Claims
- 1. A motor comprising:a rotor rotatable about an axis of rotation; a stator in magnetic coupling relation with the rotor, said stator including a plurality of teeth each having a radially extending pole body and an axially extending face, said pole bodies of the stator teeth each having a generally uniform thickness throughout its radial extent, said faces of the stator teeth defining an aperture for receiving the rotor, said faces of the stator teeth and said rotor defining an air gap therebetween, each stator tooth having a notch in its face which is approximately at least as wide as the thickness of the pole body of the respective stator tooth, said notch defining a modified air gap reluctivity between the stator and the rotor for parking the rotor in a rest position corresponding to a positive torque starting position; a winding on the pole bodies of the stator teeth; and a control circuit for controlling current in the winding whereby an electromagnetic field is produced for rotating the rotor at a desired speed or torque during operation of the motor.
- 2. The motor of claim 1 wherein each notch has a generally rectangular cross section transverse to the axis of rotation.
- 3. The motor of claim 1 wherein each notch has a width and a depth relative to the face of its respective stator tooth, said depth being a function of the inverse of said width.
- 4. The motor of claim 1 wherein each notch has a width relative to the face of its respective stator tooth between approximately 60° (electrical) and 90° (electrical).
- 5. The motor of claim 1 wherein each notch is offset relative to a center line of its respective stator tooth thereby defining an asymmetrical air gap relative to the center line.
- 6. The motor of claim 1 wherein the stator comprises a generally cylindrical stator core having two axially facing ends and a stator reluctance section positioned axially adjacent one of the ends of the stator core.
- 7. The motor of claim 6 wherein the pole bodies of the stator teeth extend radially from the stator core so that each stator tooth has two axially facing surfaces and wherein the stator reluctance section has a plurality of legs, each leg of the stator reluctance section corresponding to one of the stator teeth and being positioned axially adjacent one of the axially facing surfaces of its corresponding stator tooth.
- 8. The motor of claim 7 wherein a portion of each leg of the stator reluctance section is substantially coterminous with the pole body of its corresponding stator tooth.
- 9. The motor of claim 8 wherein another portion of each leg of the stator reluctance section extends into the air gap between the stator and the rotor at the notch of its corresponding stator tooth.
- 10. The motor of claim 6 wherein the stator includes a non-magnetic spacer section between the stator core and the stator reluctance section.
- 11. The motor of claim 6 wherein the rotor comprises a generally cylindrical rotor core having two axially facing ends and a rotor reluctance section positioned axially adjacent one of the ends of the rotor core.
- 12. The motor of claim 11 wherein the rotor comprises a plurality of permanent magnetic elements situated radially on an outer surface of the rotor core so that each permanent magnet element has two axially facing ends substantially level with the ends of the rotor core and wherein the rotor reluctance section has a plurality of legs, each leg of the rotor reluctance section corresponding to one of the permanent magnet elements and being positioned axially adjacent one of the axially facing ends of its corresponding permanent magnet element.
- 13. The motor of claim 12 wherein each leg of the rotor reluctance section overlaps at least in part one of the ends of the permanent magnet elements and extends into the air gap between the stator and the rotor.
- 14. The motor of claim 12 wherein each leg of the rotor reluctance section has a width less than that of its corresponding permanent magnet element.
- 15. The motor of claim 12 wherein each leg of the rotor reluctance section is situated on one of the ends of its corresponding permanent magnet element at a predetermined angular position relative to the permanent magnet element.
- 16. The motor of claim 11 wherein the rotor has an end cap on each of its ends and wherein the rotor reluctance section is positioned on one of the end caps.
- 17. The motor of claim 11 wherein the rotor and stator reluctance sections are positioned radially adjacent each other.
- 18. The motor of claim 1 wherein the rotor comprises a generally cylindrical rotor core and a plurality of permanent magnet elements situated radially on an outer surface of the rotor core along a helical path which traverses a skew angle θ with respect to the axis of rotation.
- 19. The motor of claim 18 wherein the skew angle 0 is between approximately 60° (electrical) and 90° (electrical).
- 20. The motor of claim 1 comprising a single phase, single winding, electronically commutated dynamoelectric machine.
- 21. A stationary assembly for a motor, said motor having a rotor which is rotatable about an axis of rotation, said stationary assembly being in magnetic coupling relation with the rotor, said stationary assembly comprising:a stator core having a plurality of teeth, said teeth each having a radially extending pole body and an axially extending face, said pole bodies of the stator teeth each having a generally uniform thickness throughout its radial extent, said faces of the teeth defining an aperture for receiving the rotor, said faces of the teeth and said rotor defining an air gap therebetween, each tooth having a notch in its face which is approximately at least as wide as the thickness of the pole body of the respective stator tooth, said notch defining a modified air gap reluctivity between the stator core and the rotor for and the rotor in a rest position corresponding to a positive torque starting position; and a winding on the pole bodies of the teeth, said winding being adapted to be energized for producing an electromagnetic field to rotate the rotor at a desired speed or torque during operation of the motor.
- 22. The stationary assembly of claim 21 wherein each notch has a generally rectangular cross section transverse to the axis of rotation.
- 23. The stationary assembly of claim 21 wherein each notch has a width and a depth relative to the face of its respective tooth, said depth being a function of the inverse of said width.
