Claims
- 1. A permanent magnet machine comprising:
at least one permanent magnet rotor having a generally cylindrical shape with an inner rotor component and an outer rotor component; at least one stator having a generally hollow cylindrical shape positioned within an opening between the inner and outer components of the permanent magnet rotor; and a plurality of polyphase windings of electrical wires wound around the at least one stator.
- 2. The machine of claim 1, wherein the at least one stator includes an inner surface, an outer surface, a first end surface, and a second end surface.
- 3. The machine of claim 1, wherein the at least one stator is non-slotted.
- 4. The machine of claim 1, wherein the at least one stator is slotted forming slot openings having an angular width.
- 5. The machine of claim 1, wherein the at least one permanent magnet rotor is an integral dual-rotor with the inner rotor component and the outer rotor component rotating at the same speed.
- 6. The machine of claim 5, wherein the inner rotor component includes an inner surface and an outer surface, and a central opening extending through the center of the inner rotor component.
- 7. The machine of claim 6, further comprising a plurality of permanent magnets mounted to the outer surface of the inner rotor component, the permanent magnets having an angular width.
- 8. The machine of claim 7, wherein the plurality of permanent magnets are radially polarized.
- 9. The machine of claim 7, wherein the plurality of permanent magnets are parallelly polarized.
- 10. The machine of claim 7, wherein the plurality of permanent magnets are ferrite magnets.
- 11. The machine of claim 7, wherein the plurality of permanent magnets are rare earth magnets.
- 12. The machine of claim 5, wherein the outer rotor component includes an inner surface and an outer surface with a plurality of permanent magnets mounted to the inner surface of the outer rotor component, the permanent magnets having an angular width.
- 13. The machine of claim 12, wherein the plurality of permanent magnets are radially polarized.
- 14. The machine of claim 12, wherein the plurality of permanent magnets are parallelly polarized.
- 15. The machine of claim 12, wherein the plurality of permanent magnets are ferrite magnets.
- 16. The machine of claim 12, wherein the plurality of permanent magnets are rare earth magnets.
- 17. The machine of claim 7, further comprising a first air gap formed between the permanent magnets extending outwardly from the outer surface of the inner rotor component and the windings on the inner surface of the stator.
- 18. The machine of claim 12, further comprising a second air gap formed between the permanent magnets extending inwardly from the inner surface of the outer rotor component and the windings on the outer surface of the stator.
- 19. The machine of claim 1, wherein the slot openings are shifted to reduce cogging torque.
- 20. The machine of claim 1, wherein the angular width of the slot openings are varied to reduce cogging torque.
- 21. The machine of claim 1, wherein the angular width of the permanent magnets are varied to reduce cogging torque.
- 22. The machine of claim 1, wherein the at least one stator is non-slotted with a plurality of magnets mounted within the rotor.
- 23. The machine of claim 1, wherein the at least one stator is slotted with a plurality of magnets mounted within the rotor.
- 24. The machine of claim 1, wherein the at least one stator is non-slotted with a plurality of magnets mounted to at least one end of the at least one permanent magnet rotor.
- 25. The machine of claim 1, wherein the at least one stator is slotted with a plurality of magnets mounted to at least one end of the at least one permanent magnet rotor.
- 26. The machine of claim 1, wherein the at least one stator is partly formed of a compressed powdered magnetic material.
- 27. The machine of claim 1, wherein the plurality of polyphase windings are toroidally-wound windings.
- 28. The machine of claim 1, wherein the plurality of polyphase windings are lap windings.
- 29. The machine of claim 1, wherein the plurality of polyphase windings are wave windings.
- 30. A hybrid permanent magnet machine comprising:
at least one permanent magnet rotor; at least one stator nested within an opening formed between an inner rotor component and an outer rotor component of the at least one permanent magnet rotor creating a rotor-stator-rotor structure; a plurality of permanent magnets mounted within the core of the inner rotor component and a plurality of permanent magnets mounted to an inner surface of the outer rotor component; and a plurality of polyphase windings of electrical wires wound around the at least one stator.
- 31. The machine of claim 30, wherein the at least one stator is non-slotted.
- 32. The machine of claim 30, wherein the at least one stator is slotted.
- 33. The machine of claim 30, wherein the plurality of polyphase windings are toroidally-wound windings.
- 34. The machine of claim 30, wherein the plurality of polyphase windings are lap windings.
- 35. The machine of claim 30, wherein the plurality of polyphase windings are wave windings.
- 36. An enhanced permanent magnet machine comprising:
at least one permanent magnet rotor; at least one stator nested within an opening formed in the at least two permanent magnet rotors creating a rotor-stator-rotor structure; a plurality of permanent magnets mounted to an outer surface of an inner rotor component; a plurality of permanent magnets mounted to an inner surface of an outer rotor component; a plurality of permanent magnets mounted to an inner surface of at least one end of the at least one permanent magnet rotor; a plurality of polyphase windings of electrical wires wound around the at least one stator.
- 37. The machine of claim 36, wherein the at least one stator is non-slotted.
- 38. The machine of claim 36, wherein the at least one stator is slotted.
- 39. The machine of claim 36, wherein the plurality of polyphase windings are toroidally-wound windings.
- 40. The machine of claim 36, wherein the plurality of polyphase windings are lap windings.
- 41. The machine of claim 36, wherein the plurality of polyphase windings are wave windings.
- 42. A method for designing a permanent magnet machine, the method comprising the steps of:
specifying certain fixed parameters of input data for the design; estimating the radius of the inner rotor component; performing calculations for determining inner stator shoe, air gap, magnetic, and inner slot parameters; estimating the radius of the outer rotor component; performing calculations for determining outer stator shoe, air gap, magnetic, and outer slot parameters; performing calculation to determine stator yoke flux density; comparing the calculated stator yoke flux density to the desired stator yoke flux density; refining the estimate of the radius of the outer rotor component and recalculating outer stator shoe, air gap, magnetic, outer slot parameters, and stator yoke flux density if the calculated stator yoke flux density does not match the desired stator yoke flux density; performing calculation to determine torque; comparing the calculated torque to the desired torque; refining the estimate of the radius of the inner rotor component and recalculating inner stator shoe, air gap, magnetic, and inner slot parameters if the calculated torque does not match the desired torque; performing calculations to determine the back EMF current, resistance and inductance of the phase; and performing calculations to determine the losses, efficiency, material volumes, weights, and costs of the design.
- 43. The method of claim 42, further comprising the steps of optimizing the aspect ratio, pole number, electric loading, and magnetic loading of the permanent magnetic machine.
- 44. The method of claim 43, further comprising the step of adjusting the initial conditions of the design and re-optimizing the aspect ratio, pole number, electric loading, and magnetic loading of the permanent magnetic machine.
- 45. The method of claim 42, further comprising the step of shifting the slot openings of the stator for reducing the cogging torque of the permanent magnetic machine.
- 46. The method of claim 42, further comprising the step of varying the slot opening angular width of the stator for reducing the cogging torque of the permanent magnetic machine.
- 47. The method of claim 42, further comprising the step of varying the permanent magnet angular width of the stator for reducing the cogging torque of the permanent magnetic machine.
- 48. The machine of claim 1, wherein the plurality of polyphase windings are concentric windings.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT
[0001] This invention was made with United States Government support awarded by the Department of Energy (DOE), Grant No. DE-AC36-99-GO10337. The United States Government has certain rights in this invention.