Claims
- 1. A drive shafting apparatus suitable for use in .[.machines including.]. .Iadd.a machine having .Iaddend.a high speed rotating impeller or similar element, comprising:
- an outer sleeve shaft adapted to be mounted for rotation within said machine;
- an inner, cantilever shaft rigidly connected at one end of said cantilever shaft within said outer sleeve shaft and having substantial radial play within said sleeve shaft at the other end of said cantilever shaft, said other end of said cantilever shaft being adapted for connection to said high speed rotating element for rotation therewith; and
- damper means situated about said other end of said cantilever shaft for reducing radial .[.vibrartion.]. .Iadd.vibration .Iaddend.of said cantilever shaft as it rotates through critical speeds and for substantially eliminating whirling of said cantilever shaft and high speed rotating element;
- said damper means comprising an inner bushing mounted about and spaced from said other end of said cantilever shaft and means for resiliently biasing said spaced bushing to allow limited radial deflection of said cantilever shaft during rotation, said spacing being such that said high speed rotating element rotates about its center of gravity outside of a critical speed without said bushing being engaged and said bushing is engaged and becomes effective during passage of said high speed rotating element through a critical speed. .[.2. A drive shafting apparatus as claimed in claim 1, wherein said damper means comprises a ring mounted about said other end of said cantilever shaft and means for resiliently biasing said ring to allow limited radial deflection of said cantilever shaft during
- rotation..]. 3. A drive shafting apparatus as claimed in claim 1, including means for introducing flowing fluid into said sleeve shaft; wherein said damper means comprise:
- flow channel means for exhausting said fluid from said sleeve shaft; and
- means for causing said fluid to fill substantially the radial clearance between said sleeve shaft and said cantilever shaft in the region of said radial play. .[.4. A drive shafting apparatus as claimed in claim 2, including means for introducing flowing fluid into said sleeve shaft, wherein said damper means comprise:
- flow channel means for exhausting said fluid from said sleeve shaft; and
- means for causing said fluid to fill substantially the radial clearance between said sleeve shaft and said cantilever shaft in the region of said
- radial play..]. 5. A drive shafting apparatus as claimed in claim .[.2.]. .Iadd.1.Iaddend., wherein said .[.ring.]. .Iadd.bushing .Iaddend.comprises an inner bore adjacent the outer diameter of said cantilever shaft, said inner bore including means for inducing loss of contact between said cantilever shaft .[.and said rotating element,.]. and said inner bore,
- whereby said whirling is substantially eliminated. 6. A drive shafting apparatus as claimed in claim 5, including means for introducing flowing fluid into said sleeve shaft, wherein said damper means further comprises:
- flow channel means for exhausting said fluid from said sleeve shaft; and
- means for causing said fluid to fill substantially the radial clearance between said sleeve shaft and said cantilever shaft in the region of said
- radial play. 7. A drive shafting apparatus as claimed in claim 1, wherein said damper means .Iadd.further .Iaddend.comprises .[.an inner bushing spaced from said cantilever shaft;.]. resilient means surrounding said bushing for absorbing energy imparted to said bushing by contact with said cantilever shaft; an outer mounting ring surrounding said resilient means; and means for resiliently biasing said mounting ring to permit limited
- radial deflection thereof. 8. A drive shafting apparatus as claimed in claim 7, wherein said means for absorbing comprises a layer of resilient
- material between said bushing and said mounting ring. 9. A drive shafting apparatus as claimed in claim 1, wherein said damper means .Iadd.further .Iaddend.comprises a ring surrounding said cantilever shaft and means for resiliently biasing said ring into contact with said other end of said cantilever shaft .[.to limit radial deflection thereof during rotation.]..
- 0. A drive shafting apparatus as claimed in claim 9, wherein said cantilever shaft comprises a conical portion and a radially extending horizontal portion at said other end, and said ring comprises a conical face on its inner diameter and a horizontal face, said conical portion and said conical face and said horizontal portion and said horizontal face
- being biased into contact. 11. A drive shafting apparatus as claimed in claim 7, wherein said damper means further comprises a ring surrounding said cantilever shaft and means for resiliently biasing said ring into contact with said other end of said cantilever shaft .[.to limit radial
- deflection thereof during rotation.].. 12. A drive shafting apparatus as claimed in claim 5, wherein said means for inducing loss of contact comprises a varying radius in said inner bore, whereby said loss of contact is induced as said shaft moves from contact with .[.a portion of said bore having one radius to.]. a portion of said bore having one radius
- to a portion having a larger radius. 13. A drive shafting apparatus suitable for use in .[.machines including.]. .Iadd.a machine having .Iaddend.a high speed rotating impeller or similar element and a surrounding rotating bowl or similar element, comprising:
- an outer sleeve shaft adapted to be mounted for rotation within said machine and for connection to said surrounding rotating element for rotation therewith;
- an inner sleeve shaft mounted for rotation within said outer sleeve shaft;
- a central, cantilever shaft rigidly connected at one end of said cantilever shaft within said inner sleeve shaft and having substantial radial play within said inner sleeve shaft at the other end of said cantilever shaft, said other end of said cantilever shaft being adapted for connection to said high speed rotating element for rotation therewith; and
- damper means about said other end of said cantilever shaft for reducing radial vibration of said cantilever shaft as it rotates through critical speeds and for substantially eliminating whirling of said cantilever shaft and high speed rotating element .Iadd.said damper means comprising an inner bushing mounted about and spaced from said other end of said cantilever shaft and means for resiliently biasing said spaced bushing to allow limited radial deflection of said cantilever shaft during rotation, said spacing being such that said high speed rotating element rotates about its center of gravity outside of a critical speed without said bushing being engaged and said bushing is engaged and becomes effective during passage of said high speed rotating element through a critical speed.Iaddend.. .[.14. A drive shafting apparatus as claimed in claim 13, wherein said damper means comprises a ring mounted to said outer sleeve shaft about said other end of said cantilever shaft and means for resiliently biasing said ring to allow limited radial deflection of said
- cantilever shaft during rotation..]. 15. A drive shafting apparatus as claimed in claim 13, including means for introducing flowing fluid into said inner sleeve shaft, wherein said damper means comprises:
