Claims
- 1. An axially-rotated split venturi valve comprising:
a. at least one rotatable sleeve; b. a fixed position sleeve fluidicly connected to said rotatable sleeve; c. an axial eccentric split venturi having a first portion and a second portion wherein said first portion is located inside said fixed sleeve and said second portion is located inside said rotatable sleeve; d. an exit port fluidicly connected to said rotatable sleeve; e. a conduit in which said rotatable sleeve and said fixed position sleeve are located having a flow path; f. an interface between said rotatable sleeve and said fixed sleeve; g. a first seal between said rotatable sleeve and said fixed sleeve at said interface wherein said rotatable sleeve, said fixed position sleeve, said axial eccentric split venturi, said exit port, said conduit, said interface and said first seal comprise an axially-rotated split venturi valve.
- 2. An axially-rotated split venturi valve as described in claim 1 further comprising an axial rotator outside of said flow path adapted to rotate said rotatable sleeve without substantial engagement of said axial rotator to said rotatable sleeve within said flow path.
- 3. An axially-rotated split venturi valve as described in claim 1 wherein said axial eccentric split venturi comprises a semicircular eccentric split venturi primarily in the proximity of said interface.
- 4. An axially-rotated split venturi valve as described in claim 1 further comprising an axial compression member adapted to bias said rotatable sleeve and said fixed position sleeve toward each other.
- 5. An axially-rotated split venturi valve as described in claim 1 wherein said rotatable sleeve is adapted to substantially avoid cavitation throughout said rotatable sleeve of said valve beginning at said interface.
- 6. An axially-rotated split venturi valve as described in claim 1 wherein said valve is adapted to establish a loss coefficient of 4 or less.
- 7. An axially-rotated split venturi valve as described in claim 1 further comprising a separation in said conduit adapted to create a thermally insulative barrier in said conduit at said separation.
- 8. An axially-rotated split venturi valve as described in claim 1 wherein said first seal comprises an outer periphery seal and a diametrical seal in substantially the same plane as said outer periphery seal.
- 9. An axially-rotated split venturi valve as described in claim 1 wherein said valve comprises a freeze resistant, axially-rotated split venturi valve comprising a first seal at an interface between said first and second portions located a freeze distance away from freezing conditions.
- 10. An axially-rotated split venturi valve as described in claim 1 wherein said rotatable sleeve comprises a length sufficient to substantially eliminate flow separation through said rotatable sleeve.
- 11. An axially-rotated split venturi valve as described in claim 1 wherein said rotatable sleeve is longer than said fixed position sleeve.
- 12. An axially-rotated split venturi valve as described in claim 1 further comprising an exit port fluidicly connected to at least one of said sleeves and further comprising an internal elbow.
- 13. An axially-rotated split venturi valve as described in claim 12 further comprising an exit port seal at an exit port interface between said exit port and a valve outlet fluidicly connected to said valve.
- 14. An axially-rotated split venturi valve as described in claim 1 further comprising a cartridge assembly adapted for insertion in said conduit comprising at least one of said sleeves.
- 15. An axially-rotated split venturi valve as described in claim 14 further comprising a cartridge seal assembly around said cartridge assembly adapted to seal cartridge assembly in said conduit.
- 16. An axially-rotated split venturi valve as described in claim 1 wherein said first seal comprises a curvilinear diametrical seal.
- 17. An axially-rotated split venturi valve as described in claim 1 wherein said conduit comprises a flexible tube.
- 18. An axially-rotated split venturi valve as described in claim 1 wherein said rotatable sleeve in cooperation with said fixed position sleeve is adapted to be fully opened and fully closed in one half complete rotation.
- 19. An axially-rotated split venturi valve as described in claim 1 further comprising a purge port assembly adapted to open and allow drainage of said valve when said valve is in at least a partially closed position.
