Claims
- 1. A molecular drag vacuum pump, comprising:
a housing defining an inlet and an outlet; a rotor rotatably carried within the housing, having an axis of rotation and a plane of rotation; at least one gas passageway, disposed in the housing between the inlet and the outlet and adjacent the rotor, configured to facilitate flow of a gas from the inlet to the outlet and to impart kinetic energy to the gas through contact of the gas with a moving surface of the rotor; and a slotless, brushless, permanent magnet motor integrally incorporated in the rotor and the housing, said motor comprising:
a plurality of permanent magnets disposed in the plane of rotation in the rotor, the permanent magnets comprising a motor rotor element; and a plurality of coils, disposed in the housing adjacent the permanent magnets of the rotor and in a plane substantially parallel to plane of rotation of the rotor, the coils comprising a motor stator element, configured to have current therein electronically switched by an external switching circuit, so as to provide a force which acts on the rotor to turn the rotor within the housing.
- 2. A molecular drag vacuum pump in accordance with claim 1, wherein the coils are symmetrically disposed about the axis of rotation, and are configured to produce a radial electromagnetic force vector that passes through the axis of rotation, and an tangential electromagnetic force vector that acts parallel to the plane of rotation and substantially tangential to the axis of rotation.
- 3. A molecular drag vacuum pump in accordance with claim 1, wherein the coils are substantially D-shaped.
- 4. A molecular drag vacuum pump in accordance with claim 1, further comprising a flux return ring having a uniform cross-section, disposed adjacent the coils on a side opposite the rotor, the flux return ring being symmetrically disposed about the axis of rotation and parallel to the plane of rotation, and configured to (1) provide an axial flux return path for magnetic flux between the plurality of coils, (2) at least partially contain the electromagnetic field produced by the coils, and (3) increase the magnetic field density in a region between the coils and the rotor.
- 5. A molecular drag vacuum pump in accordance with claim 4, wherein the flux return ring comprises soft ferrite material, having an electrical resistivity substantially higher than that of soft iron.
- 6. A molecular drag vacuum pump in accordance with claim 1, wherein the plurality of coils comprises three coils.
- 7. A molecular drag vacuum pump in accordance with claim 1, wherein the driving circuit comprises an H-bridge circuit.
- 8. A molecular drag vacuum pump in accordance with claim 1, wherein the plurality of permanent magnets comprises an even number of magnets arranged in a circle in the plane of rotation, and configured to emulate the characteristics of a two-pole pair permanent magnet.
- 9. A molecular drag vacuum pump in accordance with claim 8, wherein the plurality of permanent magnets comprises six magnets.
- 10. A molecular drag vacuum pump in accordance with claim 1, wherein the permanent magnets and coils comprise a three-phase, two-pole pair permanent magnet motor.
- 11. A molecular drag vacuum pump in accordance with claim 1, wherein the plurality of coils comprises two sets of coils symmetrically disposed in the housing above the rotor and below the rotor.
- 12. A molecular drag vacuum pump in accordance with claim 11, further comprising a pair of flux return rings having a uniform cross-section, each disposed adjacent one of the two sets of coils on a side of the respective sets of coils opposite the rotor, the flux return rings being symmetrically disposed about the axis of rotation and parallel to the plane of rotation, and configured to (1) provide an axial flux return path for magnetic flux between the plurality of coils, (2) at least partially contain the electromagnetic field produced by the coils, and (3) increase the magnetic field density in a region between the coils and the rotor.
- 13. A molecular drag vacuum pump in accordance with claim 12, wherein the flux return rings comprise soft ferrite material, having an electrical resistivity substantially higher than that of soft iron.
- 14. A molecular drag vacuum pump in accordance with claim 12, wherein the flux return rings are approximately equidistant from the plane of rotation, so as to substantially balance magnetic attractive forces between the flux return rings and the permanent magnets.
- 15. A molecular drag vacuum pump in accordance with claim 1, wherein the housing comprises baked aluminum, so as to (1) minimize electromagnetic interference with the integral motor, and (2) minimize outgassing from the housing into the flow of gas.
- 16. A molecular drag vacuum pump, comprising:
a housing defining an inlet and an outlet; a rotor rotatably carried within the housing; a plurality of gas passageways, disposed in the housing between the inlet and the outlet and adjacent the rotor, configured to facilitate flow of a gas from the inlet to the outlet and to impart kinetic energy to the gas through contact of the gas with a moving surface of the rotor; at least one wiper carried by the housing, configured to redirect flow of gas from one of the plurality of gas passageways to another of the plurality of gas passageways, the wiper having a facing surface configured to (1) contact a moving surface of the rotor upon initial operation of the pump, and (2) rapidly wear down so as to create a conformable fit between the facing surface and the moving rotor surface, the facing surface being formed with a plurality of parallel ridges so as to reduce friction with the rotor during said initial operation.
