described in claim 54 further comprising the step of single stage vulcanizing said inflatable bladder membrane.
- 56. An inflated bladder stress reduction method as described in claim 54 further comprising the step of establishing a pressurized fluid inlet element responsive to said inflatable bladder membrane.
- 57. An inflated bladder stress reduction method as described in claim 56 wherein said step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along at least one deflated bladder fold membrane interior surface of an inflatable bladder membrane comprises the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along one longitudinal deflated bladder fold membrane interior surface of an inflatable bladder membrane
- 58. An inflated bladder stress reduction method as described in claim 57 wherein the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along one longitudinal deflated bladder fold membrane interior surface of an inflatable bladder membrane comprises the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along one longitudinal deflated bladder fold membrane interior surface of an inflatable elastomeric dam.
- 59. An inflated bladder stress reduction method as described in claim 57 wherein the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along one longitudinal deflated bladder fold membrane interior surface of an inflatable bladder membrane comprises the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along one longitudinal deflated bladder fold membrane interior surface of an inflatable bottom-hinged water control gate actuator.
- 60. An inflated bladder stress reduction method as described in claim 54 wherein said step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along at least one deflated bladder fold membrane interior surface of an inflatable bladder membrane comprises the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along two longitudinal, substantially parallel deflated bladder fold membrane interior surfaces of an inflatable bladder membrane.
- 61. An inflated bladder stress reduction method as described in claim 60 wherein said step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along two longitudinal, substantially parallel deflated bladder fold membrane interior surfaces of an inflatable bladder membrane comprises the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along two longitudinal, substantially parallel deflated bladder fold membrane interior surfaces of a fluid conveyance hose.
- 62. An inflated bladder stress reduction method as described in claim 60 wherein said step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along two longitudinal, substantially parallel deflated bladder fold membrane interior surfaces of an inflatable bladder membrane comprises the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along two longitudinal, substantially parallel deflated bladder fold membrane interior surfaces of an expansion hose.
- 63. An inflated bladder stress reduction method as described in claim 54 wherein said step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along at least one deflated bladder fold membrane interior surface of an inflatable bladder membrane comprises the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along one longitudinal deflated bladder fold membrane interior surface and two parallel deflated bladder end fold membrane interior surfaces that are each orthogonal to said one longitudinal deflated bladder fold membrane interior surface.
- 64. An inflated bladder stress reduction method as described in claim 63 wherein said step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along one longitudinal deflated bladder fold membrane interior surface and two parallel deflated bladder end fold membrane interior surfaces that are each orthogonal to said one longitudinal deflated bladder fold membrane interior surface comprises the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along one longitudinal deflated bladder fold membrane interior surface and two parallel deflated bladder end fold membrane interior surfaces of an inflatable bottom-hinged water control gate actuator.
- 65. An inflated bladder stress reduction method as described in claim 63 wherein said step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along one longitudinal deflated bladder fold membrane interior surface and two parallel deflated bladder end fold membrane interior surfaces that are each orthogonal to said one longitudinal deflated bladder fold membrane interior surface comprises the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along one longitudinal deflated bladder fold membrane interior surface and two parallel deflated bladder end fold membrane interior surfaces of an inflatable elastomeric dam
- 66. An inflated bladder stress reduction method as described in claim 54 wherein said step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along at least one deflated bladder fold membrane interior surface of an inflatable bladder membrane comprises the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along four rectangularly situated longitudinal deflated bladder fold membrane interior surfaces of an inflatable bladder membrane.
- 67. An inflated bladder stress reduction method as described in claim 66 wherein said step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along four rectangularly situated longitudinal deflated bladder fold membrane interior surfaces of an inflatable bladder membrane comprises the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along four rectangularly situated longitudinal deflated bladder fold membrane interior surfaces of an inflation jack.
- 68. An inflated bladder stress reduction method as described in claim 66 wherein said step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along four rectangularly situated longitudinal deflated bladder fold membrane interior surfaces of an inflatable bladder membrane comprises the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along four rectangularly situated longitudinal deflated bladder fold membrane interior surfaces of a dock bumper.
- 69. An inflated bladder stress reduction method as described in claim 54 wherein said step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along at least one deflated bladder fold membrane interior surface of an inflatable bladder membrane comprises the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along two parallel, longitudinal deflated bladder fold membrane interior surfaces and one orthogonal bladder fold membrane interior surface of an inflatable bladder membrane.
- 70. An inflated bladder stress reduction method as described in claim 69 the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along two parallel, longitudinal deflated bladder fold membrane interior surfaces and one orthogonal bladder fold membrane interior surface of an inflatable bladder membrane comprises the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along two parallel, longitudinal deflated bladder fold membrane interior surfaces and one orthogonal bladder fold membrane interior surface of fluid conveyance hose.
- 71. An inflated bladder stress reduction method as described in claim 54 wherein said step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along at least one deflated bladder fold membrane interior surface of an inflatable bladder membrane comprises the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along a smoothly curved perimeter deflated bladder fold membrane interior surfaces of an inflatable bladder membrane.
- 72. An inflated bladder stress reduction method as described in claim 71 wherein said step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along a smoothly curved perimeter deflated bladder fold membrane interior surfaces of an inflatable bladder membrane comprises the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along a smoothly curved perimeter deflated bladder fold membrane interior surfaces of an inflatable seal.
- 73. An inflated bladder stress reduction method as described in claim 71 wherein said step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along a smoothly curved perimeter deflated bladder fold membrane interior surfaces of an inflatable bladder membrane comprises the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along a smoothly curved perimeter deflated bladder fold membrane interior surfaces of a dock bumper.
- 74. An inflated bladder stress reduction method as described in claim 71 wherein said step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along a smoothly curved perimeter deflated bladder fold membrane interior surfaces of an inflatable bladder membrane comprises the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along a smoothly curved perimeter deflated bladder fold membrane interior surface of an inflation jack.
- 75. An inflated bladder stress reduction method as described in claim 54 wherein step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along at least one deflated bladder fold membrane interior surface of an inflatable bladder membrane comprises the step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along at least one deflated bladder fold membrane interior surface of an inflatable article selected from the group of inflatable articles consisting of: inflation jack, expansion hose, inflatable elastomeric dam, inflatable seal, inflatable bottom-hinged water gate panel actuator, fluid conveyance hose, and dock bumper.
- 76. An inflated bladder stress reduction method as described in claim 49 wherein said step of creating a substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element comprises the step of creating an elastomeric, substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element.
- 77. An inflated bladder stress reduction method as described in claim 54 wherein said step of establishing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element along at least one deflated bladder fold membrane interior surface of an inflatable bladder membrane comprises the step of adhering a portion of said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element to a deflated bladder fold membrane proximate surface.
- 78. An inflated bladder stress reduction method as described in claim 49 further comprises the step of establishing a longitudinal insert element spatial void within the tear-drop external borders of said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element.
- 79. An inflated bladder stress reduction method as described in claim 78 further comprises the steps of adapting a segment of at least one layer of said inflatable bladder membrane to surround a membrane spatial void that is fluidicly responsive to a spatial void formed by a pressurized fluid inlet and to said longitudinal spatial void.
- 80. An inflated bladder stress reduction method comprising:
Creating a deflated bladder fold membrane insert element body element; and establishing a substantially elongated, smoothly curved, half-cylinder shaped, inner deflated bladder fold membrane surface contactable element contiguously with and externally of said deflated bladder fold membrane insert element body element; establishing two substantially opposing, substantially planar, substantially elongated, inner deflated bladder fold membrane proximate surface contactable elements contiguously with and externally of said deflated bladder fold membrane insert element body element; adjoining each said two substantially opposing, substantially planar, inner deflated bladder fold membrane proximate surface contactable elements to an opposite portion of said substantially elongated, smoothly curved, half-cylinder shaped, inner deflated bladder fold membrane surface contactable element; and adjoining said two substantially opposing, substantially planar, inner deflated bladder fold membrane proximate surface contactable elements at a substantially linear, inner deflated bladder fold membrane proximate surface contactable elements intersection vertex element.
- 81. A strength enhanced inflatable bladder apparatus comprising:
An inflatable membrane element having at least one positively conformed, inflated stress reduced deflated bladder fold membrane element; and a pressurized fluid inlet element responsive to said at least one positively conformed, inflated stress reduced deflated bladder fold membrane element, wherein said at least one positively conformed, inflated stress reduced deflated bladder fold membrane element is positively conformed to have an inflated bladder stress reduction significant increase in a minimum curvature radius, and wherein an deflated bladder fold proximate membrane profile exhibits an approximately thirty degree or greater deflation configuration spatial void profile point angle.
- 82. A strength enhanced inflatable bladder apparatus as described in claim 81 wherein minimum curvature radius occurs co-radially and internally of an inflatable elastomeric dam flow deflection fin.
- 83. A strength enhanced inflatable bladder apparatus as described in claim 81 wherein at least one positively conformed, inflated stress reduced deflated bladder fold membrane element is conformed during a single stage vulcanization.
- 84. A strength enhanced inflatable bladder apparatus as described in claim 81 wherein said strength enhanced inflatable bladder apparatus is manufactured during a single stage vulcanization.
- 85. A strength enhanced inflatable bladder apparatus as described in claim 81 further comprising a minimum deflated bladder fold membrane curvature radius increase insert positioned along said at least one positively conformed, inflated stress reduced deflated bladder fold membrane element.
- 86. A strength enhanced inflatable bladder apparatus as described in claim 81 wherein said inflatable membrane element forms a part of an inflatable article selected from the group of inflatable articles consisting of: inflation jack, expansion hose, fluid conveyance hose, inflatable elastomeric dam, inflatable seal, inflatable bottom-hinged water gate panel actuator, and dock bumper.
- 87. A strength enhanced inflatable bladder apparatus as described in claim 81 wherein said inflatable membrane is an elastomeric inflatable membrane.
- 88. A strength enhanced inflatable bladder apparatus as described in claim 81 wherein said at least a portion of said at least one positively conformed, inflated stress reduced, deflated bladder fold membrane element is a substantially straight, longitudinal deflated bladder fold membrane.
- 89. A strength enhanced inflatable bladder apparatus as described in claim 88 wherein said inflatable membrane element forms a part of an inflatable bottom-hinged water gate panel actuator apparatus.
- 90. A strength enhanced inflatable bladder apparatus as described in claim 88 wherein said inflatable membrane element forms a part of an inflatable elastomeric dam apparatus.
- 91. A strength enhanced inflatable bladder apparatus as described in claim 81 wherein said at least one positively conformed, inflated stress reduced deflated bladder fold membrane element comprises a substantially straight, longitudinal deflated bladder fold membrane and two parallel deflated bladder end fold membranes orthogonal to said substantially straight longitudinal deflated bladder fold membrane.
- 92. A strength enhanced inflatable bladder apparatus as described in claim 91 wherein said inflatable membrane element forms a part of an inflatable bottom-hinged water gate panel actuator apparatus.
- 93. A strength enhanced inflatable bladder apparatus as described in claim 81 wherein said at least one positively conformed, inflated stress reduced, deflated bladder fold membrane element is two substantially straight, parallel, longitudinal deflated bladder fold membranes.
- 94. A strength enhanced inflatable bladder apparatus as described in claim 93 wherein said inflatable membrane element forms a part of a fluid conveyance hose.
- 95. A strength enhanced inflatable bladder apparatus as described in claim 93 wherein said inflatable membrane element forms a part of an expansion hose.
- 96. A strength enhanced inflatable bladder apparatus as described in claim 81 wherein said at least one positively conformed, inflated stress reduced deflated bladder fold membrane element is a smooth, curvilinear deflated bladder fold.
- 97. A strength enhanced inflatable bladder apparatus as described in claim 96 wherein said inflatable membrane element forms a part of a inflatable seal.
- 98. A strength enhanced inflatable bladder apparatus as described in claim 96 wherein said inflatable membrane element forms a part of an inflation jack.
- 99. A strength enhanced inflatable bladder apparatus as described in claim 81 wherein said at least one positively conformed, inflated stress reduced deflated bladder fold membrane element is four rectangularly situated deflated bladder edges.
- 100. A strength enhanced inflatable bladder apparatus as described in claim 81 wherein said inflatable membrane element forms a part of an inflation jack.
- 101. A strength enhanced inflatable bladder apparatus as described in claim 81 wherein said inflatable membrane element forms a part of an expansion hose.
- 102. The inflatable article indicated in claim 86 that said inflatable membrane element forms a part of.
- 103. As inflatably actuated water gate panel water control system having at least one inflatable bladder that has the inflatable membrane element of claim 81.
- 104. A rubber dam that has the inflatable membrane element described in claim 88.
- 105. A inflatable bladder failure resistance enhancement method comprising the steps of: positively conforming at least one deflated bladder fold membrane to have a reduced inflated bladder stress and so that a deflated bladder fold proximate membrane profile exhibits an approximately thirty degree or greater deflation configuration spatial void profile point angle; establishing an inflatable membrane element responsive to said deflated bladder fold membrane and to include said deflated bladder fold membrane; and establishing a pressurized fluid inlet element responsive to said inflatable membrane element.
- 106. A inflatable bladder failure resistance enhancement method as described in claim 105 wherein said step of positively conforming at least one deflated bladder fold membrane to have a reduced inflated bladder stress comprises the step of increasing a minimum curvature radius of said at least one deflated bladder fold membrane.
- 107. A inflatable bladder failure resistance enhancement method as described in claim 105 wherein said step of positively conforming at least one deflated bladder fold membrane to have a reduced inflated bladder stress comprises the steps of: positioning a longitudinal insert element along at least one deflated bladder fold membrane of said inflatable membrane element, vulcanizing said inflatable membrane, and dissolvedly removing said longitudinal insert element.
- 108. A inflatable bladder failure resistance enhancement method as described in claim 107 wherein said insert element is a eutectic salt insert element.
- 109. A inflatable bladder failure resistance enhancement method as described in claim 107 wherein said insert element is an aluminum insert element.
- 110. A inflatable bladder failure resistance enhancement method as described in claim 105 wherein said step of positively conforming at least one deflated bladder fold membrane and said step of establishing an inflatable membrane element are each performed during a single stage vulcanization.
- 111. A inflatable bladder failure resistance enhancement method as described in claim 105 wherein said step of positively conforming at least one deflated bladder fold membrane comprises the step of positively conforming one substantially straight, longitudinal deflated bladder fold membrane.
- 112. A inflatable bladder failure resistance enhancement method as described in claim 111 wherein said step of positively conforming one substantially straight, longitudinal deflated bladder fold membrane comprises the step of positively conforming an inflatable elastomeric dam membrane.
- 113. A inflatable bladder failure resistance enhancement method as described in claim 111 wherein said step of positively conforming one substantially straight, longitudinal deflated bladder fold membrane comprises the step of positively conforming an inflatable, bottom-hinged water control gate actuator membrane.
- 114. A inflatable bladder failure resistance enhancement method as described in claim 105 wherein said step of positively conforming at least one deflated bladder fold membrane comprises the step of positively conforming two parallel deflated bladder end fold membranes and one substantially straight, longitudinal deflated bladder fold membrane substantially orthogonal to each of said two parallel deflated bladder end fold membranes.
- 115. A inflatable bladder failure resistance enhancement method as described in claim 114 wherein step of positively conforming two parallel deflated bladder end fold membranes and one substantially straight, longitudinal deflated bladder fold membrane substantially orthogonal to each of said two parallel deflated bladder end fold membranes comprises the step of positively conforming an inflatable, bottom-hinged water control gate actuator membrane.
- 116. A inflatable bladder failure resistance enhancement method as described in claim 114 wherein step of positively conforming two parallel deflated bladder end fold membranes and one substantially straight, longitudinal deflated bladder fold membrane substantially orthogonal to each of said two parallel deflated bladder end fold membranes comprises the step of positively conforming an inflatable elastomeric dam membrane.
- 117. A inflatable bladder failure resistance enhancement method as described in claim 105 wherein said step of positively conforming at least one deflated bladder fold membrane comprises the step of positively conforming one smooth, curvilinear deflated bladder fold membrane.
- 118. A inflatable bladder failure resistance enhancement method as described in claim 117 wherein said step of positively conforming one smooth, curvilinear deflated bladder fold membrane comprises the step of positively conforming an inflatable seal membrane
- 119. A inflatable bladder failure resistance enhancement method as described in claim 117 wherein said step of positively conforming one smooth, curvilinear deflated bladder fold membrane comprises the step of positively conforming an inflation jack membrane.
- 120. A inflatable bladder failure resistance enhancement method as described in claim 117 wherein said step of positively conforming one smooth, curvilinear deflated bladder fold membrane comprises the step of positively conforming an dock bumper membrane.