- flow channel means for exhausting said fluid from said inner sleeve shaft; and
- means for causing said fluid to fill substantially the radial clearance between said inner sleeve shaft and said cantilever shaft in the region of
- said radial play. .[.16. A drive shafting apparatus as claimed in claim 14, including means for introducing flowing fluid into said inner sleeve shaft, wherein said damper means comprises:
- flow channel means for exhausting said fluid from said inner sleeve shaft; and
- means for causing said fluid to fill substantially the radial clearance between said inner sleeve shaft and said cantilever shaft in the region of
- said radial play..]. 17. A drive shafting apparatus as claimed in claim .[.14.]. .Iadd.13.Iaddend., wherein said .[.ring.]. .Iadd.bushing .Iaddend.comprises an inner bore adjacent the outer diameter of said cantilever shaft, said inner bore including means for inducing a loss of contact between said cantilever shaft .[.and said rotating element.]. and
- said inner bore, whereby said whirling is substantially eliminated. 18. A drive shafting apparatus as claimed in claim 17 including means for introducing flowing fluid into said inner sleeve shaft, wherein said damper means further comprises:
- flow channel means for exhausting said fluid from said inner sleeve shaft; and
- means for causing said fluid to fill substantially the radial clearance between said inner sleeve shaft and said cantilever shaft in the region of
- said radial play. 19. A drive shafting apparatus as claimed in claim 13, wherein said damper means .Iadd.further .Iaddend.comprises .[.an inner bushing spaced from said cantilever shaft;.]. resilient means surrounding said bushing for absorbing energy imparted to said bushing by contact with said cantilever shaft; an outer mounting ring surrounding said resilient means; and means for resiliently biasing said mounting ring to permit
- limited radial deflection thereof. 20. A drive shafting apparatus as claimed in claim 19, wherein said means for absorbing comprises a layer of
- resilient material between said bushing and said mounting ring. 21. A drive shafting apparatus as claimed in claim 13, wherein said damper means .Iadd.further .Iaddend.comprises a ring surrounding said cantilever shaft and means for resiliently biasing said ring into contact with said other end of said cantilever shaft .[.to limit radial deflection thereof during
- rotation.].. 22. A drive shafting apparatus as claimed in claim 21, wherein said cantilever shaft comprises a conical portion and a radially extending horizontal portion at said other end, and said ring comprises a conical face on its innner diameter and a horizontal face, said conical portion and said conical face and said horizontal portion and said
- horizontal face being biased into contact. 23. A drive shafting apparatus as claimed in claim 19, wherein said damper means further comprises a ring surrounding said cantilever shaft and means for resiliently biasing said ring into contact with said other end of said cantilever shaft .[.to limit
- radial deflection thereof during rotation.].. 24. A drive shafting apparatus as claimed in claim 17, wherein said means for inducing loss of contact comprises a varying radius in said inner bore, whereby said loss of contact is induced as said shaft moves from contact with a portion of said bore having one radius to a portion of said bore .[.having one radius
- to a portion.]. having a larger radius. 25. In a centrifugal crushing machine of the type in which an impeller is mounted for rotation within a bowl, the impeller being adapted to project particles of material toward the wall of the bowl, the bowl having a bottom wall extending radially from the impeller and a circumferential wall extending upwardly from the bottom wall, the improvement comprising:
- spaced impact targets arranged circumferentially on said bottom wall between said impeller and said circumferential wall, said targets being spaced radially from said impeller and said circumferential wall and presenting impact surfaces .[.being.]. oriented at an angle to the path of said particles whereby at least a portion of said particles are crushed by impact with said surfaces;
- a first sleeve mounted for rotation within said machine;
- a central cantilever shaft rigidly connected at one end of said cantilever shaft within said first sleeve shaft and having substantial radial play within said first sleeve shaft at the other end of said cantilever shaft, said cantilever shaft being connected to said impeller for rotation therewith;
- damper means about said other end of said cantilever shaft for reducing radial vibration of said cantilever shaft as it rotates through critical speeds and for substantial eliminating whirling of said cantilever shaft
- and impeller. 26. The machine according to claim 25, wherein said bowl is mounted for rotation independently of said impeller, further comprising:
- a second sleeve shaft mounted for rotation within said machine and around said first sleeve shaft, said second sleeve shaft being operatively
- connected to said bowl for rotation therewith. 27. The machine according to claim 26, wherein said damper means comprises a ring mounted to said second sleeve shaft about said other end of said cantilever shaft and means for resiliently biasing said ring to allow limited radial deflection
- of said cantilever shafting during rotation. 28. The machine according to claim 27, wherein said ring comprises an inner bore adjacent the outer diameter of said cantilever shaft, said inner bore including means for inducing loss of contact between said cantilever shaft .[.and said rotating impeller,.]. and said inner bore, whereby said whirling is
- substantially eliminated. 29. The machine according to claim 25, including means for introducing flowing fluid into said first sleeve shaft, wherein said damper means comprise:
- flow channel means for exhausting said fluid from said first sleeve shaft; and
- means for causing said fluid to fill substantially the radial clearance between said first sleeve shaft and said cantilever shaft in the region of
- said radial play. 30. The machine according to claim 25, wherein said damper means comprises a ring mounted in said machine.[.,.]. about said other end of said cantilever shaft and means for resiliently biasing said ring to allow limited radial deflection of said cantilever shaft during
- rotation. 31. The machine according to claim 30, wherein said ring comprises an inner bore adjacent the outer diameter of said cantilever shaft, said inner bore including means for introducing loss of contact between said cantilever shaft .[.and said rotating impeller,.]. and said
- inner bore, whereby said whirling is substantially eliminated. 32. The machine according to claim 25, wherein said damper means comprises an inner bushing spaced from said cantilever shaft; resilient means surrounding said bushing for absorbing energy imparted to said bushing by contact with said cantilever shaft; .[.and.]. .Iadd.an .Iaddend.outer mounting ring surrounding said resilient means; and means for resiliently biasing said mounting ring to permit limited radial deflection thereof.