- 17. A molecular drag vacuum pump in accordance with claim 16, wherein the ridges are oriented substantially perpendicular to a direction of motion of the moving surface of the rotor.
- 18. A molecular drag vacuum pump in accordance with claim 16, wherein the ridges are substantially triangular in shape.
- 19. A molecular drag vacuum pump in accordance with claim 16, wherein the plurality of gas passageways comprises first, second, and third gas passageways, and the at least one wiper plate comprises:
a first wiper plate configured to redirect the flow of gas from the first passageway to the second passageway; and a second wiper plate configured to redirect the flow of gas from the second passageway to the third passageway.
- 20. A molecular-drag vacuum pump in accordance with claim 16, wherein the wiper comprises a low-outgassing polymer material selected so as to reduce introduction of contaminant gasses from the wiper into the flow of gas.
- 21. A molecular drag vacuum pump, comprising:
a housing defining an inlet and an outlet and configured to facilitate flow of a gas from the inlet to the outlet; a rotor rotatably carried within the housing, the rotor including a first side, an edge side, and, a second side opposite the first side, and having an axis of rotation; a first passageway in fluid communication with the inlet, said first passageway being disposed intermediate the housing and the first side, being defined by the housing and the first side; a second passageway in fluid communication with the first passageway, said second passageway disposed intermediate the housing and the edge side, being defined by the housing and the edge side; a third passageway in fluid communication with the second passageway, said third passageway disposed intermediate the housing and the second side, being defined by the housing and the second side; a ring of regenerative pumping pockets, disposed intermediate the housing and the second side, in fluid communication with the third passageway and the outlet, configured to reduce backflow in the third passageway; a first wiper carried by the housing, configured to redirect flow of gas from the first passageway to the second passageway; and a second wiper carried by the housing and configured to redirect flow of gas from the second passageway to the third passageway; the gas being urged to enter the inlet and to rotate around the rotor axis at least one complete revolution before exiting the outlet.
- 22. A molecular-drag vacuum pump in accordance with claim 21, wherein the regenerative pumping pockets are disposed in a ring in the rotor, and an adjacent ring in the housing.
- 23. A molecular-drag vacuum pump in accordance with claim 22, wherein the regenerative pumping pockets comprise cavities with a substantially hemispherical shape.
- 24. A molecular drag vacuum pump, comprising:
a housing defining an inlet and an outlet; a rotor rotatably carried within the housing, having a rotor axis, and a rotor shaft; a plurality of gas passageways, disposed in the housing between the inlet and the outlet and adjacent the rotor, configured to facilitate flow of a gas from the inlet to the outlet and to impart kinetic energy to the gas through contact of the gas with a moving surface of the rotor; at least one wiper carried by the housing, configured to redirect flow of gas from one of the plurality of gas passageways to another of the plurality of gas passageways; and a circular seal ring, concentrically disposed about the rotor axis, and attached to the housing adjacent a surface of the rotor, having a facing surface for creating a seal with the rotor, the seal ring configured to reduce leakage of gas between the housing and the rotor.
- 25. A molecular-drag vacuum pump in accordance with claim 24, wherein the seal ring is disposed between two of the plurality of passageways, and is configured to reduce leakage of gas between the two passageways.
- 26. A molecular-drag vacuum pump in accordance with claim 25, wherein the seal ring defines a boundary between the two passageways.
- 27. A molecular-drag vacuum pump in accordance with claim 25, wherein the two of the plurality of passageways comprise successive portions of a spiral passageway, and the seal ring defines a spiral configuration disposed therebetween.
- 28. A molecular-drag vacuum pump in accordance with claim 24, wherein the facing surface includes a plurality of parallel ridges configured to (1) contact a moving surface of the rotor upon initial operation of the pump, and (2) rapidly wear down so as to create a conformable fit between the facing surface and the moving rotor surface.
- 29. A molecular-drag vacuum pump in accordance with claim 28, wherein the ridges are oriented substantially parallel to a direction of motion of the rotor surface.
- 30. A molecular-drag vacuum pump in accordance with claim 28, wherein the ridges are configured in a shape selected from the group consisting of: (i) substantially triangular; and (ii) substantially squared.
- 31. A molecular-drag vacuum pump in accordance with claim 28, further comprising a cylindrical slot, disposed in a surface of the rotor, the seal ring extending into the cylindrical slot.
