Claims
- 1. An electric drive comprising a magnetic rotor and stator; said magnetic rotor comprising at least two magnetized disks installed on a shaft; said at least two magnetized disks having circumferential arrayed like poles and being mounted perpendicularly to the shaft, said circumferential arrayed like poles of one of said magnetized disks spaced from the circumferential arrayed like poles of the other of said magnetized disks in an axial direction to form a gap, said circumferential arrayed like poles of said one magnetized disk has opposite polarities relative to said circumferential arrayed like poles of said other magnetized disk; and wherein the projection, on a plane perpendicular to the shaft, of circumferential arrayed like poles of one magnetized disk coincides with the projection, on said plane, of the circumferential arrayed like poles of said other magnetized disk; said stator comprising a winding selected from the group consisting of a coil winding and a wave winding, and being at least partially mounted into the gap between the circumferential arrayed like poles of said one magnetized disk and the circumferential arrayed like poles of said other magnetized disk.
- 2. The electric drive according to claim 1, wherein said magnetic rotor further comprising a cylindrical or polygonal magnet being magnetized in axial direction and placed coaxially to the shaft between said magnetized disks.
- 3. The electric drive according to claim 1, wherein said coil windings comprising a ferromagnetic tape.
- 4. The electric drive according to claim 3, wherein said ferromagnetic tape is high electric conductivity coated tape.
- 5. The electric drive according to claim 4, wherein said ferromagnetic tape is steel tape and said steel tape is coated with high electric conductivity coating from copper.
- 6. The electric drive according to claim 1, wherein said coil windings are etched in a circuit boards metal layers and located around the circumference of the stator, said coil windings are arranged in a way to allow an interaction with the magnetic poles of the rotor.
- 7. The electric drive according to claim 6, wherein said coil windings are plated with ferromagnetic coating material.
- 8. The electric drive according to claim 7, wherein said ferromagnetic coating material is nickel.
- 9. The electric drive according to claim 6, wherein said circuit board metal layers are copper layers.
- 10. The electric drive according to claim 6, wherein said stator further comprising a controlling device of a type H-bridge drive, and a single layer of coil windings located on each side of the circuit board, where each said layer comprises several pairs of coil windings and each pair is made as a spiral that extends from the center of a start coil winding to a center of an end coil winding with the same turn direction of the spiral in relation to each coils center; said layers of coil windings are the same in transparent view and shifted angularly in such a way that the center of the start coil windings from one side of the board are electrically connected through the circuit board by internal via's, which are copper plated holes, with the center of the end coil windings on the other side of the board; the circuit of said one layer of coil windings is interrupted (broken) for providing power leads to the said controlling device.
- 11. An electric drive comprising a magnetic rotor and a plurality of stators; said magnetic rotor comprising more than two magnetized disks installed on a shaft; said magnetized disks having circumferential arrayed like poles and being mounted perpendicularly to the shaft, said circumferential arrayed like poles of one of said magnetized disks spaced from the circumferential arrayed like poles of the adjacent magnetized disks in an axial direction to form gaps, said circumferential arrayed like poles of said one magnetized disk has opposite polarity relative to said circumferential arrayed like poles of said adjacent magnetized disks;
and wherein the projection, on a plane perpendicular to the shaft, of circumferential arrayed like poles of said one magnetized disk coincides with the axial projections, on said plane, of the circumferential arrayed like poles of said adjacent magnetized disks; each of said stators comprising a winding selected from the group consisting of a coil winding and a wave winding and being at least partially mounted into each gap between the circumferential arrayed like poles of said one magnetized disk and the circumferential arrayed like poles of said adjacent magnetized disks.
- 12. The electric drive according to claim 11, wherein said magnetic rotor further comprising cylindrical or polygonal magnets being magnetized in axial direction and placed coaxially to the shaft between said adjacent magnetized disks.
- 13. The electric drive according to claim 11, wherein said coil winding comprising ferromagnetic tape.
- 14. The electric drive according to claim 13, wherein said ferromagnetic tape is high electric conductivity coated tape.
- 15. The electric drive according to claim 14, wherein said ferromagnetic tape is steel tape and said steel tape is coated with high electric conductivity coating from copper.
- 16. The electric drive according to claim 11, wherein said coil windings are etched in a circuit boards metal layers and located around the circumference of the stator, said coil windings are arranged in a way to allow for interaction with the magnetic poles of the rotor.
- 17. The electric drive according to claim 16, wherein said coil winding are plated with ferromagnetic coating material.
- 18. The electric drive according to claim 17, wherein said ferromagnetic coating material is nickel.
- 19. The electric drive according to claim 16, wherein said circuit board metal layers are copper layers.
- 20. The electric drive according to claim 11, wherein said stator further comprising a controlling device of a type H-bridge drive, and a single layer of coil windings located on each side of the circuit board, where each said layer comprises several pairs of coil winding and each pair made as a spiral that extends the center of a start coil winding to the center of an end coil winding with the same turn direction of the spiral in relation to each coils center; said layers of coil windings are the same in transparent view and shifted angularly in such a way that center of the start coil windings from one side of the board are electrically connected trough the circuit board by internal via's, which are copper plated holes, with the center of the end coil windings of other side of the board; the circuit of the said one layer of coil windings is interrupted (broken) for providing power leads to the said controlling device.
