Claims
- 1. A hydraulic motor comprising an end cover which includes a first port and a second port, a drive link, a drive assembly, and a flow circuit between the first port and the second port;
wherein the flow circuit comprises a working path that causes the drive assembly to hypocycloidally move the drive link in a first direction when fluid passes from the first port to the second port through the working path and that causes the drive assembly to hypocycloidally move the drive link in a second opposite direction when fluid passes from the second port to the first port through the working path; and wherein the working path is axially confined to a length substantially between the end cover and the drive assembly.
- 2. A hydraulic motor as set forth in claim 1, further comprising a an coupling shaft which is connected to the drive link, a shaft housing which rotatably supports the coupling shaft, and a plurality of clamping members extending through registered openings in the end cover, the drive assembly, and the shaft housing to clamp them together;
wherein the flow circuit defines a cylindrical pressure vessel containing the working path; and wherein the clamping members are positioned outside of the pressure vessel.
- 3. A hydraulic motor as set forth in claim 2, wherein the plurality of clamping members comprises a circular array of bolts.
- 4. A hydraulic motor as set forth in claim 1, further comprising a sealing ring which seals an interface between the end cover and a movable member of the drive assembly;
wherein the member has a groove in which the sealing ring is positioned; and wherein the sealing ring has a cross-sectional shape with a height and a width and the groove has a cross-sectional shaping with a depth and a width; and wherein the height of the sealing ring is less than the depth of the groove.
- 5. A hydraulic motor as set forth in claim 4, wherein the width of the sealing ring is less than the width of the groove whereby the sealing ring is movable within the groove in response to fluid pressure.
- 6. A hydraulic motor as set forth in claim 5, wherein the cross-sectional shape of the sealing ring is roughly rectangular and wherein the cross-sectional shape of the groove is also roughly rectangular.
- 7. A hydraulic motor as set forth in claim 1, wherein an axial stop for the drive link is positioned within a part of the drive assembly which moves with the drive link.
- 8. A hydraulic motor as set forth in claim 1, further comprising an coupling shaft which is connected to the drive link, and a shaft housing which rotatably supports the coupling shaft;
wherein the flow circuit also comprises a non-working path passing through chambers surrounding the drive link and the coupling shaft; and wherein the coupling shaft centrifugally pumps a diverted portion of fluid from the working path through the non-working path.
- 9. A hydraulic motor as set forth in claim 1, further comprising an coupling shaft which is connected to the drive link, and a shaft housing which rotatably supports the coupling shaft;
wherein the flow circuit also comprises a non-working path passing through chambers surrounding the drive link and the coupling shaft; and wherein the non-working path comprises an axial passageway in the drive link.
- 10. A hydraulic motor as set forth in claim 1, wherein the flow circuit also comprises a non-working path passing through a chamber surrounding the drive link and exiting through a case drain.
- 11. A hydraulic motor as set forth in claim 2, wherein:
a sealing ring seals an interface between the end cover and a movable member of the drive assembly, the member has a groove in which the sealing ring is positioned, the sealing ring has a cross-sectional shape, and the groove has a cross-sectional shape smaller than the cross-sectional shape whereby the sealing ring is movable within the groove in response to fluid pressure; an axial stop for the drive link is positioned within a part of the drive assembly which moves with the drive link; and the flow circuit also comprises a non-working path passing through a chamber surrounding the drive link and wherein:
a coupling shaft centrifugally pumps a diverted portion of fluid from the working path through the non-working path back to the working path; or the housing includes a case drain at the end of the non-working path.
- 12. A hydraulic motor comprising an end cover, a drive link, a drive assembly, a housing, and a plurality of clamping members; and wherein:
the end cover, the drive assembly, the drive link, and the housing define a first port, a second port and a flow circuit therebetween; the plurality of clamping members extend through registered openings in the end cover, the drive assembly, and the housing to clamp them together; and the flow circuit is contained within a cylindrical pressure vessel and the plurality of clamping members are positioned outside of the pressure vessel.
- 13. A hydraulic motor as set forth in claim 12, wherein the plurality of clamping members comprise a circular array of bolts.
- 14. A hydraulic motor as set forth in claim 12, wherein a sealing ring seals an interface between the end cover and a movable member of the drive assembly; wherein the member has a groove in which the sealing ring is positioned; and wherein the groove has a cross-sectional shape smaller than a cross-sectional shape of the sealing ring whereby the sealing ring is movable within the groove in response to fluid pressure.
