Claims
- 1. A rotary fluid pressure device comprising:
a housing member defining a fluid inlet port, a fluid outlet port, a first flow passage, a second flow passage and an internal bore; a manifold assembly having a first fluid passage, a second fluid passage, and an internal bore, one side of said manifold assembly adjoining said housing member; an internally generated rotor type gerotor set having at least an internally toothed stator member; and an externally toothed rotor member, disposed within said stator member, said rotor member having an internal bore and a first and a second axial end surfaces; one of said at least one stator and said rotor members having orbital, movement relative to the other said member, said rotor member having a rotational movement relative to said stator, with the internal teeth of said stator member and the external teeth of said rotor member interengaging to define a plurality of expanding and contracting volume chambers; a plurality of circumferentially spaced laterally directed fluid paths in said rotor fluidly connected with said manifold assembly first and second fluid passages, a plurality of circumferentially spaced radiating fluid paths in said rotor directly connecting respective ones of said plurality of laterally directed fluid paths in said rotor to said volume chambers, with one side of said gerotor set adjoining another side of said manifold assembly; an end plate, adjoining another side of said gerotor set; a rotatably journalled torque transfer shaft operatively interconnected to said rotor and extending from said housing member; and a plurality of coupling members for interconnecting said endplate, said gerotor set, said manifold assembly, and said housing member.
- 2. The rotary pressure device as in claim 1 wherein said plurality of laterally-directed fluid paths extend through said rotor.
- 3. The rotary pressure device as in claim 1 wherein said plurality of laterally-directed fluid paths is substantially axially-directed.
- 4. The rotary pressure device as in claim 2 wherein said plurality of laterally-directed fluid paths is substantially axially-directed.
- 5. The rotary pressure device as in claim 1 wherein said plurality of radiating fluid paths are substantially radially-directed.
- 6. The rotary pressure device as in claim 2 wherein said plurality of radiating fluid paths are substantially radially-directed.
- 7. The rotary pressure device as in claim 1 wherein said plurality of radiating fluid paths in said rotor are located within said rotor between externally toothed members thereof.
- 8. The rotary pressure device as in claim 7 wherein said plurality of radiating fluid paths in said rotor are substantially laterally centered between said rotor first and second axial ends.
- 9. The rotary pressure device as in claim 7 wherein said plurality of radiating fluid paths in said rotor are substantially circumferentially centered between adjacent ones of said externally toothed members thereof.
- 10. The rotary pressure device as in claim 7 wherein said plurality of radiating fluid paths in said rotor are substantially laterally centered between said rotor first and second axial ends and are substantially circumferentially centered between adjacent ones of said externally toothed members thereof.
- 11. The rotary pressure device as in claim 7 wherein said plurality of radiating fluid paths in said rotor are at least one of substantially laterally centered between said rotor first and second axial ends, and are substantially circumferentially centered between adjacent ones of said externally toothed members thereof.
- 12. The rotary pressure device as in claim 1 wherein said plurality of radiating fluid paths in said rotor are located in said rotor between externally toothed members thereof at at least one of said first and second axial ends.
- 13. The rotary pressure device as in claim 12 wherein said plurality of radiating fluid paths are substantially centered between adjacent ones of externally toothed members thereof.
- 14. The rotary pressure device as in claim 1 wherein said plurality of radiating fluid paths are located in said rotor between externally toothed members thereof at both of said first and second axial ends.
- 15. The rotary pressure device as in claim 14 wherein said plurality of radiating fluid paths are substantially centered between adjacent ones of externally toothed members thereof.
- 16. The rotary pressure device as in claim 1 wherein said plurality of laterally-directed fluid paths in said rotor extend through said rotor from said first axial end surface to said second axial end surface.
- 17. The rotary pressure device as in claim 1 wherein said device functions as a hydraulic motor.
- 18. The rotary pressure device as in claim 1 wherein said device functions as a hydraulic pump.
- 19. The rotary pressure device as in claim 1 wherein said device functions as one of a hydraulic pump and motor.
- 20. The rotary pressure device as in claim 1 further including an internal drive link interposed between and operatively interconnected with said rotor and said torque transfer shaft.
- 21. The rotary pressure device as in claim 1 wherein said torque transfer shaft is 2 comprised of a straight shaft.
- 22. The rotary pressure device as in claim 1 wherein said housing member first flow passage, said housing member second flow passage, said manifold assembly first fluid passage and said manifold assembly second fluid passage are utilized for bi-directional fluid passage.
- 23. The rotary pressure device as in claim 1 wherein said housing member first flow passage and said manifold assembly first fluid passage are conduits for high pressure fluid, and said housing member second flow passage and said manifold assembly second fluid passage are conduits for exhaust pressure fluid.
- 24. The rotary pressure device as in claim 1 wherein said housing member second flow passage and said manifold assembly second fluid passage are conduits for high pressure fluid, and said housing member first flow passage and said manifold assembly first fluid passage are conduits for exhaust pressure fluid.
- 25. An internally generated rotor type gerotor hydraulic pressure device for use in one of a hydraulic motor and pump having an internally toothed stator member; an externally toothed rotor member, eccentrically disposed within said stator member, and having an internal bore and first and second axial end surfaces; one of said stator and said rotor members having an orbital movement relative to the other said member, said rotor member having a rotational movement relative to said stator, the internal teeth of said stator member and the external teeth of said rotor member interengaging to define a plurality of expanding and contracting volume chambers, a plurality of laterally-directed fluid paths in said rotor; and a plurality of radiating fluid paths in said rotor, each radiating fluid path being connected to both one of said plurality of laterally-directed 11 fluid paths and one of said plurality of volume chambers.
