Claims
- 1. A gerotor apparatus, comprising:
a housing; an outer gerotor disposed within the housing; an inner gerotor disposed within the outer gerotor; a valve plate rigidly coupled to the housing, the valve plate having a first surface positioned adjacent an end of the outer gerotor; a proximity sensor coupled to the valve plate, the proximity sensor operable to sense a gap between an end of the outer gerotor and the surface of the valve plate; and means for adjusting the gap between the end of the outer gerotor and the valve plate.
- 2. The gerotor apparatus of claim 1, wherein the means for adjusting the gap comprises a jacket disposed around a circumference of the housing, the jacket comprising an inlet port and an outlet port to allow fluid to flow through the jacket.
- 3. The gerotor apparatus of claim 1, wherein the means for adjusting the gap comprises at least one screw coupled to the housing and engaging the valve plate.
- 4. The gerotor apparatus of claim 1, wherein the means for adjusting the gap comprises a retaining ring coupled to an upper end of the housing with a plurality of adjustment screws, the retaining ring associated with a collar of a shaft that is coupled to the outer gerotor and operable to translate the outer gerotor through a movement of the adjustment screws.
- 5. The gerotor apparatus of claim 1, wherein the means for adjusting the gap comprises a gas source coupled to the housing, the gas source operable to recirculate temperature-controlled gas between the housing and the outer gerotor.
- 6. A gerotor apparatus, comprising:
a housing; an outer gerotor disposed within the housing; an inner gerotor disposed within the outer gerotor; a valve plate rigidly coupled to the housing, the valve plate having a first surface positioned adjacent an end of the outer gerotor; a sealing ring disposed around a perimeter of the first surface; and an actuation system operable to control a gap between the sealing ring and the end of the outer gerotor.
- 7. The gerotor apparatus of claim 6, wherein the actuation system comprises:
a gas supply source operable to deliver gas through at least one aperture formed in the sealing ring and into the gap; a flow-measuring device operable to measure a rate of gas being delivered into the gap; a controller coupled to the flow-measuring device and operable to receive the measured rate; and an actuator coupled to the controller and operable to translate the sealing ring based on the measured rate.
- 8. The gerotor apparatus of claim 7, wherein the flow-measuring device is a hot-wire anemometer.
- 9. The gerotor apparatus of claim 6, further comprising a spring-loaded seal disposed between an end of the inner gerotor and an inwardly extending ledge of the outer gerotor.
- 10. The gerotor apparatus of claim 9, wherein the spring-loaded seal is circular.
- 11. The gerotor apparatus of claim 9, wherein the spring-loaded seal is gerotor-shaped.
- 12. The gerotor apparatus of claim 6, wherein an outer surface of the inner gerotor and an outer surface of the outer gerotor are coated with a ceramic material.
- 13. The gerotor apparatus of claim 6, wherein the valve plate comprises:
an inlet port; an exhaust port; and a compression control element slidably engaged with either the inlet port or exhaust port, the compression control element operable to control a compression ratio of the gerotor apparatus based on its position within either the inlet port or the gas outlet port.
- 14. The gerotor apparatus of claim 6, further comprising a jacket disposed around a circumference of the housing, the jacket comprising an inlet port and an outlet port to allow fluid to flow through the jacket.
- 15. An actuation system for controlling leakage of gas into lubricant in a gerotor apparatus, comprising:
a sealing ring disposed between a surface of a gerotor and a valve plate such that a gap exists between the surface of the gerotor and the sealing ring, the sealing ring having a plurality of apertures formed therein; a gas supply source operable to deliver gas through the apertures and into the gap; a flow-measuring device operable to measure a rate of gas being delivered into the gap; a controller coupled to the flow-measuring device and operable to receive the measured rate; and an actuator coupled to the controller and operable to translate the sealing ring based on the measured rate.
- 16. The gerotor apparatus of claim 15, wherein the flow-measuring device is a hot-wire anemometer.
- 17. The sealing ringing system of claim 15, wherein the sealing ring is formed from metal.
- 18. The sealing ringing system of claim 15, wherein the gerotor is an outer gerotor.
- 19. The sealing ringing system of claim 15, wherein the gerotor is an inner gerotor.
- 20. The sealing ringing system of claim 15, wherein the sealing ring is positioned in the gerotor apparatus where surface velocities are high.
- 21. A gerotor apparatus, comprising:
a housing; an outer gerotor disposed within the housing; an inner gerotor disposed within the outer gerotor; and a valve plate rigidly coupled to the housing, the valve plate comprising:
a first surface positioned adjacent an end of the outer gerotor; an inlet port; an exhaust port; and a compression control element slidably engaged with either the inlet port or exhaust port, the compression control element operable to control a compression ratio of the gerotor apparatus based on its position within either the inlet port or the gas outlet port.
- 22. The gerotor apparatus of claim 21, further comprising:
a sealing ring disposed around a perimeter of the first surface; and an actuation system operable to control a gap between the sealing ring and the end of the outer gerotor, wherein the actuation system comprises:
a gas supply source operable to deliver gas through at least one aperture formed in the sealing ring and into the gap; a flow-measuring device operable to measure a rate of gas being delivered into the gap; a controller coupled to the flow-measuring device and operable to receive the measured rate; and an actuator coupled to the controller and operable to translate the sealing ring based on the measured rate.
- 23. The gerotor apparatus of claim 22, wherein the flow-measuring device is a hot-wire anemometer.
- 24. The gerotor apparatus of claim 21, further comprising a spring-loaded seal disposed between an end of the inner gerotor and an inwardly extending ledge of the outer gerotor.
- 25. The gerotor apparatus of claim 24, wherein the spring-loaded seal is circular.
- 26. The gerotor apparatus of claim 24, wherein the spring-loaded seal is gerotor-shaped.
- 27. The gerotor apparatus of claim 21, wherein an outer surface of the inner gerotor and an outer surface of the outer gerotor are coated with a ceramic material.
- 28. The gerotor apparatus of claim 21, wherein the outer gerotor, the inner gerotor, and valve plate are formed form a material having a coefficient of thermal expansion of no more than approximately 2×10−6 m/(m·K).
- 29. The gerotor apparatus of claim 21, further comprising a jacket disposed around a circumference of the housing, the jacket comprising an inlet port and an outlet port to allow fluid to flow through the jacket.
- 30. A gerotor apparatus, comprising:
a housing; an inner shaft rigidly coupled at a first end to the housing; a hollow shaft rotatably coupled to the inner shaft; an inner gerotor rigidly coupled to the hollow shaft; an outer gerotor rotatably disposed within the housing by a rotating shaft; a seal plate having a circular hole formed therein rigidly coupled to the outer gerotor; a seal plug disposed within the circular hole of the seal plate, the seal plug having a circular hole formed therein; and a first bearing disposed within the circular hole of the seal plug, the first bearing supporting the outer gerotor on the hollow shaft.
- 31. The gerotor apparatus of claim 30, further comprising an offset support plate coupled to a second end of the inner shaft, the offset support plate having a bearing coupled to an outer surface thereof for supporting the outer gerotor.
- 32. The gerotor apparatus of claim 30, further comprising a second bearing disposed within the circular hole of the seal plug, the second bearing also supporting the outer gerotor on the hollow shaft.
- 33. The gerotor apparatus of claim 30, further comprising a reference wheel rotatably coupled to the housing, the reference wheel engaging the rotating shaft to provide support for the rotating shaft and to maintain the seal plug in a first orientation.
- 34. The gerotor apparatus of claim 30, further comprising a pressurized air source coupled to a port formed in a perimeter of the housing, the pressurized air source operable to deliver pressurized air through the port and into the housing.
- 35. The gerotor apparatus of claim 30, further comprising a proximity sensor coupled to the housing, the proximity sensor operable to sense a gap between an end of the outer gerotor and an inside surface of the housing.
- 36. The gerotor apparatus of claim 30, further comprising a drive gear coupled to the rotating shaft, the drive gear operable to rotate the outer gerotor within the housing.
- 37. The gerotor apparatus of claim 30, wherein the first bearing is soft coupled within the circular hole of the seal plug.