- The machine according to claim 32, wherein said means for absorbing comprises a layer of resilient material between said bushing and said
- mounting ring. 34. The machine according to claim 25, wherein said damper means comprises a ring surrounding said cantilever shaft and means for resiliently biasing said ring into contact with said other end of said
- cantilever shaft to limit radial deflection thereof during rotation. 35. The machine according to claim 34, wherein said cantilever shaft comprises a conical portion and a radially extending horizontal portion at said other end, and said ring comprises a conical face on its inner diameter and a horizontal face, said conical portion and said conical face and said horizontal portion .[.of.]. .Iadd.and .Iaddend.said horizontal
- face being biased into contact. 36. The machine according to claim 32, wherein said damper means further comprises a ring surrounding said cantilever shaft and means for resiliently biasing said ring into contact with said other end of said cantilever shaft to limit radial deflection
- thereof during rotation. 37. The machine according to claim .[.30.]. .Iadd.31.Iaddend., wherein said means for inducing loss of contact comprises a varying radius in said inner bore, whereby said loss of contact is induced as said shaft moves from contact with a portion of said bore having one radius to a portion of said bore .[.having one radius to a
- portion.]. having a larger radius. 38. In a centrifugal crushing machine of the type in which an impeller is mounted for rotation within a housing, the impeller being adapted to project particles of material toward the wall of the housing, the improvement comprising:
- an impactor mounted within said machine and having a supporting wall extending radially from said impeller;
- spaced impact targets arranged circumferentially on said supporting wall, said targets being spaced radially from said impeller and said housing wall and presenting impact surfaces to particles projected from said impeller, said impact surfaces being oriented at an angle to the path of said particles, whereby at least a portion of said particles are crushed by impact with said surfaces;
- a first sleeve shaft mounted for rotation within said machine;
- a central cantilever shaft rigidly connected at one end of said cantilever shaft within said first sleeve shaft and having substantial radial play within said first sleeve shaft at the other end of said cantilever shaft, said cantilever shaft being connected to said impeller for rotation therewith;
- damper means about said other end of said cantilever shaft for reducing radial vibration of said cantilever shaft as it rotates through critical speeds and for substantially eliminating whirling of said cantilever shaft
- and impeller. 39. The machine according to claim 38, wherein said impactor is mounted for rotation independently of said impeller, further comprising:
- a second sleeve shaft mounted for rotation within said machine and around said first sleeve shaft, said second sleeve shaft being operatively
- connected to said impactor for rotation therewith. 40. The machine according to claim 39, wherein said damper means comprises a ring mounted .[.to.]. .Iadd.on .Iaddend.said second sleeve shaft about said other end of said .[.cantilver.]. .Iadd.cantilever .Iaddend.shaft and means for resiliently biasing said ring to .[.cantilever.]. .Iadd.allow .Iaddend.limited radial deflection of said cantilever shaft during
- rotation. 41. The machine according to claim 40, wherein said ring comprises an inner bore adjacent the outer diameter of said cantilever shaft, said inner bore including means for inducing loss of contact between said cantilever shaft .[.and said rotating impeller,.]. and said
- inner bore, whereby said whirling is substantially eliminated. 42. The machine according to claim 38, including means for introducing flowing fluid into said first sleeve shaft, wherein said damper means comprises:
- flow channel means for exhausting said fluid from said first sleeve shaft; and
- means for causing said fluid to fill substantially the radial clearance between said first sleeve shaft and said cantilever shaft in the region of
- said radial play. 43. The machine according to claim 38, wherein said damper means comprises a ring mounted in said machine about said other end of said cantilever shaft and means for resiliently biasing said ring to allow limited radial deflection of said cantilever shaft during rotation.