- 121. A inflatable bladder failure resistance enhancement method as described in claim 105 wherein said step of positively conforming at least one deflated bladder fold membrane comprises the step of positively conforming two parallel, longitudinal deflated bladder fold membranes and one orthogonal deflated bladder end fold membrane.
- 122. A inflatable bladder failure resistance enhancement method as described in claim 121 wherein said step of positively conforming one smooth, curvilinear deflated bladder fold membrane comprises the step of positively conforming an expansion hose.
- 123. A inflatable bladder failure resistance enhancement method as described in claim 105 wherein said step of positively conforming at least one deflated bladder fold membrane comprises the step of positively conforming four rectangularly situated deflated bladder fold membranes.
- 124. A inflatable bladder failure resistance enhancement method as described in claim 123 wherein said step of positively conforming four rectangularly situated deflated bladder fold membranes comprises the step of positively conforming an inflation jack membrane.
- 125. A inflatable bladder failure resistance enhancement method as described in claim 123 wherein said step of positively conforming four rectangularly situated deflated bladder fold membranes comprises the step of positively conforming a dock bumper membrane.
- 126. A inflatable bladder failure resistance enhancement method as described in claim 105 wherein said step of positively conforming at least one deflated bladder fold membrane comprises the step of positively conforming two parallel, longitudinal deflated bladder end fold membranes.
- 127. A inflatable bladder failure resistance enhancement method as described in claim 126 wherein said step of positively conforming two parallel, longitudinal deflated bladder end fold membranes comprises the step of positively conforming an expansion hose membrane.
- 128. A inflatable bladder failure resistance enhancement method as described in claim 126 wherein said step of positively conforming two parallel, longitudinal deflated bladder end fold membranes comprises the step of positively conforming a fluid conveyance hose membrane.
- 129. A inflatable bladder failure resistance enhancement method as described in claim 126 wherein said step of positively conforming two parallel, longitudinal deflated bladder end fold membranes comprises the step of positively conforming a dock bumper membrane.
- 130. A inflatable bladder failure resistance enhancement method as described in claim 105 wherein said step of establishing an inflatable A inflatable bladder failure resistance enhancement method membrane element comprises the step of establishing an elastomeric inflatable water gate actuator membrane configured to rotate at least one water gate panel about an upstream leading edge of said at least one water gate panel.
- 131. An inflatable elastomeric dam apparatus comprising an inflatable membrane; an overtop flow deflection fin responsive to said inflatable membrane; and an inflatable membrane-to-foundation attachment element to which said inflatable membrane is responsive; wherein said inflatable membrane comprises an longitudinal insert element positioned substantially co-radially with and internally of said overtop flow deflection fin.
- 132. An inflatable elastomeric dam apparatus as described in claim 131 wherein said longitudinal insert element is a tear drop cross-sectionally shaped insert element.
- 133. An inflatable elastomeric dam apparatus as described in claim 131 wherein said inflatable membrane-to-foundation attachment element comprises an inflatable membrane-to-foundation clampable retention element to which said inflatable membrane is responsive; and an inflatable membrane-to-foundation clamp retention enhancement element to which said inflatable membrane-to-foundation clampable retention element is responsive.
- 134. An inflatable elastomeric dam apparatus as described in claim 131 wherein said inflatable membrane-to-foundation attachment element and said inflatable membrane are each elastomeric.
- 135. An inflatable elastomeric dam apparatus comprising an inflatable membrane; a flow deflection fin responsive to said inflatable membrane; and an inflatable membrane-to-foundation attachment element; wherein said inflatable membrane comprises a flow deflection fin proximate, inner bladder section positively conformed to have an inflated bladder stress reduction significant increase in a minimum curvature radius and wherein a deflated bladder, flow deflection fin proximate profile exhibits an approximately thirty degree or greater void profile point angle and a substantially circular arc inner bladder curvature.
- 136. An inflatable elastomeric dam apparatus as described in claim 135 wherein inflatable membrane-to-foundation attachment element comprises a wedge-shaped inflatable membrane-to-foundation clamp retention element.
- 137. An inflatable elastomeric dam apparatus as described in claim 135 wherein inflatable membrane-to-foundation attachment element comprises a substantially flat, inflatable membrane-to-foundation clampable retention element and an inflatable membrane-to-foundation clamp retention enhancement element to which said substantially flat, inflatable membrane-to-foundation clampable retention element is responsive.
- 138. An inflatable elastomeric dam apparatus comprising an inflatable membrane; a flow deflection fin responsive to said inflatable membrane; and an inflatable membrane-to-foundation attachment element; wherein said inflatable membrane comprises a flow deflection fin proximate, inner bladder section positively conformed to have a rounded, inwardly-pointing radius of curvature and wherein a deflated bladder, flow deflection fin proximate profile exhibits an approximately thirty degree or greater void profile point angle and a substantially circular arc inner bladder curvature.
- 139. An inflatable elastomeric dam apparatus as described in claim 138 wherein inflatable membrane-to-foundation attachment element comprises a wedge-shaped inflatable membrane-to-foundation clamp retention element.
- 140. An inflatable elastomeric dam apparatus as described in claim 138 wherein inflatable membrane-to-foundation attachment element comprises a substantially flat, inflatable membrane-to-foundation clampable retention element and an inflatable membrane-to-foundation clamp retention enhancement element to which said substantially flat, inflatable membrane-to-foundation clampable retention element is responsive.
- 141. An inflatable elastomeric dam failure resistance enhancement method comprises the steps of: positively conforming an overtop flow deflection fin proximate bladder fold membrane to have a reduced inflated bladder stress and so that an overtop flow deflection fin proximate bladder fold membrane profile exhibits an approximately thirty degree or greater deflation configuration spatial void profile point angle; establishing an inflatable membrane element responsive to said overtop flow deflection fin proximate bladder fold membrane; and establishing a pressurized fluid inlet element responsive to said inflatable membrane element.
- 142. An inflatable elastomeric dam failure resistance enhancement method comprises the steps of: positively conforming an overtop flow deflection fin proximate bladder fold membrane to have a reduced inflated bladder stress and so that an overtop flow deflection fin proximate bladder fold membrane profile is positive circular arc in profile; establishing an inflatable membrane element responsive to said overtop flow deflection fin proximate bladder fold membrane; and establishing a pressurized fluid inlet element responsive to said inflatable membrane element.
- 143. An inflatable article apparatus comprising:
An inflatable bladder element; a pressurized fluid inlet element responsive to said inflatable bladder element; and an inflatable bladder-to-foundation attachment element to which said inflatable bladder element is responsive; wherein said inflatable bladder element comprises at least one circumferentially continuous, integrally adjoined inner bladder layer.
- 144. An inflatable article apparatus as described in claim 143 wherein said at least one circumferentially continuous, integrally adjoined inner bladder layer inner bladder is a reinforced bladder ply.
- 145. An inflatable article apparatus as described in claim 143 wherein said at least one circumferentially continuous, integrally adjoined inner bladder layer is an innermost reinforced bladder ply.
- 146. An inflatable article apparatus as described in claim 143 wherein said at least one circumferentially continuous, integrally adjoined inner bladder layer is at least one upstream, deflated bladder joint traversing ply.
- 147. An inflatable article apparatus as described in claim 146 wherein said at least one overflow orthogonal, deflated bladder joint traversing ply is at least one joint traversing reinforcement ply.
- 148. An inflatable article apparatus as described in claim 147 wherein said at least one joint traversing reinforcement ply is two joint traversing reinforcement plies.
- 149. An inflatable article apparatus as described in claim 143 wherein at least one circumferentially continuous, integrally adjoined inner bladder layer comprises a layer that is continuous along a circumference located within a plane that is parallel to a bladder expansion axis and whose normal vector is substantially perpendicular to a retained water horizontal force component.
- 150. An inflatable article apparatus as described in claim 143 further comprising a gate panel hinge flap element responsive to said inflatable bladder.
- 151. An inflatable article apparatus as described in claim 143 wherein said inflatable bladder-to-foundation attachment element comprises an inflatable bladder-to-foundation clampable retention element and an inflatable bladder-to-foundation clamp retention enhancement element to which said inflatable bladder-to-foundation clampable retention element is responsive.
- 152. An inflatable article apparatus as described in claim 143 wherein said inflatable bladder-to-foundation attachment element comprises a wedge-shape bladder-to-foundation clamp retention element.
- 153. An inflatable article apparatus as described in claim 143 wherein said inflatable bladder is an inflatable bladder selected from the group of inflatable bladders consisting of: inflatable water gate actuator bladders and inflatable dams.
- 154. An inflatable article apparatus as described in claim 143 wherein said inflatable bladder is an inflatable bladder selected from the group of inflatable bladders consisting of: dock bumpers and inflatable seals.
- 155. An inflatably actuated gate water control system that comprises the inflatable article apparatus described in claim 147.
- 156. A rubber dam that comprises the inflatable article apparatus described in claim 147.
- 157. An inflatable article apparatus comprising:
An inflatable water control bladder element; a pressurized fluid inlet element responsive to said inflatable water control bladder element; and an inflatable bladder-to-foundation attachment element to which said inflatable water control bladder element is responsive; wherein said inflatable water control bladder element comprises at least one integrally adjoined inner bladder layer having an installed, inflated configuration longitudinal central axis that is horizontal and normal to an impending flow direction.
- 158. An inflatable article apparatus as described in claim 157 wherein said at least one integrally adjoined inner bladder layer inner bladder is a reinforced bladder ply.
- 159. An inflatable article apparatus as described in claim 157 wherein said at least one integrally adjoined inner bladder layer is an innermost reinforced bladder ply.
- 160. An inflatable article apparatus as described in claim 157 wherein said at least one integrally adjoined inner bladder layer is at least one upstream, deflated bladder joint traversing ply.
- 161. An inflatable article apparatus as described in claim 160 wherein said at least one overflow orthogonal, deflated bladder joint traversing ply is at least one joint traversing reinforcement ply.
- 162. An inflatable article apparatus as described in claim 161 wherein said at least one joint traversing reinforcement ply is two joint traversing reinforcement plies.
- 163. An inflatable article apparatus as described in claim 157 wherein said at least one integrally adjoined inner bladder layer comprises a layer that is continuous along a circumference located within a plane that is parallel to a bladder expansion axis and whose normal vector is substantially perpendicular to a retained water horizontal force component.
- 164. An inflatable article apparatus as described in claim 157 further comprising a gate panel hinge flap element responsive to said inflatable water control bladder.
- 165. An inflatable article apparatus as described in claim 157 wherein said inflatable bladder-to-foundation attachment element comprises an inflatable bladder-to-foundation clampable retention element and an inflatable bladder-to-foundation clamp retention enhancement element to which said inflatable bladder-to-foundation clampable retention element is responsive.
- 166. An inflatable article apparatus as described in claim 157 wherein said inflatable bladder-to-foundation attachment element comprises a edge-shape bladder-to-foundation clamp retention element.
- 167. An inflatable article apparatus as described in claim 157 wherein said inflatable water control bladder is an inflatable water control bladder selected from the group of inflatable water control bladders consisting of: inflatable water gate actuator bladders and inflatable dams.
- 168. An inflatable article apparatus as described in claim 157 wherein said inflatable water control bladder is an inflatable water control bladder selected from the group of inflatable water control bladders consisting of: inflatable water gate actuator bladders and inflatable dams.
- 169. A water control apparatus comprising:
Inflatable, water control bladder element adapted for attachment to a water control gate panel bottom edge as installed; a pressurized fluid inlet element responsive to said inflatable, water control bladder element; and an inflatable bladder-to-foundation attachment element to which said inflatable, water control bladder element is responsive; wherein said inflatable, water control bladder element comprises at least one overflow orthogonal deflated bladder joint traversing ply.
- 170. A water control apparatus as described in claim 169 wherein said inflatable, water control bladder element comprises an integrally adjoined inner bladder layer.
- 171. A water control apparatus as described in claim 169 wherein said at least one overflow orthogonal deflated bladder joint traversing ply is at least one overflow orthogonal joint traversing reinforcement ply.
- 172. A water control apparatus as described in claim 171 wherein said at least one overflow orthogonal joint traversing reinforcement ply is two joint traversing reinforcement plies.
- 173. An inflatable article strength enhancement method comprising the steps of: establishing at least one reinforced expandable inner layer to have a continuously adjoined vertically planar perimeter; establishing an inflatable article end section responsive to said at least one reinforced expandable inner layer; establishing a portion of at least one reinforced expandable outer layer externally of and in direct contact with said at least one reinforced expandable inner layer; establishing a pressurized fluid inlet element to create a fluid travel port through said at least one reinforced expandable inner layer and said portion of at least one reinforced expandable outer layer; diverging a remaining portion of said at least one reinforced expandable outer layer from said at least one reinforced expandable inner layer along a layer divergence line; and establishing an inflatable bladder-to-foundation attachment element with at least said remaining portion of said at least one reinforced expandable outer layer.
- 174. An inflatable article strength enhancement method as described in claim 173 wherein said step of establishing an inflatable bladder-to-foundation attachment element with at least said remaining portion of said at least one reinforced expandable outer layer further comprising the step of establishing a water gate-to-inflatable water gate actuator attachment element with said at least said remaining portion of said at least one reinforced expandable outer layer.
- 175. An inflatable article strength enhancement method as described in claim 174 wherein said inflatable article is an inflatable, water gate panel control actuator element.
- 176. An inflatable article strength enhancement method as described in claim 173 wherein said inflatable article is an inflatable elastomeric dam bladder.
- 177. An inflatable article strength enhancement method as described in claim 173 wherein said step of establishing at least one reinforced expandable inner layer comprises the step of establishing at least one reinforced elastomeric inner layer and said step of establishing only a portion of at least one reinforced expandable outer layer comprises the step of establishing only a portion of at least one reinforced elastomeric outer layer.
- 178. A pressurized fluid inlet apparatus comprising:
a pressurized fluid conveyer engagement element; a thickness enhanced, interior edge element responsive to said pressurized fluid conveyer engagement element; a thickness reduced, exterior edge element responsive to said thickness enhanced, pressurized fluid conveyer engagement element proximate, interior edge element and installed configuration contactable with an inflatable membrane separation curve proximate membrane; and a thickness varying body element located between said thickness enhanced, pressurized fluid conveyer engagement element proximate, interior edge element and said thickness reduced exterior edge element.
- 179. A pressurized fluid inlet apparatus as described in claim 178 wherein said pressurized fluid conveyer engagement element is a pressurized air conveyer engagement element.
- 180. A pressurized fluid inlet apparatus as described in claim 178 wherein said pressurized fluid inlet apparatus is also operational as a pressurized fluid outlet apparatus.
- 181. A pressurized fluid inlet apparatus as described in claim 178 wherein said pressurized fluid conveyer engagement element is a threaded engagement element.
- 182. A pressurized fluid inlet apparatus as described in claim 178 wherein said thickness varying body element is a brass thickness varying body element.
- 183. A pressurized fluid inlet apparatus as described in claim 178 wherein said pressurized fluid conveyer engagement element, said thickness enhanced, interior edge element, and said thickness reduced exterior edge element is each made of brass.
- 184. A pressurized fluid inlet apparatus as described in claim 178 wherein said thickness reduced exterior edge element is substantially circular.
- 185. A pressurized fluid inlet apparatus as described in claim 178 wherein said thickness varying body element comprises a frustral inflatable membrane contactable edge and an oppositely facing planar, annular inflatable membrane contactable edge.
- 186. A pressurized fluid inlet apparatus as described in claim 185 wherein said frustral inflatable membrane contactable edge is an external membrane contactable edge.
- 187. A pressurized fluid inlet apparatus as described in claim 178 wherein said thickness enhanced interior edge element is a thickness enhanced, pressurized fluid conveyer engagement element proximate, interior edge element.
- 188. A pressurized fluid inlet apparatus as described in claim 178 wherein said thickness reduced, exterior edge element is an externally rounded exterior edge element having an exterior edge radius of curvature.
- 189. A pressurized fluid inlet apparatus as described in claim 188 wherein said exterior edge radius of curvature is sufficiently small to preclude void formation at said inflatable membrane separation curve.
- 190. A pressurized fluid inlet apparatus as described in claim 189 wherein said exterior edge radius of curvature is approximately 0.0625 inches.
- 191. An elastomeric inflatable article having the pressurized fluid inlet apparatus of claim 178.
- 192. A dock bumper having the pressurized fluid inlet apparatus of claim 178.
- 193. An inflatable elastomeric dam having the pressurized fluid inlet apparatus of claim 178.
- 194. An inflatable water gate panel actuator having the pressurized fluid inlet apparatus of claim 178.
- 195. A pressurized fluid inlet apparatus as described in claim 178 wherein said pressurized fluid inlet apparatus is installed in an elastomeric inflatable article membrane during an initial vulcanization.