- 38. The gerotor apparatus of claim 30, wherein the first bearing is hard coupled within the circular hole of the seal plug.
- 39. The gerotor apparatus of claim 30, further comprising an anti-rotation mount disposed within the housing, the anti-rotation mount coupling the inner shaft to the seal plug.
- 40. The gerotor apparatus of claim 30, further comprising a jacket disposed around a circumference of the housing, the jacket comprising an inlet port and an outlet port to allow fluid to flow through the jacket.
- 41. A gerotor apparatus, comprising:
a housing; a hollow shaft coupled at a first end to the housing; an inner shaft disposed within the hollow shaft and rotatably coupled at first and second ends to the housing; an inner gerotor rigidly coupled to the inner shaft; a first synchronizing mechanism rigidly coupled to the inner shaft; an outer gerotor rotatably coupled to the hollow shaft and having a second synchronizing mechanism; and a seal plate rigidly coupled to the outer gerotor.
- 42. The gerotor apparatus of claim 41, wherein the first synchronizing mechanism is an inner gear and the second synchronizing mechanism is an outer gear.
- 43. The gerotor apparatus of claim 41, wherein the first synchronizing mechanism is an alignment member and the second synchronizing mechanism is an alignment guide, the alignment member and the alignment guide working in conjunction with one another to control the rotation of the inner gerotor relative to the outer gerotor.
- 44. The gerotor apparatus of claim 41, further comprising:
a seal plug disposed within a circular hole formed in the seal plate, the seal plug having a circular hole formed therein that is concentric with the inner shaft; and a first bearing disposed within the circular hole of the seal plug, the first bearing locating the seal plug.
- 45. The gerotor apparatus of claim 44, wherein a spacing between a center of the seal plug and a center of the circular hole of the seal plug equals a spacing between the longitudinal axis of the hollow shaft and the longitudinal axis of the inner shaft.
- 46. The gerotor apparatus of claim 44, wherein the first bearing is soft coupled within the circular hole of the seal plug.
- 47. The gerotor apparatus of claim 44, wherein the first bearing is hard coupled within the circular hole of the seal plug.
- 48. The gerotor apparatus of claim 44, wherein the hollow shaft is coupled at the first end to the housing with an anti-rotation pin that is configured to keep the hollow shaft from rotating during rotation of the inner shaft.
- 49. The gerotor apparatus of claim 48, wherein the hollow shaft is rigidly coupled to the seal plug with a connector.
- 50. The gerotor apparatus of claim 41, wherein the hollow shaft is rigidly coupled at the first end to the housing.
- 51. The gerotor apparatus of claim 41, further comprising a proximity sensor coupled to the housing, the proximity sensor operable to sense a gap between an end of the outer gerotor and an inside surface of the housing.
- 52. The gerotor apparatus of claim 41, further comprising a pressurized air source coupled to a port formed in a perimeter of the housing, the pressurized air source operable to deliver pressurized air through the port and into the housing to supply a force to at least a portion of an outside perimeter of the outer gerotor.
- 53. The gerotor apparatus of claim 41, further comprising a jacket disposed around a circumference of the housing, the jacket comprising an inlet port and an outlet port to allow fluid to flow through the jacket.
- 54. A gerotor apparatus, comprising:
a housing; an outer gerotor disposed within the housing; an inner gerotor disposed within the outer gerotor; and a gear housing disposed within the inner gerotor, the gear housing housing at least one gear operable to synchronize a rotation of the outer gerotor with a rotation of the inner gerotor.
- 55. The gerotor apparatus of claim 54, wherein the at least one gear comprises an idler gear coupling a first gear and a second gear, the first gear coupled to the outer gerotor and the second gear coupled to the inner gerotor.
- 56. The gerotor apparatus of claim 55, further comprising:
an upper shaft rigidly coupled to the first gear at a first end and rotatably coupled to the housing at a second end; and a lower shaft rigidly coupled to the second gear at a first end and rotatably coupled to the housing at a second end.
- 57. The gerotor apparatus of claim 56, further comprising a seal plate rigidly coupling the outer gerotor to the upper shaft.
- 58. The gerotor apparatus of claim 55, further comprising:
an upper shaft rigidly coupling the gear housing to a first end of the housing; a lower shaft rigidly coupling the gear housing to a second end of the housing; a hollow upper shaft rigidly coupled to the first gear at a first end and rotatably coupled to the upper shaft at a second end; a hollow lower shaft rigidly coupled to the second gear at a first end and rotatably coupled to the lower shaft at a second end; a third gear rigidly coupled to the hollow upper shaft; a drive gear coupled to the third gear; and a rotating shaft rotatably coupled to the first end of the housing and rigidly coupled to the drive gear.
- 59. The gerotor apparatus of claim 54, wherein the at least one gear comprises a first gear rigidly coupled to a second gear, the first gear meshing with an internal gear coupled to an inside of the inner gerotor, the second gear meshing with an internal gear coupled to an inside of a seal plate coupled to the outer gerotor.
- 60. The gerotor apparatus of claim 59, further comprising:
an upper shaft rigidly coupling the gear housing to a first end of the housing; a lower shaft rigidly coupling the gear housing to a second end of the housing; a hollow shaft rigidly coupled to the seal plate at a first end and rotatably coupled to the upper shaft at a second end; . a third gear rigidly coupled to the hollow shaft; a drive gear coupled to the third gear; and a rotating shaft rotatably coupled to the first end of the housing and rigidly coupled to the drive gear.
- 61. The gerotor apparatus of claim 55, further comprising a lower shaft rigidly coupling the gear housing to a first end of the housing that includes a gas inlet port for the gerotor apparatus.
- 62. The gerotor apparatus of claim 61, further comprising an upper shaft rigidly coupled to the gear housing and extending towards a second end of the housing, and wherein the outer gerotor is rotatably coupled to the upper shaft and rotatably coupled to the second end of the housing by a first bearing.
- 63. The gerotor apparatus of claim 54, further comprising a pressurized air source coupled to a port formed in a perimeter of the housing, the pressurized air source operable to deliver pressurized air through the port and into the housing to supply a force to at least a portion of an outside perimeter of the outer gerotor.
- 64. The gerotor apparatus of claim 54, further comprising a proximity sensor coupled to the housing, the proximity sensor operable to sense a gap between an end of the outer gerotor and an inside surface of the housing.
- 65. The gerotor apparatus of claim 54, further comprising a jacket disposed around a circumference of the housing, the jacket comprising an inlet port and an outlet port to allow fluid to flow through the jacket.
- 66. A gerotor apparatus, comprising:
a housing; a first shaft rotatably coupled to a first end of the housing; an outer gerotor coupled to the first shaft via a seal plate and a gear housing; a rigid shaft coupled to a second end of the housing; an inner gerotor disposed within the outer gerotor and rotatably coupled to the rigid shaft; and wherein the gear housing houses an inner gear that couples a first gear coupled to the outer gerotor and a second gear that couples to the inner gerotor, the inner gear rotatably coupled to the rigid shaft.
- 67. The gerotor apparatus of claim 66, further comprising a jacket disposed around a circumference of the housing, the jacket comprising an inlet port and an outlet port to allow fluid to flow through the jacket.
- 68. A gerotor apparatus, comprising:
a housing; an outer gerotor disposed within the housing; an inner gerotor disposed within the outer gerotor; and a gearing system for driving the outer and inner gerotors, the gearing system external to the housing and comprising:
a rotating shaft having a first gear and a second gear; a third gear meshing with the first gear and coupled to a first shaft, the first shaft rigidly coupled to the outer gerotor and rotatably coupled to a first end of the housing; and a fourth gear meshing with the second gear and coupled to a second shaft, the second shaft rigidly coupled to the inner gerotor and rotatably coupled to a second end of the housing.
- 69. The gerotor apparatus of claim 68, further comprising a pressurized air source coupled to a port formed in a perimeter of the housing, the pressurized air source operable to deliver pressurized air through the port and into the housing.
- 70. The gerotor apparatus of claim 68, further comprising a proximity sensor coupled to the housing, the proximity sensor operable to sense a gap between an end of the outer gerotor and an inside surface of the housing.