- 4. The machine according to claim 43, wherein said ring comprises an inner bore adjacent the outer diameter of said cantilever shaft, said inner bore including means for inducing loss of contact between said cantilever shaft .[.and said rotating impeller,.]. and said inner bore,
- whereby said whirling is substantially eliminated. 45. The machine according to claim 38, wherein said damper means comprises an inner bushing spaced from said cantilever shaft; resilient means surrounding said bushing for absorbing energy imparted to said bushing by contact with said cantilever shaft; an outer mounting ring surrounding said resilient means; and means for resiliently biasing said mounting ring to permit
- limited radial deflection thereof. 46. The machine according to claim 45, wherein said means for absorbing comprises a layer of resilient material
- between said bushing and said mounting ring. 47. The machine according to claim 38, wherein said damper means comprises a ring surrounding said cantilever shaft and means for resiliently biasing said ring into contact with said other end of said cantilever shaft to limit radial deflection
- thereof during rotation. 48. The machine according to claim 47, wherein said cantilever shaft comprises a conical portion and a radially extending horizontal portion at said other end, and said ring comprises a conical face on its inner diameter and a horizontal face, said conical portion and said conical face and said horizontal portion and said horizontal face
- being biased into contact. 49. The machine according to claim .[.46.]. .Iadd.45.Iaddend., wherein said damper means further comprises a ring surrounding said cantilever shaft and means for resiliently biasing said ring into contact with said other end of said cantilever shaft to limit
- radial deflection thereof during rotation. 50. The machine according to claim 41, wherein said means for inducing loss of contact comprises a varying radius in said inner bore, whereby said loss of contact is induced as said shaft moves from contact with a portion of said bore .[.having one radius to a portion of said bore.]. having one radius to a portion having
- a larger radius. 51. In a centrifugal crushing machine of the type in which an .[.inpeller.]. .Iadd.impeller .Iaddend.is mounted for rotation within the machine and adapted to project particles of material toward at least one target surface, the improvement comprising:
- a first sleeve shaft mounted for rotation within said machine;
- a central cantilever shaft rigidly connected at one end of said cantilever shaft within said first sleeve shaft and having substantial radial play within said first sleeve shaft at the other end of said cantilever shaft, said cantilever shaft being connected to said impeller for rotation therewith;
- damper means about the other end of said cantilever shaft for reducing radial vibration of said cantilever shaft as it rotates through critical speeds and for substantially eliminating whirling of said cantilever shaft
- and impeller. 52. The machine according to claim 51, wherein said at least one target surface is mounted for rotation independently of said impeller, further comprising:
- a second sleeve shaft mounted for rotation within said machine.[.,.]. and around said first sleeve shaft, said second sleeve shaft being operatively connected to said at least one target .Iadd.surface .Iaddend.for rotation
- therewith. 53. The machine according to claim 52, wherein said damper means comprises a ring mounted .[.to.]. .Iadd.on .Iaddend.said second sleeve shaft about said other end of said cantilever shaft, and means resiliently biasing said ring to allow limited radial deflection of said
- cantilever shafting during rotation. 54. The machine according to claim 53, wherein said ring comprises an inner bore adjacent the outer diameter of said cantilever shaft, said inner bore including means for inducing loss of contact between said cantilever shaft .[.and said rotating impeller,.]. and said inner bore, whereby said whirling is substantially
- eliminated. 55. The machine according to claim 51, including means for introducing flowing fluid into said first sleeve shaft, wherein said damper means comprises:
- flow channel means for exhausting said fluid from said first sleeve shaft; and
- means for causing said fluid to fill substantially the radial clearance between said first sleeve shaft and said cantilever shaft in the region of
- said radial play. 56. The machine according to claim 51, wherein said damper means comprises a ring mounted in said machine about said other end of said cantilever shaft, and means resiliently biasing said ring to allow
- limited radial deflection of said cantilever shaft during rotation. 57. The machine according to claim 56, wherein said ring comprises an inner bore adjacent the outer diameter of said cantilever shaft, said inner bore including means for inducing loss of contact between said cantilever shaft .[.and said rotating impeller,.]. and said inner bore,
- whereby said whirling is substantially eliminated. 58. The machine according to claim 51, wherein said damper means comprises an inner bushing spaced from said cantilever shaft; resilient means surrounding said bushing for absorbing energy imparted to said bushing by contact with said cantilever shaft; an outer mounting ring surrounding said resilient means; and means for resiliently biasing said mounting ring to permit
- limited radial deflection thereof. 59. The machine according to claim 58, wherein said means for absorbing comprises a layer of resilient material
- between said bushing and said mounting ring. 60. The machine according to claim 51, wherein said damper means comprises a ring surrounding said cantilever shaft and means for resiliently biasing said ring into contact with said other end of said cantilever shaft to limit radial deflection
- thereof during rotation. 61. The machine according to claim 60, wherein said cantilever shaft comprises a conical portion and a radially extending horizontal portion at said other end, and said ring comprises a conical face on its inner diameter and a horizontal face, said conical portion and said conical face and said horizontal portion and said horizontal face
- being biased into contact. 62. The machine according to claim 59, wherein said damper means further comprises a ring surrounding said cantilever shaft and means for resiliently biasing said ring into contact with said other end of said cantilever shaft to limit radial deflection thereof