- 196. An inflatably actuated water gate water control system comprising at least one inflatable water gate actuator having the pressurized fluid inlet apparatus of claim 178.
- 197. A method of conveying pressurized fluid to and from an inflatable article comprisomg the steps of: dimensioning a pressurized fluid inlet element having a pressurized fluid inlet element hole; establishing said pressurized fluid inlet element between two contact-adjacent inflatable article layers; and establishing an inflatable article layers hole co-axially with said pressurized fluid inlet element hole.
- 198. A method of conveying pressurized fluid to and from an inflatable article as described in claim 197 wherein said step of establishing said pressurized fluid inlet element between two adjacent inflatable article layers comprises the step of establishing said pressurized fluid inlet element between two contact-adjacent reinforced elastomeric inflatable article layers and said step of establishing a inflatable article layers hole comprises the step of establishing an elastomeric inflatable article layers hole.
- 199. A method of conveying pressurized fluid to and from an inflatable article an inflatable article whose pressurized fluid inlet hole is established using the method of claim 198.
- 200. A method of facilitating conveyance of pressurized fluid to and from an inflatable article comprising the steps of:
creating a pressurized fluid conveyer engagement element; establishing a thickness enhanced, interior edge element responsive to said pressurized fluid conveyer engagement element; establishing a thickness reduced exterior edge element responsive to said thickness enhanced, interior edge element and contactable with at least one inflatable membrane separation curve proximate membrane; and establishing a thickness varying body element between said thickness enhanced, interior edge element and said thickness reduced exterior edge element.
- 201. A method of facilitating conveyance of pressurized fluid to and from an inflatable article as described in claim 200 further comprising the step of establishing a pressurized fluid inlet element made from said pressurized fluid conveyer engagement element, said thickness enhanced, interior edge element, said thickness reduced exterior edge element and said thickness varying body element between two contact-adjacent layers of an inflatable membrane.
- 202. A method of facilitating conveyance of pressurized fluid to and from an inflatable article as described in claim 201 wherein said inflatable membrane is a water control gate actuator element inflatable membrane.
- 203. A water gate control actuator element having a pressurized fluid inlet element made according to the method of claim 200.
- 204. A method of facilitating conveyance of pressurized fluid to and from an inflatable article as described in claim 200 wherein said step of creating a pressurized fluid conveyer engagement element comprises the step of creating a pressurized air conveyer engagement element.
- 205. A method of facilitating conveyance of pressurized fluid to and from an inflatable article as described in claim 200 wherein said step of creating a pressurized fluid conveyer engagement element comprises the step of creating a threaded, pressurized fluid conveyer engagement element.
- 206. A method of facilitating conveyance of pressurized fluid to and from an inflatable article as described in claim 200 wherein said step of establishing a thickness enhanced, interior edge element comprises the step of establishing a brass, thickness enhanced, interior edge element, said step of establishing a thickness reduced exterior edge element comprises the step of establishing a brass, thickness reduced exterior edge element, and said step of establishing a thickness varying body element comprises the step of establishing a brass, thickness varying body element.
- 207. A method of facilitating conveyance of pressurized fluid to and from an inflatable article as described in claim 200 said step of establishing a thickness varying body element comprises the step of establishing a frustral internal inflatable membrane contacting edge and an oppositely facing planar, annular, external inflatable membrane contacting edge.
- 208. A method of facilitating conveyance of pressurized fluid to and from an inflatable article as described in claim 207 wherein said step of establishing a frustral internal inflatable membrane contacting edge and an oppositely facing planar, annular, external inflatable membrane contacting edge comprises the step of establishing a frustral, external inflatable membrane contacting edge.
- 209. A method of facilitating conveyance of pressurized fluid to and from an inflatable article as described in claim 200 wherein said step of establishing a thickness reduced exterior edge element comprises the step of establishing a substantially circular, thickness reduced exterior edge element.
- 210. A method of facilitating conveyance of pressurized fluid to and from an inflatable article as described in claim 200 wherein said step of establishing a thickness reduced exterior edge element comprises the step of establishing an externally rounded exterior edge element having an exterior edge radius of curvature.
- 211. A method of facilitating conveyance of pressurized fluid to and from an inflatable article as described in claim 210 wherein said step of establishing an externally rounded exterior edge element having an exterior edge radius of curvature comprises the step of establishing an externally rounded exterior edge element having an exterior edge radius of curvature sufficient to preclude void formation at said at least one inflatable membrane separation curve.
- 212. A method of facilitating conveyance of pressurized fluid to and from an inflatable article as described in claim 211 wherein said step of establishing an externally rounded exterior edge element having an exterior edge radius of curvature comprises the step of establishing an externally rounded exterior edge element to have an exterior edge radius of curvature of 0.0625 inches.
- 213. An impounded water leakage prevention apparatus comprising:
an interpanel seal-to-foundation clamp retention enhancement element; an interpanel seal-to-foundation clampable retention element responsive to said interpanel seal-to-foundation clamp retention enhancement element; an upper, overflow orthogonal water gate panel edge conforming water seal hinge element responsive to said interpanel seal-to-foundation clampable retention element; and an interpanel seal element fixedly attachable to a first edge proximate portion of a first water gate panel and a second edge proximate portion of a second water gate panel, wherein said first edge proximate portion of said first water gate panel is situated adjacent to said second edge proximate portion of said second water gate panel and said first water gate panel is situated adjacent to said second water gate panel.
- 214. An impounded water leakage prevention apparatus as described in claim 213 wherein said interpanel seal-to-foundation clampable retention element responsive to said interpanel seal-to-foundation clamp retention enhancement element is installable adjacent an inflatable water gate actuator-to-foundation clamp retention enhancement element.
- 215. An impounded water leakage prevention apparatus as described in claim 213 wherein the profile of said interpanel seal-to-foundation clamp retention enhancement element substantially approximates an installed-configuration-adjacent, inflatable water gate actuator-to-foundation clamp retention enhancement element profile.
- 216. An impounded water leakage prevention apparatus as described in claim 213 wherein said interpanel seal-to-foundation clamp retention enhancement element, said interpanel seal-to-foundation clampable retention element, and said upper, overflow orthogonal water gate panel edge conforming seal hinge element is each dimensioned to fit compression seal-tight against adjacent impounded seal elements upon installation.
- 217. An impounded water leakage prevention apparatus as described in claim 216 wherein an overflow orthogonal, water gate actuator hinge flap element adjacent portion of said inter panel seal element is dimensioned to fit compression seal-tight against an installed-configuration-adjacent, inflatable water gate actuator hinge flap element.
- 218. An impounded water leakage prevention apparatus as described in claim 216 wherein said compression seal-tight fit is an interference fit.
- 219. An impounded water leakage prevention apparatus as described in claim 213 wherein each said interpanel seal-to-foundation clampable retention element, said upper overflow orthogonal water gate panel edge conforming seal hinge element, and said interpanel seal element is elastomeric.
- 220. An impounded water leakage prevention apparatus as described in claim 213 further comprising thin waterproof seal supplement sheets sealably affixed under an installed said interpanel seal element.
- 221. An impounded water leakage prevention apparatus as described in claim 213 wherein said interpanel seal-to-foundation clampable retention element is a substantially flat, interpanel seal-to-spillway clampable retention element.
- 222. An impounded water leakage prevention apparatus as described in claim 213 wherein said interpanel seal-to-foundation retention enhancement element comprises a comma type insert.
- 223. An impounded water leakage prevention apparatus as described in claim 213 further comprising said first water gate gate panel and said second water gate panel.
- 224. An impounded water leakage prevention apparatus as described in claim 213 further comprising an installed-configuration-adjacent, inflatable water gate actuator apparatus.
- 225. An impounded water leakage prevention apparatus as described in claim 213 wherein said interpanel seal element projects beyond a gate panel downstream limit.
- 226. An impounded water leakage prevention apparatus as described in claim 225 wherein said projecting interpanel seal element is a nappe break element.
- 227. An impounded water leakage prevention apparatus as described in claim 226 wherein said nappe break element is a overtop flow mode dynamic object impact flexible nappe breaker.
- 228. An impounded water leakage prevention apparatus as described in claim 227 wherein said overtop flow mode dynamic object impact flexible nappe breaker is a reinforced elastomeric nappe breaker.
- 229. An impounded water leakage prevention apparatus as described in claim 213 wherein said upper, overflow orthogonal water gate panel edge conforming seal hinge element comprises an overflow orthogonal, vertical, interpanel seal-to-foundation clamp face abutting, corner-augmented edge element.
- 230. An impounded water leakage prevention apparatus as described in claim 229 wherein said overflow orthogonal, vertical interpanel seal-to-foundation clamp face abutting, corner-augmented edge element of said upper, overflow orthogonal water gate panel edge conforming seal hinge element is configured to abut substantially all proximate portions of an overflow orthogonal, interpanel seal-to-foundation clamp face.
- 231. An actuated water gate panel water control system that comprises at least one impounded water leakage prevention apparatus as described in claim 213.
- 232. An inflatably actuated water gate panel water control system that comprises at least one impounded water leakage prevention apparatus as described in claim 222.
- 233. A method of preventing leakage of water impounded by a water control gate system comprising the steps of:
creating a substantially elongated interpanel seal element; adapting said substantially elongated interpanel seal element for fixed attachment to a first edge proximate portion of a first water gate panel and a second edge proximate portion of a second water gate panel, wherein said fist edge proximate portion of said first water gate panel is installed adjacently to said second edge proximate portion of said second water gate panel and said first water gate panel is situated adjacent to said second water gate panel; establishing an interpanel seal-to-foundation clampable retention element to which said substantially elongated interpanel seal element is responsive; establishing an interpanel seal-to-foundation clamp retention enhancement element to which said interpanel seal-to-foundation clampable retention element is responsive; establishing an interpanel seal hinge element responsive to said substantially flat, interpanel seal-to-foundation clampable retention element; and conforming a profile of said interpanel seal-to-foundation clampable retention element to the profile of an installed-configuration-adjacent, water gate actuator-to-foundation clampable retention element.
- 234. A method of preventing leakage of water impounded by a water control gate system as described in claim 233 wherein said interpanel seal hinge element further comprises the step of establishing an upper, overflow orthogonal water gate panel edge conforming interpanel seal hinge element.
- 235. A method of preventing leakage of water impounded by a water control gate system as described in claim 233 further comprising the step of conforming said interpanel seal-to-foundation clamp retention enhancement element to an installed-configuration-adjacent, water gate actuator-to-foundation clamp retention enhancement element.
- 236. A method of preventing leakage of water impounded by a water control gate system as described in claim 233 further comprising the steps of interference seal installing said interpanel seal-to-foundation clampable retention element; and interference seal installing said interpanel seal-to-foundation clamp retention enhancement element between proximate water control actuator attachment elements.
- 237. A method of preventing leakage of water impounded by a water control gate system as described in claim 233 wherein each said substantially elongated interpanel seal element, said interpanel seal-to-foundation clampable retention element, and said interpanel seal-to-foundation clampable retention element is elastomeric.
- 238. A method of preventing leakage of water impounded by a water control gate system as described in claim 233 further comprising the step of establishing at least one thin waterproof seal supplement sheet between said substantially elongated interpanel seal element and underlying water gate panels.
- 239. A method of preventing leakage of water impounded by a water control gate system as described in claim 233 further comprising the step of installation projecting said substantially elongated interpanel seal element beyond a gate panel downstream limit.
- 240. A method of preventing leakage of water impounded by a water control gate system as described in claim 239 wherein said step of installation projecting said substantially elongated interpanel seal element beyond a gate panel downstream limit comprises the step of projecting said substantially elongated interpanel seal element sufficiently to create a nappe break element.
- 241. A method of preventing leakage of water impounded by a water control gate system as described in claim 240 wherein said nappe break element is an overtop flow mode dynamic object impact flexible nappe break element.
- 242. An inflatably actuated water gate panel impoundment system that seals impounded water through use of the method of preventing leakage of water impounded by a water gate system as described in claim 233.
- 243. An inflatably actuated water gate panel impoundment system as described in claim 242 further comprising the step of corner-augmenting an upper, overflow orthogonal edge of said interpanel seal hinge element to conform to an overflow orthogonal, vertical, interpanel seal-to-foundation clamp face edge.
- 244. An inflatable water gate actuator apparatus comprising:
an inflatable bladder element; a pressurized fluid inlet element responsive to said inflatable bladder element; an inflatable bladder-to-foundation attachment element to which said inflatable bladder element is responsive; and an integral water gate panel hinge flap element responsive to said inflatable bladder-to-foundation attachment element and comprising:
an overflow orthogonal, vertical, inflatable bladder-to-foundation clamp face abutting, corner-augmented edge element.
- 245. An inflatable water gate actuator apparatus as described in claim 244 wherein said inflatable bladder-to-foundation attachment element comprises an inflatable bladder-to-foundation clampable retention element; and an inflatable bladder-to-foundation clamp retention enhancement element to which said inflatable bladder-to-foundation clampable retention element responds.
- 246. An inflatable water gate actuator apparatus as described in claim 244 wherein said inflatable bladder-to-foundation attachment element comprises a wedge-shaped bladder-to-foundation clamp retention element.
- 247. An inflatable water gate actuator apparatus as described in claim 244 wherein said overflow orthogonal, vertical, inflatable bladder-to-foundation clamp face abutting, corner-augmented edge element of said integral water gate panel hinge flap element is configured to abut substantially all proximate portions of an overflow orthogonal, vertical, inflatable bladder-to-foundation clamp face.
- 248. An inflatable water gate actuator apparatus as described in claim 244 wherein each said inflatable bladder element, said inflatable bladder-to-foundation attachment element, and said integral water gate panel hinge flap element is elastomeric.
- 249. An inflatably actuated water gate water control system that comprises at least one inflatable water gate actuator apparatus as described in claim 244.
- 250. An inflatable water gate actuator system enhancement method comprising the steps of:
creating an inflatable bladder element; establishing a pressurized fluid inlet element responsive to said inflatable bladder element; establishing an inflatable bladder-to-foundation attachment element to which said inflatable bladder element is responsive; establishing an integral water gate panel hinge flap attachment element responsive to said inflatable bladder-to-foundation attachment element; and corner-augmenting an upper, overflow orthogonal edge of said integral water gate panel hinge flap attachment element to conform to a vertical, inflatable bladder-to-foundation clamp face.
- 251. An inflatable water gate actuator system enhancement method as described in claim 250 wherein said step of establishing an inflatable bladder-to-foundation attachment element comprises the step of establishing an inflatable bladder-to-foundation clampable retention element and the step of establishing an inflatable bladder-to-foundation clamp retention enhancement element to which said inflatable bladder-to-foundation clampable retention element is responsive.
- 252. An inflatable water gate actuator system enhancement method as described in claim 250 wherein said step of establishing an inflatable bladder-to-foundation attachment element comprises the step of establishing a wedge-shaped inflatable bladder-to-foundation clamp retention element.
- 253. An inflatable water gate actuator system enhancement method as described in claim 250 wherein said step of creating an inflatable bladder element comprises the step of creating an inflatable elastomeric bladder element
- 254. An impounded water seal apparatus comprising:
an upper, impounded water seal element that is fixedly attachable to a foundation slide surface adjacent edge proximate portion of a foundation slide surface adjacent water gate panel and that comprises: a water gate panel conformable seal element; a foundation slide surface adjacent, impounded water seal element responsive to said water gate panel conformable seal element; and a longitudinal corner seal element established substantially between said water gate panel conformable seal element and said foundation slide surface adjacent, impounded water seal element; a thickness reduced, hingeable, upper, overflow orthogonal water gate panel edge conforming water seal element responsive to said upper, impounded water seal element; and an abutment seal-to-foundation attachment element to which said thickness reduced, hingeable, upper, overflow orthogonal water gate panel edge conforming water seal element is responsive.
- 255. An impounded water seal apparatus as described in claim 254 wherein said abutment seal-to-foundation attachment element comprises an abutment seal-to-foundation clampable retention element and an abutment seal-to-foundation clamp retention enhancement element to which said abutment seal-to-foundation clampable retention element is responsive.
- 256. An impounded water seal apparatus as described in claim 255 wherein said abutment seal-to-foundation clampable retention element has a profile that is substantially approximate to an installed-configuration-adjacent inflatable water gate actuator-to-foundation clampable element profile.
- 257. An impounded water seal apparatus as described in claim 256 wherein said abutment seal-to-foundation clampable retention element is elastomeric and substantially flat.
- 258. An impounded water seal apparatus as described in claim 256 wherein said abutment seal-to-foundation clamp retention enhancement element has a profile that is substantially approximate to an installed-configuration-adjacent, inflatable water gate actuator-to-foundation clamp retention enhancement element profile.