- 20. A method of improving flow from an axially-rotated valve using a split venturi comprising:
a. flowing through a flow path having a pressure and velocity; b. entering a first portion of an eccentric split venturi; c. gradually reducing said pressure of said flow while increasing said velocity of said flow through said first portion of said eccentric split venturi; d. flowing across an interface of said split venturi between said first portion and a second portion; e. gradually increasing said pressure of said flow while decreasing said velocity of said flow through said second portion of said eccentric split venturi; f. exiting said second portion through an exit port fluidicly connected to said second portion; g. axially rotating said second portion of said split venturi to at least a partially closed position; h. at least partially restricting said flow from flowing through said valve at said interface; i. rotating said second portion of said split venturi to at least a partially open position; j. allowing said flowing of said fluid through said axially-rotated valve.
- 21. A method of improving flow from an axially-rotated valve as described in claim 20 wherein said axially rotating said second portion comprises axially rotating said second portion with an axial rotator outside of said flow path without substantial interference with flow efficiency.
- 22. A method of improving flow from an axially-rotated valve as described in claim 20 wherein flowing across an interface comprises flowing through a semicircular eccentric flow path.
- 23. A method of improving flow from an axially-rotated valve as described in claim 20 further comprising assisting said sealed interface with an axial pressure element.
- 24. A method of improving flow from an axially-rotated valve as described in claim 20 wherein gradually increasing said pressure of said flow while decreasing said velocity of said flow comprises avoiding cavitation of said flow.
- 25. A method of improving flow from an axially-rotated valve as described in claim 20 further comprising establishing a loss coefficient of 4 or less through said axially-rotated valve.
- 26. A method of improving flow from an axially-rotated valve as described in claim 20 wherein flowing through a flow path comprises flowing through a thermally conductive conduit and further comprising:
a. providing a separation in said thermally conductive conduit in a freezing zone wherein said separation creates a first conduit section and a second conduit section of said conduit; and b. thermally breaking said first conduit section from said second conduit section in a freeze zone.
- 27. A method of improving flow from an axially-rotated valve as described in claim 20 further comprising sealing at said interface comprising:
a. sealing about a periphery of said interface between said portions; b. sealing across a diametrical portion of said interface in the same plane as said sealing about said periphery.
- 28. A method of improving flow from an axially-rotated valve as described in claim 20 further comprising resisting the freezing of said valve.
- 29. A method of improving flow from an axially-rotated valve as described in claim 20 further comprising flowing through a length of said second portion sufficient to substantially eliminate flow separation through said second portion.
- 30. A method of improving flow from an axially-rotated valve as described in claim 20 further comprising flowing through a longer flow path in said second portion than said first portion.
- 31. A method of improving flow from an axially-rotated valve as described in claim 20 further comprising exiting said second portion through an exit port comprising exiting through an internal elbow to a valve outlet fluidicly connected to said valve.
- 32. A method of improving flow from an axially-rotated valve as described in claim 31 further comprising sealing at said exit port between said internal elbow and said valve outlet.
- 33. A method of improving flow from an axially-rotated valve as described in claim 20 wherein said flowing through said flow path comprises flowing through a conduit and further comprising inserting at least one of said portions as a cartridge assembly in said conduit.
- 34. A method of improving flow from an axially-rotated valve as described in claim 33 further comprising sealing said cartridge assembly in said conduit.
- 35. A method of improving flow from an axially-rotated valve as described in claim 20 further comprising sealing said second portion with said first portion with a curvilinear diametrical seal at said interface.
- 36. A method of improving flow from an axially-rotated valve as described in claim 20 wherein said conduit comprises a flexible tube.
- 37. A method of improving flow from an axially-rotated valve as described in claim 20 wherein axially rotating from a closed position to an open position comprises axially rotating said second portion approximately one half turn.
- 38. A method of improving flow from an axially-rotated valve as described in claim 20 further comprising purging said axially-rotated valve in at least a partially closed position.