- 71. The gerotor apparatus of claim 68, further comprising a jacket disposed around a circumference of the housing, the jacket comprising an inlet port and an outlet port to allow fluid to flow through the jacket.
- 72. A gerotor apparatus, comprising:
a housing; an outer gerotor disposed within the housing; an inner gerotor disposed within the outer gerotor; a plurality of protrusions extending inwardly from an inside surface of the housing, thereby creating a plurality of gas pockets between respective protrusions; and wherein the outer gerotor includes a plurality of conduits formed in a wall of the outer gerotor, the conduits extending from a compression chamber inside the outer gerotor to an outside of the outer gerotor to allow gas to travel from the compression chamber to the gas pockets.
- 73. The gerotor apparatus of claim 72, further comprising a proximity sensor coupled to the housing, the proximity sensor operable to sense a gap between an end of the outer gerotor and an inside surface of the housing.
- 74. The gerotor apparatus of claim 72, further comprising a gear housing disposed within the inner gerotor, the gear housing housing at least one gear operable to synchronize a rotation of the outer gerotor with a rotation of the inner gerotor.
- 75. The gerotor apparatus of claim 72, further comprising a gearing system for driving the outer and inner gerotors, the gearing system external to the housing and comprising:
a rotating shaft having a first gear and a second gear; a third gear meshing with the first gear and coupled to a first shaft, the first shaft rigidly coupled to the outer gerotor and rotatably coupled to a first end of the housing; and a fourth gear meshing with the second gear and coupled to a second shaft, the second shaft rigidly coupled to the inner gerotor and rotatably coupled to a second end of the housing.
- 76. The gerotor apparatus of claim 72, further comprising:
a seal plate having a circular hole formed therein rigidly coupled to the outer gerotor; a seal plug disposed within the circular hole of the seal plate, the seal plug having a circular hole formed therein; and a first bearing disposed within the circular hole of the seal plug, the first bearing supporting the inner gerotor.
- 77. The gerotor apparatus of claim 72, further comprising a jacket disposed around a circumference of the housing, the jacket comprising an inlet port and an outlet port to allow fluid to flow through the jacket.
- 78. A gerotor apparatus, comprising:
a housing; a hollow shaft rigidly coupled to a first end of the housing; an inner shaft disposed within the hollow shaft and rotatably coupled within the hollow shaft by a first bearing and a second bearing; an inner gerotor rigidly coupled to the inner shaft; a first synchronizing mechanism rigidly coupled to the inner gerotor; and an outer gerotor rotatably coupled to the hollow shaft with a third bearing and a fourth bearing, the outer gerotor having a second synchronizing mechanism.
- 79. The gerotor apparatus of claim 78, wherein the first synchronizing mechanism is an inner gear and the second synchronizing mechanism is an outer gear.
- 80. The gerotor apparatus of claim 78, wherein the first synchronizing mechanism is an alignment member and the second synchronizing mechanism is an alignment guide, the alignment member and the alignment guide working in conjunction with one another to control the rotation of the inner gerotor relative to the outer gerotor.
- 81. The gerotor apparatus of claim 78, wherein the first end of the housing is opposite a second end of the housing that includes a gas inlet for the gerotor apparatus.
- 82. The gerotor apparatus of claim 78, wherein the first and third bearings are in substantially the same circumferential plane and the second and fourth bearings are in substantially the same circumferential plane.
- 83. The gerotor apparatus of claim 82, wherein the second and fourth bearings are in a circumferential plane that is substantially the same as a circumferential plane passing through the axial centers of both the inner and outer gerotors.
- 84. The gerotor apparatus of claim 78, wherein the first and third bearings are in substantially the same circumferential plane and the second and fourth bearings are in a different circumferential plane, the fourth bearing positioned in a circumferential plane passing through the axial centers of both the inner and outer gerotors.
- 85. The gerotor apparatus of claim 78, further comprising a proximity sensor coupled to the housing, the proximity sensor operable to sense a gap between an end of the outer gerotor and an inside surface of the housing.
- 86. The gerotor apparatus of claim 85, further comprising at least one screw coupled to the housing, the screw operable to adjust the gap between the end of the outer gerotor and the inside surface of the housing.
- 87. The gerotor apparatus of claim 78, further comprising a pressurized air source coupled to a port formed in a perimeter of the housing, the pressurized air source operable to deliver pressurized air through the port and into the housing to supply a force to at least a portion of an outside perimeter of the outer gerotor.
- 88. The gerotor apparatus of claim 78, further comprising a jacket disposed around a circumference of the housing, the jacket comprising an inlet port and an outlet port to allow fluid to flow through the jacket.
- 89. A gerotor apparatus, comprising:
a housing; a hollow shaft rigidly coupled to a first end of the housing; an inner shaft disposed within the hollow shaft and rotatably coupled within the hollow shaft by a first bearing and a second bearing; an outer gerotor rigidly coupled to the inner shaft; a first synchronizing mechanism rigidly coupled to the outer gerotor; and an inner gerotor rotatably coupled to the hollow shaft with a third bearing and a fourth bearing, the inner gerotor having a second synchronizing mechanism.
- 90. The gerotor apparatus of claim 89, wherein the first synchronizing mechanism is an outer gear and the second synchronizing mechanism is an inner gear.
- 91. The gerotor apparatus of claim 89, wherein the first synchronizing mechanism is an alignment guide and the second synchronizing mechanism is an alignment member, the alignment member and the alignment guide working in conjunction with one another to control the rotation of the inner gerotor relative to the outer gerotor.
- 92. The gerotor apparatus of claim 89, wherein the first end of the housing includes a gas inlet for the gerotor apparatus.
- 93. The gerotor apparatus of claim 89, wherein the first and third bearings are in substantially the same circumferential plane and the second and fourth bearings are in substantially the same circumferential plane.
- 94. The gerotor apparatus of claim 89, wherein the first, second, third, and fourth bearings are all positioned in different circumferential planes.
- 95. The gerotor apparatus of claim 94, wherein an inside diameter of the third and fourth bearings is no greater than an outside diameter of the hollow shaft.
- 96. The gerotor apparatus of claim 89, further comprising a proximity sensor coupled to the housing, the proximity sensor operable to sense a gap between an end of the outer gerotor and an inside surface of the housing.
- 97. The gerotor apparatus of claim 89, further comprising a pressurized air source coupled to a port formed in a perimeter of the housing, the pressurized air source operable to deliver pressurized air through the port and into the housing.
- 98. The gerotor apparatus of claim 89, further comprising a jacket disposed around a circumference of the housing, the jacket comprising an inlet port and an outlet port to allow fluid to flow through the jacket.
- 99. A gerotor apparatus, comprising:
a housing; a first shaft coupled to a first end of the housing; a second shaft associated with a second end of the housing and rotatably coupled at a first end to the first shaft by a first bearing; an outer gerotor rigidly coupled to the second shaft; a first synchronizing mechanism rigidly coupled to the outer gerotor; and an inner gerotor rotatably coupled to the first shaft with a second bearing and a third bearing, the inner gerotor having a second synchronizing mechanism.
- 100. The gerotor apparatus of claim 99, wherein the first synchronizing mechanism is an outer gear and the second synchronizing mechanism is an inner gear.
- 101. The gerotor apparatus of claim 99, wherein the first synchronizing mechanism is an alignment guide and the second synchronizing mechanism is an alignment member, the alignment member and the alignment guide working in conjunction with one another to control the rotation of the inner gerotor relative to the outer gerotor.
- 102. The gerotor apparatus of claim 99, wherein the first end of the housing includes a gas inlet for the gerotor apparatus.
- 103. The gerotor apparatus of claim 99, wherein the second shaft is rotatably coupled to the second end of the housing by a fourth bearing.
- 104. The gerotor apparatus of claim 99, wherein the first bearing is positioned in a circumferential plane that is substantially the same as a circumferential plane passing through the axial centers of both the inner and outer gerotors.
- 105. The gerotor apparatus of claim 99, further comprising a hollow shaft rigidly coupled to the second end of the housing and wherein the second shaft is rotatably coupled within the hollow shaft by a fourth bearing.