- 259. An impounded water seal apparatus as described in claim 255 wherein abutment seal-to-foundation clampable retention element is a substantially flat abutment seal-to-foundation clampable retention element.
- 260. An impounded water seal apparatus as described in claim 259 wherein said abutment seal-to-foundation clampable retention element exhibits an installed-configuration-adjacent inflatable water gate actuator-to-foundation clampable element profile.
- 261. An impounded water seal apparatus as described in claim 255 wherein said abutment seal-to-foundation clamp retention enhancement element comprises a substantially circular cross-sectional insert.
- 262. An impounded water seal apparatus as described in claim 261 wherein said abutment seal-to-foundation clamp retention enhancement element comprises a comma-type insert.
- 263. An impounded water seal apparatus as described in claim 254 wherein said abutment seal-to-foundation attachment element comprises a wedge-shaped abutment seal-to-foundation clamp retention element.
- 264. An impounded water seal apparatus as described in claim 263 wherein said wedge-shaped abutment seal-to-foundation clamp retention element is configured to have an installed-configuration-adjacent wedge-shaped, gate panel actuator-to-foundation attachment element profile.
- 265. An impounded water seal apparatus as described in claim 254 wherein said foundation slide surface adjacent, impounded water seal element is a concrete foundation slide surface adjacent impounded water seal element.
- 266. An impounded water seal apparatus as described in claim 254 wherein said foundation slide surface adjacent impounded water seal element is an abutment plate adjacent impounded water seal element.
- 267. An impounded water seal apparatus as described in claim 266 wherein said abutment plate adjacent impounded water seal element is stainless steel.
- 268. An impounded water seal apparatus as described in claim 266 wherein said abutment plate adjacent impounded water seal element is polymeric.
- 269. An impounded water seal apparatus as described in claim 268 wherein said abutment plate adjacent impounded water seal element is polyethylene.
- 270. An impounded water seal apparatus as described in claim 254 wherein said foundation slide surface adjacent, impounded water seal element comprises a low friction wear impounded water seal element.
- 271. An impounded water seal apparatus as described in claim 270 wherein said low friction wear surface impounded water seal element comprises a polymeric seal element.
- 272. An impounded water seal apparatus as described in claim 271 wherein said polymeric seal element comprises an polyethylene seal element.
- 273. An impounded water seal apparatus as described in claim 272 wherein said polyethylene seal element comprises an ultra high molecular weight polyethylene seal element.
- 274. An impounded water seal apparatus as described in claim 272 wherein said polyethylene seal element comprises a high density polyethylene seal element.
- 275. An impounded water seal apparatus as described in claim 271 wherein said polymeric seal element is co-vulcanized to a reinforced elastomer containing EPDM rubber.
- 276. An impounded water seal apparatus as described in claim 271 wherein said polyethylene seal element is co-vulcanized to a reinforced elastomer comprising EPDM rubber and chlorobutyl.
- 277. An impounded water seal apparatus as described in claim 276 wherein said foundation slide surface adjacent impounded water seal element is a stainless steel foundation slide surface adjacent impounded water seal element.
- 278. An impounded water seal apparatus as described in claim 276 wherein said foundation slide surface adjacent impounded water seal element is a rubber foundation slide surface adjacent impounded water seal element.
- 279. An impounded water seal apparatus as described in claim 254 wherein said foundation slide surface adjacent impounded water seal element comprises a rubber seal element.
- 280. An impounded water seal apparatus as described in claim 279 wherein said foundation slide surface adjacent impounded water seal element is a polymeric foundation slide surface adjacent impounded water seal element.
- 281. An impounded water seal apparatus as described in claim 254 wherein said foundation slide surface adjacent impounded water seal element comprises a stainless steel seal element.
- 282. An impounded water seal apparatus as described in claim 281 wherein said foundation slide surface adjacent impounded water seal element is a polymeric foundation slide surface adjacent impounded water seal element.
- 283. An impounded water seal apparatus as described in claim 254 wherein said foundation slide surface adjacent impounded water seal element is a concrete foundation slide surface adjacent impounded water seal element.
- 284. An impounded water seal apparatus as described in claim 283 wherein said concrete foundation slide surface adjacent impounded water seal element is a painted concrete foundation slide surface adjacent impounded water seal element.
- 285. An impounded water seal apparatus as described in claim 254 wherein said foundation slide surface adjacent impounded water seal element is elastically angularly biased
- 286. An impounded water seal apparatus as described in claim 285 wherein said elastic angular bias is a reinforcement ply enhanced bias.
- 287. An impounded water seal apparatus as described in claim 254 further comprising said foundation slide surface adjacent water gate panel.
- 288. An impounded water seal apparatus as described in claim 254 further comprising an installed-configuration-adjacent water gate panel actuator apparatus.
- 289. An impounded water seal apparatus as described in claim 254 further comprising an installed-configuration-adjacent foundation slide surface.
- 290. An impounded water seal apparatus as described in claim 254 wherein said thickness reduced, hingeable, upper, overflow orthogonal water gate panel edge conforming seal element comprises a vertical, overflow orthogonal. abutment seal-to-foundation clamp face abutting, corner-augmented edge element.
- 291. An impounded water seal apparatus as described in claim 290 wherein said vertical abutment seal-to-foundation clamp face abutting, corner-augmented overflow orthogonal edge element is configured to abut substantially all proximate portions of an abutment seal-to-foundation clamp face.
- 292. An impounded water seal apparatus as described in claim 254 wherein said thickness reduced, hingeable, upper overflow orthogonal water gate panel edge conforming water seal element and said abutment seal-to-foundation attachment element is interference seal width dimensioned.
- 293. An impounded water seal apparatus as described in claim 254 further comprising a heat element to which said foundation slide surface adjacent, impounded water seal element is thermally responsive.
- 294. An impounded water seal apparatus as described in claim 254 wherein said foundation slide surface adjacent impounded water seal element comprises an integrally vulcanized heating element established substantially along the length of said foundation slide surface adjacent impounded water seal element.
- 295. An actuated water control system that comprises at least one impounded water seal apparatus as described in claim 254.
- 296. An impounded water seal method comprising the steps of:
creating a water gate panel conformable seal element; establishing a foundation slide surface adjacent, impounded water seal element to which said water gate panel conformable seal element is responsive; establishing a longitudinal corner seal element substantially between said water gate panel conformable seal element and said foundation slide surface adjacent, impounded water seal element; wherein said water gate panel conformable seal element; said foundation slide surface adjacent, impounded water seal element; and said longitudinal corner seal element together form an upper impounded water seal element; adapting said upper impounded water seal element for fixed attachment to a foundation slide surface adjacent, edge proximate portion of a foundation slide surface adjacent water gate panel; hingedly attaching a thickness reduced, hingeable, upper, overflow orthogonal water gate panel edge conforming seal element to said upper, impounded water seal element; and establishing an abutment seal-to-foundation attachment element to which said thickness reduced, hingeable, upper overflow orthogonal water gate panel edge conforming seal element is responsive.
- 297. An impounded water seal method as described in claim 296 wherein said step of establishing an abutment seal-to-foundation attachment element comprises the steps of establishing an abutment seal-to-foundation clampable retention element and an abutment seal-to-foundation clamp retention enhancement element responsive to said abutment seal-to-foundation clampable retention element.
- 298. An impounded water seal method as described in claim 297 wherein said step of establishing an abutment seal-to-foundation clampable retention element comprises the step of establishing an abutment seal-to-foundation clampable retention element that is substantially approximate to an adjacent inflatable water gate actuator-to-foundation clampable element profile.
- 299. An impounded water seal method as described in claim 298 wherein said step of establishing an abutment seal-to-foundation clampable retention element comprises the step of establishing an elastomeric, substantially flat abutment seal-to-foundation clampable retention element.
- 300. An impounded water seal method as described in claim 298 wherein said step of establishing an abutment seal-to-foundation clamp retention enhancement element comprises the step of establishing an abutment seal-to-foundation clamp retention enhancement element that has a profile that is substantially approximate to an installed-configuration-adjacent, inflatable water gate actuator-to-foundation clamp retention enhancement element profile.
- 301. An impounded water seal method as described in claim 297 wherein said step of establishing an abutment seal-to-foundation clampable retention element comprises the step of establishing a substantially flat abutment seal-to-foundation clampable retention element.
- 302. An impounded water seal method as described in claim 301 wherein said step of establishing an abutment seal-to-foundation clampable retention element comprises the step of establishing an abutment seal-to-foundation clampable retention element that has an installed-configuration-adjacent inflatable water gate actuator-to-foundation clampable element profile.
- 303. An impounded water seal method as described in claim 297 wherein said step of establishing an abutment seal-to-foundation clamp retention enhancement element comprises the step of establishing a substantially circular cross-sectional insert.
- 304. An impounded water seal method as described in claim 303 wherein said step of establishing a substantially circular cross-sectional insert comprises the step of establishing a comma-type insert.
- 305. An impounded water seal method as described in claim 296 wherein said step of establishing an abutment seal-to-foundation attachment element comprises the step of establishing a wedge-shaped abutment seal-to-foundation clamp retention element.
- 306. An impounded water seal method as described in claim 305 wherein said step of establishing a wedge-shaped abutment seal-to-foundation clamp retention element comprises the step of establishing a wedge-shaped abutment seal-to-foundation clamp retention element that has an installed-configuration-adjacent, wedge-shaped, gate panel actuator-to-foundation attachment element profile.
- 307. An impounded water seal method as described in claim 296 wherein said step of establishing a foundation slide surface adjacent, impounded water seal element comprises the step of establishing a concrete foundation slide surface adjacent, impounded water seal element.
- 308. An impounded water seal method as described in claim 296 wherein said step of establishing a foundation slide surface adjacent, impounded water seal element comprises the step of establishing an abutment plate adjacent, impounded water seal element.
- 309. An impounded water seal method as described in claim 308 wherein said step of establishing an abutment plate adjacent, impounded water seal element comprises the step of establishing a stainless steel abutment plate adjacent, impounded water seal element.
- 310. An impounded water seal method as described in claim 308 wherein said step of establishing an abutment plate adjacent, impounded water seal element comprises the step of establishing a polyethylene abutment plate adjacent, impounded water seal element.
- 311. An impounded water seal method as described in claim 296 wherein said step of establishing a foundation slide surface adjacent, impounded water seal element comprises the step of establishing a low friction wear, impounded water seal element.
- 312. An impounded water seal method as described in claim 311 wherein said step of establishing a low friction wear impounded water seal element comprises the step of establishing a polymeric seal element.
- 313. An impounded water seal method as described in claim 312 wherein said step of establishing a low friction wear, impounded water seal element comprises the step of establishing a polyethylene seal element.
- 314. An impounded water seal method as described in claim 313 wherein said step of establishing a polyethylene seal element comprises the step of establishing an ultra-high molecular weight polyethylene seal element.
- 315. An impounded water seal method as described in claim 314 wherein said step of establishing a polyethylene seal element comprises the step of establishing a high density polyethylene seal element.
- 316. An impounded water seal method as described in claim 315 wherein said step of establishing a polyethylene seal element comprises the step of covulcanizing said polyethylene seal element to a reinforced elastomer containing EPDM rubber.
- 317. An impounded water seal method as described in claim 316 wherein said step of establishing a polyethylene seal element comprises the step of covulcanizing said polyethylene seal element to a reinforced elastomer comprised of EPDM rubber and chlorobutyl.
- 318. An impounded water seal method as described in claim 317 wherein said step of establishing a foundation slide surface adjacent, impounded water seal element comprises the step of establishing a foundation slide surface adjacent, impounded water seal element.
- 319. An impounded water seal method as described in claim 318 wherein said step of establishing a foundation slide surface adjacent, impounded water seal element comprises the step of establishing a stainless steel foundation slide surface adjacent, impounded water seal element.
- 320. An impounded water seal method as described in claim 296 wherein said step of establishing a foundation slide surface adjacent, impounded water seal element comprises the step of establishing a rubber impounded water seal element.
- 321. An impounded water seal method as described in claim 320 wherein said step of establishing a foundation slide surface adjacent, impounded water seal element comprises the step of establishing a polyethylene foundation slide surface adjacent, impounded water seal element.
- 322. An impounded water seal method as described in claim 296 wherein said step of establishing a foundation slide surface adjacent, impounded water seal element comprises the step of establishing a stainless steel impounded water seal element.
- 323. An impounded water seal method as described in claim 322 wherein said step of establishing a foundation slide surface adjacent, impounded water seal element comprises the step of establishing a polyethylene foundation slide surface adjacent, impounded water seal element.
- 324. An impounded water seal method as described in claim 296 wherein said step of establishing a foundation slide surface adjacent, impounded water seal element to which said water gate panel conformable seal element is responsive comprises the step of angularly, elastically biasing said foundation slide surface adjacent, impounded water seal element.
- 325. An impounded water seal method as described in claim 324 wherein said step of angularly, elastically biasing said foundation slide surface adjacent, impounded water seal element comprises the step of reinforced elastomer ply enhanced biasing said foundation slide surface adjacent, impounded water seal element.
- 326. An impounded water seal method as described in claim 296 further comprising the step of corner augmenting an upper, overflow orthogonal edge of said thickness reduced, hingeable, upper overflow orthogonal water gate panel edge conforming seal element to substantially abut substantially all proximate portions of a planar abutment seal-to-foundation clamp face.
- 327. An impounded water seal method as described in claim 296 further comprising the step of interference seal width dimensioning said thickness reduced, hingeable, upper, overflow orthogonal water gate panel edge conforming seal element and said abutment seal-to-foundation attachment element.
- 328. An impounded water seal method as described in claim 296 further comprising the step of establishing a heat element to which said foundation slide surface adjacent, impounded water seal element is thermally responsive.
- 329. An impounded water seal method as described in claim 328 further comprising the step of integrally vulcanizing said heat element as part of said foundation slide surface adjacent, impounded water seal element.
- 330. An impounded water seal method as described in claim 296 wherein said step of establishing a foundation slide surface adjacent, impounded water seal element comprises the step of establishing a substantially vertically coplanar, vertical foundation slide surface adjacent impounded water seal element.
- 331. A water gate panel slide friction abatement apparatus comprising:
a polymeric plate element dimensioned to contact a planar abutment seal face throughout a possible water gate position vertical edge sweep; and a plate-to-foundation surface attachment element to which said polymeric plate element is responsive.
- 332. A water gate panel slide friction abatement apparatus as described in claim 331 wherein said polymeric plate element is a polyethylene plate element.
- 333. A water gate panel slide friction abatement apparatus as described in claim 332 wherein said polyethylene plate element is an ultra-high molecular weight polyethylene plate element.
- 334. A water gate panel slide friction abatement apparatus as described in claim 332 wherein said polyethylene plate element is a high density polyethylene plate element.
- 335. A water gate panel slide friction abatement apparatus as described in claim 331 wherein said polymeric plate element is a dark colored polymeric plate element.
- 336. A water gate panel slide friction abatement apparatus as described in claim 331 wherein said polymeric plate element is an ultra-high molecular weight polymeric plate element.
- 337. A water gate panel slide friction abatement apparatus as described in claim 331 wherein said polymeric plate element is a high density polymeric plate element.
- 338. A water gate panel slide friction abatement apparatus as described in claim 331 wherein said polymeric plate element is a reinforced polymeric plate element.
- 339. A water gate panel slide friction abatement apparatus as described in claim 338 wherein said reinforced polymeric plate element is fiberglass reinforced polymeric plate element.
- 340. A water gate panel slide friction abatement apparatus as described in claim 331 wherein said plate-to-foundation surface attachment element comprises a plurality of fastener holes separated by an average, nearest fastener hole separation distance.
- 341. A water gate panel slide friction abatement apparatus as described in claim 340 wherein said average, nearest fastener hole separation distance divided by a polymeric plate element thickness is less than approximately 20.
- 342. A water gate panel slide friction abatement apparatus as described in claim 341 wherein said average, nearest fastener hole separation distance divided by said polymeric plate element thickness is less than approximately 12.
- 343. A water gate panel slide friction abatement apparatus as described in claim 342 wherein a plurality of fastener hole edges are recessed fastener hole edges.
- 344. A water gate panel slide friction abatement apparatus as described in claim 342 wherein said average, nearest fastener hole separation distance divided by said polymeric plate element thickness is approximately eight.
- 345. A water gate panel slide friction abatement apparatus as described in claim 331 wherein said plate-to-foundation surface attachment element comprises a plurality of horizontally and vertically aligned fastener holes separated by approximately equal horizontal fastener hole separation distances and approximately equal vertical fastener hole separation distances.