- 39. A method of providing improved flow from a valve using a split venturi comprising:
a. flowing a fluid through a flow path with a pressure and velocity along a central axis; b. gradually reducing said pressure of said fluid while increasing said velocity of said fluid through a first portion of a split venturi wherein said first portion is non-axisymmetric relative to said central axis; c. gradually increasing said pressure of said fluid while decreasing said velocity of said fluid through a second portion of said split venturi wherein said second portion is non-axisymmetric relative to said central axis; d. rotating at least one of said portions of said split venturi to at least a partially closed position; e. at least partially restricting said fluid from flowing through said valve; f. rotating at least one of said portions of said split venturi to at least a partially open position; g. allowing said flowing of said fluid.
- 40. A method of providing improved flow from a valve as described in claim 39 wherein flowing said fluid comprises flowing through a semicircular eccentric non-axisymmetric flow path.
- 41. A method of providing improved flow from a valve as described in claim 39 wherein rotating at least one of said portions comprises axially rotating said portion about a longitudinal axis parallel to said central axis.
- 42. A method of providing improved flow from a valve as described in claim 39 wherein rotating at least one of said portions of said split venturi to at least a partially closed position further comprises axially rotating said second portion relative to said first portion and controlling flowing through said relative rotation.
- 43. A method of providing improved flow from a valve as described in claim 39 wherein rotating comprises axially rotating while maintaining a fixed longitudinal position of said rotated portion.
- 44. A method of providing improved flow from a valve as described in claim 39 further comprising at least partially sealing at an interface between said first and second portions.
- 45. A method of providing improved flow from a valve as described in claim 39 further comprising rotating a second portion longer than first portion.
- 46. A method of providing improved flow from a valve as described in claim 39 wherein said rotating at least one of said portions comprises rotating an internal elbow connected to said portion.
- 47. A method of providing improved flow from a valve as described in claim 39 further comprising exiting said second portion through an exit port and sealing said exit port with an exit port seal at an exit port interface between said exit port and a valve outlet fluidicly connected to said valve.
- 48. A method of providing improved flow from a valve as described in claim 39 wherein rotating at least one of said portions comprises axially rotating said portion with an axial rotator outside of said flow path without substantial interference with flow efficiency.
- 49. A method of providing improved flow from a valve as described in claim 39 wherein said flowing said fluid through said flow path comprises flowing through a conduit and further comprising inserting at least one of said portions as a cartridge assembly in said conduit.
- 50. A method of providing improved flow from a valve as described in claim 39 further comprising sealing at an interface between said portions and assisting said interface with an axial pressure element.
- 51. A method of providing improved flow from a valve as described in claim 39 further comprising flowing through a length sufficient to substantially eliminate flow separation through said second portion.
- 52. A method of providing improved flow from a valve as described in claim 39 wherein flowing said fluid comprises flowing through a thermally conductive conduit and further comprising:
a. providing a separation in said thermally conductive conduit in a freezing zone wherein said separation creates a first conduit section and a second conduit section of said conduit; and b. thermally breaking said first conduit section from said second conduit section in a freeze zone.
- 53. A method of providing improved flow from a valve as described in claim 39 wherein gradually increasing said pressure of said flow while decreasing said velocity of said flow comprises avoiding cavitation of said fluid.
- 54. A method of providing improved flow from a valve as described in claim 39 further comprising establishing a loss coefficient of 4 or less through said valve.
- 55. A method of providing improved flow from a valve as described in claim 39 further comprising resisting the freezing of said valve by sealing at said interface a freeze distance away from freezing conditions.
- 56. A split venturi valve comprising:
a. a conduit having a central axis and a flow path; b. a first portion of a split venturi wherein at least a part of said first portion is non-axisymmetric relative to said central axis; c. a second portion of a split venturi wherein at least a part of said second portion is non-axisymmetric relative to said central axis.
- 57. A split venturi valve as described in claim 56 wherein said portions of said split venturi comprise an eccentric flow surface.
- 58. A split venturi valve as described in claim 56 wherein said part of said first and second portion of said split venturi that is non-axisymmetric comprises an eccentric semicircle.