- 15. A hydraulic motor as set forth in claim 12, wherein an axial stop for the drive link is positioned within a part of the drive assembly which moves with the drive link.
- 16. A hydraulic motor as set forth in claim 12, wherein the flow circuit also comprises a non-working path passing through a chamber surrounding the drive link and wherein a coupling shaft centrifugally pumps a diverted portion of fluid from the working path through the non-working path.
- 17. A hydraulic motor as set forth in claim 12, wherein the flow circuit also comprises a non-working path passing through a chamber surrounding the drive link and wherein the non-working path comprises an axial passageway in the drive link.
- 18. A hydraulic motor as set forth in claim 12, wherein the flow circuit also comprises a non-working path passing through a chamber surrounding the drive link and wherein the housing includes a case drain at an end of the non-working path.
- 19. A hydraulic motor as set forth in claim 12, wherein:
a sealing ring seals an interface between the end cover and a movable member of the drive assembly, the member has a groove in which the sealing ring is positioned, and the sealing ring has a cross-sectional shape smaller than a cross-sectional shape of the groove whereby the sealing ring is movable within the groove in response to fluid pressure; an axial stop for the drive link is positioned within a part of the drive assembly which moves with the drive link; and the flow circuit also comprises a non-working path passing through a chamber surrounding the drive link and wherein:
a coupling shaft centrifugally pumps a diverted portion of fluid from the working path through the non-working path back to the working path; or the housing includes a case drain at the end of the non-working path.
- 20. A hydraulic motor comprising an end cover, a drive link, a drive assembly, and a flow circuit between a first port and a second port; and wherein:
the drive assembly comprises a commutator movably positioned adjacent an axial face of the end cover; the commutator includes an outer ring which separates a first chamber communicating with the first port and a second chamber communicating with the second port; the outer ring has a groove and a sealing ring positioned within the ring; and the groove and the sealing ring each have a roughly rectangular cross-sectional shape.
- 21. A hydraulic motor as set forth in claim 20, wherein transverse dimensions of the cross-sectional shape of the sealing ring are less than the corresponding dimensions of the cross-sectional shape of the groove whereby the sealing ring is movable within the groove in one radial direction in response to fluid pressure in the first chamber and in an opposite radial direction in response to fluid pressure in the second chamber.
- 22. A hydraulic motor comprising an end cover, a drive link, a drive assembly, and flow circuit between a first port and a second port; and wherein:
the drive assembly comprises a commutator movably positioned adjacent an axial face of the end cover; the commutator includes an outer ring which separates a first chamber communicating with the first port and a second chamber communicating with the second port; the outer ring has a groove and a sealing ring positioned within the ring; and the sealing ring has a cross-sectional shape with transverse dimensions less than corresponding dimensions of a cross-sectional shape of the groove so that the sealing ring is movable within the groove in one radial direction in response to fluid pressure in the first chamber and in an opposite radial direction in response to fluid pressure in the second chamber.
- 23. A hydraulic motor comprising an end cover, a drive link, a drive assembly, and flow circuit between a first port and a second port;
the drive assembly comprises a rotor which moves to expel and admit fluid to fluid pockets, a manifold which has channels extending between the ports and the fluid pockets, and a commutator which systemically opens and closes these channels; the drive link includes a nose portion captured by the commutator and an intermediate portion connected to the rotor for movement therewith; and an axial stop for the drive link is mounted on the rotor and moves therewith during operation of the motor.
- 24. A hydraulic motor as set forth in claim 23, wherein the axial stop member has an annular shape with an inner diameter greater than the nose portion of the drive link but less than its intermediate portion.
- 25. A hydraulic motor comprising an end cover, a drive link, a drive assembly, an coupling shaft which is connected to the drive link, and a shaft housing which rotatably supports the coupling shaft; and wherein:
the end cover, the drive assembly, the drive link, the coupling shaft, and the shaft housing define a first port, a second port, and a flow circuit therebetween; the flow circuit comprises a working path that causes the drive assembly to hypocycloidally move the drive link in a first direction when fluid passes from the first port to the second port through the working path and that causes the drive assembly to hypocycloidally move the drive link in a second opposite direction when fluid passes from the second port to the first port through the working path; the flow circuit also comprises a non-working path passing through chambers surrounding the drive link and the coupling shaft; and the coupling shaft centrifugally pumps a diverted portion of fluid from the working path through the non-working path.
