Claims
- 1. A method of utilizing pressurized fluid to produce rotary motion comprising the steps of:
- injecting said fluid into a motor housing; directing said fluid to a plurality of commutator ports;
- selectively transmitting said fluid through rotary valve means carrying N valve ports rotatable about a central axis to N sealed variable volume chambers formed between a gear like N toothed inner member with tooth root sections and intermediate tooth crown sections located between said tooth root sections mounted for rotation about said central axis and an annular outer member having a further axis circularly moveable about said central axis without rotation about said further axis, said outer member having an inner peripheral surface of N+1 generated arcuate teeth, said teeth's profile having a continuously changing radius of curvature which provides for continuous cooperative contact with said toothed inner member to form said N sealed variable volume chambers and wherein such selective transmission of fluid occurs when the valve ports are aligned with the tooth root sections of the inner member;
- selectively expanding some of said sealed chambers by providing a pressure differential between said sealed chambers in order to produce a rotary motion with said inner member;
- withdrawing through said valve means said fluid from chambers that have reached their maximum expansion; and
- removing said fluid from said housing.
- 2. The method of utilizing pressurized fluid to produce rotating motion recited in claim 1 further comprising the step of:
- orbiting said outer member's center axis about the axis of rotation of said inner member during the rotation of said inner member.
- 3. A motor comprising:
- a. a motor housing having a motor inlet and a motor outlet port for the entry and exit of fluid to and from the motor;
- b. a shaft mounted within said motor housing for rotation about a fixed longitudinal axis;
- c. an inner member mounted upon said shaft for rotation about the fixed longitudinal axis of said shaft, said inner member having N circumferentially spaced external teeth with non-fluid sealing portions located between the external teeth;
- d. an outer member mounted within said motor housing for orbital nonrotational movement in respect to the fixed axis of the shaft;
- e. N+1 generated, non circular, internal arcuate teeth on the inner peripheral surface of said outer member, said teeth having a profile with a continuously changing radius of curvature, said teeth providing continuous cooperative interaction with the teeth of the inner member, to thereby define with with the teeth of said inner member N circumferentially spaced chambers;
- f. a stationary commutator having N+1 commutator inlet ports and N+1 commutator outlet ports circumferentially spaced and adjacent each other, said commutator inlet and outlet ports being in fluid communication with the respective motor inlet and motor outlet ports, and
- g. valve means adjacent said commutator inlet and outlet ports and having N valve ports aligned with non-fluid sealing portions of the inner member external teeth, said valve means disposed for rotation about the fixed longitudinal axis for providing fluid communication between said commutator inlet and outlet ports to and from said chambers formed between the teeth of said inner and outer members when said valve ports are aligned with said commutator ports.
- 4. A hydraulic motor as specified in claim 3 further comprising control means which limits fluid pressure at the outer periphery of said outer member.
- 5. The apparatus recited of claim 3 wherein said teeth, arranged on said inner member, comprise rollers positioned in pockets at equidistant locations on said inner member's outer peripheral surface.
- 6. The apparatus of claim 3 wherein said external teeth arranged on said inner member are peripherally connected by straight flat sections which comprise the non-fluid sealing portions.
- 7. The apparatus of claim 3 wherein said outer member is rotationally restrained by rollers fixedly positioned within said motor housing's inner circumferential surface, said outer member's outer peripheral surface having scalloped portions for periodic reception of said housing rollers during motor operation.
- 8. A hydraulic motor comprising:
- a. a housing having inlet and outlet hydraulic fluid ports therein;
- b. a set disposed within said housing and comprising an externally extending N toothed inner member with flat non-active portions between the teeth, said inner member being rotatable about a central axis and and an internally generated internally extending N+1 toothed outer member circularly moveable about said central axis but non-rotatable about its own axis, said outer member's internal teeth having a profile with a continuously changing radius of curvature, said outer member cooperable with said inner member to define N circumferentially spaced variable volume chambers between adjacent toothed surfaces thereof;
- c. cooperable means carried by said outer member and an adjacent portion of said housing to allow said outer member to move about said central axis during the rotation of said inner member but to prevent rotation of said outer member about its own axis;
- d. a stationary commutator portion of said housing having a circumferentially spaced plurality of hydraulic fluid inlet passageways which circumferentially alternate with a plurality of circumferentially spaced hydraulic fluid outlet passageways, said inlet and outlet passageways being in respective fluid communication with said inlet and outlet ports; and,
- e. valve means rotatable about said central axis in synchronization with said inner member and disposed adjacent said inlet and outlet passageways to provide N synchronized hydraulic communication paths between said inlet passageways and those N variable volume chambers on the high pressure side of said gear set and between said outlet passageways and those of said N variable volume chambers on the low pressure side of said gear set.
