Claims
- 1. A rotary machine through which a working fluid passes, said machine including at least:a central shaft means having a radially outer peripheral surface provided with at least one lobe having a maximum radius relative to a longitudinal axis of the shaft means, said central shaft means having a longitudinally extending fluid inlet passage and fluid outlet passage at axially opposite ends thereof; said inlet passage extending to a plurality of inlet passage portions and said outlet passage extending from a plurality of outlet passage portions which are longitudinally co-extensive with said inlet passage portions; an outer housing having an inner cylindrical surface surrounding the central shaft means, the inner surface having a radius approximately equal to said maximum radius; bearing means extending between the housing and central shaft means to provide for relative rotation therebetween; a plurality of gates movably mounted in the housing for movement between a retracted position at least substantially located in said housing and an extended position protruding from said housing; said gates, central shaft means and housing co-operating to define at least two variable volume working chambers, the volumes of which change with relative rotation between the shaft means and housing about said axis; first duct means extending through said central shaft means between said inlet passage portions and said chambers at a position adjacent to said lobe on a first angular side thereof; second duct means extending through said central shaft means between said outlet passage portions and said chambers adjacent to said lobe on the other angular side thereof to the first duct means; wherein relative rotation between said central shaft means and housing provides for movement of said working fluid through said chambers via said first and second duct means.
- 2. A rotary machine of claim 1, wherein said central shaft means includes a shaft and a stator coaxially mounted thereon, said stator providing said at least one lobe, with the duct means extending through the shaft and stator.
- 3. The rotary machine of claim 2, further including a longitudinally extending duct defining member disposed within said shaft and in which said inlet passage portions and outlet passage portions are formed.
- 4. The rotary machine of claim 3, further including a flow diverter disposed in said inlet passage for substantially evenly dividing a flow of working fluid at said fluid inlet passage and directing said working fluid to said inlet passage portions.
- 5. The rotary machine of claim 4, wherein said flow diverter includes one or more radially extending vanes for dividing said fluid inlet passage into a plurality of portions.
- 6. A motor assembly including a plurality of motors, each motor being a rotary machine according to claim 2, with the rotary machines having a common shaft means so that the shaft of each rotary machine is provided by a common shaft, the common shaft providing a plurality of inlet passages and outlet passages which are longitudinally coextensive.
- 7. The motor assembly of claim 6, further including a manifold member mounted internally of said shaft and dividing said shaft axially internally so as to provide said inlet and outlet passages.
- 8. The rotary machine of claim 1, wherein said rotary machine is a motor, with said central shaft means consisting of a shaft and a stator mounted thereon, said stator providing each lobe, said shaft having an outer diameter and an inner diameter according to the following formula:Dm<D{1−(2P×10−7)/(ND3)}025 whereP=power rating of the machine (Watts) N=speed rating of the machine (rev/min) D=shaft outside diameter (m) Dm=shaft inside diameter.
- 9. The machine of claim 8, wherein said first and second duct means include inlet and outlet passages extending between the inside and outside diameter of the shaft, and wherein the shaft is configured such that:Wp/D<0.75 whereD=shaft outside diameter (m) and Wp=Σ, (inlet passage width+outlet passage width).
- 10. The rotary machine according to claim 1, wherein said outer housing has a wall thickness, and each lobe has a radial lobe height, with the wall thickness being such that:Wt>1.2L whereWt=wall thickness of outer housing L=lift of stator (height of lobes) where Wt is the wall thickness and L is the radial height of each lobe.
- 11. The rotary machine of claim 1, wherein said central shaft means includes a stator portion providing said at least one lobe and having a radially outer surface, and each gate has a radially inner surface adjacent the radially outer surface of the stator, and a radially outer surface, with each gate further including a passage extending between the gate radially inner and radially outer surfaces.
- 12. The rotary machine of claim 11, wherein the gate passages extend from a leading or a trailing portion of the radially inner surface of the gate.
- 13. The rotary machine of claim 1, wherein said central shaft means includes a stator providing said at least one lobe, and the gates are of a “yoke” configuration so as to provide a base from which there radially inwardly extends a pair of generally parallel transversely spaced coextensive stator legs, and the stator includes cam means operatively associated with the stator legs to cause radial movement of the gates in coordination with movement of the gate relative to the lobes.