- 106. The gerotor apparatus of claim 99, wherein the first shaft is pivotally coupled to the first end of the housing and wherein an anti-rotation pin that is coupled to the first end of the housing is configured to prevent the first shaft from rotating during rotation of the inner and outer gerotors.
- 107. The gerotor apparatus of claim 99, wherein the first shaft is coupled to the first end of the housing with a rubber mount.
- 108. The gerotor apparatus of claim 99, wherein the second shaft is coupled at the first end on the outside of the first shaft by the first bearing.
- 109. The gerotor apparatus of claim 99, wherein the first shaft is rigidly coupled to the second end of the housing and further comprising:
a driven gear rigidly coupled to the second shaft; a drive gear meshing with the driven gear; and a third shaft rotatably coupled to the second end of the housing, the third shaft rigidly coupled to the drive gear.
- 110. The gerotor apparatus of claim 99, further comprising a proximity sensor coupled to the housing, the proximity sensor operable to sense a gap between an end of the outer gerotor and an inside surface of the housing.
- 111. The gerotor apparatus of claim 99, further comprising a pressurized air source coupled to a port formed in a perimeter of the housing, the pressurized air source operable to deliver pressurized air through the port and into the housing.
- 112. The gerotor apparatus of claim 99, further comprising a jacket disposed around a circumference of the housing, the jacket comprising an inlet port and an outlet port to allow fluid to flow through the jacket.
- 113. A gerotor apparatus, comprising:
a housing; a first shaft coupled to a first end of the housing; a first hollow shaft coupled to a second end of the housing; a second shaft disposed within and rotatably coupled to the first hollow shaft; an outer gerotor rigidly coupled to the second shaft; a first synchronizing mechanism rigidly coupled to the outer gerotor; and an inner gerotor rotatably coupled to the first shaft, the inner gerotor having a second synchronizing mechanism.
- 114. The gerotor apparatus of claim 113, wherein the first synchronizing mechanism is an outer gear and the second synchronizing mechanism is an inner gear.
- 115. The gerotor apparatus of claim 113, wherein the first synchronizing mechanism is an alignment guide and the second synchronizing mechanism is an alignment member, the alignment member and the alignment guide working in conjunction with one another to control the rotation of the inner gerotor relative to the outer gerotor.
- 116. The gerotor apparatus of claim 113, wherein the first end of the housing includes a gas inlet for the gerotor apparatus.
- 117. The gerotor apparatus of claim 113, further comprising a proximity sensor coupled to the housing, the proximity sensor operable to sense a gap between an end of the outer gerotor and an inside surface of the housing.
- 118. The gerotor apparatus of claim 113, further comprising a pressurized air source coupled to a port formed in a perimeter of the housing, the pressurized air source operable to deliver pressurized air through the port and into the housing.
- 119. The gerotor apparatus of claim 113, further comprising a jacket disposed around a circumference of the housing, the jacket comprising an inlet port and an outlet port to allow fluid to flow through the jacket.
- 120. A gerotor apparatus, comprising:
a housing; a first shaft rigidly coupled to a first end of the housing, the first end of the housing including a gas inlet for the gerotor apparatus; a second shaft rotatably coupled to a second end of the housing; an outer gerotor rigidly coupled to the second shaft; a first synchronizing mechanism rigidly coupled to the outer gerotor; and an inner gerotor rotatably coupled to the first shaft, the inner gerotor having a second synchronizing mechanism.
- 121. The gerotor apparatus of claim 120, wherein the first synchronizing mechanism is an outer gear and the second synchronizing mechanism is an inner gear.
- 122. The gerotor apparatus of claim 120, wherein the first synchronizing mechanism is an alignment guide and the second synchronizing mechanism is an alignment member, the alignment member and the alignment guide working in conjunction with one another to control the rotation of the inner gerotor relative to the outer gerotor.
- 123. The gerotor apparatus of claim 120, further comprising:
a plurality of protrusions extending inwardly from an inside surface of the housing, thereby creating a plurality of gas pockets between respective protrusions; and a plurality of conduits formed in a wall of the outer gerotor, the conduits extending from a compression chamber inside the outer gerotor to an outside of the outer gerotor to allow gas to travel from the compression chamber to the gas pockets.
- 124. The gerotor apparatus of claim 120, further comprising a pressurized air source coupled to a port formed in a perimeter of the housing, the pressurized air source operable to deliver pressurized air through the port and into the housing.
- 125. The gerotor apparatus of claim 120, further comprising a proximity sensor coupled to the housing, the proximity sensor operable to sense a gap between an end of the outer gerotor and an inside surface of the housing.
- 126. The gerotor apparatus of claim 125, further comprising at least one screw coupled to the housing, the screw operable to adjust the gap between the end of the outer gerotor and the inside surface of the housing.
- 127. The gerotor apparatus of claim 126, wherein the at least one screw is located adjacent the second end of the housing.
- 128. The gerotor apparatus of claim 120, further comprising a jacket disposed around a circumference of the housing, the jacket comprising an inlet port and an outlet port to allow fluid to flow through the jacket.
- 129. A gerotor apparatus, comprising:
a housing; a lower shaft rigidly coupled to a first end of the housing that includes a gas inlet port for the gerotor apparatus; a gear housing coupled to the lower shaft; an upper shaft rigidly coupled to the gear housing and extending towards a second end of the housing, an inner gerotor rotatably coupled to the lower shaft; an outer gerotor rotatably coupled to the upper shaft and rotatably coupled to the second end of the housing with a first bearing; and wherein the gear housing houses an idler gear that couples a first gear coupled to the outer gerotor and a second gear coupled to the inner gerotor.
- 130. The gerotor apparatus of claim 129, further comprising an alignment plate coupled to the second end of the housing with one or more fasteners, the alignment plate including the first bearing.
- 131. The gerotor apparatus of claim 129, further comprising a jacket disposed around a circumference of the housing, the jacket comprising an inlet port and an outlet port to allow fluid to flow through the jacket.
- 132. The gerotor apparatus of claim 131, further comprising a proximity sensor coupled to the housing, the proximity sensor operable to sense a gap between an end of the outer gerotor and an inside surface of the first end of the housing.
- 133. A gerotor apparatus, comprising:
a housing; a lower shaft rigidly coupled to a first end of the housing that includes a gas inlet port for the gerotor apparatus; an upper shaft rigidly coupled to a second end of the housing; a gear housing coupled between the lower and upper shafts; an inner gerotor rotatably coupled to the lower shaft; an outer gerotor rotatably coupled to the upper shaft by a hollow shaft; a driven gear rigidly coupled to the hollow shaft; a drive gear coupled to the driven gear; and a rotating shaft rotatably coupled to the second end of the housing and rigidly coupled to the drive gear.
- 134. The gerotor apparatus of claim 133, further comprising a jacket disposed around a circumference of the housing, the jacket comprising an inlet port and an outlet port to allow fluid to flow through the jacket.
- 135. The gerotor apparatus of claim 134, further comprising a proximity sensor coupled to the housing, the proximity sensor operable to sense a gap between an end of the outer gerotor and an inside surface of the first end of the housing.
- 136. A gerotor apparatus, comprising:
a housing; an outer gerotor disposed within the housing; an inner gerotor disposed within the outer gerotor; and a valve plate rigidly coupled to the housing, the valve plate comprising a first surface positioned adjacent an end of the outer gerotor.
- 137. The gerotor apparatus of claim 136, wherein the valve plate further comprises:
an inlet port; an exhaust port; and a compression control element slidably engaged with either the inlet port or exhaust port, the compression control element operable to control a compression ratio of the gerotor apparatus based on its position within either the inlet port or the gas outlet port.
- 138. The gerotor apparatus of claim 136, wherein an outer surface of the inner gerotor and an outer surface of the outer gerotor are coated with a ceramic material.
- 139. The gerotor apparatus of claim 136, further comprising a pressurized air source coupled to a port formed in a perimeter of the housing, the pressurized air source operable to deliver pressurized air through the port and into the housing to supply a force to at least a portion of an outside perimeter of the outer gerotor.