- 26. A hydraulic motor as set forth in claim 25, wherein, when the motor is operating in a first direction, the fluid flows in a first direction through the working path of the fluid circuit; wherein when the motor is operating in a second direction, the fluid flows in a second direction through the working path of the fluid circuit; and wherein when the motor is operating in the first direction and when the motor is operating in the second direction the diverted portion of the fluid is pumped through the non-working path in the same direction.
- 27. A hydraulic motor as set forth in claim 25, wherein the diverted portion of the fluid for the non-working path is diverted prior to the working path when the motor is operating in the first direction and wherein the diverted portion of the fluid for the non-working path is diverted after the working path when the motor is operating in the second direction.
- 28. A hydraulic motor as set forth in claim 27, wherein when the motor is operating in the first direction and when the motor is operating in the second direction the diverted portion of the fluid is pumped through the non-working path in the same direction.
- 29. A hydraulic motor as set forth in claim 28, wherein the non-working path comprises an axial passageway through the drive link.
- 30. A hydraulic motor as set forth in claim 28, wherein the chambers of the non-working path comprise a chamber surrounding the coupling shaft and a chamber surrounding the drive link; and wherein the non-working path further comprises:
an axial passageway in the coupling shaft communicating with the axial passageway in the drive link; a radial passageway in the coupling shaft connecting its axial passageway with the chamber surrounding the coupling shaft; and another radial passageway in the coupling shaft connecting the chamber surrounding the coupling shaft with the chamber surrounding the drive link.
- 31. A hydraulic motor as set forth in claim 30, wherein the chamber surrounding the drive link and the axial passageway in the drive link each communicate with a first chamber communicating with the first port, and wherein the diverted portion of the fluid passes from the first chamber, through the axial passageway in the drive link, through the axial passageway in the coupling shaft, through the radial passageway in the coupling shaft to the chamber surrounding the coupling shaft, from the chamber surrounding the coupling shaft through the other radial passageway in the coupling shaft to the chamber surrounding the drive link and then back to the first chamber.
- 32. A hydraulic motor as set forth in claim 29, wherein:
the end cover includes the first port and the second port and wherein the working path is axially confined to a length between the end cover and the drive assembly; clamping members extend through registered openings in the end cover, the drive assembly, and the shaft housing to clamp them together, the flow circuit defines a cylindrical pressure vessel containing both the working path, and the clamping members are positioned outside of the pressure vessel; a sealing ring seals an interface between the end cover and a movable member of the drive assembly, the member has a groove in which the sealing ring is positioned, and the sealing ring has a cross-sectional shape and wherein the groove has a cross-sectional shape smaller than the cross-sectional shape whereby the sealing ring is movable within the groove in response to fluid pressure; and an axial stop for the drive link is positioned within a part of the drive assembly which moves with the drive link.
- 33. A hydraulic motor comprising an end cover, a drive link, a drive assembly, a housing, and a plurality of clamping members; and wherein:
the end cover, the drive assembly, the drive link, and the housing define a first port, a second port and a flow circuit therebetween; the plurality of clamping members extend through registered openings in the end cover, the drive assembly, and the housing to clamp them together; and the flow circuit comprises a working path that causes the drive assembly to hypocycloidally move the drive link in a first direction when fluid passes from the first port to the second port through the working path and that causes the drive assembly to hypocycloidally move the drive link in a second opposite direction when fluid passes from the second port to the first port through the working path; the flow circuit also comprises a non-working path passing through chambers surrounding the drive link and the coupling shaft; and the flow circuit does not intersect with the registered openings for the clamping members.
- 34. A hydraulic motor as set forth in claim 33, wherein the plurality of clamping members comprises a circular array of bolts.
- 35. A hydraulic motor comprising an end cover, a drive train, a drive assembly, and a shaft housing which rotatably supports the coupling shaft; and wherein:
the end cover, the drive assembly, the drive train, and the shaft housing define a first port, a second port, and a flow circuit therebetween; the flow circuit comprises a working path that causes the drive assembly to hypocycloidally move the drive train in a first direction when fluid passes from the first port to the second port through the working path and that causes the drive assembly to hypocycloidally move the drive train in a second opposite direction when fluid passes from the second port to the first port through the working path; the flow circuit also comprises a non-working path passing through chambers surrounding the drive train; and the drive train centrifugally pumps a diverted portion of fluid from the working path through the non-working path.
RELATED APPLICATION
[0001] This application claims priority under 35 U.S.C. §119(e) to U.S. Provisional Patent Application No. 60/302,257 filed on Jun. 29, 2001. The entire disclosure of this provisional application is hereby incorporated by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60302257 |
Jun 2001 |
US |