- 9. A hydraulic motor as specified in claim 8 wherein said rotationally restrained path of said outer member is substantially an orbital path.
- 10. A hydraulic motor as specified in claim 8 wherein said inner member's external teeth comprise equidistant rollers separated by inactive straight portions, which do not contact said outer member.
- 11. A hydraulic motor as specified in claim 8 further comprising control means which limits fluid pressure at the outer periphery of said outer member.
- 12. A hydraulic motor as specified in claim 8 wherein said set is selectively reversible.
- 13. A hydraulic motor as specified in claim 8 wherein the number of said inlet passageways and the number of said outlet pasageways are each one greater in number than the number of external teeth on said inner member.
- 14. A hydraulic motor as specified in claim 8 wherein said cooperable means of said outer member and housing comprises a plurality of circumferentially spaced elongated roller means which are positioned within the adjacent inner periphery of said housing and which cooperate with a plurality of circumferentially spaced elongated radially outwardly open pockets within the outer periphery of said outer member to provide said outer member with rotationally restrained orbitable path.
- 15. A hydraulic motor as specified in claim 14 wherein the arcuate extent of said pockets at the outermost periphery of said outer member is greater than the diameter of said roller means positioned within the inner periphery of said housing.
- 16. A hydraulic device comprising: a casing having a fluid inlet port and a fluid outlet port; an internally generated gerotor set received within said casing and encompassed thereby; said gerotor set having inner and outer toothed members which are cooperable to define N relatively high and low pressure variable volume chambers between toothed surfaces thereof; said inner member mounted upon a shaft for rotation about the fixed longitudinal axis of said shaft and having N circumferentially spaced teeth about the periphery of said inner member; said outer member mounted within said casing for orbital non-rotational movement and having N+1 generated, non-circular arcuate teeth on its inner peripheral surface; portions of said inner member between the teeth being in non-fluid sealing relation to the teeth of the outer member; a commutator within said casing having N+1 fixed inlet fluid passageways and N+1 fixed outlet fluid passageways, said inlet and outlet passageways being in fluid communication with the respective inlet and outlet ports; valve means having N ports rotatable with said inner member for providing synchronized fluid flow communication between the said variable volume chambers and said inlet and outlet passageways for the delivery of hydraulic fluid to said gerotor set at a first pressure and the discharge of such hydraulic fluid from said gerotor set at a second pressure, respectively, with one of said pressures being higher than the other of said pressures; said outer member being located within said casing to form an annular space of constant volume between said outer member and peripheral portions of said casing adjacent said outer member; and control means in said casing in fluid communication with the annular space for maintaining the fluid in said annular space below a predetermined pressure and thereby actively relieving pressure.
- 17. A hydraulic device as set forth in claim 11 wherein said control means comprises:
- a. an elongated passageway means in said casing with one end portion being in fluid flow communication with said annular space and the other end portion being in fluid flow communication with either said inlet or outlet port, and one-way pressure regulating means carried by said casing and located at least in part within said elongated passageway means intermediate said end portions thereof for controlling fluid flow through said elongated passageway means from said gerotor set to maintain a preselected pressure in said chamber between the fluid pressures in said inlet and outlet ports.
- 18. A hydraulic device as set forth in claim 16 wherein said annular space extends around the entire outer periphery of said gerotor set.