- 140. A gerotor apparatus, comprising:
an outer gerotor comprising an outer gerotor chamber; an inner gerotor, at least a portion of the inner gerotor disposed within the outer gerotor chamber; the inner gerotor comprising one or more entrance passages operable to communicate a lubricant into the outer gerotor chamber; and a synchronizing system operable to control the rotation of the inner gerotor relative to the outer gerotor.
- 141. The apparatus of claim 140, wherein the apparatus comprises a compressor.
- 142. The apparatus of claim 140, wherein the apparatus comprises an expander.
- 143. The apparatus of claim 140, wherein the inner gerotor comprises a tip, the tip comprising an opening for one of the entrance passages.
- 144. The apparatus of claim 140, wherein the inner gerotor comprises a tip, the tip comprising three openings for one of the entrance passages.
- 145. The apparatus of claim 140, wherein the inner gerotor comprises a plurality of tips, each tip comprising an opening for at least one of the one or more entrance passages.
- 146. The apparatus of claim 140, wherein the outer gerotor comprises at least one exit passage operable to communicate the lubricant away from the outer gerotor chamber.
- 147. The apparatus of claim 146, wherein the outer gerotor chamber comprises a notch, the notch comprising an exit opening for at least one of the one or more exit passages.
- 148. The apparatus of claim 146, wherein the outer gerotor chamber comprises a plurality of notches, each notch comprising an exit opening for at least one of the one or more exit passages.
- 149. The apparatus of claim 140, wherein the outer gerotor chamber is enclosed such that at least a portion of the lubricant is contained within the outer gerotor chamber.
- 150. The apparatus of claim 140, wherein the inner gerotor comprises a star shape having a plurality of tips, at least one tip comprising an opening for one of the entrance passages.
- 151. The apparatus of claim 140, wherein the inner gerotor comprises:
a center; and a plurality of arms projecting from the center, each arm comprising a tip, wherein at least one tip comprises an opening for one of the entrance passages.
- 152. A gerotor apparatus, comprising:
an outer gerotor; an inner gerotor; a synchronizing system comprising an alignment guide and an alignment member, the alignment member positioned in alignment with the alignment guide; wherein the synchronizing system is operable to control the rotation of the inner gerotor relative to the outer gerotor.
- 153. The apparatus of claim 152, wherein the apparatus comprises a compressor.
- 154. The apparatus of claim 152, wherein the apparatus comprises an expander.
- 155. The apparatus of claim 152, wherein the alignment member comprises an alignment member passage operable to communicate a lubricant toward the alignment guide.
- 156. The apparatus of claim 152, wherein the inner gerotor comprises an inner gerotor passage coupled to the alignment member passage and operable to communicate the lubricant toward the alignment guide.
- 157. The apparatus of claim 155, wherein:
the apparatus comprises an outer gerotor chamber comprising a first section and a second section; the outer gerotor is disposed at least partially within the first section of the outer gerotor chamber; the synchronizing system is disposed at least partially within the second section of the outer gerotor chamber; and the apparatus further comprises a seal operable to at least substantially prevent the lubricant from entering into the first section of the outer gerotor chamber.
- 158. The apparatus of claim 152, wherein the alignment guide comprises a track and the alignment member comprises a knob device operable to move along the track.
- 159. The apparatus of claim 158, wherein the knob device comprises a roller.
- 160. The apparatus of claim 158, wherein the track comprises one or more breaks.
- 161. The apparatus of claim 152, wherein the synchronizing system comprises a plurality of alignment members including the alignment member.
- 162. The apparatus of claim 152, wherein:
the alignment guide comprises a plurality of notches; and the alignment member generally fits into each of the plurality of notches.
- 163. The apparatus of claim 152, wherein the alignment member comprises a roller operable to rotate relative to the inner gerotor while traveling along the alignment guide.
- 164. The apparatus of claim 152, wherein the alignment member does not rotate relative to the inner gerotor.
- 165. The apparatus of claim 152, wherein:
the alignment guide comprises an inner surface and an outer surface; and the alignment member travels along a track defined in part by the inner surface and an outer surface of the guide.
- 166. The apparatus of claim 165, wherein the track varies in width.
- 167. The apparatus of claim 152, wherein the alignment member is coupled to the inner gerotor proximate the center of the inner gerotor.
- 168. The apparatus of claim 152, wherein:
the inner gerotor comprises a protrusion, the protrusion comprising a first entrance passage; and the alignment member comprises a second entrance passage coupled to the first entrance passage, wherein the first and second entrance passages are operable to communicate a lubricant.
- 169. A gerotor apparatus, comprising:
an outer gerotor; an inner gerotor; a synchronizing system operable to align the inner gerotor relative to the outer gerotor, the synchronizing system comprising:
a cam plate coupled to the outer gerotor, the cam plate comprising an alignment guide; and an alignment plate coupled to the inner gerotor, the peg plate comprising at least one alignment member in alignment with the alignment guide.
- 170. The apparatus of claim 169, further comprising a drive device coupled to and operable to at least partially control the position of the outer gerotor.
- 171. The apparatus of claim 169, wherein the device is a drive plate.
- 172. The apparatus of claim 170, wherein the cam plate comprises a plurality of mating notches and the drive device comprises a plurality of mating members positioned within the mating notches.
- 173. The apparatus of claim 172, wherein the mating members are operable to slide within the respective mating notches during thermal expansion of the drive device.
- 174. The apparatus of claim 170, wherein the drive device comprises a plurality of mating notches and the cam plate comprises a plurality of mating members positioned within the mating notches.
- 175. The apparatus of claim 174, wherein the mating members are operable to slide within the respective mating notches during thermal expansion of the support device.
- 176. A gerotor apparatus, comprising:
an outer gerotor comprising an outer gerotor chamber, the outer gerotor chamber comprising a perimeter surface; an inner gerotor comprising a plurality of protrusions; a knob device coupled to the inner gerotor adjacent a particular one of the plurality of protrusions; and a synchronizing system operable to control the rotation of the inner gerotor relative to the outer gerotor such that the knob device travels adjacent the perimeter surface of the outer gerotor chamber.
- 177. The apparatus of claim 176, wherein the apparatus comprises a compressor.
- 178. The apparatus of claim 176, wherein the apparatus comprises an expander.
- 179. The apparatus of claim 176, wherein the knob device does not contact the perimeter surface of the outer gerotor chamber.
- 180. The apparatus of claim 176, further comprising a plurality of knob devices including the knob device, each knob device coupled to the inner gerotor adjacent one of the plurality of protrusions.
- 181. The apparatus of claim 176, wherein the outer gerotor chamber comprises a plurality of notches and the knob device generally fits into each of the plurality of notches.
- 182. The apparatus of claim 176, wherein the knob device is a roller device rotationally coupled to the particular protrusion and operable to rotate relative to the inner gerotor while traveling adjacent the perimeter surface of the outer gerotor chamber.
- 183. The apparatus of claim 182, wherein the particular protrusion comprises a slot and the roller device is disposed at least partially within the slot.
- 184. The apparatus of claim 182, wherein the particular protrusion comprises a protuberance and the roller device comprises a pair of rollers disposed on opposite sides of the protuberance.
- 185. The apparatus of claim 176, wherein the knob device does not rotate relative to the inner gerotor.
- 186. The apparatus of claim 176, wherein:
the inner gerotor is disposed substantially within the outer gerotor chamber; the particular protrusion comprises a tip; and the knob device extends beyond the tip of the particular protrusion
- 187. The apparatus of claim 176, wherein:
the inner gerotor is disposed substantially outside the outer gerotor chamber; and the knob device is disposed substantially within the outer gerotor chamber.
- 188. The apparatus of claim 176, wherein:
the particular protrusion comprises a first entrance passage; and the knob device comprises a second entrance passage coupled to the first entrance passage, wherein the first and second entrance passages are operable to communicate a lubricant into the outer gerotor chamber.
- 189. A gerotor apparatus, comprising:
an outer gerotor; an alignment guide; an outer gerotor assembly comprising an outer gerotor and an alignment member, the alignment member positioned in alignment with the alignment guide; and a synchronizing system operable to control the rotation of the inner gerotor relative to the outer gerotor.
