IP Library › Granted Patent US 12,646,986
Granted Patent B2
US 12,646,986 · App. 18/637,938 · Granted Jun 2, 2026

Electric motor with asymmetrical permanent magnet layout and inter-polar bridge inbetween magnets

Inventor: Vincent Fedida (Shanghai, CN)
Assignee: GM GLOBAL TECHNOLOGY OPERATIONS LLC
H02K1/276B60L50/60H02K21/14
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Quick Facts
Patent No.
US 12,646,986
App. No.
18/637,938
Granted
Jun 2, 2026
Kind
B2
Abstract

An electric motor includes a stator and a rotor. The rotor includes a rotor core and a plurality of permanent magnets each disposed in one of the plurality of rotor cavities. The rotor core includes a plurality of polar pieces arranged annularly about the rotational axis. The plurality of permanent magnets includes a first permanent magnet and a second permanent magnet. The first permanent magnet is disposed inside the first rotor cavity. The second permanent magnet is disposed in the second rotor cavity. The rotor core includes an intra-polar bridge in each of the plurality of polar pieces. The first permanent magnet has a first surface area. The second permanent magnet has a second surface area. The second surface area is greater than the first surface area.

Claims (45)

1 . An electric motor, comprising:

a stator including a plurality of electrical conductors; and

a rotor concentrically disposed in relation to the stator, wherein the rotor is rotatable relative to the stator about a rotational axis, the rotor is spaced apart from the stator to define an air gap between the stator and the rotor, and the rotor includes:

a rotor core defining an outermost rotor surface and an innermost rotor surface opposite the innermost rotor surface, wherein the rotor core includes a plurality of polar pieces arranged annularly about the rotational axis, at least one of the plurality of polar pieces defines a plurality of rotor cavities, and the plurality of rotor cavities includes a first rotor cavity and a second rotor cavity spaced apart from each other; and

a plurality of permanent magnets each disposed in one of the plurality of rotor cavities, the plurality of permanent magnets includes a first permanent magnet and a second permanent magnet, the first permanent magnet is disposed inside the first rotor cavity, and the second permanent magnet is disposed in the second rotor cavity;

wherein the rotor core includes an intra-polar bridge in each of the each of the plurality of polar pieces, the intra-polar bridge separates the first rotor cavity from the second rotor cavity, the first permanent magnet has a first surface area, the second permanent magnet has a second surface area, and the second surface area is greater than the first surface area,

wherein the first permanent magnet has a first length and a first width, the second permanent magnet has a second length and a second width, the first width is equal to the second width, and the second length is greater than the second length, and

wherein the intra-polar bridge has a bridge width that extends from the first rotor cavity to the second rotor cavity, the first length of the first permanent magnet is greater than the bridge width, and the second length of the second permanent magnet is greater than the bridge width.

2 . The electric motor of claim 1 , wherein the first permanent magnet and the second permanent magnet each have a rectangular shape.

3 . The electric motor of claim 1 , wherein the intra-polar bridge is positioned closer to the outermost rotor surface than the innermost rotor surface.

4 . The electric motor of claim 1 , wherein the intra-polar bridge has a bridge length, the first permanent magnet has a first linear wall and a second linear wall opposite the first linear wall, the first width extends from the first linear wall to the second linear wall, the first linear wall is closer to the outermost rotor surface than the second linear wall, the second linear wall is closer to the innermost rotor surface than the first linear wall, the second permanent magnet has a first linear boundary and a second linear boundary opposite the first linear boundary, the second width extends from the first linear boundary to the second linear boundary, the first linear boundary is closer to the outermost rotor surface than the second linear boundary, the second linear boundary is closer to the innermost rotor surface than the first linear boundary, the bridge length extends the first linear wall of the first permanent magnet to the second linear boundary of the second permanent magnet along a bridge direction, and the second width of the second permanent magnet is greater than the bridge length.

5 . The electric motor of claim 4 , wherein the first linear boundary is spaced apart from the second linear boundary along the bridge direction, the second width of the second permanent magnet is defined from the first linear boundary to the second linear boundary along the bridge direction, and the bridge length is 0.75 times the second width.