- during rotation. 63. The machine according to claim 57, wherein said means for inducing loss of contact comprises a varying radius in said inner bore, whereby said loss of contact is induced as said shaft moves from contact with a portion of said bore .[.having one radius to a portion of said bore.]. having one radius to a portion having a larger radius. .Iadd. 64. The apparatus of claim 3 or 15 in which said fluid is a liquid and said flow channel means cooperates with said fluid filling means to keep said liquid continually in contact with said cantilever shaft in the region of said substantial radial play as said cantilever shaft rotates through a critical speed. .Iaddend..Iadd. 65. The apparatus of claim 64 in which said flow channel means includes at least one radial flow passage for exhausting said liquid from said clearance, a radially projecting sleeve cooperating with said radial flow passage so as to restrict the flow of liquid through said flow passage, and a radially extending cavity for receiving said radially projecting sleeve during radial deflection of said cantilever shaft. .Iaddend. .Iadd. 66. The drive shafting apparatus of claim 15 in which said damper means includes means for causing said fluid to flow on at least one surface of said inner sleeve shaft and on at least one surface of said outer sleeve shaft so as to cool said inner and outer sleeve shafts. .Iaddend. .Iadd. 67. The drive shafting apparatus of claim 15 in which said damper means includes means for causing said fluid to flow on at least one surface of said inner sleeve shaft so as to cool
- said inner sleeve shaft. .Iaddend. .Iadd.68. The drive shafting apparatus of claim 10 or 22 in which said apparatus further includes supply means for supplying a lubricating fluid to the areas of contact between said conical portion and said conical face and between said horizontal portion and said horizontal face, and in which said damper means further comprises means for providing a flow path for said lubricating fluid past said areas of contact. .Iaddend..Iadd. 69. The apparatus of claim 68 in which said flow path means comprises at least one groove in said conical face and at least one groove in said horizontal face. .Iaddend. .Iadd. 70. The drive shafting apparatus of claim 11 or 23 in which the operating speed of said cantilever shaft is greater than its first critical speed and said contact ring cooperates with said inner brushing to substantially eliminate whirling of said cantilever shaft at said operating speed. .Iaddend..Iadd. 71. The apparatus of claim 70 in which the operating speed of said cantilever shaft is more than four times said first critical speed. .Iaddend. .Iadd. 72. The crushing machine of claim 30, 43 or 56 in which said damper means includes means for mounting at least a portion of said damper means on said second sleeve shaft. .Iaddend. .Iadd. 73. The crushing machine of claim 72 in which said mounting means cooperates with said second sleeve shaft so as to limit radial deflection of said cantilever shaft and prevent contact between said other end of cantilever shaft and said second sleeve shaft. .Iaddend..Iadd. 74. The crushing machine of claim 73 in which said cantilever shaft is sized to have a maximum radial deflection without permanent set which is greater than the maximum radial deflection permitted by said mounting means. .Iaddend. .Iadd. 75. The crushing machine of claim 25, 38 or 51 in which said impeller and said impact targets are arranged so as to be rotatably driven in opposite directions and said impeller rotates at a speed above its first critical speed. .Iaddend..Iadd. 76. The crushing machine of claim 75 in which said impeller rotates at a speed in the range of two to five times its first critical speed. .Iaddend. .Iadd. 77. The crushing machine of claim 76 in which said impeller rotates at a speed in the range of 2,400 to 6,000 r.p.m. .Iaddend..Iadd. 78. The crushing machine of claim 77 in which the operating speed of said impact targets is in the range of about 300 to 400 r.p.m. .Iaddend..Iadd. 79. The crushing machine of claim 75 in which the operating speed of said impeller is more than four times
- said first critical speed. .Iaddend. 80. The crushing machine of claim 25, 38 or 51 in which said machine further includes a first bearing means and a second bearing means for rotatably supporting said cantilever shaft, said first bearing means being spaced radially from said cantilever shaft in the region of said connected end and said second bearing means being spaced radially from said cantilever shaft in the region of said substantial radial play. .Iadd. 81. The crushing machine of claim 25, 38 or 51 in which said impact targets are spaced from said impeller so that substantially no crushing of projected particles of said material smaller than a first preselected size is caused by impact with said impact targets. .Iaddend. .Iadd. 82. The crushing machine of claim 81 in which said machine further includes separating means for returning particles of said crushed material larger than a second preselected size to said impeller, and said impact targets cooperate with said impeller and said separating means to produce a crushed product of substantially uniform particle size within the preselected size range defined by said first and second preselected particle sizes. .Iaddend. .Iadd. 83. The crushing machine of claim 25, 38, or 51 in which said impeller includes an upper disc and a lower disc and said discs are arranged to discharge said projected particles in a stream having an axial depth less than the axial height of said impact targets. .Iaddend. .Iadd. 84. The crushing machine of claim 31, 44 or 57 in which said means for inducing loss of contact comprises means for shaping said inner bore to provide a non-circular configuration for causing said whirling member to lose contact with said inner bore. .Iaddend. .Iadd. 85. The crushing machine of claim 30, 43 or 56 in which said damper ring is resiliently biased into frictional contact with an abutting surface of said machine so as to provide frictional resistance to radial deflection of said cantilever shaft. .Iaddend. .Iadd. 86. The crushing machine of claim 85 in which said damper means further includes means for adjusting the amount of said frictional resistance provided by said damper ring. .Iaddend. .Iadd. 87. The machine of claim 35, 48 or 61 in which said machine further includes supply means for supplying a lubricating fluid to the areas of contact between said conical portion and said conical face and between said horizontal portion and said horizontal face, and in which said damper means further comprises means for providing a flow path for said lubricating fluid past said areas of contact. .Iaddend..Iadd. 88. The machine of claim 87 in which said flow path means comprises at least one groove in said conical face and at least one groove in said horizontal