- 190. A gerotor apparatus, comprising:
an inner gerotor; an outer gerotor comprising an alignment guide; an alignment member positioned in alignment with the alignment guide; and a synchronizing system operable to control the rotation of the inner gerotor relative to the outer gerotor such that the alignment member travels along the alignment guide.
- 191. The apparatus of claim 190, wherein the alignment guide comprises a track.
- 192. The apparatus of claim 190, wherein:
the outer gerotor comprises an outer gerotor chamber; at least a portion of the inner gerotor is positioned within the outer gerotor chamber; and the alignment guide comprises a track located around the outer gerotor chamber.
- 193. The apparatus of claim 190, wherein the alignment member is coupled to the inner gerotor.
- 194. A gerotor apparatus, comprising:
an outer gerotor; an inner gerotor comprising a cross-sectional shape based on a hypocycloid; and a synchronizing system operable to control the rotation of the inner gerotor relative to the outer gerotor.
- 195. A gerotor apparatus, comprising:
an outer gerotor; an inner gerotor comprising a cross-sectional shape based on an epicycloid; and a synchronizing system operable to control the rotation of the inner gerotor relative to the outer gerotor.
- 196. A gerotor apparatus, comprising:
an inner gerotor; an outer gerotor comprising an outer gerotor chamber and an outer perimeter; wherein the outer perimeter comprises a first opening coupled to the outer gerotor chamber such that gas disposed within the outer gerotor chamber may exit the outer gerotor through the first opening; and a synchronizing system operable to control the rotation of the inner gerotor relative to the outer gerotor.
- 197. The apparatus of claim 196, wherein the apparatus comprises a compressor.
- 198. The apparatus of claim 196, wherein the apparatus comprises an expander.
- 199. The apparatus of claim 196, wherein the inner gerotor comprises one or more entrance passages operable to communicate a lubricant into the outer gerotor chamber.
- 200. The apparatus of claim 196, further comprising a valve plate positioned adjacent an end of the outer gerotor, wherein the valve plate comprises an inlet opening allowing gas to enter the outer gerotor chamber.
- 201. The apparatus of claim 196, further comprising a valve plate positioned adjacent an end of the outer gerotor, wherein the valve plate comprises an inlet opening allowing gas to exit the outer gerotor chamber.
- 202. The apparatus of claim 196, further comprising a valve plate positioned adjacent an end of the outer gerotor, wherein the valve plate comprises an inlet opening allowing gas to enter the outer gerotor chamber and an outlet opening allowing gas to exit the outer gerotor chamber.
- 203. The apparatus of claim 196, wherein gas may enter the outer gerotor chamber through the first opening in the outer perimeter.
- 204. The apparatus of claim 196, wherein:
the outer perimeter includes a first position and a second position; in the first position, a volume of gas may enter the outer gerotor chamber through the first opening in the outer perimeter; and in the second position, at least a portion of the volume of gas may exit the outer gerotor chamber through the first opening in the outer perimeter.
- 205. The apparatus of claim 196, wherein:
the outer perimeter comprises a second opening coupled to the outer gerotor chamber; and at a first position of the outer gerotor, the first opening in the perimeter allows gas to enter the outer gerotor chamber and the second opening in the perimeter allows gas to exit the outer gerotor chamber.
- 206. The apparatus of claim 196, wherein:
the outer gerotor chamber comprises a notch; and the first opening in the outer perimeter is coupled to the outer gerotor chamber adjacent the notch.
- 207. The apparatus of claim 196, wherein:
the outer gerotor chamber comprises a plurality of notches; the outer perimeter comprises a plurality of openings including the first opening; each of the plurality of openings in the outer perimeter is coupled to the outer gerotor chamber adjacent one of the plurality of notches.
- 208. A gerotor apparatus, comprising:
an inner gerotor; an outer gerotor comprising an outer gerotor chamber and an outer perimeter, the outer perimeter comprising a first opening coupled to the outer gerotor chamber; and a synchronizing system operable to control the rotation of the inner gerotor relative to the outer gerotor; wherein in a first position of the outer gerotor, a volume of gas may enter the outer gerotor chamber through the first opening in the outer perimeter; and wherein in a second position of the outer gerotor, at least a portion of the volume of gas may exit the outer gerotor chamber through the first opening in the outer perimeter.
- 209. The apparatus of claim 208, wherein the inner gerotor comprises one or more entrance passages operable to communicate a lubricant into the outer gerotor chamber.
- 210. A gerotor apparatus, comprising:
an outer gerotor; an inner gerotor comprising an inside opening; a separator disposed substantially within the inside opening and operable to substantially separate a first section of the inside opening from a second section of the inside opening; wherein the first section is an intake section operable to receive gas at a first pressure and the second section is an exit section operable to release the gas at a second pressure higher than the first pressure; and a drive apparatus operable to drive the inner gerotor and the outer gerotor in order to increase the pressure of the volume of gas from the first pressure to the second pressure.
- 211. The apparatus of claim 210, wherein the apparatus comprises a compressor.
- 212. The apparatus of claim 210, wherein:
the outer gerotor comprises an outer gerotor chamber; and the inner gerotor comprises a passage operable to allow gas to flow from the first section of the inside opening in the inner gerotor into the outer gerotor chamber in a first position of the inner gerotor.
- 213. The apparatus of claim 212, wherein the passage is operable to allow gas to flow from the outer gerotor chamber into the second section of the inside opening in the inner gerotor in a second position of the inner gerotor.
- 214. The apparatus of claim 210, wherein:
the outer gerotor comprises an outer gerotor chamber; and the inner gerotor comprises a passage operable to allow gas to flow from the outer gerotor chamber into the second section of the inside opening in the inner gerotor in a first position of the inner gerotor.
- 215. The apparatus of claim 210, wherein:
the outer gerotor comprises an outer gerotor chamber; and the inner gerotor comprises:
a first passage operable to allow gas to flow from the first section of the inside opening in the inner gerotor into the outer gerotor chamber in a first position of the inner gerotor. a second passage operable to allow gas to flow from the outer gerotor chamber into the second section of the inside opening in the inner gerotor in the first position of the inner gerotor.
- 216. An engine system, comprising:
a storage tank; a drive apparatus; a compressor operable to compress gas; an expander coupled to the compressor and operable to receive compressed gas to power the drive apparatus; wherein the compressor is further operable to:
communicate compressed gas toward the expander during a first state of the system; and communicate compressed gas toward the storage tank during a second state of the system.
- 217. The system of claim 216, wherein the first state of the system is a steady state and the second state of the system is a braking state.
- 218. The system of claim 216, wherein the storage tank is coupled to the expander and operable to communicate compressed gas toward the expander during a third state of the system.
- 219. The system of claim 216, wherein the third state of the system is a startup state.
- 220. The system of claim 216, wherein the expander is coupled to the drive apparatus during a third state of the system and uncoupled from the drive apparatus during a fourth state of the system.
- 221. The system of claim 220, wherein:
the third state of the system at least partially corresponds with the first state of the system; and the fourth state of the system at least partially corresponds with the second state of the system.
- 222. The system of claim 220, further comprising an expander clutch coupled to the expander;
wherein the expander clutch is engaged with the drive apparatus during the third state of the system and disengaged from the drive apparatus during the fourth state of the system.
- 223. The system of claim 216, wherein the compressor is coupled to the drive apparatus during a third state of the system and uncoupled from the drive apparatus during a fourth state of the system.
- 224. The system of claim 223, wherein the third state of the system at least partially corresponds with the first and second states of the system and the fourth state of the system is a startup state.
- 225. The system of claim 223, further comprising a compressor clutch coupled to the compressor, wherein the compressor clutch is engaged with the drive apparatus during the third state of the system and disengaged from the drive apparatus during the fourth state of the system.
- 226. The system of claim 216, further comprising:
an expander clutch coupled to the expander; and a compressor clutch coupled to the compressor; and wherein the expander clutch and compressor clutch are controlled independently.