- 346. A water gate panel slide friction abatement apparatus as described in claim 345 wherein each of said fastener hole separation distances divided by a polymeric plate element thickness is less than approximately 20.
- 347. A water gate panel slide friction abatement apparatus as described in claim 346 wherein each of said fastener hole separation distances divided by said polymeric plate element thickness is less than approximately 12.
- 348. A water gate panel slide friction abatement apparatus as described in claim 347 wherein a plurality of fastener hole edges are recessed fastener hole edges.
- 349. A water gate panel slide friction abatement apparatus as described in claim 347 wherein each of said fastener hole separation distances divided by said polymeric plate element thickness is approximately eight.
- 350. A water gate panel slide friction abatement apparatus as described in claim 331 wherein said plate-to- vertical foundation surface attachment element comprises a plurality of recessed fastener hole edges.
- 351. A water gate panel slide friction abatement apparatus as described in claim 350 wherein a majority of said plurality of recessed fastener hole edges is each adapted to retain a plate element surface flush, low thermal conductivity material, fastener recession filler.
- 352. A water gate panel slide friction abatement apparatus as described in claim 351 wherein said plate element surface flush low thermal conductivity material, fastener recession filler is a plate element surface flush polyethylene, fastener recession filler.
- 353. A water gate panel slide friction abatement apparatus as described in claim 331 wherein said polymeric plate element is a unitary polymeric plate.
- 354. A water gate panel slide friction abatement apparatus as described in claim 353 wherein said unitary polymeric plate is a polyethylene plate.
- 355. A water gate panel slide friction abatement apparatus as described in claim 331 wherein said polymeric plate element comprises a plurality of polymeric plates.
- 356. A water gate panel slide friction abatement apparatus as described in claim 355 wherein at least two of said plurality of polymeric plates are adapted for separation in an installed configuration by a sealant accommodating groove.
- 357. A water gate panel slide friction abatement apparatus as described in claim 355 wherein said plurality of polymeric plates are fixedly attached to said vertical foundation surface.
- 358. A water gate panel slide friction abatement apparatus as described in claim 357 wherein said fixedly attached plurality of polymeric plates are separated by a sealant accommodating groove.
- 359. A water gate panel slide friction abatement apparatus as described in claim 355 wherein said plurality of polymeric plates is a plurality of polyethylene plates.
- 360. A water gate panel slide friction abatement apparatus as described in claim 359 wherein at last two of said plurality of polyehtylene plates are adjusted for separation in an installed configuration by a sealant accommodating groove.
- 361. A water gate panel slide friction abatement apparatus as described in claim 359 wherein said plurality of polyethylene plates are fixedly attached to said foundation surface.
- 362. A water gate panel slide friction abatement apparatus as described in claim 361 wherein said fixedly attached plurality of polyethylene plates are separated by a sealant accommodating groove.
- 363. A water gate panel slide friction abatement apparatus as described in claim 331 wherein said polymeric plate element comprises a thermal plate buckling effect mitigative significant number of fastener holes.
- 364. A water gate panel slide friction abatement apparatus as described in claim 363 wherein said polymeric plate element has a thermal plate buckling effect mitigative thickness.
- 365. A water gate panel slide friction abatement apparatus as described in claim 364 wherein thermal plate buckling effect mitigative thickness is approx 15 mm.
- 366. A water gate panel slide friction abatement apparatus as described in claim 364 wherein said thermal plate buckling effect mitigative thickness is approx 25 mm.
- 367. A water gate panel slide friction abatement apparatus as described in claim 331 wherein said polymeric plate element has a thermal plate buckling effect mitigative thickness.
- 368. A water gate panel slide friction abatement apparatus as described in claim 367 wherein thermal plate buckling effect mitigative thickness is approx 15 mm.
- 369. A water gate panel slide friction abatement apparatus as described in claim 367 wherein said thermal plate buckling effect mitigative thickness is approx 25 mm.
- 370. A water gate slide friction abatement method comprising the steps of:
dimensioning a polymeric material to form a substantially planar polymeric plate element able to contact an abutment seal face throughout a possible water gate edge sweep; and establishing a plate-to-foundation surface attachment element to which said substantially planar polymeric plate element is responsive.
- 371. A water gate slide friction abatement method as described in claim 370 wherein said step of dimensioning a polymeric material comprises the step of dimensioning a dark-colored polymeric material.
- 372. A water gate slide friction abatement method as described in claim 370 wherein said step of dimensioning a polymeric material comprises the step of dimensioning an ultra high molecular weight polymeric material
- 373. A water gate slide friction abatement method as described in claim 370 wherein said step of dimensioning a polymeric material comprises the step of dimensioning a high density polymeric material.
- 374. A water gate slide friction abatement method as described in claim 370 wherein said step of dimensioning a polymeric material comprises the step of dimensioning a reinforced polymeric material.
- 375. A water gate slide friction abatement method as described in claim 374 wherein said step of dimensioning a reinforced polymeric material comprises the step of dimensioning a fiberglass reinforced polymeric material.
- 376. A water gate slide friction abatement method as described in claim 370 wherein said step of dimensioning a polymeric material comprises the step of dimensioning a polyethylene material.
- 377. A water gate slide friction abatement method as described in claim 370 wherein said step of dimensioning a polyethylene material comprises the step of dimensioning a dark-colored polyethylene material.
- 378. A water gate slide friction abatement method as described in claim 370 wherein said step of dimensioning a polyethylene material comprises the step of dimensioning an ultra high molecular weight polyethylene material.
- 379. A water gate slide friction abatement method as described in claim 370 wherein said step of dimensioning a polyethylene material comprises the step of dimensioning a high density polyethylene material.
- 380. A water gate slide friction abatement method as described in claim 370 wherein said step of dimensioning a polyethylene material comprises the step of dimensioning a reinforced polyethylene material.
- 381. A water gate slide friction abatement method as described in claim 380 wherein said step of dimensioning a reinforced polyethylene material comprises the step of dimensioning a fiberglass reinforced polyethylene material.
- 382. A water gate slide friction abatement method as described in claim 370 wherein said step of establishing a plate-to-foundation surface attachment element to which said substantially planar polymeric plate element is responsive comprises the step of establishing a plurality of fastener holes separated by an average, nearest fastener hole separation distance.
- 383. A water gate slide friction abatement method as described in claim 382 wherein said step of establishing a plurality of fastener holes separated by an average, nearest fastener hole separation distance comprises the step of separating said plurality of fastener holes to have an average, nearest fastener hole separation distance to plate thickness ratio that is less than approximately 20:1.
- 384. A water gate slide friction abatement method as described in claim 383 wherein said step of separating said plurality of fastener holes to have an average, nearest fastener hole separation distance to plate thickness ratio that is less than approximately 20:1 comprises the step of separating said plurality of fastener holes to have an average, nearest fastener hole separation distance to plate thickness ratio that is less than approximately 12:1.
- 385. A water gate slide friction abatement method as described in claim 384 wherein said step of separating said plurality of fastener holes to have an average, nearest fastener hole separation distance to plate thickness ratio that is less than approximately 12:1 comprises the step of separating said plurality of fastener holes to have an average, nearest fastener hole separation distance to plate thickness ratio that is approximately 8:1.
- 386. A water gate slide friction abatement method as described in claim 382 wherein said step of establishing a plate-to-foundation surface attachment element to which said substantially planar polymeric plate element is responsive comprises the step of recessing edges of said fastener holes.
- 387. A water gate slide friction abatement method as described in claim 386 wherein said step of establishing a plate-to-foundation surface attachment element to which said substantially planar polymeric plate element is responsive further comprises the step of adapting said recessed fastener hole edges to retain a plate element surface flush, low thermal conductivity material, fastener recession filler.
- 388. A water gate slide friction abatement method as described in claim 387 wherein the step of adapting said recessed fastener hole edges to retain a plate element surface flush, low thermal conductivity material, fastener recession filler comprises the step of adapting said recessed fastener hole edges to retain a plate element surface flush, polymeric, fastener recession filler.
- 389. A water gate slide friction abatement method as described in claim 382 wherein said step of establishing a plurality of fastener holes separated by an average, nearest fastener hole separation distance comprises the step of separating said plurality of fastener holes by approximately equal horizontal fastener hole separation distances and approximately equal vertical fastener hole separation distances.
- 390. A water gate slide friction abatement method as described in claim 389 wherein said step of separating said plurality of fastener holes by approximately equal horizontal fastener hole separation distances and approximately equal vertical fastener hole separation distances comprises the step of vertically separating said plurality of fastener holes to have a vertical fastener hole separation distance to plate thickness ratio of less than approximately 20:1 and the step of horizontally separating said plurality of fastener holes to have a horizontal fastener hole separation distance to plate thickness ratio of less than approximately 20:1.
- 391. A water gate slide friction abatement method as described in claim 390 wherein said step of vertically separating said plurality of fastener holes to have a vertical fastener hole separation distance to plate thickness ratio of less than approximately 20:1 comprises the step of vertically separating said plurality of fastener holes to have a vertical fastener hole separation distance to plate thickness ratio of less than approximately 12:1 and said step of horizontally separating said plurality of fastener holes to have a horizontal fastener hole separation distance to plate thickness ratio of less than approximately 20:1 comprises the step of horizontally separating said plurality of fastener holes to have a horizontal fastener hole separation distance to plate thickness ratio of less than approximately 12:1.
- 392. A water gate slide friction abatement method as described in claim 391 wherein the step of vertically separating said plurality of fastener holes to have a vertical fastener hole separation distance to plate thickness ratio of less than approximately 12:1 comprises the step of vertically separating said plurality of fastener holes to have a vertical fastener hole separation distance to plate thickness ratio of approximately 8:1 and said step of horizontally separating said plurality of fastener holes to have a horizontal fastener hole separation distance to plate thickness ratio of less than approximately 12:1 comprises the step of horizontally separating said plurality of fastener holes to have a horizontal fastener hole separation distance to plate thickness ratio of approximately 8:1.
- 393. A water gate slide friction abatement method as described in claim 382 wherein said step of establishing a plurality of fastener holes separated by an average, nearest fastener hole separation distance comprises the step of establishing a thermal plate buckling effect mitigative significant number of fastener holes.
- 394. A water gate slide friction abatement method as described in claim 370 further comprising the step of attaching said substantially planar polymeric plate element to a foundation slide surface through use of said plate-to-foundation surface attachment element.
- 395. A water gate slide friction abatement method as described in claim 370 wherein said step of dimensioning said polymeric material to form a substantially planar polymeric plate element able to contact an abutment seal face throughout a possible water gate edge sweep comprises the step of dimensioning said polymeric material to form a unitary polymeric plate.
- 396. A water gate slide friction abatement method as described in claim 370 wherein said step of dimensioning said polymeric material to form a substantially planar polymeric plate element able to contact an abutment seal face throughout a possible water gate edge sweep comprises the step of dimensioning said polymeric material to form a plurality of polymeric plates.
- 397. A water gate slide friction abatement method as described in claim 396 further comprising the step of attaching said plurality of polymeric plates to a foundation slide surface through use of said plate-to-foundation surface attachment element.
- 398. A water gate slide friction abatement method as described in claim 397 wherein said step of attaching said substantially planar polymeric plate element to a foundation slide surface comprises the step of separating at least two of said plurality of polymeric plates by a sealant accommodating groove.
- 399. A water gate slide friction abatement method as described in claim 370 further comprising the step of establishing a heating element to which said substantially planar polymeric plate element is thermally responsive.
- 400. A water gate slide friction abatement method as described in claim 370 wherein said step of dimensioning a polymeric material comprises the step of dimensioning said polymeric material to form a unitary polymeric plate.
- 401. A water gate slide friction abatement method as described in claim 370 wherein said step of dimensioning a polymeric material comprises the step of dimensioning a polymeric material to form a plurality of polymeric plates.
- 402. A water gate slide friction abatement method as described in claim 401 further comprising the step of attaching said plurality of polymeric plates to a foundation slide surface through use of said plate-to-foundation surface attachment element.
- 403. A water gate slide friction abatement method as described in claim 401 wherein said step of attaching said substantially planar plate element to a foundation slide surface comprises the step of separating at least two of said plurality of polymeric plates by a sealant accommodating groove.
- 404. A water gate slide friction abatement method as described in claim 370 wherein said step of dimensioning said polymeric material to form a substantially planar polymeric plate element able to contact a vertically planar abutment seal face throughout a possible water gate position vertical edge sweep comprises the step of dimensioning said polymeric material to have a thermal plate buckling effect mitigative thickness.
- 405. A water gate slide friction abatement method as described in claim 404 wherein said step of dimensioning said polyethylene material to have a thermal plate buckling effect mitigative thickness comprises the step of dimensioning said polymeric material to have a thickness of approximately 15 mm.
- 406. A water gate slide friction abatement method as described in claim 404 wherein said step of dimensioning said polyethylene material to have a thermal plate buckling effect mitigative thickness comprises the step of dimensioning said polymeric material to have a thickness of approximately 25 mm.
- 407. A water control apparatus comprising:
a concrete water control gate panel body element; a slide friction reduced, actuator-side water control gate panel surface element responsive to said concrete water control gate panel body element; and a horizontal axis rotation hinge-to-water gate panel attachment element fixedly positioned at an overflow orthogonal installed water gate panel bottom edge and to which said concrete water control gate panel body element is responsive.
- 408. A water control apparatus as described in claim 407 wherein said slide friction reduced, actuator side water control gate panel surface element is a slide friction reduced, actuator side, downstream installed water control gate panel surface element.
- 409. A water control apparatus as described in claim 407 further comprising an elastomeric, horizontal axis rotation hinge element to which said horizontal axis rotation hinge-to-water gate panel attachment element is responsive and to which said concrete water control gate panel is rotationally responsive.
- 410. A water control apparatus as described in claim 407 wherein said slide friction reduced, actuator side water control gate panel surface element is a smoothed concrete surface.
- 411. A water control apparatus as described in claim 407 wherein said slide friction reduced, actuator side water control gate panel surface element is a UHMW polyethylene surface.
- 412. A water control apparatus as described in claim 407 wherein horizontal axis rotation hinge-to-water gate panel attachment element comprises a concrete water control gate panel body encased attachment element.
- 413. A water control apparatus as described in claim 407 wherein said concrete water control gate panel body element is a fiber reinforced concrete water control gate panel body element.
- 414. A water control apparatus as described in claim 407 wherein said concrete water control gate panel body element is a rebar reinforced concrete water control gate panel body element.
- 415. A water control apparatus as described in claim 407 wherein said concrete water control gate panel body element is a post-tensioned rod reinforced concrete water control gate panel body element.
- 416. A water control apparatus as described in claim 407 further comprising an inflatable water control gate actuator to which said concrete water control gate panel body element is elevationally responsive at said slide friction reduced, actuator side water control gate panel surface element.
- 417. An actuatable water gate water control system comprising at least one water control apparatus described in claim 407.
- 418. A method of controlling impounded water comprising the steps of:
creating a concrete water control gate panel body element; establishing a slide friction reduced, actuator-side water control gate panel surface element responsive to said concrete water control gate panel body element; and establishing a horizontal axis rotation hinge-to-water gate panel attachment element at an overflow orthogonal, installed water gate panel edge and to which said concrete water control gate panel body element is responsive.
- 419. A method of controlling impounded water as described in claim 418 wherein said step of establishing a horizontal axis rotation hinge-to-water gate panel attachment element at an overflow orthogonal, installed water gate panel edge and to which said concrete water control gate panel body element is responsive comprises the step of establishing an elastomeric, horizontal axis rotation hinge element to which said horizontal axis rotation hinge-to-water gate panel attachment element is rotationally responsive.
- 420. A method of controlling impounded water as described in claim 418 wherein said step of establishing a slide friction reduced, actuator-side water control gate panel surface element responsive to said concrete water control gate panel body element comprises the step of establishing a smooth concrete surface.
- 421. A method of controlling impounded water as described in claim 418 wherein said step of establishing a slide friction reduced, actuator side water control gate panel surface element responsive to said concrete water control gate panel body element comprises the step of establishing a polymeric surface.
- 422. A method of controlling impounded water as described in claim 418 wherein said step of establishing a horizontal axis rotation hinge-to-water gate panel attachment element at an overflow orthogonal, installed water gate panel bottom edge and to which said concrete water control gate panel body element is responsive comprises the step of concretedly encasing at least a portion of said horizontal axis rotation hinge-to-water gate panel attachment element.
- 423. A method of controlling impounded water as described in claim 418 wherein said step of creating a concrete water control gate panel body element comprises the step of establishing a fiber reinforced concrete water control gate panel body element.
- 424. A method of controlling impounded water as described in claim 418 wherein said step of creating a concrete water control gate panel body element comprises the step of establishing a rebar reinforced concrete water control gate panel body element.