face. .Iaddend. .Iadd. 89. The crushing machine of claim 29, 42 or 55 in which said fluid is a liquid and said flow channel means cooperates with said fluid filling means to keep said liquid continually in contact with said cantilever shaft in the region of said substantial radial play as said cantilever shaft rotates through a critical speed. .Iaddend. .Iadd. 90. The machine of claim 25, 38 or 51 in which said impact surfaces are oriented at an angle in the range of 80.degree. to 100.degree. relative to tangent lines extending from the outer periphery of said impeller to said impact surfaces. .Iaddend..Iadd. 91. The machine of claim 90 in which said impact surfaces are spaced from said impeller along said tangent lines by a distance such that substantially no crushing of said projected particles smaller than a preselected size is caused by impact with said impact surfaces. .Iaddend..Iadd. 92. The machine of claim 91 in which said distance is at least about 10 inches. .Iaddend. .Iadd. 93. In a machine of the type having an inner member and an outer member with at least one of said members mounted for rotation relative to the other of said members so as to allow substantial radial play therebetween, the improvement comprising:
- seal means extending radially for providing a lubricant seal between said inner and outer members, said seal means including:
- a ring of seal material concentric to said inner member and having a conical face and an axially extending ridge, said seal ring being mounted on one of said members for both axial and radial movement relative to the other of said members;
- a conical surface and a radially extending ridge on the other of said members; and,
- biasing means for biasing said conical face and said conical surface into contact and said axial ridge and said radial ridge into contact so that constant sliding contact is maintained between said seal means and said other member during said relative rotation with substantial radial play between said inner and outer members, said conical face and said axial ridge cooperating to prevent said ring from jamming against said other member..Iaddend..Iadd. 94. The improvement of claim 93 in which said conical surface and said radial ridge are on said inner member and the radius of said conical surface increases in the direction of said radial ridge. .Iaddend. .Iadd. 95. The improvement of claim 93 in which said seal ring is mounted on said outer member. .Iaddend..Iadd. 96. The improvement of claim 95 in which said inner member is mounted for rotation relative to said outer member. .Iaddend..Iadd. 97. The improvement of claim 95 in which said outer member is mounted for rotation relative to said inner member. .Iaddend..Iadd. 98. The improvement of claim 93 in which said inner member and said outer member are each mounted for rotation relative
- to the other. .Iaddend..Iadd. 99. The improvement of claim 93 in which said seal means includes supply means for supplying a lubricating fluid to the areas of contact between said conical surface and said conical face and between said radial and axial ridges. .Iaddend..Iadd. 100. The improvement of claim 99 in which said supply means is comprised of grooves in said conical surface or said conical face and in said radial ridge or said axial ridge and means for causing a lubricating fluid to flow through said grooves. .Iaddend. .Iadd. 101. A drive shafting apparatus comprising:
- an outer sleeve adapted to be mounted in a machine;
- an inner sleeve shaft mounted within said outer sleeve for rotation relative to said outer sleeve;
- an inner rotating element with one end rigidly mounted within said inner sleeve shaft for rotation with said inner sleeve shaft and the other end including an end portion spaced radially from and extending axially beyond an adjacent end of said inner sleeve shaft, said other end portion of said inner rotating element having substantial radial play relative to said adjacent end of said inner sleeve shaft; and, damper means for reducing radial vibration of said inner rotating element as it rotates through a critical speed, said damper means comprising bushing means for contacting said other end portion of said inner rotating element at an axial position beyond said adjacent end of said inner sleeve shaft during radial deflection of said inner rotating element, resilient means for absorbing energy imparted to said bushing means by contact with said other end portion of said inner rotating element, and mounting means for mounting said bushing means and said resilient means on said outer sleeve. .Iaddend..Iadd. 102. The drive shafting apparatus of claim 101 in which said mounting means includes means for limiting radial deflection of said bushing means so as to prevent said other end of said inner rotating element from contacting said inner sleeve shaft and said outer sleeve. .Iaddend..Iadd. 103. The drive shafting apparatus of claim 101 in which said bushing means includes a ring adapted for sliding contact with said inner rotating element. .Iaddend. .Iadd. 104. The drive shafting apparatus of claim 103 in which said damper ring is spaced from said other end portion of said inner rotating element and resiliently biased into fractional contact with an abutting surface of said outer sleeve so as to provide frictional resistance to radial deflection of said rotating element. .Iaddend..Iadd. 105. The drive shafting apparatus of claim 104 in which said damper means further includes means for adjusting the amount of said frictional resistance provided by said damper ring. .Iaddend. .Iadd. 106. The drive shafting apparatus of claim 103 in which said ring includes an inner bore adjacent to the outer diameter of said inner rotating element and said inner bore includes means for inducing loss of contact between said inner rotating element and said inner bore so as to substantially eliminate whirling of said inner rotating element. .Iaddend..Iadd. 107. The drive shafting apparatus of claim 5, 17 or 106 in which said means for inducing loss of contact comprises means for shaping said inner bore to provide a non-circular configuration for causing said whirling member to lose contact with said inner bore. .Iaddend..Iadd. 108. The apparatus of claim 107 in which said shaping means includes a plurality of discontinuities on the surface of said inner bore, said discontinuities being substantially equally spaced around the periphery of said inner bore. .Iaddend. .Iadd. 109. The apparatus of claim 108 in which said discontinuities are at least four in number and comprise bumps on the surface of said inner bore. .Iaddend..Iadd. 110. The apparatus of claim 107 in which said inner bore is elliptical in shape. .Iaddend..Iadd. 