- 227. The system of claim 226, wherein:
during a third state of the system, the expander clutch and the compressor clutch are coupled to the drive apparatus; during a fourth state of the system, the expander clutch is uncoupled to the drive apparatus and the compressor clutch is coupled from the drive apparatus; and during a fifth state of the system, the expander clutch is coupled from the drive apparatus and the compressor clutch is uncoupled to the drive apparatus.
- 228. The system of claim 227, wherein:
the third state of the system at least partially corresponds with the first state of the system; and the fourth state of the system at least partially corresponds with the second state of the system.
- 229. The system of claim 227, wherein:
the third state of the system is a steady state; the fourth state of the system is a breaking state; and the fifth state of the system is a startup state.
- 230. The system of claim 216, further comprising one or more additional compressors, each operable to further compress the compressed gas being communicated toward the storage tank from the compressor.
- 231. The system of claim 216, wherein at least one of the one or more additional compressors are coupled to the drive apparatus.
- 232. The system of claim 216, wherein the compressor comprises:
an outer gerotor; an inner gerotor; and a synchronizing system operable to control the rotation of the inner gerotor relative to the outer gerotor.
- 233. The system of claim 216, wherein the expander comprises:
an outer gerotor; an inner gerotor; and a synchronizing system operable to control the rotation of the inner gerotor relative to the outer gerotor.
- 234. The system of claim 216, wherein each of the compressor and expander comprises:
an outer gerotor; an inner gerotor; and a synchronizing system operable to control the rotation of the inner gerotor relative to the outer gerotor.
- 235. A gerotor apparatus, comprising:
an outer gerotor; a first rotational object coupled to the outer gerotor; an inner gerotor; a second rotational object coupled to the inner gerotor; and a synchronizing system coupled to the first and second rotational objects; wherein the synchronizing system is operable to control the rotation of the outer gerotor relative to the rotation of the inner gerotor.
- 236. The apparatus of claim 235, wherein the apparatus comprises a compressor.
- 237. The apparatus of claim 235, wherein the apparatus comprises an expander.
- 238. The apparatus of claim 235, wherein:
the first rotational devices comprises a first pulley; the second rotational devices comprises a second pulley; and the synchronizing system comprises one or more belts operable to interact with the first and second pulleys.
- 239. The apparatus of claim 238, wherein at least one of the belts comprises a timing belt.
- 240. The apparatus of claim 238, wherein at least one of the belts comprises a substantially rigid cable belt.
- 241. The apparatus of claim 235, wherein:
the first rotational devices comprises a first sprocket; the second rotational devices comprises a second sprocket; and the synchronizing system comprises one or more chains operable to interact with the first and second gears.
- 242. The apparatus of claim 235, wherein the synchronizing system comprises a belt coupled to the first rotational object and the second rotational object.
- 243. The apparatus of claim 242, wherein:
the first rotational object comprises a first shaft coupled to the outer gerotor; and the second rotational object comprises a second shaft coupled to the inner gerotor.
- 244. The apparatus of claim 235, wherein the synchronizing system comprises:
a first belt coupled to the first rotational object and a third rotational object; and a second belt coupled to the second rotational object and a fourth rotational object; wherein the third rotational object and the fourth rotational object are interrelated such that rotation of the third rotational object causes rotation of the fourth rotational object.
- 245. The apparatus of claim 244, wherein the third rotational object and the fourth rotational object are coupled to a shaft.
- 246. The apparatus of claim 244, wherein the first rotational object is coupled to the outer gerotor by a first shaft and the second rotational object is coupled to the inner gerotor by a second shaft.
- 247. A gerotor apparatus, comprising:
an inner gerotor; an outer gerotor; a synchronizing system operable to control the rotation of the outer gerotor relative to the rotation of the inner gerotor; and an electric motor operable to at least partially control the rotation of the outer gerotor.
- 248. The apparatus of claim 247, wherein the structure of the electric motor is at least partially integrated with the outer gerotor.
- 249. The apparatus of claim 247, wherein the electric motor comprises a switched reluctance motor comprising a rotor and a stator, the rotor comprising the outer gerotor.
- 250. The apparatus of claim 249, wherein the rotor comprises a plurality of poles, each pole comprising a mass of ferromagnetic material coupled to the outer gerotor.
- 251. The apparatus of claim 249, wherein the outer gerotor comprises an outer perimeter and each mass of ferromagnetic material is coupled to the outer gerotor proximate the outer perimeter.
- 252. The apparatus of claim 249, wherein:
the outer gerotor comprises an outer gerotor chamber, the outer gerotor chamber including a quantity of notches; and the rotor comprises a quantity of poles, the quantity of poles equal to the quantity of notches.
- 253. The apparatus of claim 247, wherein the electric motor comprises a permanent magnet motor comprising a rotor and a stator, the rotor comprising the outer gerotor.
- 254. The apparatus of claim 253, wherein
the outer gerotor comprises an outer perimeter; and the rotor comprises a plurality of magnets coupled to the outer gerotor proximate the outer perimeter.
- 255. The apparatus of claim 247, wherein the electric motor comprises a squirrel cage induction motor comprising a squirrel cage rotor coupled to the outer gerotor.
- 256. The apparatus of claim 255, wherein the squirrel cage rotor substantially encircles the outer gerotor.
- 257. A gerotor apparatus, comprising:
an inner gerotor; an outer gerotor; a synchronizing system operable to control the rotation of the outer gerotor relative to the rotation of the inner gerotor; and an electric generator operable to generate electricity from the rotation of the outer gerotor.
- 258. The apparatus of claim 247, wherein the structure of the electric generator is at least partially integrated with the outer gerotor.
- 259. The apparatus of claim 247, wherein the electric generator comprises a switched reluctance generator comprising a rotor and a stator, the rotor comprising the outer gerotor.
- 260. The apparatus of claim 249, wherein the rotor comprises a plurality of poles, each pole comprising a mass of ferromagnetic material coupled to the outer gerotor.
- 261. The apparatus of claim 249, wherein:
the outer gerotor comprises an outer perimeter; and each mass of ferromagnetic material is coupled to the outer gerotor proximate the outer perimeter.
- 262. The apparatus of claim 249, wherein:
the outer gerotor comprises an outer gerotor chamber, the outer gerotor chamber including a quantity of notches; and the rotor comprises a quantity of poles, the quantity of poles equal to the quantity of notches.
- 263. The apparatus of claim 247, wherein the electric generator comprises a permanent magnet generator comprising a rotor and a stator, the rotor comprising the outer gerotor.
- 264. The apparatus of claim 253, wherein
the outer gerotor comprises an outer perimeter; and the rotor comprises a plurality of magnets coupled to the outer gerotor proximate the outer perimeter.
- 265. The apparatus of claim 247, wherein the electric generator comprises a squirrel cage induction generator comprising a squirrel cage rotor coupled to the outer gerotor.
- 266. The apparatus of claim 255, wherein the squirrel cage rotor substantially encircles the outer gerotor.
- 267. An engine system, comprising:
an expander comprising:
an inner expander gerotor; and an outer expander gerotor; and a compressor comprising:
an inner compressor gerotor; and an outer compressor gerotor; wherein the inner expander gerotor and the inner compressor gerotor are coupled such that the rotation of the inner expander gerotor is proportional to the rotation of the inner compressor gerotor in at least a first state of the engine system.
- 268. The system of claim 267, wherein the inner expander gerotor and the inner compressor gerotor are coupled such that the inner expander gerotor and the inner compressor gerotor rotate together in at least the first state of the engine system.
- 269. The system of claim 267, wherein the outer expander gerotor and the outer compressor gerotor are coupled such that the rotation of the outer expander gerotor is proportional to the rotation of the outer compressor gerotor in at least a first state of the engine system.
- 270. The system of claim 267, wherein the outer expander gerotor and the outer compressor gerotor are coupled such that the outer expander gerotor and the outer compressor gerotor rotate together in at least the first state of the engine system.
- 271. The system of claim 267, further comprising a seal plate operable to keep gas flowing through the expander substantially separate from gas flowing through the compressor.
- 272. The system of claim 267, further comprising a first shaft coupled to the inner expander gerotor and the inner compressor gerotor.