- 425. A method of controlling impounded water as described in claim 418 wherein said step of creating a concrete water control gate panel body element comprises the step of establishing a post-tensioned rod reinforced concrete water control gate panel body element.
- 426. A method of controlling impounded water as described in claim 418 further comprising the step of establishing an inflatable water control gate actuator to which said slide friction reduced, actuator-side water control gate panel surface element is elevationally responsive.
- 427. An improved impounded water control system operation maintenance apparatus comprising:
a tensionable, excessive bottom-hinged water gate panel rotation prevention element; a lower, excessive gate rotation prevention element-to-foundation attachment element to which said tensionable, excessive bottom-hinged water gate panel rotation prevention element is responsive and that is fixedly established between oppositely facing ends of end-proximate water gate panel actuators; and an upper, excessive gate rotation prevention element-to-gate panel attachment element responsive to said tensionable, excessive bottom-hinged water gate panel rotation prevention element.
- 428. An improved impounded water control system operation maintenance apparatus as described in claim 427 wherein said end-adjacent water gate panel actuators are end-adjacent inflatable water gate panel actuation bladders.
- 429. An improved impounded water control system operation maintenance apparatus as described in claim 428 wherein a downstream-most edge of said end-adjacent inflatable water gate panel actuation bladders is located substantially at a drip plane.
- 430. An improved impounded water control system operation maintenance apparatus as described in claim 427 wherein each of said end-proximate water gate panel actuators is responsive to at least one water gate actuator to foundation attachment element.
- 431. An improved impounded water control system operation maintenance apparatus as described in claim 430 wherein a water gate actuator-to-foundation attachment element to which each of said end-proximate water gate panel actuators is responsive is a wedge-shaped, gate panel actuator-to-foundation clamp retention element.
- 432. An improved impounded water control system operation maintenance apparatus as described in claim 431 further comprising a wedge-shaped, gate panel actuator-to-foundation clamp retention element substitute insert positioned substantially between opposing ends of proximate, wedge-shaped gate panel actuator-to-foundation clamp retention elements.
- 433. An improved impounded water control system operation maintenance apparatus as described in claim 427 further comprising an adjacent water gate actuator-to-foundation profile mimicking insert.
- 434. An improved impounded water control system operation maintenance apparatus as described in claim 427 further comprising the impounded water leakage prevention apparatus of claim 213.
- 435. An improved impounded water control system operation maintenance apparatus as described in claim 427 wherein said end-proximate water gate panel actuators are end-proximate water gate panel floatation elements.
- 436. An improved impounded water control system operation maintenance apparatus as described in claim 427 wherein a tensionable, excessive bottom-hinged water gate panel rotation prevention element length, an upper, excessive gate rotation prevention element-to-gate panel attachment element location, and a lower, excessive gate rotation prevention element-to-foundation attachment element location are correlated so that a downstream-most end of said tensionable, excessive bottom-hinged water gate panel rotation prevention element is located substantially under a water control gate panel element in a lowered configuration.
- 437. An improved impounded water control system operation maintenance apparatus as described in claim 427 wherein a tensionable, excessive bottom hinged water gate panel rotation prevention element is a tensionable, collapsible excessive bottom hinged water gate panel rotation prevention element.
- 438. An actuatable water gate panel water control system that comprises the improved impounded water control system apparatus of claim 427.
- 439. An improved impounded water control system operation maintenance apparatus comprising:
a tensionable, excessive bottom-hinged water gate panel rotation prevention element; a lower, excessive gate rotation prevention element-to-foundation attachment element to which said tensionable, excessive bottom-hinged water gate panel rotation prevention element is responsive and that is fixedly established between a water gate panel actuator and a substantially vertical foundation surface; and an upper, excessive gate rotation prevention element-to-gate panel attachment element responsive to said tensionable, excessive bottom-hinged water gate panel rotation prevention element.
- 440. An improved impounded water control system operation maintenance apparatus as described in claim 439 wherein said water gate panel actuator is an inflatable water gate panel actuator.
- 441. An improved impounded water control system operation maintenance apparatus as described in claim 440 wherein a downstream-most edge of said end-adjacent inflatable water gate panel actuation bladders is located substantially at a drip plane.
- 442. An improved impounded water control system operation maintenance apparatus as described in claim 439 wherein a water gate actuator-to-foundation attachment element to which said water gate panel actuator is responsive is a wedge-shaped, gate panel actuator-to-foundation clamp retention element.
- 443. An improved impounded water control system operation maintenance apparatus as described in claim 442 further comprising a wedge-shaped, gate panel actuator-to-foundation clamp retention element substitute insert positioned substantially between a wedge-shaped gate panel actuator-to-foundation clamp retention element and said substantially vertical foundation surface.
- 444. An improved impounded water control system operation maintenance apparatus as described in claim 439 further comprising an adjacent water gate actuator-to-foundation profile mimicking insert.
- 445. An improved impounded water control system operation maintenance apparatus further comprising the impounded water leakage prevention apparatus described in claim 213.
- 446. An improved impounded water control system operation maintenance apparatus as described in claim 439 wherein said water gate panel actuator is a water gate panel floatation element.
- 447. An improved impounded water control system operation maintenance apparatus as described in claim 439 wherein said tensionable, excessive bottom-hinged water gate panel rotation prevention element is a tensionable excessive bottom-hinged water gate panel rotation prevention element.
- 448. An improved impounded water control system operation maintenance apparatus as described in claim 447 wherein a tensionable, excessive bottom-hinged water gate panel rotation prevention element length, an upper, excessive gate rotation prevention element-to-gate panel attachment element location, and a lower, excessive gate rotation prevention element-to-foundation attachment element location are correlated so that a downstream-most end of said tensionable, excessive bottom-hinged water gate panel rotation prevention element is located substantially under a water control gate panel element in a lowered configuration.
- 449. As actuatable water gate panel water control system that comprises the impounded water control system operation maintenance apparatus described in claim 439.
- 450. A method for improving the appearance of a lowered configuration water control gate system comprising the steps of:
dimensioning a tensionable, excessive bottom-hinged water gate panel rotation prevention element; establishing a lower, excessive gate rotation prevention element-to-foundation attachment element to which said tensionable, excessive bottom-hinged water gate panel rotation prevention element is responsive and that is fixedly established between proximate ends of proximate, vertically projecting flow control elements; and establishing an upper, excessive gate rotation prevention element-to-gate panel attachment element responsive to said tensionable, excessive bottom-hinged water gate panel rotation prevention element.
- 451. A method for improving the appearance of a lowered configuration water control gate system as described in claim 450 wherein said step of establishing a lower, excessive gate rotation prevention element-to-foundation attachment element to which said tensionable, excessive bottom-hinged water gate panel rotation prevention element is responsive and that is fixedly established between proximate ends of vertically projecting flow control elements comprises the step of establishing a lower, excessive gate rotation prevention element-to-foundation attachment element to which said tensionable, excessive bottom-hinged water gate panel rotation prevention element is responsive and that is fixedly established between proximate ends of water gate panel actuators.
- 452. A method for improving the appearance of a lowered configuration water control gate system as described in claim 451 wherein said step of establishing a lower, excessive gate rotation prevention element-to-foundation attachment element to which said tensionable, excessive bottom-hinged water gate panel rotation prevention element is responsive and that is fixedly established between proximate ends of water gate panel actuators comprises the step of establishing a lower, excessive gate rotation prevention element-to-foundation attachment element to which said tensionable, excessive bottom-hinged water gate panel rotation prevention element is responsive and that is fixedly established between proximate ends of inflatable water gate panel actuator bladders.
- 453. A method for improving the appearance of a lowered configuration water control gate system as described in claim 451 wherein said step of establishing a lower, excessive gate rotation prevention element-to-foundation attachment element to which said tensionable, excessive bottom-hinged water gate panel rotation prevention element is responsive and that is fixedly established between proximate ends of water gate panel actuators comprises the step of a lower, excessive gate rotation prevention element-to-foundation attachment element to which said tensionable, excessive bottom-hinged water gate panel rotation prevention element is responsive and that is fixedly established between proximate ends of floatable water gate panel actuators.
- 454. A method for improving the appearance of a lowered configuration water control gate system as described in claim 450 establishing a lower, excessive gate rotation prevention element-to-foundation attachment element to which said tensionable, collapsible, excessive bottom-hinged water gate panel rotation prevention element is responsive and that is fixedly established between proximate ends of vertically projecting flow control elements comprises the step of establishing a lower, excessive gate rotation prevention element-to-foundation attachment element to which said tensionable, collapsible, excessive bottom-hinged water gate panel rotation prevention element is responsive and that is fixedly established between a foundation slide surface and a proximate end of a water gate panel actuator.
- 455. A method for improving the appearance of a lowered configuration water control gate system as described in claim 450 wherein a water gate actuator-to-foundation attachment to which at least one of said proximate, vertically projecting flow control elements is responsive is a wedge-shaped, gate panel actuator-to-foundation clamp retention element.
- 456. A method for improving the appearance of a lowered configuration water control gate system as described in claim 455 further comprising the step of establishing a wedge-shaped, gate panel actuator-to-foundation clamp retention element substitute insert substantially below a wedge-shaped, interpanel seal-to-foundation retention enhancement element and between impounded flow proximate opposing ends of proximate, vertically projecting flow control elements.
- 457. A method for improving the appearance of a lowered configuration water control gate system as described in claim 450 further comprising the step of establishing a functional, adjacent water gate actuator-to-foundation profile mimicking insert.
- 458. A method for improving the appearance of a lowered configuration water control gate system as described in claim 450 further comprising the steps of the method of preventing leakage of water impounded by a water control gate system as described in claim 233.
- 459. A method for improving the appearance of a lowered configuration water control gate system as described in claim 450 wherein said step of establishing a lower, excessive gate rotation prevention element-to-foundation attachment element to which said tensionable, excessive bottom-hinged water gate panel rotation prevention element is responsive comprises the step of establishing a lower, excessive gate rotation prevention element-to-foundation attachment element substantially at a drip plane.
- 460. A method for improving the appearance of a lowered configuration water control gate system as described in claim 450 further comprising the step of correlating the length of said tensionable, excessive bottom-hinged water gate panel rotation prevention element with a location of each of said lower, excessive gate rotation prevention element-to-foundation attachment element and said upper, excessive gate rotation prevention element-to-gate panel attachment element so that a downstream-most end of a detensioned, non-restrained configuration, tensionable, excessive bottom-hinged water gate panel rotation prevention element is located under a lowered water control gate panel.
- 461. A method for improving the appearance of a lowered configuration water control gate system as described in claim 450 wherein said step of establishing a lower, excessive gate rotation prevention element-to-foundation attachment element to which said tensionable, excessive bottom-hinged water gate panel rotation prevention element is responsive and that is fixedly established between proximate ends of proximate, vertically projecting flow control elements comprises the step of the step of establishing a lower, excessive gate rotation prevention element-to-foundation attachment element to which said tensionable, excessive bottom-hinged water gate panel rotation prevention element is responsive and that is fixedly established between oppositely facing ends of end-adjacent inflatable water gate panel actuator bladders.
- 462. A method for improving the appearance of a lowered configuration water control gate system as described in claim 450 wherein said step of obtaining a tensionable, excessive bottom-hinged water gate panel rotation prevention element comprises the step of obtaining a tensionable, collapsible, excessive bottom-hinged water gate paten rotation prevention element.
- 463. A nappe aeration apparatus comprising:
an overtop flow mode dynamic object impact flexible nappe break element; and a disengagable, flexible nappe break element-to-water impoundment element attachment element to which said overtop flow mode dynamic object impact flexible nappe break element is responsive.
- 464. A nappe aeration apparatus as described in claim 463 wherein said overtop flow mode dynamic object impact flexible nappe break element is a reinforced elastomeric nappe breaker.
- 465. A nappe aeration apparatus as described in claim 463 wherein said water impoundment element is a water impoundment element selected from the group of water impoundment elements consisting of: inflatably actuated water gate panel, inflatable elastomeric dam, and concrete dam.
- 466. A nappe aeration apparatus as described in claim 463 wherein said water impoundment element is a water gate panel.
- 467. A method of aerating an dam overtop nappe comprising the steps of:
creating an overtop flow mode dynamic object impact flexible nappe break element; and establishing a disengagable, nappe break element-to-water impoundment element attachment element to which said overtop flow mode dynamic object impact flexible nappe break element is responsive.
- 468. A method of aerating an dam overtop nappe as described in claim 467 wherein said step of creating an overtop flow mode dynamic object impact flexible nappe break element comprises the step of creating a reinforced elastomeric nappe breaker.
- 469. A method of aerating an dam overtop nappe as described in claim 467 wherein said step of establishing a disengagable, nappe break element-to-water impoundment element attachment element to which said overtop flow mode dynamic object impact flexible nappe break element is responsive comprises the step of establishing a disengagable, nappe break element-to-inflatably actuated water gate panel attachment element.
- 470. A method of aerating an dam overtop nappe as described in claim 467 wherein said step of establishing a disengagable, nappe break element-to-water impoundment element attachment element to which said overtop flow mode dynamic object impact flexible nappe break element is responsive comprises the step of establishing a disengagable, nappe break element-to-concrete dam attachment element.
- 471. A method of aerating an dam overtop nappe as described in claim 467 further comprising the step of attaching said overtop flow mode dynamic object impact flexible nappe break element to an upper water impoundment structure surface through use of said disengagable, nappe break element-to-water impoundment element attachment element.
- 472. An impounded water control system comprising:
a plurality of water gate elements; a translatable, water gate actuator element repositionably locatable substantially beneath said plurality of water gate elements; a reposition element to which said translatable, water gate actuator element is operationally responsive; and a plurality of support elements, each to which at least one individual gate element of said plurality of water gate elements is responsive.
- 473. An impounded water control system as described in claim 472 wherein said plurality of water gate elements are bottom-hinged water gate elements.
- 474. An impounded water control system as described in claim 472 wherein said translatable, water gate actuator element comprises at least one inflatable water gate actuator.
- 475. An impounded water control system as described in claim 474 wherein said at least inflatable actuator comprises two inflatable, water gate actuator elements.
- 476. An impounded water control system as described in claim 475 wherein said two inflatable, water gate actuator elements are vertically stacked.
- 477. An impounded water control system as described in claim 472 wherein said reposition element comprises a water gate actuator reposition hose assembly.
- 478. An impounded water control system as described in claim 472 said plurality of support elements comprises at least one strut element.
- 479. An impounded water control system as described in claim 478 said at least one strut element comprises an upper strut member; and a lower strut member pivotally responsive to said upper strut member by a horizontally longitudinal torque tube adjoining at least two adjacent strut elements.
- 480. The translatable, water gate actuator element that the impounded water control system of claim 472 comprises.
- 481. An impounded water control method comprising:
establishing a plurality of water gate elements on a foundation; establishing at least one translatable, water gate actuator element repositionably locatable substantially beneath said plurality of water gate elements; establishing a reposition element to which said at least one translatable, water gate actuator element is operationally responsive; and establishing a plurality of support elements, each to which at least one individual gate element of said plurality of water gate elements is responsive.
- 482. An impounded water control method as described in claim 481 wherein said step of establishing a plurality of water gate elements comprises the step of establishing a plurality of bottom-hinged water gate elements.
- 483. An impounded water control method as described in claim 481 wherein said step of establishing at least one translatable, water gate actuator element repositionably locatable substantially beneath said plurality of water gate elements comprises the step of establishing at least one translatable, inflatable water gate actuator element.
- 484. An impounded water control method as described in claim 483 wherein said step of establishing at least one translatable, inflatable water gate actuator element comprises the step of establishing two inflatable, translatable water gate actuator elements.
- 485. An impounded water control method as described in claim 484 wherein said step of establishing two inflatable, translatable water gate actuator elements comprises the step of establishing two inflatable, translatable, vertically stacked water gate actuator elements.
- 486. An impounded water control method as described in claim 481 wherein said step of establishing a reposition element comprises the step of establishing a water gate actuator reposition hose assembly.
- 487. An impounded water control method as described in claim 481 wherein said step of establishing a plurality of support elements comprises the step of establishing at least one strut element.
- 488. An impounded water control method as described in claim 487 wherein said step of establishing at least one strut element comprises the step of establishing an upper strut member; and establishing a lower strut member pivotally responsive to said upper strut member by a horizontally longitudinal torque tube adjoining at least two adjacent strut elements.
