IP Library › Granted Patent US 12,640,608
Granted Patent B2
US 12,640,608 · App. 18/474,605 · Granted May 26, 2026

Radial flux electric motor with airgap cooling

Inventors: Xiaofeng Yang (Troy, MI); Peng Peng (Columbus, OH); Farzad Samie (Franklin, MI)
Assignee: GM Global Technology Operations LLC
H02K1/32H02K7/003H02K2201/03
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,640,608
App. No.
18/474,605
Granted
May 26, 2026
Kind
B2
Abstract

A radial flux electric motor includes a stator having a radially inner stator surface and a rotor mounted inside the stator. The rotor defines a rotational axis and has axially opposite rotor ends and a radially outer rotor surface positioned proximate the radially inner stator surface, thereby establishing an airgap therebetween. The rotor also includes a fluid circulation arrangement having at least one fluid channel extending through the rotor to the radially outer rotor surface and configured to receive a liquid via a first passage and a gas via at least one second passage. The fluid circulation arrangement is also configured to direct the liquid and the gas, via centrifugal force, into the airgap as the rotor rotates inside the stator sufficiently to discharge the liquid and the gas out of the airgap at the axially opposite ends of the rotor, thereby cooling the electric motor.

Claims (49)

1 . A radial flux electric motor comprising:

a stator having a radially inner stator surface; and

a rotor mounted inside the stator, defining a rotational axis, and having axially opposite rotor ends and a radially outer rotor surface positioned proximate the radially inner stator surface, thereby establishing an airgap therebetween;

wherein;

the rotor includes a fluid circulation arrangement having at least one fluid channel extending through the rotor to the radially outer rotor surface and configured to receive a liquid via a first passage and a gas via at least one second passage and direct the liquid and the gas, via centrifugal force, into the airgap as the rotor rotates inside the stator sufficiently to discharge the liquid and the gas out of the airgap at the axially opposite ends of the rotor, thereby cooling the electric motor;

the at least one fluid channel includes a plurality of fluid channels, and each fluid channel extends through the rotor to the radially outer rotor surface;

the fluid circulation arrangement additionally includes a rotor impeller defining the plurality of fluid channels, and wherein the radially outer rotor surface defines circumferentially distributed apertures fluidly connected to the respective plurality of fluid channels;

the rotor impeller is arranged perpendicular to the rotational axis centrally within the rotor; and

the rotor has a three-piece structure, including a first lateral rotor portion and a second lateral rotor portion sandwiching the rotor impeller.

2 . The radial flux electric motor according to claim 1 , wherein the fluid circulation arrangement additionally includes a rotor shaft positioned coaxially with the rotor, fixed to the rotor, and defines the first passage.

3 . The radial flux electric motor according to claim 2 , wherein the rotor shaft defines the at least one second passage.

4 . The radial flux electric motor according to claim 2 , wherein the rotor defines the at least one second passage.

5 . The radial flux electric motor according to claim 1 , wherein:

the rotor impeller has a laminate impeller structure, including a first impeller lamination and a second impeller lamination sandwiching a third impeller lamination, and together with the first and second lateral rotor portions defining each of the fluid channels.

6 . The radial flux electric motor according to claim 1 , wherein the liquid is pressurized oil and the gas is air.

7 . A motor vehicle comprising:

a radial flux electric motor configured to generate torque for propulsion of the motor vehicle, the radial flux electric motor including:

a stator having a radially inner stator surface; and

a rotor mounted inside the stator, defining a rotational axis, and having axially opposite rotor ends and a radially outer rotor surface positioned proximate the radially inner stator surface, thereby establishing an airgap therebetween;

wherein;

the rotor includes a fluid circulation arrangement having at least one fluid channel extending through the rotor to the radially outer rotor surface and configured to receive a liquid via a first passage and a gas via at least one second passage and direct the liquid and the gas, via centrifugal force, into the airgap as the rotor rotates inside the stator sufficiently to discharge the liquid and the gas out of the airgap at the axially opposite ends of the rotor, thereby cooling the electric motor;

the at least one fluid channel includes a plurality of fluid channels, and each fluid channel extends through the rotor to the radially outer rotor surface;

the fluid circulation arrangement additionally includes a rotor impeller defining the plurality of fluid channels, and wherein the radially outer rotor surface defines circumferentially distributed apertures fluidly connected to the respective plurality of fluid channels;

the rotor impeller is arranged perpendicular to the rotational axis centrally within the rotor; and

the rotor has a three-piece structure, including a first lateral rotor portion and a second lateral rotor portion sandwiching the rotor impeller.

