IP Library › Granted Patent US 12,749,935
Granted Patent B2
US 12,749,935 · App. 18/609,135 · Granted Sep 29, 2026

Axial flux electric motor with rotor cooling

Inventors: Jian Yao (Shanghai, CN); Chengwu Duan (Shanghai, CN); Vincent Fedida (Shanghai, CN); SeungHwan Keum (Northville, MI); Alan G. Holmes (Clarkston, MI)
Assignee: GM Global Technology Operations LLC
H02K1/32H02K1/24H02K1/2795H02K5/20H02K11/25H02K16/02
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Quick Facts
Patent No.
US 12,749,935
App. No.
18/609,135
Granted
Sep 29, 2026
Kind
B2
Abstract

A cooled axial flux electric motor includes a rotationally-fixed stator defining a rotational axis and having a plurality of conductive stator magnetic poles arranged radially about the axis. The motor also includes a rotor spaced axially from one side from the stator and rotatably mounted coaxially with the rotational axis and defined by inside and outside diameters. The rotor has a first exterior surface facing the stator and a second exterior surface arranged opposite the first exterior surface. A ferromagnetic rotor core defines the rotor second exterior surface. The rotor also includes alternating south and north pole permanent magnets (PMs) arranged on the rotor core symmetrically around the axis and facing the stator. The rotor additionally includes channels extending radially outwardly across the rotor and configured to direct a coolant, via centrifugal force, from the inside diameter toward the outside diameter as the rotor rotates about the axis.

Claims (55)

1 . A cooled axial flux electric motor comprising:

a rotationally-fixed stator defining a rotational axis and having a plurality of conductive stator magnetic poles arranged radially about the rotational axis;

a rotor spaced axially from one side from the stator and rotatably mounted coaxially with the rotational axis, defined by an inside diameter and an outside diameter, and having a rotor first exterior surface facing the stator and a rotor second exterior surface arranged opposite the rotor first exterior surface, wherein the rotor includes:

a ferromagnetic rotor core defining the rotor second exterior surface and a plurality of alternating south and north pole permanent magnets (PMs) arranged on the ferromagnetic rotor core symmetrically around the rotational axis and facing the stator; and

a plurality of channels extending radially outwardly across the rotor and configured to direct a coolant, via centrifugal force, from the inside diameter toward the outside diameter as the rotor rotates about the rotational axis; and

wherein:

the ferromagnetic rotor core includes a plurality of core saliencies extending to the rotor first exterior surface;

each pair of alternating south and north pole PMs of the rotor includes one of the core saliencies arranged therebetween; and

at least one of the plurality of channels extends on the rotor first exterior surface between one of the PMs and one of the saliencies.

2 . The cooled axial flux electric motor according to claim 1 , wherein at least one of the plurality of channels extends on the rotor first exterior surface across each of the PMs.

3 . The cooled axial flux electric motor according to claim 1 , wherein at least one of the plurality of channels extends on the rotor second exterior surface.

4 . The cooled axial flux electric motor according to claim 1 , wherein the plurality of channels defines a radially disposed channel pattern, and wherein the channel pattern is one of a straight, inclined, and spiral relative to the rotational axis.

5 . The cooled axial flux electric motor according to claim 1 , further comprising a plurality of projections arranged on the outside diameter between the first and second rotor exterior surfaces.

6 . The cooled axial flux electric motor according to claim 5 , wherein each of the projections has a curved fan blade shape configured to shed the coolant from the outside diameter of the rotor.

7 . The cooled axial flux electric motor according to claim 1 , further comprising a rotor shaft fixed to the rotor and mounted rotationally inside the stator coaxially with the rotational axis, wherein the rotor shaft defines a fluid passage configured to supply the coolant to the plurality of channels.

8 . The cooled axial flux electric motor according to claim 7 , further comprising a housing defining a fluid sump configured to collect the coolant after the coolant has passed through the plurality of channels and return the coolant to the fluid sump via gravity.

9 . The cooled axial flux electric motor according to claim 8 , wherein each of the fluid sump and the fluid passage in the rotor shaft is in fluid communication with a fluid pump configured to supply the coolant from the fluid sump to the fluid passage in the rotor shaft.

10 . The cooled axial flux electric motor according to claim 1 , wherein at least one of the plurality of channels extends across the ferromagnetic rotor core on the rotor second exterior surface or inside the ferromagnetic rotor core.