- 32. A molecular drag vacuum pump in accordance with claim 31, wherein the cylindrical slot comprises a plurality of concentric cylindrical slots, each of the plurality of cylindrical slots configured to receive one of the plurality of parallel ridges of the seal ring.
- 33. A molecular-drag vacuum pump in accordance with claim 24, wherein the seal ring comprises a discontinuous circular ring defining a gap therein, so as to accommodate a gas passageway interconnecting the two of the plurality of passageways.
- 34. A molecular drag vacuum pump in accordance with claim 24, wherein the seal ring comprises a continuous circular ring disposed against a surface of the rotor adjacent the rotor shaft.
- 35. A molecular drag vacuum pump in accordance with claim 24, wherein the facing surface of the seal ring comprises a low-outgassing polymer material selected so as to reduce introduction of contaminant gasses from the wiper into the flow of gas.
- 36. A molecular-drag vacuum pump in accordance with claim 24, further comprising a cylindrical slot, disposed in a surface of the rotor adjacent the housing, the seal ring extending into the cylindrical slot.
- 37. A molecular drag vacuum pump module, comprising:
a housing defining an inlet and an outlet; a rotor rotatably carried within the housing, having a rotor shaft; and a plurality of gas passageways, disposed in the housing between the inlet and the outlet and adjacent the rotor, configured to facilitate flow of a gas from the inlet to the outlet and to impart kinetic energy to the gas through contact of the gas with the rotor; the housing being configured to interconnect in series with other similar molecular drag vacuum pump modules, with the outlet of one module connected in fluid communication with the inlet of a subsequent module.
- 38. A molecular-drag vacuum pump module in accordance with claim 37, further comprising a slotless, brushless, permanent magnet motor incorporated in the rotor and the housing, said motor comprising:
a plurality of permanent magnets disposed in a plane of rotation in the rotor, the permanent magnets comprising a motor rotor element; and a plurality of coils, disposed in the housing adjacent the permanent magnets of the rotor and in a plane substantially parallel to plane of rotation of the rotor, the coils comprising a motor stator element, configured to have current therein electronically switched by an external switching circuit, so as to provide a force which acts on the rotor to turn the rotor within the housing.
- 39. A molecular-drag vacuum pump module in accordance with claim 38, further comprising a coupler, extending through the housing, configured to allow operable interconnection of the rotor shaft of the molecular-drag vacuum pump module with a rotor shaft of a second similar but unmotorized molecular-drag vacuum pump module.
- 40. A molecular-drag vacuum pump system, comprising:
at plurality of molecular drag vacuum pump modules connected in series, including a first module and a last module, each module comprising:
a housing defining an inlet and an outlet, and configured to connect to a housing of another similar module; a rotor rotatably carried within the housing, having a rotor shaft; and a plurality of gas passageways, disposed in the housing between the inlet and the outlet and adjacent the rotor, configured to facilitate flow of a gas from the inlet to the outlet and to impart kinetic energy to the gas through contact of the gas with the rotor; the outlet of the first module being connected in fluid communication with the inlet of a subsequent module, such that gas is pumped in series through the plurality of modules and exits through the outlet of the last module.
- 41. A molecular-drag vacuum pump system in accordance with claim 40, wherein at least one of the plurality of modules is a powered module powered by a slotless, brushless, permanent magnet motor incorporated in the rotor and the housing, said motor comprising:
a plurality of permanent magnets disposed in a plane of rotation in the rotor, the permanent magnets comprising a motor rotor element; and a plurality of coils, disposed in the housing adjacent the permanent magnets of the rotor and in a plane substantially parallel to plane of rotation of the rotor, the coils comprising a motor stator element, configured to have current therein electronically switched by an external switching circuit, so as to provide a force which acts on the rotor to turn the rotor within the housing.
- 42. A molecular-drag vacuum pump system in accordance with claim 41, further comprising a coupler, operably interconnecting the rotor shaft of the powered module a rotor shaft of an adjacent unpowered module.
- 43. A molecular-drag vacuum pump system in accordance with claim 41, wherein the system comprises two powered modules configured to counter-rotate.
Parent Case Info
[0001] The present application is a Continuation-In-Part of U.S. patent application Ser. No. 09/419,959, filed on Oct. 18, 1999 and entitled COMPACT MOLECULAR DRAG VACUUM PUMP, and subsequently issued as U.S. Pat. No. 6,450,772 on Sep. 17, 2002.
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09419959 |
Oct 1999 |
US |
Child |
10246798 |
Sep 2002 |
US |