- 489. A water impoundment apparatus comprising:
an inflatable water impoundment element actuator element; an inflatable actuator-to-foundation attachment element to which said inflatable water impoundment element actuator element is responsive and that comprises a cross-sectionally-enlarged, inflatable actuator-to-foundation clamp retention improvement element; an overtop trafficable water impoundment element responsive to said inflatable water impoundment element actuator element; a flexible fiber reinforced hinge element to which said overtop trafficable water impoundment element is responsive; a hinge-to-impoundment element attachment element responsive to said flexible fiber reinforced hinge element; and a hinge-to-foundation attachment element to which said flexible fiber reinforced hinge is responsive, wherein an axis of rotation of said overtop trafficable water impoundment element is substantially at an overtop trafficable water impoundment element end, and wherein said overtop trafficable water impoundment element has a flush upper trafficable surface.
- 490. A water impoundment apparatus as described in claim 489 wherein said cross-sectionally-enlarged, inflatable actuator-to-foundation clamp retention improvement element is a wedge-shaped inflatable actuator-to-foundation clamp retention element.
- 491. A water impoundment apparatus as described in claim 489 wherein said cross-sectionally-enlarged, inflatable actuator-to-foundation clamp retention improvement element includes a comma-type inflatable actuator-to-foundation clamp retention enhancement element insert.
- 492. A water impoundment apparatus as described in claim 489 wherein said flexible fiber reinforced hinge element comprises an integrated figure eight flexible hinge.
- 493. A water impoundment apparatus as described in claim 492 further comprising an elastomeric hinge cover to which said integrated figure eight flexible hinge is responsive.
- 494. A water impoundment apparatus as described in claim 489 wherein said flexible fiber reinforced hinge element comprises a modular figure eight flexible hinge.
- 495. A water impoundment apparatus as described in claim 489 wherein said flexible fiber reinforced hinge element comprises an S-type flexible hinge.
- 496. A water impoundment apparatus as described in claim 489 wherein said flexible fiber reinforced hinge element comprises a W-type flexible hinge.
- 497. A water impoundment apparatus as described in claim 489 wherein at least one flexible fiber of said flexible fiber reinforced hinge element is a flexible fiber selected from the group of flexible fibers consisting of: twisted cord, wire rope, braided rope, knitted fabric, woven fabric, twisted cord embedded in an elastomer, wire rope embedded in an elastomer, braided rope embedded in an elastomer, knitted fabric embedded in an elastomer, woven fabric embedded in an elastomer, twisted cord covered with an elastomer, wire rope covered with an elastomer, braided rope covered with an elastomer, knitted fabric covered with an elastomer, and woven fabric covered with an elastomer.
- 498. A water impoundment apparatus as described in claim 489 further comprising a traffic surface hinge cover pivotally responsive to said overtop trafficable water impoundment element.
- 499. A water impoundment apparatus as described in claim 489 wherein said overtop trafficable water impoundment element responsive to said inflatable water impoundment element actuator element is an overtop vehicularly trafficable water impoundment element.
- 500. A water impoundment apparatus as described in claim 489 wherein said overtop trafficable water impoundment element responsive to said inflatable water impoundment element actuator element is an overtop pedestrian trafficable water impoundment element.
- 501. A water impoundment apparatus as described in claim 489 wherein said overtop trafficable water impoundment element responsive to said inflatable water impoundment element actuator element is an overtop railway trafficable water impoundment element.
- 502. A water impoundment apparatus as described in claim 489 wherein said inflatable water impoundment element actuator element is a downflow-side positioned inflatable water impoundment element actuator element.
- 503. A water impoundment apparatus as described in claim 489 further comprising an excessive impoundment element rotation prevention element to which said overtop trafficable water impoundment element is responsive in a raised configuration.
- 504. A water impoundment apparatus as described in claim 503 wherein said excessive impoundment element rotation prevention element is a tensionable, collapsible excessive impoundment element rotation prevention element.
- 505. A water impoundment apparatus as described in claim 503 wherein said excessive impoundment element rotation prevention element is at least one stationary excessive rotation obstruction stop.
- 506. A water impoundment apparatus as described in claim 489 wherein said inflatable water impoundment element actuator element is an impounded water side positioned inflatable water impoundment element actuator element.
- 507. A water impoundment apparatus as described in claim 506 wherein said overtop trafficable water impoundment element is a floatable overtop trafficable water impoundment element.
- 508. A water impoundment apparatus as described in claim 506 further comprising a floatable water impoundment element actuator element to which said overtop trafficable water impoundment element is floatably responsive.
- 509. A water impoundment apparatus as described in claim 508 wherein said floatable water impoundment element actuator element is established substantially beneath said overtop trafficable water impoundment element.
- 510. A water impoundment apparatus as described in claim 508 wherein said floatable water impoundment element actuator element forms a part of said overtop trafficable water impoundment element.
- 511. A water impoundment apparatus comprising:
a floatably raisable, overtop trafficable water impoundment element; a flexible fiber reinforced hinge element to which said floatably raisable, overtop trafficable water impoundment element is responsive; and a hinge-to-impoundment element attachment element responsive to said flexible fiber reinforced hinge element; a float element to which said floatably raisable, overtop trafficable water impoundment element is floatably responsive; and a hinge-to-foundation attachment element to which said flexible fiber reinforced hinge is responsive, wherein said floatably raisable, overtop trafficable water impoundment element has a flush upper surface.
- 512. A water impoundment apparatus as described in claim 511 wherein an axis of rotation of said floatably raisable, overtop trafficable water impoundment element is substantially at a water impoundment element end.
- 513. A water impoundment apparatus as described in claim 511 wherein said floatably raisable, overtop trafficable water impoundment element is a floatably raisable, overtop vehicularly trafficable water impoundment element.
- 514. A water impoundment apparatus as described in claim 511 wherein said floatably raisable, overtop trafficable water impoundment element is a floatably raisable, overtop pedestrian trafficable water impoundment element.
- 515. A water impoundment apparatus as described in claim 511 wherein said floatably raisable, overtop trafficable water impoundment element is an floatably raisable, overtop railway trafficable water impoundment element.
- 516. A water impoundment apparatus as described in claim 511 further comprising a traffic surface hinge cover pivotally responsive to said floatably raisable, overtop trafficable water impoundment element.
- 517. A water impoundment apparatus as described in claim 511 wherein said flexible fiber reinforced hinge element comprises an integrated figure eight flexible hinge.
- 518. A water impoundment apparatus as described in claim 517 further comprising an elastomeric cover to which said integrated figure eight flexible hinge is responsive.
- 519. A water impoundment apparatus as described in claim 511 wherein said flexible fiber reinforced hinge element comprises a modular figure eight flexible hinge.
- 520. A water impoundment apparatus as described in claim 511 wherein said flexible fiber reinforced hinge element comprises a S-type flexible hinge.
- 521. A water impoundment apparatus as described in claim 511 wherein said flexible fiber reinforced hinge element comprises a W-type flexible hinge.
- 522. A water impoundment apparatus as described in claim 511 wherein at least one flexible fiber of said flexible fiber reinforced hinge element is a flexible fiber selected from the group of flexible fibers consisting of: twisted cord, wire rope, braided rope, knitted fabric, woven fabric, twisted cord embedded in an elastomer, wire rope embedded in an elastomer, braided rope embedded in an elastomer, knitted fabric embedded in an elastomer, woven fabric embedded in an elastomer, twisted cord covered with an elastomer, wire rope covered with an elastomer, braided rope covered with an elastomer, knitted fabric covered with an elastomer, and woven fabric covered with an elastomer.
- 523. A water impoundment apparatus as described in claim 511 further comprising an excessive water impoundment element rotation prevention element to which said floatably raisable, overtop trafficable water impoundment element is responsive to in a raised configuration.
- 524. A water impoundment apparatus as described in claim 523 wherein said excessive water impoundment element rotation prevention element is a tensionable, collapsible excessive water impoundment element rotation prevention element.
- 525. A water impoundment apparatus as described in claim 523 wherein said excessive water impoundment element rotation prevention element is at least one stationary excessive rotation obstruction stop.
- 526. A water impoundment apparatus comprising:
an inflatable water impoundment element actuator element; an inflatable actuator-to-foundation attachment element to which said inflatable water impoundment element actuator element is responsive and that comprises a cross-sectionally-enlarged, inflatable actuator-to-foundation clamp retention improvement element; an water impoundment element responsive to said inflatable water impoundment element actuator element; a flexible fiber reinforced hinge element to which said water impoundment element is responsive; a hinge-to-impoundment element attachment element responsive to said flexible fiber reinforced hinge element; and a hinge-to-foundation attachment element to which said flexible fiber reinforced hinge is responsive, wherein an axis of rotation of said water impoundment element is substantially at a water impoundment element end.
- 527. A water impoundment apparatus as described in claim 526 wherein said cross-sectionally-enlarged, inflatable actuator-to-foundation clamp retention improvement element is a wedge-shaped inflatable actuator-to-foundation clamp retention enhancement element.
- 528. A water impoundment apparatus as described in claim 526 wherein said cross-sectionally-enlarged, inflatable actuator-to-foundation clamp retention improvement element includes a comma-type inflatable actuator-to-foundation clamp retention enhancement element insert.
- 529. A water impoundment apparatus as described in claim 526 wherein said flexible fiber reinforced hinge element comprises an integrated figure eight flexible hinge
- 530. A water impoundment apparatus as described in claim 529 further comprising an elastomeric cover to which said integrated figure eight flexible hinge is responsive.
- 531. A water impoundment apparatus as described in claim 526 wherein said flexible fiber reinforced hinge element comprises a modular figure eight flexible hinge.
- 532. A water impoundment apparatus as described in claim 526 wherein said flexible fiber reinforced hinge element comprises an S-type flexible hinge.
- 533. A water impoundment apparatus as described in claim 526 wherein said flexible fiber reinforced hinge element comprises a W-type flexible hinge.
- 534. A water impoundment apparatus as described in claim 526 wherein at least one flexible fiber of said flexible fiber reinforced hinge element is a flexible fiber selected from the group of flexible fibers consisting of: twisted cord, wire rope, braided rope, knitted fabric, woven fabric, twisted cord embedded in an elastomer, wire rope embedded in an elastomer, braided rope embedded in an elastomer, knitted fabric embedded in an elastomer, woven fabric embedded in an elastomer, twisted cord covered with an elastomer, wire rope covered with an elastomer, braided rope covered with an elastomer, knitted fabric covered with an elastomer, and woven fabric covered with an elastomer.
- 535. A water impoundment apparatus as described in claim 526 wherein said inflatable water impoundment element actuator element is a seaward positioned inflatable water impoundment element actuator element.
- 536. A water impoundment apparatus as described in claim 526 wherein said inflatable water impoundment element actuator element is a riverward positioned inflatable water impoundment element actuator element.
- 537. A water impoundment apparatus as described in claim 526 further comprising an excessive impoundment element rotation prevention element, to which said inflatable water impoundment element is responsive in a raised configuration.
- 538. A water impoundment apparatus as described in claim 537 wherein said excessive impoundment element rotation prevention element is a tensionable, collapsible excessive impoundment element rotation prevention element.
- 539. A water impoundment apparatus as described in claim 537 wherein said excessive impoundment element rotation prevention element is at least one stationary excessive rotation obstruction stop.
- 540. A water impoundment apparatus as described in claim 526 further comprising a raised water impoundment element position maintenance element to which said water impoundment element is responsive.
- 541. A water impoundment method comprising the steps of:
securing an inflatable water impoundment element actuator to a foundation through use of an inflatable actuator-to-foundation attachment element that includes a cross-sectionally-enlarged inflatable actuator-to-foundation clamp retention improvement element; establishing an overtop trafficable water impoundment element responsive to said inflatable water impoundment element actuator; configuring said overtop trafficable water impoundment element to have a flush upper trafficable surface; establishing a flexible fiber reinforced hinge element to which said overtop trafficable water impoundment element is responsive; securing a hinge-to-impoundment element attachment element substantially at an overtop trafficable water impoundment element end; and securing a hinge-to-foundation attachment element to which said flexible fiber reinforced hinge element is responsive.
- 542. A water impoundment method as described in claim 541 wherein said step of securing an inflatable water impoundment element actuator to a foundation through use of an inflatable actuator-to-foundation attachment element that includes a cross-sectionally-enlarged inflatable actuator-to-foundation clamp retention improvement element comprises the step of securing an inflatable water impoundment element actuator to a foundation through use of an inflatable actuator-to-foundation attachment element that includes a wedge-shaped inflatable actuator-to-foundation clamp retention element.
- 543. A water impoundment method as described in claim 541 wherein said step of securing an inflatable water impoundment element actuator to a foundation through use of an inflatable actuator-to-foundation attachment element that includes a cross-sectionally-enlarged inflatable actuator-to-foundation clamp retention improvement element comprises the step of securing an inflatable water impoundment element actuator to a foundation through use of an inflatable actuator-to-foundation attachment element that includes a comma-type inflatable actuator-to-foundation clamp retention enhancement insert element.
- 544. A water impoundment method as described in claim 541 wherein said step of establishing a flexible fiber reinforced hinge element comprises the step of establishing an integrated figure eight flexible hinge.
- 545. A water impoundment method as described in claim 544 further comprising the step of establishing an elastomeric hinge cover responsive to said integrated figure eight hinge.
- 546. A water impoundment method as described in claim 541 wherein said step of establishing a flexible fiber reinforced hinge element comprises the step of establishing a modular figure eight flexible hinge.
- 547. A water impoundment method as described in claim 541 wherein said step of establishing a flexible fiber reinforced hinge element comprises the step of establishing a S-type flexible hinge
- 548. A water impoundment method as described in claim 541 wherein said step of establishing a flexible fiber reinforced hinge element comprises the step of establishing a W-type flexible hinge.
- 549. A water impoundment method as described in claim 541 wherein said step of establishing a flexible fiber reinforced hinge element comprises the step of establishing a flexible fiber reinforced hinge element that comprises at least one flexible fiber selected from the group of flexible fibers consisting of: twisted cord, wire rope, braided rope, knitted fabric, woven fabric, twisted cord embedded in an elastomer, wire rope embedded in an elastomer, braided rope embedded in an elastomer, knitted fabric embedded in an elastomer, woven fabric embedded in an elastomer, twisted cord covered with an elastomer, wire rope covered with an elastomer, braided rope covered with an elastomer, knitted fabric covered with an elastomer, and woven fabric covered with an elastomer.
- 550. A water impoundment method as described in claim 541 further comprising the step of establishing a traffic surface hinge cover pivotally responsive to said overtop trafficable water impoundment element.
- 551. A water impoundment method as described in claim 541 wherein said step of establishing an overtop trafficable water impoundment element comprises the step of establishing an overtop vehicularly trafficable water impoundment element.
- 552. A water impoundment method as described in claim 541 wherein said step of establishing an overtop trafficable water impoundment element comprises the step of establishing an overtop pedestrian trafficable water impoundment element.
- 553. A water impoundment method as described in claim 541 wherein said step of establishing an overtop trafficable water impoundment element comprises the step of establishing an overtop vehicularly railway water impoundment element.
- 554. A water impoundment method as described in claim 541 wherein said step of establishing an overtop trafficable water impoundment element responsive to an inflatable water impoundment element actuator element comprises the step of establishing an overtop trafficable water impoundment element responsive to an downflow-side inflatable water impoundment element actuator element.
- 555. A water impoundment method as described in claim 541 further comprising the step of establishing an excessive impoundment element rotation prevention element to which said overtop trafficable water impoundment element is responsive in a raised configuration.
- 556. A water impoundment method as described in claim 555 wherein said step of establishing an excessive impoundment element rotation prevention element comprises the step of establishing at least one tensionable, collapsible excessive impoundment element rotation prevention element.
- 557. A water impoundment method as described in claim 555 wherein said step of establishing an excessive impoundment element rotation prevention element comprises the step of establishing at least one stationary excessive rotation obstruction stop.
- 558. A water impoundment method as described in claim 541 wherein said step of establishing an overtop trafficable water impoundment element responsive to an inflatable water impoundment element actuator element comprises the step of establishing an overtop trafficable water impoundment element responsive to an upflow side positioned inflatable water impoundment element actuator element.
- 559. A water impoundment method as described in claim 558 wherein said step of establishing an overtop trafficable water impoundment element comprises the step of establishing a floatable overtop trafficable water impoundment element.
- 560. A water impoundment method as described in claim 558 further comprising the step of establishing a floatable water impoundment element actuator element to which said overtop trafficable water impoundment element is floatably responsive.
- 561. A water impoundment method as described in claim 560 wherein said step of establishing a floatable water impoundment element actuator element comprises the step of establishing said floatable water impoundment element substantially beneath said overtop trafficable water impoundment element.
- 562. A water impoundment method as described in claim 560 wherein said step of establishing a floatable water impoundment element actuator element comprises the step of establishing said floatable water impoundment element as part of overtop trafficable water impoundment element.