111. The apparatus of claim 107 in which said shaping means for inducing loss of contact comprises a plurality of cylindrical ridges on the surface of said inner bore, said ridges extending along the axial length of said damper ring and having a radius of approximately one-tenth the radius of the portion of said whirling member within said inner bore. .Iaddend. .Iadd. 112. The drive shafting apparatus of claim 103 in which said resilient means includes means for biasing said ring so that constant sliding contact is maintained between said ring and said inner rotating element during relative rotation between said inner sleeve shaft and said outer sleeve with substantial radial play between said inner rotating element and said inner sleeve shaft. .Iaddend..Iadd. 113. The drive shafting apparatus of claim 112 in which said resilient means includes spring means carried by said mounting means so as to bias said ring into constant sliding contact with said inner rotating element. .Iaddend. .Iadd. 114. The drive shafting apparatus of claim 103 in which said ring is spaced from said inner rotating element and said mounting means includes means for permitting limited radial deflection of said ring when contacted by said inner rotating element. .Iaddend..Iadd. 115. The drive shafting apparatus of claim 103 in which said resilient means includes a layer of resilient material carried by said mounting means so as to absorb energy imparted to said ring by contact with said inner rotating element. .Iaddend..Iadd. 116. The drive shafting apparatus of claim 115 in which said resilient layer comprises a ring of resilient material around said bushing ring. .Iaddend..Iadd. 117. The drive shafting apparatus of claim 101 in which said bushing means includes a first damper ring and a second damper ring, said first damper ring being spaced from said inner rotating element; said mounting means includes means for permitting limited radial deflection of said first damper ring when contacted by said inner rotating element; and said resilient means includes means for biasing said second damper ring so that constant sliding contact is maintained between said second damper ring and said inner rotating element during relative rotation between said inner sleeve shaft and said outer sleeve with substantial radial play between said inner rotating element and said inner sleeve shaft. .Iaddend. .Iadd. 118. The drive shafting apparatus of claim 101 in which said apparatus further includes a first bearing means and a second bearing means for rotatably supporting said inner sleeve shaft, said first bearing means being spaced radially from said inner rotating element in the region of said connected end and said second bearing means being spaced radially from said inner rotating element in the region of said substantial radial play. .Iaddend. .Iadd. 119. In a machine of the type having an inner member and an outer member with at least one of said members mounted for rotation relative to the other of said members so as to allow substantial radial play therebetween, the improvement comprising:
- damper means for providing at least some dampering of radial vibration between said inner and outer members, said damper means including:
- a ring concentric to said inner member and having a conical face and an axially extending ridge, said ring being mounted on one of said members for both axial and radial movement relative to the other of said members;
- a conical surface and a radially extending ridge on the other of said members; and,
- biasing means for biasing said conical face and said conical surface into contact and said axial ridge and said radial ridge into contact so that constant sliding contact is maintained between said damper means and said other member during said relative rotation with substantial radial play between said inner and outer members, said conical face and axial ridge cooperating to prevent said ring from jamming against said other member. .Iaddend..Iadd. 120. The improvement of claim 119 in which said damper means provides a lubricant seal between said inner and outer members and includes supply means for supplying a lubricating fluid to the areas of contact between said conical surface and said conical face and between said radial and axial ridges. .Iaddend. .Iadd. 121. In a machine of the type having an inner member and an outer member with at least one of said members mounted for rotation relative to the other of said members so as to allow radial play therebetween, the improvement comprising:
- a ring concentric to said inner member and having a conical face and an axially extending ridge;
- means for mounting said ring on one of said members for both axial and radial movement relative to the other of said members;
- a conical surface and a radially extending ridge on the other of said members; and,
- biasing means for biasing said conical face and said conical surface into contact and said axial ridge and said radial ridge into contact, said conical face and said axial ridge cooperating to maintain constant sliding contact between said ring and said other member and to prevent said ring from jamming against said other member during said relative rotation with radial play between said inner and outer members. .Iaddend..Iadd. 122. The improvement of claim 121 in which said improvement further includes supply means for supplying a lubricating fluid to the areas of contact between said conical surface and said conical face and between said radial ridge and said axial ridge, and seal means for substantially preventing leakage of said lubricant between said ring and the member upon which said ring is mounted. .Iaddend. .Iadd. 123. The improvement of claim 121 in which said biasing means is arranged to provide at least some dampening of radial vibration as said at least one rotatably mounted member rotates through a critical speed. .Iaddend..Iadd. 124. A drive shafting apparatus suitable for use in a machine having a high speed rotating element, said drive shafting apparatus comprising:
- an inner sleeve shaft adapted to be mounted for rotation within said machine;
- an inner cantilever shaft with one end rigidly connected for rotation with said inner sleeve shaft and the other end having substantial radial play within said inner sleeve shaft, said cantilever shaft being adapted for connection to said high speed rotating element for rotation therewith; and,
