Coil with twisted wires and stator assembly of a rotary electric machine
A rotary electric machine includes a stator having an open slot configuration and a plurality of stator poles with a coil positioned about each stator pole. Each coil has a plurality of electrically conductive wires defining a group of wires and the group of wires is wrapped generally around a stator pole to define a plurality of turns. At least a portion of the group of wires is twisted, and the portion of the group of wires has between approximately 1 and 5 twists per turn. A method of fabricating a stator assembly is also disclosed.
1. A method of fabricating a stator assembly of a rotary electric machine, comprising:
providing a stator having a plurality of stator poles;
forming a plurality of coils with each coil including a generally symmetrical cross-section by:
supplying a plurality of electrically conductive wires to define a group of wires;
twisting the group of wires at a predetermined rate;
wrapping the group of wires a predetermined number of turns to form a coil; and
the step of twisting the group of wires including twisting the group of wires along an entire length of each turn between approximately 1 and 5 twists per turn of the coil, and each electrically conductive wire of each turn being laterally movable relative to others of the electrically conductive wires of the turn along at least a portion thereof;
mounting each coil around a single stator pole including laterally moving at least some of the electrically conductive wires of each turn to modify the coils so as to form a generally asymmetrical cross-section across a portion thereof.
2. The method of claim 1 , further including providing a fixture, the wrapping step further includes wrapping the group of wires around the fixture, and removing the coil from the fixture.
3. The method of claim 1 , further including laterally moving at least a portion of at least some of the plurality of the electrically conductive wires of each turn relative to other electrically conductive wires of the turn while mounting the coil on its respective stator pole.
4. The method of claim 1 , wherein each coil has a pair of major sides and a pair of minor sides, each minor side interconnecting the pair of major sides, and the portions of the electrically conductive wires being laterally movable are along the major sides of the coil and, upon mounting each coil around the single stator pole, moving the portions of the electrically conductive wires so that they are no longer laterally movable.
5. The method of claim 1 , wherein the stator includes a plurality of stator slots, each stator slot being positioned between a pair of the stator poles, and wherein the mounting step includes positioning the electrically conductive wires of each coil within each slot to generally eliminate uniform voids between adjacent turns of the group of wires along a cross-section of each coil across each stator slot.
6. The method of claim 1 , wherein the mounting step includes sliding each coil onto its respective stator pole.
7. A method of fabricating a stator assembly of a rotary electric machine, comprising:
providing a stator having a plurality of stator poles;
forming a plurality of coils, each coil having a generally symmetrical cross-section, by:
supplying a plurality of electrically conductive wires to define a group of wires;
twisting the group of wires at a predetermined rate;
wrapping the group of wires a predetermined number of turns to form a coil; and
the steps of twisting the group of wires and wrapping the groups of wires causing each electrically conductive wire of each turn to be laterally movable relative to others of the electrically conductive wires of the turn along at least a portion thereof; and
mounting each coil on a stator pole, the step of mounting each coil including laterally moving at least some of the electrically conductive wires of each turn to modify the coils so as to form a generally asymmetrical cross-section across a portion thereof.
8. The method of claim 7 , wherein the twisting step further includes twisting the group of wires between approximately 1 and 5 twists per turn of the coil.
9. The method of claim 7 , further including providing a fixture, the wrapping step further includes wrapping the group of wires around the fixture, and removing the coil from the fixture.
10. The method of claim 7 , further including laterally moving at least a portion of at least some of the plurality of the electrically conductive wires of each turn relative to other electrically conductive wires of the turn while mounting the coil on its respective stator pole.
11. The method of claim 7 , wherein the step of laterally moving at least some of the conductive wires of each turn includes creating a cross section along a portion of each turn having a non-uniform array of electrically conductive wires.
12. The method of claim 7 , wherein each coil has a pair of major sides and a pair of minor sides, each minor side interconnecting the pair of major sides, and the portions of the electrically conductive wires being laterally movable are along the major sides of the coil and, upon mounting each coil on the stator pole, moving the portions of the electrically conductive wires so they are no longer laterally movable.
13. The method of claim 7 , wherein the stator includes a plurality of stator slots, each stator slot being positioned between a pair of the stator poles, and wherein the mounting step includes positioning the electrically conductive wires of each coil within each slot to generally eliminate uniform voids between adjacent turns of the group of wires along a cross-section of each coil across each stator slot.
14. A method of fabricating a stator assembly of a rotary electric machine, comprising:
providing an open slot stator having a plurality of stator poles;
forming a plurality of coils by:
supplying a plurality of electrically conductive wires to define a group of wires;
twisting the group of wires at a predetermined rate;
wrapping the group of wires a predetermined number of turns to form a coil, the coil having a central opening; and
the step of twisting the group of wires including twisting the group of wires along an entire length of each turn between approximately 1 and 5 per turn of the coil, and each electrically conductive wire of each turn being laterally movable relative to others of the electrically conductive wires of the turn along at least a portion thereof;
sliding each coil onto one of the plurality of stator poles, the stator pole being inserted through the central opening of the coil; and
laterally moving at least some of the electrically conductive wires of each turn relative to other electrically conductive wires of the turn and creating a plurality of groups of wires each having a different cross section along a portion thereof.
15. The method of claim 14 , wherein the step of laterally moving at least some of the electrically conductive wires occurs while sliding the coil onto one of the plurality of stator poles.
16. The method of claim 14 , further including laterally moving at least a portion of at least some of the plurality of the electrically conductive wires of each turn relative to other electrically conductive wires of the turn while sliding the coil onto its respective stator pole.
17. The method of claim 14 , wherein each coil has a pair of major sides and a pair of minor sides, each minor side interconnecting the pair of major sides, and the portions of the electrically conductive wires being laterally movable are along the major sides of the coil and, upon sliding each coil onto one of the plurality of stator poles, moving the portions of the electrically conductive wires so they are no longer laterally movable.