Claims
- 1. A stator core assembly for an electric machine of the type having a rotor assembly and a stator assembly, the stator assembly of the type having at least one phase and having an annular core defining an outside diameter, an inside diameter, and a plurality of radially projecting winding slots opening to the inside diameter but terminating short of the outside diameter, the core further defining a lead side and an opposite non-lead side, the stator core assembly further comprising:
a) two continuous electrical conductors per phase designated as conductor A and conductor B and being positioned into a predetermined pitch of the winding slots, and extending from the lead side and non-lead side of the core, b) the conductors positioned into the winding slots where:
n=number of phases of the stator core assembly, m=number of the winding slots in the stator core, with the winding slots numbered 1 through m, L=number of layers of the conductors A and B in the winding slots, wherein a layer is defined as a portion of conductors A and B which are interleaved into two adjacent radial portions of the winding slots for one substantial revolution around the core, c) a first lead of conductor A being located on one axial end of the core, thereby defining the lead side and extending from the outermost radial portion of slot number 1, d) a first lead of conductor B being located on the lead side and extending from the outermost radial portion of slot number n+1, e) conductor A extends circumferentially forward and is located into the slot number n+1 thereby forming an end loop on the non-lead side end and is radially shifted inwardly from conductor B and lying in the second outermost radial portion of slot number n+1, f) conductor A further extends circumferentially forward and is located into the slot number 2n+1 thereby forming an end loop on the lead side end and is radially shifted outward and lying in the outermost radial portion of slot number 2n+1, g) conductor B extends circumferentially forward and is located in the slot number 2n+1 thereby forming an end loop on the non-lead side end and is radially shifted inward from conductor A and is lying in the second outermost radial portion of slot number 2n+1, h) conductor B extends circumferentially forward and is located in the slot number 3n+1 thereby forming an end loop on the lead side end and is radially shifted outward from conductor A and is lying in the outermost radial portion of slot number 3n+1, i) conductors A and B continue to extend circumferentially forward around the core located in every Zn+1 slot, wherein Z is a whole number from 0 through m/n−1, alternating between outermost and second outermost portions of the slots until conductor A is located in slot number m+1−n and conductor B is located in slot number 1, thereby completing a first layer K1, wherein K designates each layer from 1 through L, j) conductor A further extends circumferentially forward from slot number m+1−n and is located in slot number 1 and is radially shifted inward and lying in the third outermost radial portion of the slot, k) conductor B further extends circumferentially forward from slot number 1 and is located in slot number n+1 and is radially shifted inward and lying in the third outermost radial portion of the slot, l) the pattern of conductors A and B continues as described in e) through k) is repeated for each additional layer K except the conductors alternate between 2K−1 and 2K outermost portions of the slots for e) through i) and 2K+1 outermost portion of the slot for j) and k), and deleting steps j) and k) for the innermost layer K=L.
- 2. A stator core assembly for an electric machine according to claim 1 wherein conductor A terminates as a lead in the innermost portion of slot number m+1−n and conductor B terminates as a lead in the innermost portion of slot number 1.
- 3. A stator core assembly for an electric machine according to claim 1 wherein the pattern of conductors A and B is repeated for each phase of the stator assembly and each phase is shifted circumferentially forward by one slot with respect to the previous phase.
- 4. A stator core assembly for an electric machine according to claim 3 wherein the conductors have a substantially rectangular cross-sectional shape.
- 5. A stator core assembly for an electric machine according to claim 3 wherein the conductors have a substantially square cross-sectional shape.
- 6. A stator core assembly for an electric machine according to claim 3 wherein the conductors have a substantially elliptical cross-sectional shape.
- 7. A stator core assembly for an electric machine according to claim 3 wherein the conductors, including any insulation on the conductors, have a width of a dimension to be closely received by the winding slots, including any insulation on the slots.
- 8. A stator core assembly for an electric machine according to claim 3 wherein n≧1.
- 9. A stator core assembly for an electric machine according to claim 3 wherein n=6.
- 10. A stator core assembly for an electric machine according to claim 3 wherein L=3.
- 11. A stator core assembly for an electric machine according to claim 3 wherein the two conductors A and B are series connected.
- 12. A stator core assembly for an electric machine according to claim 3 wherein the two conductors A and B are parallel connected.
- 13. A stator core assembly for an electric machine according to claim 3 wherein the end loops of the conductors on the lead and non-lead side ends are twisted; they axially extend away from the core, circumferentially shift to a first position, shift radially at least one conductor radial width to a second position, lower back toward the core and circumferentially shift toward and enter the next predetermined slot.