- damper means situated about said other end of said cantilever shaft for reducing radial vibration of said cantilever shaft as it rotates through a critical speed, said damper means including radially spaced opposing surfaces arranged to define a radial clearance between said inner sleeve shaft and said other end of said cantilever shaft in the region of said substantial radial play, seal means extending radially across one end of said clearance, supply means for supplying a liquid to said clearance, and discharge means cooperating with said supply means so as to keep said radial clearance substantially full of said liquid such that said opposing surfaces are continually in contact with said liquid as said cantilever shaft rotates with said inner sleeve shaft through a critical speed, said discharge means comprising at least one radial flow passage for exhausing said liquid from said clearance in the region of said substantial radial play and at least one radially projecting sleeve cooperating with said at least one radial flow passage so as to restrict the flow of liquid through
- said passage..Iaddend. .Iadd. 125. The drive shafting apparatus of claim 124 in which said at least one radial flow passage extends radially outward from said clearance in said inner sleeve shaft. .Iaddend..Iadd. 126. The drive shafting apparatus of claim 124 in which said supply means causes said liquid to flow into said clearance as a film on the inner surface of said inner sleeve shaft and said radial sleeve causes the thickness of said film to increase to a depth sufficient to maintain said clearance substantially full of said liquid. .Iaddend. .Iadd. 127. The drive shafting apparatus of claim 124 in which said damper means further includes a cavity communicating with said clearance in the region of said substantial radial play, and in which said radial sleeve extends radially into said cavity. .Iaddend..Iadd. 128. The drive shafting apparatus of claim 127 in which said sleeve cooperates with said cavity to provide a hydraulic shock absorbing effect in response to radial deflection of said cantilever shaft. .Iaddend. .Iadd. 129. The drive shafting apparatus of claim 124 in which said sleeve shaft and said cantilever shaft are mounted for rotation at least partially within an outer sleeve. .Iaddend..Iadd. 130. The drive shafting apparatus of claim 1, 13 or 129 in which said damper means includes means for mounting at least a portion of said damper means on said outer sleeve, and said portion of said damper means is mounted on said outer sleeve so as to contact said cantilever shaft in the region of said substantial radial play during radial deflection of said cantilever shaft. .Iaddend..Iadd. 131. The drive shafting apparatus of claim 130 in which said mounting means cooperates with said outer sleeve so as to limit radial deflection of said cantilever shaft and prevent contact between said other end of said cantilever shaft and said outer sleeve. .Iaddend..Iadd. 132. The drive shafting apparatus of claim 131 in which said cantilever shaft is sized to have a maximum radial deflection without permanent set which is greater than the maximum radial deflection permitted by said mounting means. .Iaddend..Iadd. 133. The drive shafting apparatus of claim 1, 13, or 124 in which said cantilever shaft is sized so that its first critical speed is in the range of one fifth to one half of its operating speed. .Iaddend..Iadd. 134. The drive shafting apparatus of claim 133 in which said cantilever shaft is sized so that its second critical speed is at least about fifty percent greater than said operating speed. .Iaddend..Iadd. 135. The drive shafting apparatus of claim 133 in which the operating speed of said cantilever shaft is more than four times said first critical speed. .Iaddend..Iadd. 136. The drive shafting apparatus of claim 1, 13, or 124 in which said apparatus further includes a first bearing means and a second bearing means for rotatably supporting said cantilever shaft, said first bearing means being spaced radially from said cantilever shaft in the region of said connected end and said second bearing means being spaced radially from said cantilever shaft in the region of said substantial radial play. .Iaddend. .Iadd. 137. The drive shafting apparatus of claim 3 or 124 in which said damper means includes means for causing said fluid to flow on at least one surface of said sleeve shaft so as to cool said sleeve shaft. .Iaddend. .Iadd. 138. A drive shafting apparatus suitable for use in a machine having a high speed rotating impeller or similar element, comprising:
- an outer sleeve shaft adapted to be mounted for rotation within said machine;
- an inner, cantilever shaft rigidly connected at one end of said cantilever shaft within said outer sleeve shaft and having substantial radial play within said sleeve shaft at the other end of said cantilever shaft, said other end of said cantilever shaft being adapted for connection to said high speed rotating element for rotation therewith; and
- damper means situated about said other end of said cantilever shaft for reducing radial vibration of said cantilever shaft as it rotates through critical speeds and for substantially eliminating whirling of said cantilever shaft and high speed rotating element;
- said damper means including fluid supply means for introducing a flowing liquid into said sleeve shaft, flow channel means for exhausting said liquid from said sleeve shaft, and flow restricting means cooperating with said fluid supply means for causing said liquid to fill substantially the radial clearance between said sleeve shaft and said cantilever shaft and for keeping said liquid continually in contact with said cantilever shaft in the region of said substantial radial play as said cantilever shaft rotates through a critical speed, said flow channel means including at least one radial flow passage for exhausting said liquid from said clearance and said flow restricting means comprising a radially projecting sleeve cooperating with said radial flow passage so as to restrict the flow of liquid through said flow passage and a radially extending cavity for receiving said radially projecting sleeve during radial deflection of said cantilever shaft. .Iaddend.
CROSS-REFERENCE TO RELATED APPLICATION
This application is a continuation of my copending application Ser. No. 662,631, filed Mar. 1, 1976, now abandoned, which is a continuation-in-part of my prior copending application Ser. No. 501,551, filed Aug. 29, 1974 for IMPROVEMENTS IN HIGH-SPEED ROTATING CRUSHING MACHINERY AND CRUSHING METHODS, now abandoned.
US Referenced Citations (15)
Foreign Referenced Citations (4)
Number |
Date |
Country |
1049787 |
Jul 1959 |
DEX |
797567 |
Apr 1936 |
FRX |
313846 |
Jun 1929 |
GBX |
518953 |
Mar 1940 |
GBX |
Continuations (1)
|
Number |
Date |
Country |
Parent |
662631 |
Mar 1976 |
|
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
501551 |
Aug 1974 |
|
Reissues (1)
|
Number |
Date |
Country |
Parent |
765720 |
Feb 1977 |
|