Electric machine including a dielectric layer arranged between a stator and a housing
A multi-phase, multi-pole permanent magnet motor/generator (electric machine) is described, and includes a rotor disposed on a rotor shaft within an annular stator, which may be arranged in a housing with an interposed insulator system. The insulator system is arranged to mitigate and isolate common mode currents in a shaft bearing system by insulating the stator core from an electrical ground return path of an electrical driving source. The electric machine includes a rotor rotatably disposed within a stator, and the stator is secured to the housing with the insulator system interposed therebetween.
1 . A drive unit for a vehicle, comprising:
an electric machine arranged in a housing; and
an insulator system;
wherein the insulator system includes a plurality of dielectric fastener encapsulators;
wherein the electric machine includes a rotor rotatably disposed within a stator;
wherein the stator has a plurality of mounting bosses;
wherein the stator is secured to the housing with the insulator system interposed therebetween;
wherein the stator is secured to the housing via a plurality of fasteners that are arranged in the plurality of mounting bosses and coupled to the housing, wherein the plurality of fasteners secure the stator to the housing with the plurality of dielectric fastener encapsulators interposed therebetween; and
wherein the rotor is coupled to a driveline.
2 . The drive unit of claim 1 , wherein the insulator system being interposed between the stator and the housing comprises the insulator system being a dielectric layer that is arranged between the stator and the housing, wherein the dielectric layer electrically isolates the stator from the housing.
3 . The drive unit of claim 2 , wherein the dielectric layer that is arranged between the stator and the housing is fabricated from a polymeric material.
4 . The drive unit of claim 2 , wherein the dielectric layer that is arranged between the stator and the housing has an impedance that is greater than a predetermined minimum resistance threshold, wherein the magnitude of the predetermined minimum resistance threshold is selected to minimize a common mode electrical power transferred through the bearing system.
5 . The drive unit of claim 2 , wherein the dielectric layer that is arranged between the stator and the housing has an impedance that is greater than a predetermined minimum resistance threshold at a predefined excitation frequency, wherein the magnitude of the predetermined minimum resistance threshold is selected to minimize a common mode electrical power transferred through the bearing system.
6 . The drive unit of claim 2 , wherein the dielectric layer that is arranged between the stator and the housing has an impedance that is greater than a predetermined minimum resistance threshold, wherein the magnitude of the predetermined minimum resistance threshold is greater than a hard short.
7 . The drive unit of claim 2 , wherein the dielectric layer arranged between the stator and the housing comprises a dielectric spacer, wherein the dielectric spacer is interposed between the stator and the housing.
8 . The drive unit of claim 1 , wherein:
the stator includes a plurality of lamination plates arranged in a stack;
the plurality of lamination plates arranged in the stack have a first end and a second end;
the insulator system includes a dielectric spacer; and
the stator is secured to the housing with the insulator system interposed therebetween, including the first end of the plurality of lamination plates that are arranged in the stack being secured to the housing with the dielectric spacer being interposed therebetween.
9 . The drive unit of claim 1 , wherein the rotor being coupled to the driveline comprises the rotor being coupled to a rotatable element of the driveline to transfer tractive torque to a drive wheel.
10 . An electric machine, the electric machine comprising:
a rotor, a stator, a housing, a bearing system, and an insulator system;
wherein the stator and the bearing system are arranged within the housing;
wherein the rotor is rotatably arranged within the stator employing the bearing system;
wherein the stator includes a stator core and a plurality of field windings;
wherein the insulator system is interposed between the stator core and the housing;
wherein the stator has a plurality of mounting bosses;
wherein the stator is secured to the housing via a plurality of fasteners that are arranged in the plurality of mounting bosses and coupled to the housing;
wherein the insulator system includes a plurality of dielectric fastener encapsulators;
wherein the stator is secured to the housing via the plurality of fasteners; and
wherein the plurality of fasteners secure the stator to the housing with the plurality of dielectric fastener encapsulators interposed therebetween.
11 . The electric machine of claim 10 , wherein the insulator system being interposed between the stator core and the housing comprises the insulator system being a dielectric layer that is arranged between the stator core and the housing, wherein the dielectric layer electrically isolates the stator core from the housing.
12 . The electric machine of claim 11 , wherein the dielectric layer that is arranged between the stator core and the housing is fabricated from a polymeric material.
13 . The electric machine of claim 11 , wherein the dielectric layer that is arranged between the stator core and the housing has an impedance that is greater than a predetermined minimum resistance threshold, wherein the magnitude of the predetermined minimum resistance threshold minimizes a common mode electrical power transferred through the bearing system.
14 . The electric machine of claim 11 , wherein the dielectric layer arranged between the stator core and the housing comprises a dielectric spacer, wherein the dielectric spacer is interposed between the stator core and the housing.
15 . The electric machine of claim 10 , wherein:
the insulator system includes a dielectric spacer; and
the stator core is secured to the housing with the dielectric spacer interposed therebetween.
16 . The electric machine of claim 10 , wherein the electric machine comprises a multiphase permanent magnet electric machine.
17 . A method for assembling a permanent magnet electric machine, the method comprising:
interposing a dielectric insulator system between a stator core and a housing of the permanent magnet electric machine prior to inserting the stator core into the housing;
interposing a dielectric sleeve between the housing and the stator core;
inserting the stator core into the housing, including interposing a dielectric sleeve between the stator core and the housing;
interposing a dielectric spacer between the stator core and the housing
assembling a plurality of dielectric fastener encapsulators into the housing;
securing the stator core onto the housing employing a plurality of fasteners, wherein the plurality of dielectric fastener encapsulators are interposed between the plurality of fasteners and the housing; and then
removing the dielectric sleeve from between the rotor and the stator core.
18 . The method of claim 17 , wherein interposing the dielectric insulator system between the stator core and the housing prior to inserting the stator core into the housing comprises interposing a dielectric spacer between the stator core and the housing.