- 563. A water impoundment method comprising the steps of:
establishing a floatably raisable, overtop trafficable water impoundment element responsive to a flexible fiber reinforced hinge element; establishing a hinge-to-impoundment element attachment element responsive to said flexible fiber reinforced hinge element; configuring said floatably raisable, overtop trafficable water impoundment element to have a flush upper trafficable surface; and securing a hinge-to-foundation attachment element to which said flexible fiber reinforced hinge element is responsive.
- 564. A water impoundment method as described in claim 563 wherein said step of establishing a hinge-to-impoundment element attachment element comprises the step of establishing a hinge-to-impoundment element attachment element substantially at a water impoundment element end.
- 565. A water impoundment method as described in claim 563 wherein said step of establishing a floatably raisable, overtop trafficable water impoundment element comprises the step of establishing an overtop vehicularly trafficable water impoundment element.
- 566. A water impoundment method as described in claim 563 wherein said step of establishing a floatably raisable, overtop trafficable water impoundment element comprises the step of establishing an overtop pedestrian trafficable water impoundment element.
- 567. A water impoundment method as described in claim 563 wherein said step of establishing a floatably raisable, overtop trafficable water impoundment element comprises the step of establishing an overtop vehicularly railway water impoundment element.
- 568. A water impoundment method as described in claim 563 further comprising the step of establishing a traffic surface hinge cover pivotally responsive to said floatably raisable, overtop trafficable water impoundment element.
- 569. A water impoundment method as described in claim 563 further comprising the step of establishing an elastomeric hinge cover responsive to said integrated figure eight hinge.
- 570. A water impoundment method as described in claim 563 wherein said step of establishing a flexible fiber reinforced hinge element comprises the step of establishing a modular figure eight flexible hinge.
- 571. A water impoundment method as described in claim 563 wherein said step of establishing a flexible fiber reinforced hinge element comprises the step of establishing a S-type flexible hinge.
- 572. A water impoundment method as described in claim 563 wherein said step of establishing a flexible fiber reinforced hinge element comprises the step of establishing a W-type flexible hinge.
- 573. A water impoundment method as described in claim 563 wherein said step of establishing a flexible fiber reinforced hinge element comprises the step of establishing a flexible fiber reinforced hinge element that comprises at least one flexible fiber selected from the group of flexible fibers consisting of: twisted cord, wire rope, braided rope, knitted fabric, woven fabric, twisted cord embedded in an elastomer, wire rope embedded in an elastomer, braided rope embedded in an elastomer, knitted fabric embedded in an elastomer, woven fabric embedded in an elastomer, twisted cord covered with an elastomer, wire rope covered with an elastomer, braided rope covered with an elastomer, knitted fabric covered with an elastomer, and woven fabric covered with an elastomer.
- 574. A water impoundment method as described in claim 563 further comprising the step of establishing an excessive water impoundment element rotation prevention element to which said floatably raisable, overtop trafficable water impoundment element is responsive to in a raised configuration.
- 575. A water impoundment method as described in claim 574 wherein said step of establishing an excessive impoundment element rotation prevention element comprises the step of establishing at least one tensionable, collapsible excessive impoundment element rotation prevention element.
- 576. A water impoundment method as described in claim 574 wherein said step of establishing an excessive impoundment element rotation prevention element comprises the step of establishing at least one stationary excessive rotation obstruction stop.
- 577. A water impoundment method comprising the steps of:
securing an inflatable water impoundment element actuator element to a foundation through use of an inflatable actuator-to-foundation attachment element that includes a cross-sectionally-enlarged inflatable actuator-to-foundation clamp retention improvement element; establishing a water impoundment element responsive to said inflatable water impoundment element actuator element; establishing a flexible fiber reinforced hinge element to which said water impoundment element is responsive; establishing a hinge-to-impoundment element attachment element substantially at a water impoundment element longitudinal end; and securing a hinge-to-foundation attachment element to which said flexible fiber reinforced hinge element is responsive.
- 578. A water impoundment method as described in claim 577 wherein said step of establishing a flexible fiber reinforced hinge element comprises the step of establishing a modular figure eight flexible hinge.
- 579. A water impoundment method as described in claim 577 wherein said step of establishing a flexible fiber reinforced hinge element comprises the step of establishing a S-type flexible hinge.
- 580. A water impoundment method as described in claim 577 wherein said step of establishing a flexible fiber reinforced hinge element comprises the step of establishing a W-type flexible hinge.
- 581. A water impoundment method as described in claim 577 wherein said step of establishing a flexible fiber reinforced hinge element comprises the step of establishing a flexible fiber reinforced hinge element that comprises at least one flexible fiber selected from the group of flexible fibers consisting of: twisted cord, wire rope, braided rope, knitted fabric, woven fabric, twisted cord embedded in an elastomer, wire rope embedded in an elastomer, braided rope embedded in an elastomer, knitted fabric embedded in an elastomer, woven fabric embedded in an elastomer, twisted cord covered with an elastomer, wire rope covered with an elastomer, braided rope covered with an elastomer, knitted fabric covered with an elastomer, and woven fabric covered with an elastomer.
- 582. A water impoundment method as described in claim 577 wherein said step of establishing a water impoundment element responsive to an inflatable water impoundment element actuator element comprises the step of establishing a water impoundment element responsive to a seaward inflatable water impoundment element actuator element.
- 583. A water impoundment method as described in claim 577 wherein said step of establishing a water impoundment element responsive to an inflatable water impoundment element actuator element comprises the step of establishing a water impoundment element responsive to a riverward inflatable water impoundment element actuator element.
- 584. A water impoundment method as described in claim 577 further comprising the step of establishing an excessive impoundment element rotation prevention element to which said inflatable water impoundment element is responsive in a raised configuration.
- 585. A water impoundment method as described in claim 577 wherein said step of establishing an excessive impoundment element rotation prevention element comprises the step of establishing at least one tensionable, collapsible excessive impoundment element rotation prevention element.
- 586. A water impoundment method as described in claim 577 wherein said step of establishing an excessive impoundment element rotation prevention element comprises the step of establishing at least one stationary excessive rotation obstruction stop.
- 587. A water impoundment method as described in claim 577 further comprising the step of establishing a raised configuration water impounded element position maintenance element.
- 588. A water impoundment method as described in claim 577 wherein said step of securing an inflatable water impoundment element actuator element to a foundation through use of an inflatable actuator-to-foundation attachment element that includes a cross-sectionally-enlarged inflatable actuator-to-foundation clamp retention improvement element comprises the step of securing an inflatable water impoundment element actuator element to a foundation through use of an inflatable actuator-to-foundation attachment element that includes a wedge-shaped inflatable actuator-to-foundation clamp retention element.
- 589. A water impoundment method as described in claim 588 wherein said step of securing an inflatable water impoundment element actuator element to a foundation through use of an inflatable actuator-to-foundation attachment element that includes a cross-sectionally-enlarged inflatable actuator-to-foundation clamp retention improvement element comprises the step of securing an inflatable water impoundment element actuator element to a foundation through use of an inflatable actuator-to-foundation attachment element that includes a comma-type inflatable actuator-to-foundation clamp retention enhancement element insert.
- 590. An inflatable article manufacturing method comprising the steps of:
establishing a bend resistant deflated bladder fold creation facilitation element responsive to an inflatable bladder manufacture frame; folding at least a portion of at least one elastomeric layer around said bend resistant deflated bladder fold creation facilitation element to create at least one inner-most bladder layer; creating an oppositely facing inner most layer; preventing adjoining of said oppositely facing inner-most bladder layer; and removing said bend resistant deflated bladder fold creation facilitation element from at least one created elastomeric fold.
- 591. An inflatable article manufacturing method as described in claim 590 wherein said step of establishing a bend resistant deflated bladder fold creation facilitation element comprises the step of establishing a substantially straight, bend resistant deflated bladder fold creation facilitation element.
- 592. An inflatable article manufacturing method as described in claim 590 wherein said step of establishing a bend resistant deflated bladder fold creation facilitation element comprises the step of establishing a tensionable wire, bend resistant deflated bladder fold creation facilitation element.
- 593. An inflatable article manufacturing method as described in claim 590 wherein said step of establishing a bend resistant deflated bladder fold creation facilitation element comprises the step of establishing a tensionable rod, bend resistant deflated bladder fold creation facilitation element.
- 594. An inflatable article manufacturing method as described in claim 590 wherein said step of establishing a bend resistant deflated bladder fold creation facilitation element comprises the step of establishing a metal bend resistant deflated bladder fold creation facilitation element.
- 595. An inflatable article manufacturing method as described in claim 590 wherein said step of establishing a bend resistant deflated bladder fold creation facilitation element comprises the step of tensioning a deflated bladder fold creation facilitation element.
- 596. An inflatable article manufacturing method as described in claim 595 wherein said step of step of tensioning a deflated bladder fold creation facilitation element comprises the step of manually tensioning a deflated bladder fold creation facilitation element.
- 597. An inflatable article manufacturing method as described in claim 595 wherein said step of step of tensioning a deflated bladder fold creation facilitation element comprises the step of automatically tensioning a deflated bladder fold creation facilitation element.
- 598. An inflatable article manufacturing method as described in claim 595 wherein said step of step of tensioning a deflated bladder fold creation facilitation element comprises the step of hydraulically tensioning a deflated bladder fold creation facilitation element.
- 599. An inflatable article manufacturing method as described in claim 590 wherein said step of establishing a bend resistant deflated bladder fold creation facilitation element comprises the step of establishing at least two bend resistant deflated bladder fold creation facilitators.
- 600. An inflatable article manufacturing method as described in claim 599 wherein said step of establishing at least two bend resistant deflated bladder fold creation facilitators comprises the step of establishing at least two parallel bend resistant deflated bladder fold creation facilitators.
- 601. An inflatable article manufacturing method as described in claim 600 wherein said step of establishing at least two parallel bend resistant deflated bladder fold creation facilitators comprises the steps of:—establishing a substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element around at least one of said at least two parallel, bend resistant deflated bladder fold creation facilitation elements; and—establishing a bladder-to-foundation clamp retention enhancement insert around a different at least one of said at least two parallel bend resistant deflated bladder fold creation facilitators.
- 602. An inflatable article manufacturing method as described in claim 600 wherein said step of establishing at least two parallel bend resistant deflated bladder fold creation facilitators comprises the steps of:—establishing a substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element around at least one of said at least two parallel, bend resistant deflated bladder fold creation facilitation elements;—establishing a bladder-to-foundation clamp retention enhancement insert around a different at least one of said at least two parallel bend resistant deflated bladder fold creation facilitators; and—establishing a panel-to-panel actuator element clamp retention enhancement insert around a different at least one of said at least two parallel bend resistant deflated bladder fold creation facilitators.
- 603. An inflatable article manufacturing method as described in claim 599 wherein said step of establishing at least two bend resistant deflated bladder fold creation facilitators comprises the step of establishing at least four rectangularly arranged bend resistant deflated bladder fold creation facilitators.
- 604. An inflatable article manufacturing method as described in claim 590 further comprising the step of establishing a substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element around at least a portion of said bend resistant deflated bladder fold creation facilitation element.
- 605. An inflatable article manufacturing method as described in claim 604 wherein said step of establishing a substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element around at least a portion of said bend resistant deflated bladder fold creation facilitation element is performed before said step of folding at least a portion of at least one elastomeric layer around said bend resistant deflated bladder fold creation facilitation element.
- 606. An inflatable article manufacturing method as described in claim 590 further comprising the step of establishing a clamp retention facilitation insert element around at least a portion of said bend resistant deflated bladder fold creation facilitation element.
- 607. An inflatable article manufacturing method as described in claim 606 wherein said step of establishing a clamp retention facilitation insert element around at least a portion of said bend resistant deflated bladder fold creation facilitation element is performed before said step of folding at least a portion of at least one elastomeric layer around said bend resistant deflated bladder fold creation facilitation element.
- 608. The inflatable bladder manufacture frame that the inflatable article manufacturing method of claim 590 describes.
- 609. The method as described in claim 54 and further comprising the step of removing said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element.
- 610. The method as described in claim 609 and further comprising the step of dissolving said substantially elongated, substantially cross-sectionally drop-shaped, deflated bladder fold membrane insert element.
- 611. The inflatable elastomeric dam apparatus as described in claim 133 wherein said inflatable membrane-to-foundation attachment element comprises a wedge-shaped inflatable membrane to foundation clamp retention element.
- 612. The method of controlling impounded water as in claim 418 wherein each the steps of: creating a concrete water control gate panel body element; establishing a slide friction reduced, actuator-side water control gate panel surface element; and establishing a horizontal axis rotation hinge-to-water gate panel attachment element at an overflow orthogonal, installed water gate panel edge is performed at a concrete water gate panel installation site.
- 613. A nappe aeration apparatus comprising:
a nappe break element; and a disengagable nappe break element-to-water impoundment element attachment element to which said nappe break element is responsive; and an impact flexure element.
- 614. A nappe aeration apparatus as described in claim 613 wherein said nappe break element is a reinforced elastomeric nappe breaker.
- 615. A nappe aeration apparatus as described in claim 613 wherein said water impoundment element is water impoundment element selected from the group of water impoundment elements consisting of a concrete dam, an inflatable elastomeric dam and water gate panels
- 616. A method of aerating an dam overtop nappe comprising the steps of:
creating an nappe break element; establishing a disengagable, nappe break element-to-water impoundment element attachment element to which said nappe break element is responsive; and establishing an impact flexure element to which said nappe break element is responsive.
- 617. A method of aerating an dam overtop nappe as described in claim 616 wherein said step of creating a nappe break element comprises the step of creating a reinforced elastomeric nappe breaker.
- 618. A method of aerating an dam overtop nappe as described in claim 616 wherein said step of establishing an impact flexure element to which said nappe break element is responsive comprises the step of establishing an elastomeric impact flexure element.
- 619. A method of aerating an dam overtop nappe as described in claim 616 wherein said step of establishing a disengagable, nappe break element-to-water impoundment element attachment element to which said nappe break element is responsive comprises the step of establishing a disengagable, nappe break element-to-inflatably actuated water gate panel attachment element.
- 620. A method of aerating an dam overtop nappe as described in claim 616 wherein said step of establishing a disengagable, nappe break element-to-water impoundment element attachment element to which said nappe break element is responsive comprises the step of establishing a disengagable, nappe break element-to-inflatable elastomeric dam water gate panel attachment element.
- 621. A method of aerating an dam overtop nappe as described in claim 616 wherein said step of establishing a disengagable, nappe break element-to-water impoundment element attachment element to which said nappe break element is responsive comprises the step of establishing a disengagable, nappe break element-to-concrete dam water gate panel attachment element.
- 622. A method of aerating an dam overtop nappe as described in claim 616 further comprising the step of attaching said overtop flow mode dynamic object impact flexible nappe break element to an upper water impoundment structure surface through use of said disengagable, nappe break element-to-water impoundment element attachment element.
- 623. A water impoundment apparatus as described in claim 511 wherein said float element forms a part of said overtop trafficable water impoundment element.
- 624. A water impoundment apparatus as described in claim 511 wherein said float element is located externally of said overtop trafficable water impoundment element.
- 625. A water impoundment apparatus as described in claim 511 wherein said hinge-to-impoundment element attachment element comprises a cross-sectionally enlarged clamp retention improvement element.
- 626. A water impoundment apparatus as described in claim 511 wherein said a hinge-to-foundation attachment element comprises comprises a cross-sectionally enlarged clamp retention improvement element.
- 627. A water impoundment method as in claim 563 wherein said step of establishing a hinge-to-impoundment element attachment element comprises the step of establishing a cross-sectionally enlarged clamp retention improvement element.
- 628. A water impoundment method as in claim 563 wherein said step of securing a hinge-to-foundation attachment element to which said flexible fiber reinforced hinge element is responsive comprises the step of establishing a hinge-to-impoundment element attachment element comprises the step of establishing a cross-sectionally enlarged clamp retention improvement element.
Parent Case Info
[0001] This application claims the benefit of U.S. Provisional Application No. 60/304,263 filed Jul. 9, 2001, U.S. Provisional Application No. 60/329,090 filed Oct. 13, 2001, U.S. Provisional Application No. 60/334,870 filed Oct. 18, 2001, U.S. Provisional Application No. 60/343,834 filed Oct. 19, 2001, and U.S. Provisional Application No. 60/379,401 filed May 9, 2002, each hereby incorporated by reference.
Provisional Applications (5)
|
Number |
Date |
Country |
|
60304263 |
Jul 2001 |
US |
|
60329090 |
Oct 2001 |
US |
|
60334870 |
Oct 2001 |
US |
|
60343834 |
Oct 2001 |
US |
|
60379401 |
May 2002 |
US |