IP Library › Granted Patent US 12,738,401
Granted Patent B2
US 12,738,401 · App. 18/813,974 · Granted Sep 15, 2026

Supplemental cooling system for superconducting electrical machine

Inventors: Dogan Celik (Ashburn, VA); Stuart Feltham (Florence, SC); Ernst Stautner (Niskayuna, NY); Charles Yarborough (Florence, SC)
Assignee: GE Precision Healthcare LLC
H01F6/04H01F6/00H02K9/19H02K55/00
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Quick Facts
Patent No.
US 12,738,401
App. No.
18/813,974
Granted
Sep 15, 2026
Kind
B2
Abstract

A superconducting electrical system includes a superconducting electrical machine comprising a superconducting magnet, a main cryogenic vessel containing a main cryogen and encompassing the superconducting magnet, and a vacuum vessel encompassing the main cryogenic vessel. A supplemental cooling system is inside the vacuum vessel and comprises a supplemental heat sink and. a gas gap heat switch configured to alternately thermally connect the supplemental heat sink to a component of the superconducting electrical machine and thermally isolate the supplemental heat sink from the component of the superconducting electrical machine. The supplemental cooling system is configured to supplement cooling of the superconducting electrical machine by the main cryogenic vessel to expedite cooling of the component of the superconducting electrical machine.

Claims (42)

1 . A superconducting electrical system, comprising:

a superconducting electrical machine comprising a superconducting magnet;

a main cryogenic vessel containing a main cryogen and encompassing the superconducting magnet;

a vacuum vessel encompassing the main cryogenic vessel;

a supplemental cooling system inside the vacuum vessel and comprising:

a supplemental heat sink;

a gas gap heat switch configured to alternately thermally connect the supplemental heat sink to a component of the superconducting electrical machine and thermally isolate the supplemental heat sink from the component of the superconducting electrical machine; and

wherein the supplemental cooling system is configured to supplement cooling of the superconducting electrical machine by the main cryogenic vessel to expedite cooling of the component of the superconducting electrical machine.

2 . The system of claim 1 , wherein the supplemental heat sink is a cryogen tank comprising a second cryogen.

3 . The system of claim 2 , wherein the cryogen tank is thermally connected to the main cryogenic vessel so as to dissipate heat thereto.

4 . The system of claim 2 , wherein the second cryogen is different than the main cryogen.

5 . The system of claim 2 , wherein the main cryogen and the second cryogen each contain at least one of helium, hydrogen, neon, or nitrogen.

6 . The system of claim 1 , wherein supplemental heat sink is a cryocooler.

7 . The system of claim 1 , wherein supplemental heat sink is at least a portion of a thermal shield surrounding the superconducting magnet.

8 . The system of claim 1 , wherein the superconducting electrical machine is a magnet system for a magnetic resonance imaging machine or a power generator, and wherein the component of the superconducting electrical machine includes at least one of a superconducting switch and a power ramp lead.

9 . A magnetic resonance imaging system, comprising:

a superconducting electrical machine comprising a superconducting magnet;

a main cryogenic vessel containing a main cryogen and encompassing the superconducting magnet, containing a cryogen and configured to cool the superconducting magnet;

a vacuum vessel encompassing the main cryogenic vessel;

a supplemental cooling system inside the vacuum vessel and comprising:

a supplemental heat sink

a gas gap heat switch configured to alternately thermally connect the supplemental heat sink to a component of the superconducting electrical machine and thermally isolate the supplemental heat sink from the component of the superconducting electrical machine;

wherein the supplemental cooling system is configured to supplement cooling of the component of the superconducting electrical machine by the cryogenic vessel to expedite cooling of the component of the superconducting electrical machine.

10 . The system of claim 9 , wherein the supplemental heat sink is a cryogen tank comprising a second cryogen.

11 . The system of claim 10 , wherein the cryogen tank is thermally connected to the main cryogenic vessel so as to dissipate heat thereto.

12 . The system of claim 10 , wherein the second cryogen is different than the main cryogen.

13 . The system of claim 10 , wherein the main cryogen and the second cryogen each contain at least one of helium, hydrogen, neon, or nitrogen.

14 . The system of claim 9 , wherein supplemental heat sink is a cryocooler.

15 . The system of claim 9 , wherein supplemental heat sink is at least a portion of a thermal shield surrounding the superconducting magnet.

16 . The system of claim 9 , wherein the supplemental cooling system includes at least a first gas gap heat switch configured to thermally connect the supplemental heat sink to the component and a second gas gap heat switch configured to connect the component to a different heat sink than the supplemental heat sink.

17 . The system of claim 9 , wherein the superconducting electrical machine includes a superconducting switch coupled to the superconducting electrical machine and configured to switch between a resistive mode and a superconducting mode;

wherein the gas gap heat switch is configured to thermally connect the supplemental heat sink to the superconducting switch when the superconducting switch is in the resistive mode and thermally isolate the supplemental heat sink from the superconducting switch when the superconducting switch is in the superconducting mode.

18 . The system of claim 9 , wherein the superconducting electrical machine includes a power ramp lead disposed within the vacuum vessel and having a first end and a second end, wherein the first end of the power ramp lead is coupled in a fixed manner to a vacuum vessel wall of the vacuum vessel and the second end is directly or indirectly to coupled to a superconducting switch; and

wherein the gas gap heat switch is configured to thermally connect the supplemental heat sink to the power ramp lead when the superconducting switch is in a resistive mode and thermally isolate the supplemental heat sink from the power ramp lead when the superconducting switch is in a superconducting mode.

19 . A method of controlling a supplemental cooling system for a superconducting electrical system, the method comprising:

controlling a first gas gap heat switch connected to a component of the superconducting electrical system to thermally connect the component to a supplemental heat sink;

after a temperature of the component is less than a first threshold temperature, controlling the first gas gap heat switch to thermally isolate the component from the supplemental heat sink; and

slowly dissipating heat from the supplemental heat sink to a main heat sink over a period of time while the first gas gap heat switch is thermally isolating the component from the supplemental heat sink.

20 . The method of claim 19 , further comprising:

after the component is cooled to a second threshold temperature via the supplemental heat sink, controlling a second gas gap heat switch connected to the component of the superconducting electrical system to thermally connect the component to a different heat sink than the supplemental heat sink;

after the temperature of the component is less than a third threshold temperature, controlling the second gas gap heat switch to thermally isolate the component from the different heat sink; and

wherein the third threshold temperature is lower than the first threshold temperature and the second threshold temperature.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 23, 2024
From: CELIK, DOGAN; FELTHAM, STUART; STAUTNER, ERNST; YARBOROUGH, CHARLES
To: GE PRECISION HEALTHCARE LLC
Reel/Frame 068387/0278 →
Continuity (1)
Related Publication 20260058536A1 · Feb 26, 2026
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