11 . A method of cooling an axial flux electric motor, the method comprising:

obtaining, via an electronic controller, data indicative of an operating point of the axial flux electric motor, wherein the axial flux electric motor includes:

a rotationally-fixed stator defining a rotational axis and having a plurality of conductive stator magnetic poles arranged radially about the rotational axis;

a rotor spaced axially from one side from the stator and rotatably mounted coaxially with the rotational axis, defined by an inside diameter and an outside diameter, and having a rotor first exterior surface facing the stator and a rotor second exterior surface arranged opposite the rotor first exterior surface, wherein:

the rotor includes a ferromagnetic rotor core defining the rotor second exterior surface and a plurality of alternating south and north pole permanent magnets (PMs) arranged on the ferromagnetic rotor core symmetrically around the rotational axis and facing the stator;

the ferromagnetic rotor core includes a plurality of core saliencies extending to the rotor first exterior surface;

each pair of alternating south and north pole PMs of the rotor includes one of the core saliencies arranged therebetween;

at least one of the plurality of channels extends on the rotor first exterior surface between one of the PMs and one of the saliencies;

a plurality of channels extending radially outwardly across the rotor and configured to direct a coolant, via centrifugal force, from the inside diameter toward the outside diameter as the rotor rotates about the rotational axis; and

the obtained data includes a phase current, rotational speed, temperature, and a flow rate of the coolant in the axial flux electric motor;

identifying, via the electronic controller, the operating point on an operation map of the axial flux electric motor;

comparing, via the electronic controller, the obtained temperature to a predicted temperature corresponding to the operating point; and

commanding, via the electronic controller, a predetermined coolant flow rate through the plurality of channels when the obtained temperature is greater than the predicted temperature to cool the axial flux electric motor.

12 . The method according to claim 11 , further comprising assessing, via the electronic controller, whether the axial flux electric motor is operating at a high PM loss operating point corresponding to the operation map, wherein commanding the predetermined coolant flow rate through the plurality of channels when the axial flux electric motor is operating at the high PM loss operating point.

13 . The method according to claim 11 , wherein the axial flux electric motor additionally includes:

a rotor shaft fixed to the rotor, mounted rotationally inside the stator coaxially with the rotational axis, and defines a fluid passage configured to supply the coolant to the plurality of channels; and

a housing defining a fluid sump configured to collect the coolant after the coolant has passed through the plurality of channels and return the coolant to the fluid sump via gravity;

the method further comprising operating, via the electronic controller, a fluid pump to supply the coolant from the fluid sump to the fluid passage in the rotor shaft.

14 . The method according to claim 11 , wherein:

the rotor includes a ferromagnetic rotor core and a plurality of alternating south and north pole permanent magnets (PMs) arranged on the rotor first exterior surface symmetrically around the rotational axis; and

at least one of the plurality of channels extends on the rotor first exterior surface across each of the PMs.

15 . The method according to claim 11 , wherein at least one of the plurality of channels extends on the rotor second exterior surface.

16 . The method according to claim 11 , wherein the plurality of channels defines a radially disposed channel pattern, and wherein the channel pattern is one of a straight, inclined, and spiral relative to the rotational axis.

17 . The method according to claim 11 , further comprising a plurality of projections arranged on the outside diameter between the first and second rotor exterior surfaces.

18 . The method according to claim 17 , wherein each of the projections has a curved fan blade shape configured to shed the coolant from the outside diameter of the rotor.

19 . The method according to claim 11 , wherein at least one of the plurality of channels extends across the ferromagnetic rotor core on the rotor second exterior surface or inside the ferromagnetic rotor core.

20 . A cooled axial flux electric motor comprising:

a rotationally-fixed stator defining a rotational axis and having a plurality of conductive stator magnetic poles arranged radially about the rotational axis;

a rotor spaced axially from one side of the stator and rotatably mounted coaxially with the rotational axis, defined by an inside diameter and an outside diameter, and having a rotor first exterior surface facing the stator and a rotor second exterior surface arranged opposite the rotor first exterior surface, wherein the rotor includes:

a ferromagnetic rotor core defining the rotor second exterior surface and a plurality of alternating south and north pole permanent magnets (PMs) arranged on the ferromagnetic rotor core symmetrically around the rotational axis and facing the stator; and

a plurality of channels extending radially outwardly across the rotor and configured to direct a coolant, via centrifugal force, from the inside diameter toward the outside diameter as the rotor rotates about the rotational axis; and

wherein:

the ferromagnetic rotor core includes a plurality of core saliencies extending to the rotor first exterior surface;

each pair of alternating south and north pole PMs of the rotor includes one of the core saliencies arranged therebetween; and

at least one of the plurality of channels extends on the rotor first exterior surface between one of the PMs and one of the saliencies;

a rotor shaft fixed to the rotor and mounted rotationally inside the stator coaxially with the rotational axis, wherein the rotor shaft defines a fluid passage configured to supply the coolant to the plurality of channels; and

a housing defining a fluid sump configured to collect the coolant after the coolant has passed through the plurality of channels and return the coolant to the fluid sump via gravity.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 19, 2024
From: YAO, JIAN; DUAN, CHENGWU; FEDIDA, VINCENT; KEUM, SEUNGHWAN; HOLMES, ALAN G.
To: GM GLOBAL TECHNOLOGY OPERATIONS LLC
Reel/Frame 066820/0784 →
Priority Claims (1)
CN 202311161314.5 · Sep 8, 2023 · national
Continuity (1)
Related Publication 20250088054A1 · Mar 13, 2025
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