- 14. A stator core assembly for an electric machine according to claim 3 wherein all end loops on the non-lead side shift radially inward and circumferentially forward and all end loops on the lead side, except the end loops in the radial shift areas, shift radially outward and circumferentially forward, and within the radial shift areas between each layer, one end loop of conductor A and one end loop of conductor B on the lead side for every phase shift radially inward and circumferentially forward.
- 15. A stator core assembly for an electric machine according to claim 3 wherein the conductors are aligned in one radial row within each slot.
- 16. A stator core assembly for an electric machine of the type having a rotor assembly and a stator assembly, the stator assembly of the type having at least one phase and having an annular core defining an outside diameter, an inside diameter, and a plurality of radially projecting winding slots opening to the inside diameter but terminating short of the outside diameter, the stator core assembly further comprising:
a) two continuous electrical conductors per phase designated as conductor A and conductor B and being positioned into a predetermined pitch of the winding slots, and extending as end loops from both sides of the core, b) wherein all end loops on one side of the core, shift radially inward and circumferentially forward, and all end loops on the opposite side of the core, that are not within the radial shift areas, shift radially outward and circumferentially forward, and all end loops on the opposite side of the core that are within the radial shift areas, between the layers, one end loop of conductor A and one end loop of conductor B, for each phase, shift radially inward and circumferentially forward.
- 17. A stator core assembly for an electric machine according to claim 16 wherein the conductors are aligned in one radial row in each slot.
- 18. A stator core assembly for an electric machine according to claim 17 wherein the two conductors alternate radial positions within each slot.
- 19. A stator core assembly for an electric machine according to claim 18 wherein for each phase, the conductors A and B consist of multiple layers, wherein for each layer K, the conductors alternate between a 2K−1 and 2K outermost portions of the slot.
- 20. A stator core assembly for an electric machine of the type having a rotor assembly and a stator assembly, the stator assembly of the type having at least one phase and having an annular core defining an outside diameter, an inside diameter, and a plurality of radially projecting winding slots opening to the inside diameter but terminating short of the outside diameter, the stator core assembly further comprising:
a) two continuous electrical conductors per phase designated as conductor A and conductor B and being positioned into a predetermined pitch of the winding slots, and extending as end loops from both sides of the core. b) conductors aligned in one radial row in each slot. c) wherein for each phase, the conductors A and B traverse around the core in layers, alternating radial slot portions with respect to each other, except within the radial shift areas between the layers, one conductor will lie radially inward of the other conductor for three consecutive slots.
- 21. A stator core assembly for an electric machine of the type having a rotor assembly and a stator assembly, the stator assembly of the type having at least one phase and having an annular core defining an outside diameter, an inside diameter, and a plurality of radially projecting winding slots opening to the inside diameter but terminating short of the outside diameter, the core further defining a lead side and an opposite non-lead side, the stator core assembly further comprising:
a) two continuous electrical conductors per phase designated as conductor A and conductor B and being positioned into a predetermined pitch of the winding slots, and extending from the lead side and non-lead side of the core. b) each phase comprised of multiple layers wherein the layers are aligned radially with respect to each other, and c) the conductors aligned in one radial row in each slot.
- 22. A method of forming a stator core assembly for an electric machine of the type having a rotor assembly and a stator assembly, the stator assembly of the type having an annular core defining an outside diameter, an inside diameter, and a plurality of radially projecting winding slots opening to the inside diameter but terminating short of the outside diameter, the core further defining a lead side and an opposite non-lead side, the method comprising the steps of:
a) providing two electrical conductors designated as conductor A and conductor B, b) winding the conductors into the winding slots where:
n=number of phases of the stator core assembly, m=number of the winding slots in the stator core, with the winding slots numbered 1 through m, L=number of radial layers of the conductors A and B in the winding slots, wherein L=1 is defined as a layer where conductors A and B are interleaved in the first and second outermost portions of the slots, L=2 is defined as a layer where conductor A and B are interleaved in the third and fourth outermost portions of the slots, and L=K is defined as a layer K where conductors A and B are interleaved in the 2K and 2K−1 outermost portions of the slots wherein K=1 for layer 1 which is the outermost layer and K=L being the innermost layer, by the following winding steps:
c) the winding including placing a first lead of conductor A into the slot number 1 with the conductor A first lead extending from the stator lead side end, d) the winding including placing a first lead of the conductor B into slot number n+1 with the conductor B first lead extending from the stator lead side end, e) the winding including shifting the conductor A to the slot number n+1 thereby forming an end loop on the non-lead side end and lying in the slot number n+1 radially shifted inwardly from the conductor B and located in the second outermost radial portion of the slot, f) the winding including shifting the conductor A to the slot number 2n+1 and lying in slot number 2n+1 radially shifted outward to lie in the outermost radial portion of the slot, g) the winding including shifting the conductor B to the slot number 2n+1 thereby forming an end loop on the non-lead side and lying in the slot number 2n+1 radially shifted inwardly from the conductor A and located in the second outermost radial portion of the slot, h) the winding including shifting the conductor B to the slot number 3n+1 and lying in slot number 3n+1 radially shifted outward to lie in the outermost radial portion of the slot, i) repeating winding steps e) through h) for every n+1 slot, through slot number m+1−n for conductor A, and slot number 1 for conductor B, thereby forming a first layer K=1, j) the winding including shifting the conductor A from slot M+1−n radially inward into the third outermost portion of slot number 1 and shifting the conductor B from slot number 1 radially inward into the third outermost portion of slot number n+1, k) repeating steps e) through j), thereby forming additional layers through L wherein the conductors A and B of each layer K will lie in 2K−1 and 2K outermost portions of the slot for e) through l) and in 2K+1 outermost portion of the slot for j) and k), and deleting step j) for the innermost layer K=L.