- 26. The gerotor hydraulic pressure device as in claim 25 wherein said plurality of laterally-directed fluid paths extend through said rotor.
- 27. The gerotor hydraulic pressure device as in claim 25 wherein said plurality of radiating fluid paths in said rotor are located within said rotor between externally toothed members thereof.
- 28. The gerotor hydraulic pressure device as in claim 27 wherein said plurality of radiating fluid paths in said rotor are substantially axially centered between said rotor first and second axial end surfaces.
- 29. The gerotor hydraulic pressure device as in claim 27 wherein said plurality of radiating fluid paths in said rotor are substantially circumferentially centered between adjacent ones of said externally toothed members thereof.
- 30. The gerotor hydraulic pressure device as in claim 27 wherein said plurality of radiating fluid paths in said rotor are substantially laterally centered between said rotor first and second axial ends and are substantially circumferentially centered between adjacent ones of said externally toothed members thereof.
- 31. The gerotor hydraulic pressure device as in claim 27 wherein said plurality of radiating fluid paths in said rotor are at least one of substantially laterally centered between said rotor first and second axial ends, and are substantially circumferentially centered between adjacent ones of said externally toothed members thereof.
- 32. The gerotor hydraulic pressure device as in claim 25 wherein said plurality of radiating fluid paths in said rotor are located in said rotor between externally toothed members thereof at at least one of said rotor first and second axial ends.
- 33. The gerotor hydraulic pressure device as in claim 32 wherein said plurality of radiating fluid paths in said rotor are substantially centered between adjacent ones of externally toothed members thereof.
- 34. The gerotor hydraulic pressure device as in claim 25 wherein said plurality of radiating fluid paths are located in said rotor between externally toothed members thereof at both of said rotor first and second axial ends.
- 35. In a gerotor hydraulic pressure device for use in one of a hydraulic pump and motor application including:
a. an internally toothed stator member; b. an externally toothed rotor member of the internally generated rotor type, eccentrically disposed within said stator member, having an internal bore and first and second axial end surfaces, with the external teeth thereof being separated by equally circumferentially spaced connecting portions; and c. one of said stator and rotor members having an orbital movement relative to the other said member and said rotor member having at least a rotational movement relative to said stator, with the internal teeth of said stator member and the corresponding external teeth of said rotor member interengaging to define a plurality of repeating expanding and contracting volume chambers, wherein the improvement comprises:
i. a plurality of substantially laterally-directed fluid paths in said rotor; ii. a plurality of radiating fluid paths in said rotor, each of said radiating fluid paths being connected to both one of said plurality of laterally-directed fluid paths and one of said plurality of volume chambers.
- 36. The improved gerotor set of claim 35 wherein said plurality of radiating fluid paths in said rotor is located, within said rotor, within said equally circumferentially spaced connecting portions.
- 37. The improved gerotor set of claim 36 wherein said plurality of radiating fluid paths in said rotor are substantially axially centered between said rotor first and second axial end surfaces.
- 38. The improved gerotor set of claim 36 wherein said plurality of radiating fluid paths in said rotor are substantially circumferentially centered between said equally circumferentially spaced connecting portion.
- 39. The improved gerotor set of claim 37 wherein said plurality of substantially radial fluid paths in said rotor are also substantially circumferentially centered between said equally circumferentially spaced connecting portion.
- 40. The improved gerotor set of claim 39 wherein said plurality of radiating fluid paths in said rotor are one of substantially axially and substantially radially centered between said rotor first and second axial end surfaces.
- 41. The improved gerotor set of claim 35 wherein a radial outer surface of each of said equally circumferentially spaced connecting portions is substantially perpendicular to a radial plane that emanates from the axial center line of said rotor member internal bore and is equally spaced from adjacent ones of the external teeth of said rotor member.
- 42. The improved gerotor set of claim 41 wherein said plurality of radiating fluid paths one of terminate and emanate, depending on the direction of fluid flow, relative to said radial outer surfaces of said spaced connecting portions.
- 43. The improved gerotor set of claim 35 wherein said plurality of radiating fluid paths in said rotor are located in said rotor in said equally spaced circumferentially spaced connecting portions in at least one of said first and second axial end surfaces of said rotor members.
- 44. The improved gerotor set of claim 43 wherein said plurality of radiating fluid paths are substantially circumferentially centered between adjacent ones of said externally toothed rotor member.
- 45. The improved gerotor set of claim 44 wherein said plurality of radiating fluid paths in said rotor are located in both of said first and second axial end surfaces of said rotor members.
- 46. The improved gerotor set of claim 35 wherein said plurality of radiating fluid paths in said rotor includes a plurality of first such radiating fluid paths located in said rotor, within said equally circumferentially spaced connecting portions and further includes a plurality of second such radiating fluid paths located at at least one of said first and second axial end surfaces of said rotor member.
- 47. The improved gerotor set of claim 46 wherein said rotor includes at least one of said pluralities of said first and second radiating fluid passages.
- 48. The improved gerotor set of claim 35 wherein said plurality of laterally-directed fluid paths extend through said rotor.
CROSS-REFERENCE TO RELATED CASES
[0001] The present application claims the benefit of the filing date of U.S. Provisional Application Serial No. 60/410,738 filed Sep. 13, 2002.
Provisional Applications (1)
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Number |
Date |
Country |
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60410738 |
Sep 2002 |
US |