- 59. A split venturi valve as described in claim 56 wherein said second portion comprises a rotatable second portion relative to said first portion adapted to control a flow through said conduit.
- 60. A split venturi valve as described in claim 56 further comprising a first seal located between said first and second portions in a transition flow zone.
- 61. A split venturi valve as described in claim 56 further comprising an internal elbow connected to one of said portions.
- 62. A split venturi valve as described in claim 56 further comprising an exit port connected to one of said portions and an exit port seal at an exit port interface between said exit port and a valve outlet fluidicly connected to said valve.
- 63. A split venturi valve as described in claim 56 wherein said valve comprises an axially-rotated valve.
- 64. A split venturi valve as described in claim 56 further comprising an axial rotator outside of said flow path adapted to rotate at least one of said portions without substantial engagement of said portion within said flow path.
- 65. A split venturi valve as described in claim 56 further comprising a cartridge assembly adapted for insertion in said conduit comprising at least one of said portions.
- 66. A split venturi valve as described in claim 56 further comprising an axial compression member adapted to bias said portions toward each other.
- 67. A split venturi valve as described in claim 56 wherein at least one of said portions comprises a length sufficient to substantially eliminate flow separation through said portion.
- 68. A split venturi valve as described in claim 56 wherein said second portion is longer than said first portion.
- 69. A split venturi valve as described in claim 56 further comprising a separation in said conduit adapted to create a thermally insulative barrier in said conduit at said separation.
- 70. A split venturi valve as described in claim 56 wherein at least one of said portions of said valve is adapted to substantially prevent cavitation throughout said portion beginning at an interface between said first and second portions.
- 71. A split venturi valve as described in claim 56 wherein said valve is adapted to establish a loss coefficient of 4 or less.
- 72. A split venturi valve as described in claim 56 wherein said valve comprises a freeze resistant, axially-rotated valve comprising a first seal at an interface between said first and second portions located a freeze distance away from freezing conditions.
- 73. A method of providing improved flow from a valve using a split venturi comprising:
a. establishing a flow through a flow path in at least a portion of an axially-rotated valve having a central axis; b. controlling said flow between a first and second portion of a split venturi wherein said portions are fluidicly connected to said valve; c. axially rotating at least one of said portions of said split venturi to a rotated position about a longitudinal axis parallel to said central axis to at least a partially closed position; d. at least partially restricting said flow; e. axially rotating said rotated portion of said split venturi about said longitudinal axis to at least a partially open position; f. continuing said flow through said valve wherein axially rotating said portions of said split venturi comprises axially rotating said portion with an axial rotator outside of said flow without substantial interference with flow efficiency.
- 74. A method of providing improved flow from a valve as described in claim 73 further comprising interfering with less than 20% of a flow efficiency through said flow path by said axial rotator.
- 75. A method of providing improved flow from a valve as described in claim 73 wherein controlling said flow further comprises flowing through an eccentric split venturi.
- 76. A method of providing improved flow from a valve as described in claim 75 wherein flowing through said eccentric split venturi comprises flowing through a semicircular eccentric split venturi.
- 77. A method of providing improved flow from a valve as described in claim 73 wherein axially rotating said rotated portion of said split venturi comprises axially rotating to align with the other said portion of said split venturi for full flow.
- 78. A method of providing improved flow from a valve as described in claim 73 wherein flowing said fluid through a flow path comprises flowing with a pressure and velocity and further comprising:
a. gradually reducing said pressure of said fluid while increasing said velocity of said fluid through said first portion of said split venturi; b. gradually increasing said pressure of said fluid while decreasing said velocity of said fluid through said second portion of said split venturi; and c. avoiding substantial flow separation of said fluid in at least said second portion.
- 79. A method of providing improved flow from a valve as described in claim 73 further comprising establishing a loss coefficient of 4 or less through said valve.
- 80. A method of providing improved flow from a valve as described in claim 73 further comprising sealing at an interface between said portions comprising:
a sealing about a periphery of said interface between said portions; b. sealing across a diametrical portion of said interface in the same plane as said sealing about said periphery.