- 14. The rotary machine of claim 13, wherein each stator leg is provided with a rotatable bearing means operatively associated with the cam means to cause radial movement of the gates.
- 15. The rotary machine of claim 13, further including gate engaging means fixed to or forming part of the housing and engaging the gates to aid in maintaining close tolerances between the base of the gates and the stator.
- 16. The rotary machine of claim 13, wherein said stator has a radially outer peripheral surface providing said at least one lobe, with said outer peripheral surface providing rise and fall surfaces for said lobes and a surface of generally constant radius, with the rise and fall surfaces being joined to the surface of constant radius by transition areas, and wherein said cam means has corresponding transition areas which are not radially aligned with the transition areas of the peripheral surface of the stator.
- 17. The rotary machine of claim 16, wherein the transition areas of said stator peripheral surface between adjacent lobes are angularly spaced by an angle greater than the angle of the corresponding transition areas of said cam means are spaced.
- 18. A motor assembly including a plurality of motors, each motor being a rotary machine according to claim 1, and wherein the motors are arranged so that the gates of adjacent motors are not longitudinally aligned and/or the lobes of adjacent motors are not longitudinally aligned.
- 19. The rotary machine of claim 6, further including a flow divider operatively associated with said manifold member so that the working fluid passing through each inlet passage has substantially the same flow rate and pressure, and said outlet passages extend to a common outlet passage.
- 20. The rotary machine of claim 19, wherein the inlet passages decrease longitudinally in transverse cross section as the outlet passages increase in transverse cross section to provide substantially equal flow and pressure in the inlet passages and substantially equal flow and pressure in the outlet passages.
- 21. The rotary machine of claim 20, wherein the inlet and outlet passages are at least axially partly coextensive, and are substantially parallel.
- 22. A rotary machine through which a working fluid passes, said machine including at least:a central shaft means having a radially outer peripheral surface provided with at least one lobe having a maximum radius relative to a longitudinal axis of the shaft means, said central shaft means having a longitudinally extending bore defining a fluid inlet passage and fluid outlet passage at axially opposite ends thereof; a duct defining member disposed in said bore which, together with a surface of said bore, defines a plurality of inlet passage portions and outlet passage portions, said inlet passage portions being longitudinally co-extensive with said outlet passage portions, and where said inlet passage extends to said plurality of inlet passage portions and said outlet passage extends from said plurality of outlet passage portions; an outer housing having an inner cylindrical surface surrounding the central shaft means, the inner surface having a radius approximately equal to said maximum radius; bearing means extending between the housing and central shaft means to provide for relative rotation therebetween; a plurality of gates movably mounted in the housing for movement between a retracted position at least substantially located in said housing-and an extended position protruding from said housing; said gates, central shaft means and housing co-operating to define at least two variable volume working chambers, the volumes of which change with relative rotation between the shaft means and housing about said axis; first duct means extending through said central shaft means between said inlet passage portions and said chambers at a position adjacent to said lobe on a first angular side thereof, second duct means extending through said central shaft means between said outlet passage portions and said chambers adjacent said lobe on the other angular side thereof to the first duct means; wherein relative rotation between said central shaft means and housing provides for movement of said working fluid through said chambers via said first and second duct means.
- 23. The rotary machine of claim 22, wherein said central shaft means includes a shaft containing said bore and a stator coaxially mounted thereon, said stator providing said at least one lobe, with said first and second duct means extending through the shaft and stator.
- 24. The rotary machine of claim 23 further including a flow diverter disposed in said inlet passage for substantially evenly dividing a flow of working fluid at said fluid inlet passage and directing said working fluid to said inlet passage portions.
- 25. The rotary machine of claim 23, wherein said flow diverter includes one or more radially extending vanes for dividing said fluid inlet passage into a plurality of portions.
- 26. A motor assembly including a plurality of motors, each motor being a rotary machine according to claim 23, with the rotary machines having a common shaft means so that the shaft of each rotary machine is provided by a common shaft, the common shaft providing a plurality of inlet passages and outlet passages which are longitudinally coextensive.
- 27. The motor assembly of claim 26 further including a manifold member mounted internally of said shaft and dividing said shaft axially internally so as to provide said inlet and outlet passages.