6 . The electric motor of claim 5 , wherein the bridge length is less than the first width of the first permanent magnet.

7 . The electric motor of claim 5 , wherein the first permanent magnet has a third linear wall and a fourth linear wall, the first length of the first permanent magnet extends from the third linear wall to the fourth linear wall, the first permanent magnet defines a first axis extending through the third linear wall and the fourth linear wall, the first axis intersects the third linear wall at a perpendicular angle, the first axis intersects the fourth linear wall at a perpendicular angle, the second permanent magnet has a third linear boundary and a fourth linear boundary, the second length extends from the third linear boundary to the fourth linear boundary, the second permanent magnet defines a second axis extending from the third linear boundary to the fourth linear boundary, the second axis intersects the third linear boundary at a perpendicular angle, the second axis intersects the fourth linear boundary at a perpendicular angle, an angle is defined from the first axis to the second axis, the angle is oblique, and the angle is greater than ten degrees, the angle is less than ninety degrees.

8 . A propulsion system for a vehicle, comprising:

a battery;

an electric motor electrically connected to the battery, wherein the electric motor includes:

a stator including a plurality of electrical conductors; and

a rotor concentrically disposed in relation to the stator, wherein the rotor is rotatable relative to the stator about a rotational axis, the rotor is spaced apart from the stator to define an air gap between the stator and the rotor, and the rotor includes:

a rotor core defining an outermost rotor surface and an innermost rotor surface opposite the innermost rotor surface, wherein the rotor core includes a plurality of polar pieces arranged annularly about the rotational axis, at least one of the plurality of polar pieces defines a plurality of rotor cavities, and the plurality of rotor cavities includes a first rotor cavity and a second rotor cavity spaced apart from each other; and

a plurality of permanent magnets each disposed in one of the plurality of rotor cavities, the plurality of permanent magnets includes a first permanent magnet and a second permanent magnet, the first permanent magnet is disposed inside the first rotor cavity, and the second permanent magnet is disposed in the second rotor cavity;

wherein the rotor core includes an intra-polar bridge in each of the each of the plurality of polar pieces, and the first permanent magnet has a first surface area, the second permanent magnet has a second surface area, and the second surface area is greater than the first surface area,

wherein the first permanent magnet has a first length and a first width, the second permanent magnet has a second length and a second width, the first width is equal to the second width, and the second length is greater than the second length, and

wherein the intra-polar bridge has a bridge width that extends from the first rotor cavity to the second rotor cavity, the first length of the first permanent magnet is greater than the bridge width, and the second length of the second permanent magnet is greater than the bridge width, and the second length is double the first length.

9 . The propulsion system of claim 8 , wherein the first permanent magnet and the second permanent magnet each have a rectangular shape.

10 . The propulsion system of claim 8 , wherein the intra-polar bridge is positioned closer to the outermost rotor surface than the innermost rotor surface.

11 . The propulsion system of claim 8 , wherein the intra-polar bridge has a bridge length, the first permanent magnet has a first linear wall and a second linear wall opposite the first linear wall, the first width extends from the first linear wall to the second linear wall, the first linear wall is closer to the outermost rotor surface than the second linear wall, the second linear wall is closer to the innermost rotor surface than the first linear wall, the second permanent magnet has a first linear boundary and a second linear boundary opposite the first linear boundary, the second width extends from the first linear boundary to the second linear boundary, the first linear boundary is closer to the outermost rotor surface than the second linear boundary, the second linear boundary is closer to the innermost rotor surface than the first linear boundary, the bridge length extends the first linear wall of the first permanent magnet to the second linear boundary of the second permanent magnet along a bridge direction, and the second width of the second permanent magnet is greater than the bridge length.

12 . The propulsion system of claim 11 , wherein the first linear boundary is spaced apart from the second linear boundary along the bridge direction, the second width of the second permanent magnet is defined from the first linear boundary to the second linear boundary along the bridge direction, and the first length is three times greater than the bridge width.

13 . The propulsion system of claim 12 , wherein the bridge length is less than the first width of the first permanent magnet.