- 81. A method of providing improved flow from a valve as described in claim 73 further comprising exiting one of said portions through an exit port comprising exiting through an internal elbow to a valve outlet fluidicly connected to said valve.
- 82. A method of providing improved flow from a valve as described in claim 81 further comprising sealing at said exit port between said internal elbow and said valve outlet.
- 83. A method of providing improved flow from a valve as described in claim 73 wherein said flowing through said flow path comprises flowing through a conduit and further comprising inserting at least one of said portions as a cartridge assembly in said conduit.
- 84. A method of providing improved flow from a valve as described in claim 83 further comprising sealing said cartridge assembly in said conduit.
- 85. A method of providing improved flow from a valve as described in claim 73 further comprising sealing at an interface between said portions and resisting the freezing of said valve by sealing at said interface a freeze distance away from freezing conditions.
- 86. A split venturi valve comprising:
a. an axially-rotated valve having a central axis and a flow path; b. a first and second portion of a split venturi wherein said portions are fluidicly connected to said valve; c. an axial rotator outside of said flow path adapted to rotate at least one of said portions of said split venturi without substantially engaging said portion within said flow path.
- 87. A split venturi valve as described in claim 86 wherein said axial rotator is located outside of said flow path in a location that has less than 20% interference with a flow efficiency by said axial rotator relative to a location inside said flow path.
- 88. A split venturi valve as described in claim 86 wherein at least said second portion of said split venturi comprises an eccentric portion.
- 89. A split venturi valve as described in claim 86 wherein at least said second portion of said split venturi comprises a semicircular eccentric portion.
- 90. A split venturi valve as described in claim 86 wherein said first and second portions are adapted to axially align relative to each other for full flow.
- 91. A split venturi valve as described in claim 86 wherein at least said second portion of said valve is adapted to substantially prevent flow separation throughout said portion beginning at an interface between said first and second portions.
- 92. A split venturi valve as described in claim 86 wherein said valve is adapted to establish a loss coefficient of 4 or less.
- 93. A split venturi valve as described in claim 86 further comprising a first seal located between said first and second portions in a transition flow zone wherein said first seal comprises an outer periphery seal and a diametrical seal in substantially the same plane as said outer periphery seal
- 94. A split venturi valve as described in claim 86 further comprising an internal elbow fluidicly connected to one of said portions.
- 95. A split venturi valve as described in claim 86 further comprising an exit port connected to said second portion and an exit port seal at an exit port interface between said exit port and a valve outlet fluidicly connected to said valve.
- 96. A split venturi valve as described in claim 86 wherein said axially-rotated valve further comprises a conduit and further comprising a cartridge assembly adapted for insertion in said conduit comprising at least one of said portions.
- 97. A split venturi valve as described in claim 96 further comprising a cartridge seal assembly around said cartridge assembly adapted to seal cartridge assembly in said conduit.
- 98. A split venturi valve as described in claim 86 wherein said valve comprises a freeze resistant valve comprising a first seal at an interface between said first and second portions located a freeze distance away from freezing conditions.
- 99. A method of providing improved flow from a valve using a split venturi comprising:
a. flowing a fluid with a pressure and velocity into an axially-rotated valve having a central axis; b. gradually reducing said pressure of said fluid while increasing said velocity of said fluid in a first portion of a split venturi; c. flowing said fluid into a second portion; d. gradually increasing said pressure of said fluid while decreasing said velocity of said fluid in a second portion of a split venturi comprising avoiding flow separation of said fluid in said second portion; e. axially rotating at least one of said portions of said split venturi along a longitudinal axis parallel to said central axis to at least a partially closed position; f. at least partially restricting said fluid from flowing through said axially-rotated valve; g. axially rotating said rotated portion along said longitudinal axis to at least a partially open position; h. allowing said flowing of said fluid.
- 100. A method of providing improved flow from a valve as described in claim 99 wherein axially rotating at least one of said portions of said split venturi comprises axially rotating said second portion.