- 273. The system of claim 267, further comprising:
a first shaft coupled to the outer expander gerotor and the outer compressor gerotor; and a second shaft, wherein the inner expander gerotor and the inner compressor gerotor are operable to rotate about the second shaft.
- 274. The system of claim 267, further comprising a seal plate operable to keep gas flowing through the expander substantially separate from gas flowing through the compressor.
- 275. The system of claim 267, wherein:
the outer compressor gerotor comprises an outer gerotor chamber and an outer perimeter; and the outer perimeter comprises a first opening coupled to the outer gerotor chamber such that gas disposed within the outer gerotor chamber may exit the outer compressor gerotor through the first opening.
- 276. The system of claim 267, wherein:
the outer expander gerotor comprises an outer gerotor chamber and an outer perimeter; and the outer perimeter comprises a first opening coupled to the outer gerotor chamber such that gas disposed within the outer gerotor chamber may exit the outer expander gerotor through the first opening.
- 277. The system of claim 267, wherein:
the outer compressor gerotor comprises an outer gerotor chamber and an outer perimeter; and the outer perimeter comprises a first opening coupled to the outer gerotor chamber such that gas may enter the outer gerotor chamber through the first opening.
- 278. The system of claim 267, wherein:
the outer expander gerotor comprises an outer gerotor chamber and an outer perimeter; and the outer perimeter comprises a first opening coupled to the outer gerotor chamber such that gas may enter the outer gerotor chamber through the first opening.
- 279. The system of claim 267, wherein:
the outer compressor gerotor comprises an outer gerotor chamber and an outer perimeter; and the outer perimeter comprises a first opening coupled to the outer gerotor chamber; in a first position of the outer compressor gerotor, gas may enter the outer gerotor chamber through the first opening in the outer perimeter; and in a second position of the outer compressor gerotor, at least a portion of the gas may exit the outer gerotor chamber through the first opening in the outer perimeter.
- 280. The system of claim 267, wherein:
the outer expander gerotor comprises an outer gerotor chamber and an outer perimeter; and the outer perimeter comprises a first opening coupled to the outer gerotor chamber; in a first position of the outer expander gerotor, gas may enter the outer gerotor chamber through the first opening in the outer perimeter; and in a second position of the outer expander gerotor, at least a portion of the gas may exit the outer gerotor chamber through the first opening in the outer perimeter.
- 281. The system of claim 267, wherein:
the outer compressor gerotor comprises an outer gerotor chamber and an outer perimeter; and the outer perimeter comprises a first opening and a second opening, each coupled to the outer gerotor chamber; at a first position of the outer compressor gerotor, the first opening in the perimeter allows gas to enter the outer gerotor chamber and the second opening in the perimeter allows gas to exit the outer gerotor chamber.
- 282. The system of claim 267, wherein:
the outer expander gerotor comprises an outer gerotor chamber and an outer perimeter; and the outer perimeter comprises a first opening and a second opening, each coupled to the outer gerotor chamber; at a first position of the outer expander gerotor, the first opening in the perimeter allows gas to enter the outer gerotor chamber and the second opening in the perimeter allows gas to exit the outer gerotor chamber.
- 283. The system of claim 267, wherein:
the outer compressor gerotor comprises an outer compressor gerotor chamber and an outer perimeter; and the system further comprises a first valve plate comprising:
an inlet opening allowing gas to enter the outer compressor gerotor chamber; and an outlet opening allowing gas to exit the outer compressor gerotor chamber.
- 284. The system of claim 283, wherein:
the outer expander gerotor comprises an outer expander gerotor chamber and an outer perimeter; and the system further comprises a second valve plate comprising:
an inlet opening allowing gas to enter the outer expander gerotor chamber; and an outlet opening allowing gas to exit the outer expander gerotor chamber.
- 285. The system of claim 267, wherein:
the outer expander gerotor comprises an outer expander gerotor chamber and an outer perimeter; and the system further comprises a first valve plate comprising:
an inlet opening allowing gas to enter the outer expander gerotor chamber; and an outlet opening allowing gas to exit the outer expander gerotor chamber.
- 286. A gerotor apparatus, comprising:
a housing; an outer gerotor disposed within the housing; an inner gerotor disposed within the outer gerotor; and a gear housing disposed within the inner gerotor and coupled to the housing with a lower shaft, the gear housing housing at least one gear operable to synchronize a rotation of the outer gerotor with a rotation of the inner gerotor.
- 287. The gerotor apparatus of claim 286, wherein the at least one gear comprises an idler spur gear coupling a first gear and a second gear, the first gear coupled to the outer gerotor and the second gear coupled to the inner gerotor.
- 288. The gerotor apparatus of claim 287, wherein the idler spur gear is coupled to the gear housing by a U-shaped member.
- 289. The gerotor apparatus of claim 287, wherein the first and second gears are ring gears each having interior gear teeth.
- 290. The gerotor apparatus of claim 287, wherein the first gear is a ring gear having interior gear teeth and the second gear is a spur gear.
- 291. The gerotor apparatus of claim 286, further comprising an upper shaft coupled to the gear housing, wherein the outer gerotor is rotatably coupled to the upper shaft and the inner gerotor is rotatably coupled to the lower shaft.
- 292. The gerotor apparatus of claim 286, wherein the lower shaft is pivotally coupled to a first end of the housing and wherein an anti-rotation pin that is coupled to the first end of the housing is configured to prevent the lower shaft from rotating during rotation of the inner and outer gerotors.
- 293. The gerotor apparatus of claim 286, wherein the lower shaft is coupled to a first end of the housing with a flexible mount.
- 294. The gerotor apparatus of claim 286, further comprising a proximity sensor coupled to the housing, the proximity sensor operable to sense a gap between an end of the outer gerotor and an inside surface of the housing.
- 295. The gerotor apparatus of claim 286, further comprising a jacket disposed around a circumference of the housing, the jacket comprising an inlet port and an outlet port to allow fluid to flow through the jacket.
- 296. The gerotor apparatus of claim 286, wherein an inner surface of the outer gerotor and an outer surface of the inner gerotor are roughened.
RELATED APPLICATIONS
[0001] This application is a continuation-in-part of U.S. application Ser. No. 10/346,024, filed Jan. 17, 2003, and entitled “QUASI-ISOTHERMAL BRAYTON CYCLE ENGINE,” now pending, which is a divisional of U.S. application Ser. No. 09/930,246, filed Aug. 16, 2001, and entitled “QUASI-ISOTHERMAL BRAYTON CYCLE ENGINE,” now pending, which is a divisional of U.S. application Ser. No. 09/363,818, filed Jul. 30, 1999, entitled “QUASI-ISOTHERMAL BRAYTON CYCLE ENGINE,” now U.S. Pat. No. 6,336,317, which claims priority from U.S. Provisional Application Serial No. 60/094,920, entitled “Brayton Cycle Engine,” filed on Jul. 31, 1998.
[0002] This application also claims benefit under 35 U.S.C. § 119(e) of U.S. Provisional Application Serial No. 60/355,636, entitled “QUASI-ISOTHERMAL BRAYTON CYCLE ENGINE,” filed Feb. 5, 2002, and U.S. Provisional Application Serial No. 60/358,681, entitled “QUASI-ISOTHERMAL BRAYTON CYCLE ENGINE,” filed Feb. 21, 2002, and U.S. Provisional Application Serial No. 60/397,193, entitled “QUASI-ISOTHERMAL BRAYTON CYCLE ENGINE,” filed Jul. 18, 2002.
Provisional Applications (4)
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|
60094920 |
Jul 1998 |
US |
|
60355636 |
Feb 2002 |
US |
|
60358681 |
Feb 2002 |
US |
|
60397193 |
Jul 2002 |
US |
Divisions (2)
|
Number |
Date |
Country |
Parent |
09930246 |
Aug 2001 |
US |
Child |
10346024 |
Jan 2003 |
US |
Parent |
09363818 |
Jul 1999 |
US |
Child |
09930246 |
Aug 2001 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10346024 |
Jan 2003 |
US |
Child |
10359487 |
Jul 2003 |
US |