- 19. A gerotor machine, comprising:
- (a) a housing;
- (b) a displacement unit in said housing;
- (c) and including an inner gear member having an axis of rotation;
- (d) and an outer gear member having a further axis circurlarly movable about axis of rotation of said inner gear member without rotating of said outer gear member about said further axis;
- (e) said inner gear member having a plurality of teeth with teeth root sections and intermediate sections located between said teeth root sections;
- (f) said gear members bounding a plurality of displacement chambers therebetween;
- (g) and means for controlling a flow of pressure medium and including a plurality of radial groove-shaped recesses formed in said inner gear member at one axial side of the latter and each arranged in a respective one of said intermediate sections without extending into said teeth root sections;
- (h) each of said radial groove-shaped recesses being bounded by two circumferentially spaced control edges;
- (i) said flow controlling means further including a plurality of control openings formed in said housing and arranged relative to the axis of said inner gear member at a radial distance corresponding to that of said recesses;
- (j) said control edges of said recesses cooperating with said control openings and being operative for controlling the communication of the latter with said displacement chambers.
- 20. A gerotor machine as defined in claim 19, wherein said inner gear member is located centrally in said housing.
- 21. A gerotor machine as defined in claim 19, wherein said inner gear member has a central plane extending in a direction transverse to the axis of the same, said recesses extending at most to said central plane of said inner gear member.
- 22. A gerotor machine as defined in claim 19, wherein said plurality of control openings includes a first group of openings operative for supplying the pressure medium to said displacement unit, and a second group of openings operative for withdrawing the pressure medium from the latter.
- 23. A gerotor machine as defined in claim 19, wherein said housing is composed of two housing parts, said displacement unit being located between said housing parts.
- 24. A gerotor machine as defined in claim 23, wherein said control openings are formed only in one of said housing parts.
- 25. A gerotor machine as defined in claim 24, wherein said one housing part includes a flat plate member which bounds said displacement unit at its one axial side and is loaded in a direction toward said displacement unit.
- 26. A hydraulic device comprising: a casing; an internally generated gear set received within said casing and encompassed thereby; said gear set having inner and outer toothed members which are cooperable to define relatively high and low pressure variable volume chambers between selected toothed surfaces thereof; said inner member mounted upon a shaft to rotation about the fixed longitudinal axis of said shaft and having a plurality of circumferentially spaced teeth about the periphery of said inner member; said outer member mounted within said casing for orbital movement and having multiple generated, non-circular arcuate teeth on its inner peripheral surface; said casing having inlet and outlet fluid ports in fluid flow communication with said variable volume chambers for the delivery of hydraulic fluid to said gear set at a first pressure and the discharge of such hydraulic fluid from said gear set at a second pressure, respectively, with one of said pressures being higher than the other of said pressures; said outer member being located within said casing to form an annular chamber of constant volume between said outer member and peripheral portions of said casing adjacent said outer member; and control means in said casing in fluid communication with the annular chamber for maintaining the fluid in said annular chamber below a selected pressure wherein said control means comprises an elongated passageway means in said casing with one end portion being in fluid flow communication with said annular chamber and the other end portion being in fluid flow communication with either said inlet or outlet port, and pressure regulating means carried by said casing and located at least in part within said elongated passageway intermediate said end portions thereof for controlling fluid flow through said elongated passageway from said gear set to maintain a preselected pressure in said chamber intermediate between the fluid pressures in said inlet and outlet ports, said pressure regulating means comprising a plunger biased to normally close said passageway and movable to open said passageway when the bias of said plunger is overcome by the fluid in said annular chamber when the pressure of said fluid exceeds said selected pressure.
- 27. A hydraulic device as set forth in claim 26 wherein spring means are cooperable with said plunger to bias said plunger.
- 28. A hydraulic device as set forth in claim 27 wherein the bias of said spring means is adjustable.
- 29. A hydraulic device as set forth in claim 27 wherein said other end portion of said passageway means is in fluid flow communication with at least one of said variable volume chambers by means of fluid leakage across faces of said gear set.
- 30. The motor of claims 3 or 8 wherein N is an odd integral number.
DESCRIPTION
This application is a continuation of U.S. patent application Ser. No. 394,648 filed July 2, 1982, now abandoned, which was a continuation of U.S. patent application Ser. No. 148,995 filed May 12, 1980, now abandoned, which is a continuation-in-part of U.S. patent application Ser. No. 90,274 filed Nov. 1, 1979, now abandoned.
US Referenced Citations (10)
Continuations (2)
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Number |
Date |
Country |
Parent |
394648 |
Jul 1982 |
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Parent |
148995 |
May 1980 |
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Continuation in Parts (1)
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Number |
Date |
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Parent |
90274 |
Nov 1979 |
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