- 101. A method of providing improved flow from a valve as described in claim 99 wherein avoiding flow separation of said fluid in said second portion comprises providing a streamlined flow slope surface.
- 102. A method of providing improved flow from a valve as described in claim 99 wherein gradually increasing said pressure of said fluid while decreasing said velocity of said fluid in said second portion comprises gradually increasing through a slope of approximately 7-8 degrees in said portion.
- 103. A method of providing improved flow from a valve as described in claim 99 further comprising planar sealing between said first and second portions of said split venturi with an outer periphery seal and a diametrical seal in substantially the same plane as said outer periphery seal.
- 104. A method of providing improved flow from a valve as described in claim 99 wherein gradually increasing said pressure comprises gradually increasing in a non-axisymmetric flow path relative to said central axis.
- 105. A method of providing improved flow from a valve as described in claim 104 wherein gradually reducing said pressure comprises gradually reducing in a non-axisymmetric flow path relative to said central axis.
- 106. A method of providing improved flow from a valve as described in claim 105 wherein non-axisymmetric flow paths comprises semicircular eccentric non-axisymmetric flow paths.
- 107. A method of providing improved flow from a valve as described in claim 99 wherein gradually increasing said pressure comprises gradually increasing said pressure while maintaining streamlined flow.
- 108. A method of providing improved flow from a valve as described in claim 107 wherein gradually reducing said pressure comprises gradually reducing said pressure while maintaining streamlined flow.
- 109. A method of providing improved flow from a valve as described in claim 108 wherein gradually reducing said pressure comprises gradually reducing said pressure while maintaining non cavitation flow.
- 110. A method of providing improved flow from a valve as described in claim 99 wherein gradually reducing said pressure comprises gradually reducing said pressure while maintaining non cavitation flow.
- 111. A method of providing improved flow from a valve as described in claim 99 further comprising establishing a loss coefficient of 4 or less through said axially-rotated valve.
- 112. A method of providing improved flow from a valve as described in claim 99 further comprising at least partially sealing at an interface between said portions.
- 113. A method of providing improved flow from a valve as described in claim 99 further comprising reducing a flow area of said flow path at an interface between said first and second portions to not less than approximately 40% relative to said flow area in a full cross sectional area of said flow path.
- 114. A method of providing improved flow from a valve as described in claim 112 wherein sealing at said interface comprises linearly sealing across a diametrical portion of said interface.
- 115. A method of providing improved flow from a valve as described in claim 112 wherein sealing at said interface comprises curvilinearly sealing across a diametrical portion of said interface.
- 116. A method of providing improved flow from a valve as described in claim 112 wherein sealing with a cross sectional seal area to maintain a seal against full pressure.
- 117. A method of providing improved flow from a valve as described in claim 99 further comprising flowing through a longer flow path in said second portion than said first portion.
- 118. A method of providing improved flow from a valve as described in claim 99 further comprising flowing through an interface between said first and second portion wherein said first and second portions at said interface comprises an approximately zero slope.
- 119. A method of providing improved flow from a valve as described in claim 99 wherein rotating at least one of said portions comprises axially rotating said portion with an axial rotator outside of said flow path without substantial interference with flow efficiency.
- 120. A method of providing improved flow from a valve as described in claim 99 wherein rotating said second portion comprises axially rotating said portion with an axial rotator outside of said flow path without substantial interference with flow efficiency.
- 121. A split venturi valve comprising:
a. an axially rotated valve having a central axis and a flow path; b. a first portion of a split venturi having a first longitudinal axis parallel to said central axis; c. a second portion of a split venturi fluidicly connected to said first portion and having a second longitudinal axis parallel to said central axis; d. a valve rotator attached to at least one of said portions of said split venturi wherein said second portion of said split venturi is adapted to substantially prevent flow separation throughout said second portion of said valve beginning at an interface between said first and second portions.