- 28. The rotary machine of claim 22 wherein said rotary machine is a motor, with said central shaft means consisting of a shaft and a stator mounted thereon, said stator providing each lobe, said shaft having an outer diameter and an inner diameter according to the following formula:Dm<D{1−(2P×10−7)/(ND3)}025 whereP=power rating of the machine (Watts) N=speed rating of the machine (rev/min) D=shaft outside diameter (m) Dm=shaft inside diameter.
- 29. The machine of claim 28, wherein said first and second duct means include inlet and outlet passages extending between the inside and outside diameter of the shaft, and wherein the shaft is configured such that:Wp/D<0.75 whereD=shaft outside diameter (m) and Wp=Σ, (inlet passage width+outlet passage width).
- 30. The rotary machine according to claim 22, wherein said outer housing has a wall thickness, and each lobe has a radial lobe height, with the wall thickness being such that:Wt>1.2L whereWt=wall thickness of outer housing L=lift of stator (height of lobes) where Wt is the wall thickness and L is the radial height of each lobe.
- 31. The rotary machine of claim 22, wherein said central shaft means includes a stator portion providing said at least one lobe and having a radially outer surface, and each gate has a radially inner surface adjacent the radially outer surface of the stator, and a radially outer surface, with each gate further including a passage extending between the gate radially inner and radially outer surfaces.
- 32. The rotary machine of claim 31, wherein the gate passages extend from a leading or a trailing portion of the radially inner surface of the gate.
- 33. The rotary machine of claim 22, wherein said central shaft means includes a stator providing said at least one lobe, and the gates are of a “yoke” configuration so as to provide a base from which there radially inwardly extends a pair of generally parallel transversely spaced coextensive stator legs, and the stator includes cam means operatively associated with the stator legs to cause radial movement of the gates in coordination with movement of the gate relative to the lobes.
- 34. The rotary machine of claim 33, wherein each stator leg is provided with a rotatable bearing means operatively associated with the cam means to cause radial movement of the gates.
- 35. The rotary machine of claim 33, further including gate engaging means fixed to or forming part of the housing and engaging the gates to aid in maintaining close tolerances between the base of the gates and the stator.
- 36. The rotary machine of claim 33, wherein said stator has a radially outer peripheral surface providing said at least one lobe, with said outer peripheral surface providing rise and fall surfaces for said lobes and a surface of generally constant radius, with the rise and fall surfaces being joined to the surface of constant radius by transition areas, and wherein said cam means has corresponding transition areas which are not radially aligned with the transition areas of the peripheral surface of the stator.
- 37. The rotary machine of claim 36, wherein the transition areas of said stator peripheral surface between adjacent lobes are angularly spaced by an angle greater than the angle of the corresponding transition areas of said cam means are spaced.
- 38. A motor assembly including a plurality of motors, each motor being a rotary machine according to claim 22, and wherein the motors are arranged so that the gates of adjacent motors are not longitudinally aligned and/or the lobes of adjacent motors are not longitudinally aligned.
- 39. The rotary machine of claim 26, further including a flow divider operatively associated with said manifold member so that the working fluid passing through each inlet passage has substantially the same flow rate and pressure, and said outlet passages extend to a common outlet passage.
- 40. The rotary machine of claim 39, wherein the inlet passages decrease longitudinally in transverse cross section as the outlet passages increase in transverse cross section to provide substantially equal flow and pressure in the inlet passages and substantially equal flow and pressure in the outlet passages.
- 41. The rotary machine of claim 40, wherein the inlet and outlet passages are at least axially partly coextensive, and are substantially parallel.
Priority Claims (1)
Number |
Date |
Country |
Kind |
PO2924 |
Oct 1996 |
AU |
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Parent Case Info
This application is a continuation of application(s) application Ser. No. 09/269,387 filed on May 18, 1999, U.S. Pat. No. 6,280,169, which is International Application PCT/AU97/00682 filed on Oct. 13, 1997 and which designated the U.S., and was published in English, claims the benefit thereof and incorporates the same by reference.
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Continuations (1)
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Number |
Date |
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Parent |
09/269387 |
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US |
Child |
09/906220 |
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US |