- 21. An electric drive comprising a magnetic rotor and a stator; said magnetic rotor comprising at least two disks with magnets, which are installed on a shaft; wherein said two disks with magnets having circumferential arrayed poles and being mounted perpendicularly to the shaft, said circumferential arrayed poles of one disk spaced from the circumferential arrayed poles of the magnets of the other disk in an axial direction to form a gap, each of said circumferential arrayed poles of one disk have opposite polarity relatively to said opposite located pole of the other disk; a projection on a plane perpendicular to the shaft of said circumferential arrayed poles of the magnets of one disk coincides with a projection, on said plane, of the circumferential arrayed poles of the magnets of other disk; said stator comprising circumferential arrayed coil windings, each coil winding having an axis parallel to the shaft, said coil windings mounted into the gap between the circumferential arrayed poles of the magnets of the one disk and the circumferential arrayed poles of the magnets of the other disk; said circumferential arrayed coil windings etched in a circuit board metal layers and located around the circumference of the stator, said coil windings are arranged in a way to allow interaction with the magnetic poles of the rotor.
- 22. The electric drive according to claim 21, wherein each of said at least two disks is made of a non-ferrous material with embedded magnets.
- 23. The electric drive according to claim 21, wherein each of said at least two disks is made of a ferrous material with the magnet poles permanently attached to one side each of said disks.
- 24. The electric drive according to claim 22, further comprising ferrous metal plates, each of said plates being attached on an outer surface of each disk and contacting one pole of each magnet.
- 25. The electric drive according to claim 24, further comprising a ferrous metal cylinder for interconnecting magnetic flux between the ferrous metal plates.
- 26. The electric drive according to claim 21, wherein said coil windings are plated with ferromagnetic coating material.
- 27. The electric drive according to claim 26, wherein said ferromagnetic coating material is nickel.
- 28. The electric drive according to claim 21, wherein said circuit board metal layers are copper.
- 29. The electric drive according to claim 21, wherein said stator further comprising a controlling device of a type H-bridge drive, and a single layer of coil windings located on each side of the circuit board, where each said layer comprises several pairs of coil winding and each pair made as a spiral that extends from a center of a start coil winding to a center of an end coil winding with the same turn direction of the spiral in relation to the each coils center; said layers of coil windings are the same direction in transparent view and shifted angularly such way that center of the start coil windings from one side of the board are electrically connected trough the circuit board by internal via's, which are copper plated holes, with the center of the end coil windings of other side of the board; the circuit of the said one layer of coil windings is interrupted (broken) for providing power leads to the said controlling device.
- 30. The electric drive according to claim 21, wherein each of said at least two disks has the same polarity poles.
- 31. The electric drive according to claim 30, wherein the number of poles of each disk is a half of number of stator coil windings.
- 32. The electric drive according to claim 21, wherein each of said at least two disks has the alternate polarity poles.
- 33. The electric drive according to claim 32, wherein the number of poles of each disk is the same as number of stator coil windings.
- 34. An electric drive comprising a magnetic rotor and plurality of stators; said magnetic rotor comprising more than two disks with magnets, which are installed on a shaft; wherein said disks with magnets having circumferential arrayed poles and being mounted perpendicularly to the shaft, said circumferential arrayed poles of one disk spaced from the circumferential arrayed poles of the magnets of adjacent disks in an axial direction to form gaps, each of said circumferential arrayed poles of one disk have opposite polarity relatively to said opposite located poles of adjacent disks; a projection on a plane perpendicular to the shaft of said circumferential arrayed poles of the magnets of one disk coincides with projections, on said plane, of the circumferential arrayed poles of the magnets of adjacent disks; each of said stators comprising circumferential arrayed coil windings, each coil winding having an axis parallel to the shaft, said coil windings are mounted into each gap between the circumferential arrayed poles of the magnets of the one disk and the circumferential arrayed poles of the magnets of the adjacent disks; said circumferential arrayed coil windings etched in the circuit boards metal layers and located around the circumference of each stator, said coil windings are arranged in a way to allow an interaction with the magnetic poles of the rotor.
- 35. The electric drive according to claim 34, wherein each of disks is made of a non-ferrous material with embedded magnets.
- 36. The electric drive according to claim 34, wherein each of disks is made of a ferrous material with the magnet poles permanently attached to one side of each said disks.
- 37. The electric drive according to claim 35, further comprising ferrous metal plates, each of said plates being attached on an outer surface of each disk and contacting one pole of each magnet.
- 38. The electric drive according to claim 34, wherein said coil windings are plated with ferromagnetic coating material.
- 39. The electric drive according to claim 38, wherein said ferromagnetic coating material is nickel.
- 40. The electric drive according to claim 34, wherein said circuit board metal layers are copper.
- 41. The electric drive according to claim 34, wherein said each stator further comprising a controlling device of a type H-bridge drive, and a single layer of coil windings located on each side of the circuit board, where each said layer comprises several pairs of coil winding and each pair is made as a spiral that extends from the center of a start coil winding to a center of an end coil winding with the same turn direction of the spiral in relation to the each coils center; said layers of coil windings are the same in transparent view and shifted angularly in such a way that the center of the start coil windings from one side of the board is electrically connected trough the circuit board by internal via's, which are copper plated holes, with the center of the end coil windings of other side of the board; the circuit of the said one layer of coil windings is interrupted (broken) for providing power leads to the said controlling device.
- 42. The electric drive according to claim 34, wherein each of said disks has the same polarity poles.
- 43. The electric drive according to claim 42, wherein the number of poles of each disk is a half of number of stator coil windings.
- 44. The electric drive according to claim 34, wherein each of said disks has the alternate polarity poles.
- 45. The electric drive according to claim 44, wherein the number of poles of each disk is the same as number of stator coil windings.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application is a continuation-in-part of U.S. patent application Ser. No. 09/621,104, filed Jul. 21, 2000 entitled “ELECTRIC DRIVE OPTIONS”.
Continuation in Parts (1)
|
Number |
Date |
Country |
| Parent |
09621104 |
Jul 2000 |
US |
| Child |
10187071 |
Jul 2002 |
US |