14 . The propulsion system of claim 13 , wherein the first permanent magnet has a third linear wall and a fourth linear wall, the first length of the first permanent magnet extends from the third linear wall to the fourth linear wall, the first permanent magnet defines a first axis extending through the third linear wall and the fourth linear wall, the first axis intersects the third linear wall at a perpendicular angle, the first axis intersects the fourth linear wall at a perpendicular angle, the second permanent magnet has a third linear boundary and a fourth linear boundary, the second length extends from the third linear boundary to the fourth linear boundary, the second permanent magnet defines a second axis extending from the third linear boundary to the fourth linear boundary, the second axis intersects the third linear boundary at a perpendicular angle, the second axis intersects the fourth linear boundary at a perpendicular angle, an angle is defined from the first axis to the second axis, the angle is oblique, and the angle is fifteen degrees, the second surface area is double the first surface area.

15 . A vehicle, comprising:

a vehicle body;

an electric motor coupled to the vehicle body, wherein the electric motor includes:

a stator including a plurality of electrical conductors; and

a rotor concentrically disposed in relation to the stator, wherein the rotor is rotatable relative to the stator about a rotational axis, the rotor is spaced apart from the stator to define an air gap between the stator and the rotor, and the rotor includes:

a rotor core defining an outermost rotor surface and an innermost rotor surface opposite the innermost rotor surface, wherein the rotor core includes a plurality of polar pieces arranged annularly about the rotational axis, at least one of the plurality of polar pieces defines a plurality of rotor cavities, and the plurality of rotor cavities includes a first rotor cavity and a second rotor cavity spaced apart from each other; and

a plurality of permanent magnets each disposed in one of the plurality of rotor cavities, the plurality of permanent magnets includes a first permanent magnet and a second permanent magnet, the first permanent magnet is disposed inside the first rotor cavity, and the second permanent magnet is disposed in the second rotor cavity;

wherein the rotor core includes an intra-polar bridge in each of the each of the plurality of polar pieces, the intra-polar bridge separates the first rotor cavity from the second rotor cavity, the first permanent magnet has a first surface area, the second permanent magnet has a second surface area, and the second surface area is greater than the first surface area,

wherein the first permanent magnet has a first length and a first width, the second permanent magnet has a second length and a second width, the first width is equal to the second width, and the second length is greater than the second length, and

wherein the intra-polar bridge has a bridge width that extends from the first rotor cavity to the second rotor cavity, the first length of the first permanent magnet is greater than the bridge width, and the second length of the second permanent magnet is greater than the bridge width.

16 . The vehicle of claim 15 , wherein the first permanent magnet and the second permanent magnet each have a rectangular shape.

17 . The vehicle of claim 15 , wherein the intra-polar bridge is positioned closer to the outermost rotor surface than the innermost rotor surface.

18 . The vehicle of claim 15 , wherein the intra-polar bridge has a bridge length, the first permanent magnet has a first linear wall and a second linear wall opposite the first linear wall, the first width extends from the first linear wall to the second linear wall, the first linear wall is closer to the outermost rotor surface than the second linear wall, the second linear wall is closer to the innermost rotor surface than the first linear wall, the second permanent magnet has a first linear boundary and a second linear boundary opposite the first linear boundary, the second width extends from the first linear boundary to the second linear boundary, the first linear boundary is closer to the outermost rotor surface than the second linear boundary, the second linear boundary is closer to the innermost rotor surface than the first linear boundary, the bridge length extends the first linear wall of the first permanent magnet to the second linear boundary of the second permanent magnet along a bridge direction, and the second width of the second permanent magnet is greater than the bridge length.

19 . The vehicle of claim 18 , wherein the first linear boundary is spaced apart from the second linear boundary along the bridge direction, the second width of the second permanent magnet is defined from the first linear boundary to the second linear boundary along the bridge direction, and the second length is six times greater than the bridge width.

20 . The vehicle of claim 19 , wherein the bridge length is less than the first width of the first permanent magnet.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 18, 2024
From: FEDIDA, VINCENT
To: GM GLOBAL TECHNOLOGY OPERATIONS LLC
Reel/Frame 067148/0510 →
Priority Claims (1)
CN 202410436877.9 · Apr 11, 2024 · national
Continuity (1)
Related Publication 20250323540A1 · Oct 16, 2025
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