- 23. The method of forming a stator core assembly for an electric machine according to claim 22, further including:
completing the current phase winding by extending conductor A from the radial innermost portion of slot m+1−n on the lead side end, thereby defining a conductor A second lead, and extending conductor B from the radial innermost portion of slot 1 on the lead side, thereby defining a conductor B second lead.
- 24. The method of forming a stator core assembly for an electric machine according to claim 23, further including:
completing the stator winding by repeating winding steps c) through l) for each phase 2 through n, wherein each phase is shifted by one slot from the previous phase.
- 25. A method of forming a stator core assembly for an electric machine according to claim 22 wherein the conductors are of the type having a substantially rectangular cross-sectional shape.
- 26. A method of forming a stator core assembly for an electric machine according to claim 22 wherein the conductors are of the type having a substantially square cross-sectional shape.
- 27. A method of forming a stator core assembly for an electric machine according to claim 22 wherein the provided conductors, including any insulation on the conductors, have a width of a dimension to be closely received by the winding slots including any insulation on the slots.
- 28. A method of forming a stator core assembly for an electric machine according to claim 22 wherein n=3.
- 29. A method of forming a stator core assembly for an electric machine according to claim 22 wherein n=6.
- 30. A method of forming a stator core assembly for an electric machine according to claim 22 wherein L=3.
- 31. A method of forming a stator core assembly for an electric machine according to claim 22 wherein the two conductors A and B are series connected.
- 32. A method of forming a stator core assembly for an electric machine according to claim 22 wherein the two conductors A and B are parallel connected.
- 33. A method of forming a stator core assembly for an electric machine according to claim 22 wherein the two conductors A and B are formed to a shape to be placed into the winding slots before being placed into the winding slots.
- 34. A method of forming a stator core assembly for an electric machine according to claim 22 wherein the two conductors A and B are interleaved prior to the step of being placed into the winding slots.
- 35. A method of forming a stator core assembly for an electric machine according to claim 22 wherein the two conductors A and B are interleaved by alternating the front and rear positions in a predetermined pitch of slots of the two conductors, excluding three consecutive slots in each radial shift area, prior to the step of being placed into the winding slots, wherein at the radial shift areas, one conductor is placed in front of the other conductor for three consecutive slots.
- 36. A method of forming a stator core assembly for an electric machine according to claim 34 wherein the layers of the conductors are wound in a linear fashion such that layer 2 is aligned and continuous with layer 1, layer 3 is aligned and continuous with layer 2, and layer K+1 is aligned and continuous with layer K, wherein the layers are placed into the slots beginning with layer number 1 toward a rear portion of the slots and is inserted in one rotational direction such that layer 2 lays radially inward of layer 1, layer 3 lays radially inward of layer 2, and layer K+1 lays radially inward of layer K.
- 37. A method of forming a stator core assembly for an electric machine according to claim 35 wherein the end loops of conductors A and B of each phase are twisted to interleave conductors A and B of all the phases prior to insertion into the core.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present invention is a continuation-in-part application corresponding to U.S. patent application Ser. No. 10/056,890 filed on Jan. 24, 2002, entitled “Automobile Alternator Stator Assembly With Rectangular Continuous Wave”.
Continuation in Parts (1)
|
Number |
Date |
Country |
| Parent |
10056890 |
Jan 2002 |
US |
| Child |
10265529 |
Oct 2002 |
US |