- 24. The stationary assembly of claim 21 wherein each notch has a width relative to the face of its respective tooth between approximately 60° (electrical) and 90° (electrical).
- 25. The stationary assembly of claim 21 wherein each notch is offset relative to a center line of its respective tooth thereby defining an asymmetrical air gap relative to the center line.
- 26. The stationary assembly of claim 21 wherein the stator core is generally cylindrical and has two axially facing ends and further comprising a reluctance section positioned axially adjacent one of the ends of the stator core.
- 27. The stationary assembly of clam 26 wherein the teeth extend radially from the stator core so that each tooth has two axially facing surfaces and wherein the reluctance section has a plurality of legs, each leg of the reluctance section corresponding to one of the teeth and being positioned axially adjacent one of the axially facing surfaces of its corresponding tooth.
- 28. The stationary assembly of claim 27 wherein a portion of each leg of the stator reluctance section is substantially coterminous with the pole body of its corresponding stator tooth.
- 29. The stationary assembly of claim 28 wherein another portion of each leg of the stator reluctance section extends into the air gap between the stator and the rotor at the notch of its corresponding stator tooth.
- 30. The stationary assembly of claim 26 wherein the stator includes a non-magnetic spacer section between the stator core and the stator reluctance section.
- 31. A washing machine, comprising in combination:a rotatable component mounted for rotation about an axis, the rotation of said rotatable component during operation of said washing machine causing a washing process to occur; and a single-phase brushless DC motor that is directly coupled to said rotatable component so that the rotational speed of a moveable component of said motor is substantially identical to the rotational speed of said rotatable component during operation of said washing machine, said motor including: a stator including a plurality of radially extending pole shoes, wherein each one of said pole shoes is generally T-shaped and comprises a first radial part of relatively narrow circumferential extent and a second radial part of relatively larger circumferential extent, the second radial parts of adjacent pole shoes being circumferentially spaced from each other by an intermediate gap, and wherein the circumferential extent of each of said intermediate gaps is small compared to the circumferential extent of each of said second radial parts, a winding including a plurality of coils disposed on said pole shoes, wherein each one of said coils is wound around a corresponding one of said pole shoes, a bearing and shaft assembly including a shaft aligned on an axis and bearings surrounding said shaft, a rotor that is rotatable about said axis via said bearings and includes a permanent magnetic ring affixed thereto such that a generally cylindrical air gap is defined between adjacent surfaces of said pole shoes and said permanent magnetic ring, a rotor position detector that generates an output signal that is generally representative of the position of said rotor with respect to said stator, wherein changes of state of said output signal are in a fixed relationship with zero crossing points of the back EMF generated by the rotation of the rotor with respect to the stator, and control circuit that is electrically connected to said rotor position detector and receives said output signal, said control circuit selectively energizing said coils to cause said coils to operatively interact with said permanent magnetic ring and thereby cause said shaft and said rotating component to rotate at substantially identical rotational speeds during operation of said washing machine.
- 32. The washing machine of claim 31 wherein said rotor position generates said output signal at least in part by sensing a flow of magnetic flux.
- 33. The washing machine of claim 32 wherein said rotor position detector generates said output signal at least in part by sensing a flow of magnetic flux directly from said permanent magnetic ring.
- 34. The washing machine of claim 33 wherein said rotor position detector comprises a Hall effect device.
- 35. The washing machine of claim 31 wherein said rotor position detector comprises an optical switch assembly.
- 36. The washing machine of claim 31 wherein the changes of state of said output signal substantially coincide with the zero crossing points of the back EMF generated by the rotation of the rotor with respect to the stator.
- 37. The washing machine of claim 31 wherein said shaft is rotatably mounted on said stator.
- 38. The washing machine of claim 31 wherein said permanent magnetic ring has a plurality of permanent magnetic poles defined therein, and wherein a pole gap is defined between each adjacent pair of said permanent magnetic poles.
- 39. The washing machine of claim 38 wherein said pole gaps are skewed.
- 40. The washing machine of claim 31 wherein said rotatable component comprises an agitating wheel.
- 41. The washing machine of claim 31 wherein the surface of said pole shoes adjacent said air gap are contoured.
- 42. The washing machine of claim 31 wherein said rotatable component comprises a rotatable washing container.
- 43. The washing machine of claim 31 wherein said pole shoes coaxially surround said permanent magnetic ring.
- 44. The washing machine of claim 31 wherein the second radial parts of each one of said pole shoes includes a notch, each one of said notches defining a modified air gap reluctivity between the stator and the rotor for parking the rotor in a rest position corresponding to a positive torque starting position.
- 45. The washing machine of claim 31 wherein all of said coils when energized are energized substantially simultaneously.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a continuation-in-part of commonly assigned application Ser. No. 08/678,524, filed Jul. 9, 1996 (pending), which is a continuation commonly assigned application Ser. No. 08/352,393, filed Dec. 8, 1994 (abandoned), which is a continuation of commonly assigned application Ser. No. 08/023,790, filed Feb. 22, 1993 (abandoned), the entire disclosures of which are incorporated herein by reference.
US Referenced Citations (68)
Foreign Referenced Citations (1)
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63-129852 |
Feb 1988 |
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Divisions (1)
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08/023790 |
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Continuation in Parts (1)
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Reissues (1)
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