METHODS AND APPARATUS FOR A BAR-WOUND STATOR WITH PARALLEL CONNECTIONS
A bar-wound stator design with parallel connections is characterized by a shorter end turn length as compared to conventional stranded winding. The stator includes an inner winding set and an outer winding set provided within a plurality of slots, wherein the inner winding set is parallel to the outer winding set, and each winding set comprises multiple phases; and wherein the inner winding set and the outer winding set are staggered one slot within the plurality of slots.
1 . A bar wound stator comprising:
an inner winding set and an outer winding set provided within a plurality of slots,
wherein the inner winding set is parallel to the outer winding set, and each winding set comprises multiple phases; and
wherein the inner winding set and the outer winding set are staggered one slot within the plurality of slots.
2 . The bar wound stator of claim 1 , wherein each of the inner and outer winding sets includes a plurality of full-pitch hairpins, and each phase of each winding set includes at least two short pitch hairpins.
3 . The bar wound stator of claim 2 , wherein each winding set includes exactly two short pitch hairpins.
4 . The bar wound stator of claim 1 , wherein the bar wound stator has a stator end and a weld end, further including a plurality of jumper connections, a plurality of phase leads, and a neutral connection all located at the stator end.
5 . The bar wound stator of claim 1 , wherein the winding is characterized by four layers within each slot.
6 . The bar wound stator of claim 1 , wherein the multiple phases comprises three phases.
7 . A method of manufacturing an interior permanent magnet machine, the method comprising:
providing a stator having a plurality of slots;
providing an inner winding set and an outer winding set within the plurality of slots such that the inner winding set is parallel to the outer winding set, each winding set comprises multiple phases, and the inner winding set and the outer winding set are staggered one slot within the plurality of slots; and
placing the stator in magnetic interaction with a rotor.
8 . The method of claim 7 , wherein each of the inner and outer winding sets includes a plurality of full-pitch hairpins, and each phase of each winding set includes at least two short pitch hairpins.
9 . The method of claim 7 , wherein each winding set includes exactly two short pitch hairpins.
10 . The method of claim 7 , wherein the bar wound stator has a stator end and a weld end, further including a plurality of jumper connections, a plurality of phase leads, and a neutral connection all located at the stator end.
11 . The method of claim 7 , wherein the winding is characterized by four layers within each slot.
12 . The method of claim 7 , wherein the multiple phases comprises three phases.
13 . A traction motor configured to be used in connection with a vehicle, the traction motor comprising a rotor and a stator in magnetic interaction with each other, wherein the stator comprises a plurality of parallel windings within a plurality of slots carrying a plurality of phases, and wherein at least one of the windings is staggered one slot with respect to a second winding.
14 . The traction motor of claim 13 , wherein each of the inner and outer winding sets includes a plurality of full-pitch hairpins, and each phase of each winding set includes at least two short pitch hairpins.
15 . The traction motor of claim 14 , wherein each winding set includes exactly two short pitch hairpins.
16 . The traction motor of claim 13 , wherein the bar wound stator has a stator end and a weld end, further including a plurality of jumper connections, a plurality of phase leads, and a neutral connection all located at the stator end.
17 . The traction motor of claim 13 , wherein the winding is characterized by four layers within each slot.
18 . The traction motor of claim 13 , wherein the multiple phases comprises three phases.
19 . The traction motor of claim 13 , wherein:
the multiple phases comprises three phases;
there are four layers designated layer 1 , layer 2 , layer 3 , and layer 4 within each slot; and
layers 4 and 3 are shifted one slot with respect to layers 1 and 2 .
20 . The traction motor of claim 19 , wherein layers 2 and 3 are connected by a plurality of jumpers.