8 . The motor vehicle according to claim 7 , wherein the fluid circulation arrangement additionally includes a rotor shaft positioned coaxially with the rotational axis, fixed to the rotor, and defines the first passage.

9 . The motor vehicle according to claim 8 , wherein the rotor shaft defines the at least one second passage.

10 . The motor vehicle according to claim 8 , wherein the rotor defines the at least one second passage.

11 . The motor vehicle according to claim 7 , wherein:

the rotor impeller has a laminate impeller structure, including a first impeller lamination and a second impeller lamination sandwiching a third impeller lamination, and together with the first and second lateral rotor portions defining each of the fluid channels.

12 . The motor vehicle according to claim 7 , further comprising a fluid pump configured to pressurize and circulate the liquid.

13 . The motor vehicle according to claim 12 , further comprising an electronic controller programmed with an algorithm to regulate the fluid pump.

14 . The motor vehicle according to claim 13 , wherein the electronic controller is in communication with one or more sensors and is configured to regulate the fluid pump using data detected by the one or more sensors.

15 . The motor vehicle according to claim 13 , wherein the electronic controller is configured to regulate the fluid pump using calculated variables.

16 . The motor vehicle according to claim 13 , wherein the electronic controller is configured to regulate the fluid pump using a temperature of the stator and/or the rotor determined using detected temperature of the liquid and a motor operational map programmed into the controller.

17 . A radial flux electric motor comprising:

a stator having a radially inner stator surface; and

a rotor mounted inside the stator, defining a rotational axis, and having axially opposite rotor ends and a radially outer rotor surface positioned proximate the radially inner stator surface, thereby establishing an airgap therebetween;

wherein:

the rotor includes a fluid circulation arrangement having plurality of fluid channels, each extending through the rotor to the radially outer rotor surface and configured to receive a liquid via a first passage and a gas via at least one second passage and direct the liquid and the gas, via centrifugal force, into the airgap as the rotor rotates inside the stator sufficiently to discharge the liquid and the gas out of the airgap at the axially opposite ends of the rotor, thereby cooling the electric motor;

the fluid circulation arrangement additionally includes a rotor impeller defining the plurality of fluid channels, and wherein the radially outer rotor surface defines circumferentially distributed apertures fluidly connected to the respective plurality of fluid channels;

the rotor impeller is arranged along the rotational axis centrally within the rotor;

the rotor has a three-piece structure, including a first lateral rotor portion and a second lateral rotor portion sandwiching the rotor impeller;

the rotor impeller has a laminate impeller structure, including a first impeller lamination and a second impeller lamination sandwiching a third impeller lamination, and together with the first and second lateral rotor portions defining each of the fluid channels;

the third impeller lamination and the first and second lateral rotor portions together define a first part of each fluid channel; and

the first and second impeller laminations together define a second part of each fluid channel.

18 . The radial flux electric motor according to claim 17 , wherein the fluid circulation arrangement additionally includes a rotor shaft positioned coaxially with the rotor, fixed to the rotor, and defines the first passage.

19 . The radial flux electric motor according to claim 18 , wherein the rotor shaft defines the at least one second passage.

20 . The radial flux electric motor according to claim 18 , wherein the rotor defines the at least one second passage.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 26, 2023
From: YANG, XIAOFENG; PENG, PENG; SAMIE, FARZAD
To: GM GLOBAL TECHNOLOGY OPERATIONS LLC
Reel/Frame 065029/0895 →
Continuity (1)
Related Publication 20250105688A1 · Mar 27, 2025
References Cited (17)
US 4352034A · Karhan · 1982 [cited by examiner]
US 5189325A · Jarczynski · 1993 [cited by examiner]
US 5994804A · Grennan · 1999 [cited by examiner]
US 7600961B2 · Abdallah · 2009 [cited by examiner]
US 8896167B2 · McKinzie · 2014 [cited by examiner]
US 8963384B2 · Kirkley, Jr. · 2015 [cited by examiner]
US 11300365B2 · Miller · 2022 [cited by examiner]
US 20190036438A1 · Murase · 2019 [cited by examiner]
US 20200244123A1 · Kang · 2020 [cited by examiner]
US 20200244124A1 · Kang · 2020 [cited by examiner]
US 20220190678A1 · Folkesson · 2022 [cited by examiner]
US 20230170762A1 · Choi et al. · 2023 [cited by applicant]
DE 102015223073A1 · 2017 [cited by applicant]
DE 102016210930A1 · 2017 [cited by applicant]
DE 102021200283A1 · 2022 [cited by applicant]
EP 3346592A1 · 2018 [cited by examiner]
German Search Report dated Aug. 2, 2024. [cited by applicant]