- 122. A split venturi valve as described in claim 121 wherein said valve rotator is adapted to axially rotate at least one of said portions along said longitudinal axis of said portion.
- 123. A split venturi valve as described in claim 121 wherein said second portion of said split venturi that is adapted to substantially prevent flow separation throughout said second portion of said valve comprises a streamlined flow slope surface.
- 124. A split venturi valve as described in claim 121 wherein said second portion of said split venturi comprises a slope of approximately 7-8 degrees.
- 125. A split venturi valve as described in claim 121 further comprising a seal located between said first and second portions of said split venturi and substantially transverse to said central axis wherein said seal comprises an outer periphery seal and a diametrical seal in substantially the same plane as said outer periphery seal.
- 126. A split venturi valve as described in claim 121 wherein said flow path through said second portion comprises a non-axisymmetric flow path relative to said central axis.
- 127. A split venturi valve as described in claim 126 wherein said flow path through said first portion comprises a non-axisymmetric flow path relative to said central axis.
- 128. A split venturi valve as described in claim 127 wherein non-axisymmetric flow paths comprises semicircular eccentric non-axisymmetric flow paths.
- 129. A split venturi valve as described in claim 121 wherein said first portion of said split venturi is adapted to substantially prevent flow separation throughout said first portion of said valve.
- 130. A split venturi valve as described in claim 121 wherein at least one of said portions is adapted to substantially prevent cavitation throughout said portion beginning at an interface between said first and second portions.
- 131. A split venturi valve as described in claim 126 wherein at least one of said portions is adapted to substantially prevent cavitation throughout said portion beginning at an interface between said first and second portions.
- 132. A split venturi valve as described in claim 121 wherein said portions are to establish an overall loss coefficient of 4 or less.
- 133. A split venturi valve as described in claim 121 further comprising a first seal at an interface between said first and second portions.
- 134. A split venturi valve as described in claim 121 wherein said flow path comprises a flow area and wherein said flow area at an interface between said first and second portions further comprises a flow area not less than approximately 40% relative to said flow area in a full cross sectional area of said flow path.
- 135. A split venturi valve as described in claim 133 wherein said first seal comprises a linear diametrical seal across said interface.
- 136. A split venturi valve as described in claim 133 wherein said first seal comprises a curvilinear diametrical seal across said interface.
- 137. A split venturi valve as described in claim 133 further comprising a cross sectional seal area to maintain a seal against full pressure.
- 138. A split venturi valve as described in claim 121 wherein said second portion has a longer flow path than said first portion.
- 139. A split venturi valve as described in claim 121 further comprising an interface between said first and second portions wherein a slope of said first and second portions approximates zero at said interface.
- 140. A split venturi valve as described in claim 121 wherein said valve rotator further comprises an axial rotator outside of said flow path adapted to rotate at least one of said portions without substantial engagement of said portion within said flow path.
- 141. A split venturi valve as described in claim 121 wherein said valve rotator further comprises an axial rotator outside of said flow path adapted to rotate said second portion relative to said first portion without substantial engagement of said second portion within said flow path.
- 142. A split venturi valve as described in claim 121 further comprising a purge port assembly adapted to open and allow drainage of said valve when said valve is in at least a partially closed position.
Parent Case Info
[0001] This patent is a continuation-in-part of U.S. application Ser. No. 08/637,203 by Robert K. Burgess, commonly owned by the Assignee, and filed Apr. 24, 1996, now U.S. Pat. No. ______, entitled “AXIAL-MOUNTED HIGH FLOW VALVE”.
Divisions (3)
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Number |
Date |
Country |
Parent |
09941080 |
Aug 2001 |
US |
Child |
10430985 |
May 2003 |
US |
Parent |
09619347 |
Jul 2000 |
US |
Child |
09941080 |
Aug 2001 |
US |
Parent |
08925535 |
Sep 1997 |
US |
Child |
09619347 |
Jul 2000 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
08637203 |
Apr 1996 |
US |
Child |
08925535 |
Sep 1997 |
US |