IP Library Granted Patent US 11,521,771
Granted Patent B2
US 11,521,771 · App. 16/373,960 · Granted Dec 6, 2022

System for quench protection of superconducting machines, such as a superconducting wind turbine generator

Inventors: Anbo Wu (Clifton Park, NY); Michael Parizh (Niskayuna, NY); Minfeng Xu (Ballston Lake, NY)
Assignee: General Electric Company
H01F6/02H01F6/06H02H7/001H02K11/20H02K7/183
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 11,521,771
App. No.
16/373,960
Granted
Dec 6, 2022
Kind
B2
Abstract

A quench protection system for a superconducting machine, such as a superconducting generator having a plurality of series-arranged superconducting coils, includes at least one switch heater electrically coupled to each of the superconducting coils. A quench protection switch is provided in series with the coils, wherein each switch heater is in thermal contact with the quench protection switch. A heater network is configured in parallel with the quench protection switch and is in thermal contact with each of the coils. A quench of any one of the coils triggers a quench of the quench protection switch, wherein the heater network then triggers a quench of all of the remaining coils.

Claims (39)

1. A quench protection system for a superconducting machine having a plurality of superconducting coils arranged in series, comprising:

at least one switch heater electrically coupled across each of the superconducting coils;

a quench protection switch configured in series with the superconducting coils, each of the switch heaters in thermal contact with the quench protection switch, the quench protection switch comprising a non-inductive superconductive switch with a superconductive wire portion and a heater portion wherein the wire portion is switched between a resistive state and a superconductive state by controlling the heater portion;

a heater network configured in parallel with the quench protection switch, the heater network in thermal contact with each of the coils;

such that a quench of any one of the superconducting coils activates the switch heater coupled therewith and the activated switch heater triggers a quench of the quench protection switch; and

wherein the quench of the quench protection switch activates the heater network to trigger a quench of all remaining superconducting coils.

2. The quench protection system as in claim 1 , wherein the heater network comprises a plurality of heaters connected in parallel, with each superconducting coil in thermal contact with at least one of the heaters.

3. The quench protection system as in claim 1 , wherein the heater network comprises a plurality of heaters connected in series, with each superconducting coil in thermal contact with at least one of the heaters.

4. The quench protection system as in claim 1 , wherein the heater network comprises a plurality of heaters connected in parallel and a plurality of heaters connected in series, with each superconducting coil in thermal contact with at least one of the heaters.

5. The quench protection system as in claim 1 , wherein the heater network comprises a single heater, with each superconducting coil in thermal contact with the single heater.

6. The quench protection system as in claim 1 , further comprising a voltage clamp device across the heater network.

7. The quench protection system as in claim 1 , further comprising a shielding coil applied to the quench protection switch to accelerate quenching of the heater network.

8. A superconducting generator, comprising:

a plurality of superconducting field coils arranged in series;

a quench protection system, the quench protection system further comprising:

at least one switch heater electrically coupled across each of the field coils;

a quench protection switch configured in series with the superconducting coils, each of the switch heaters in thermal contact with the quench protection switch, the quench protection switch comprising a non-inductive superconductive switch with a superconductive wire portion and a heater portion wherein the wire portion is switched between a resistive state and a superconductive state by controlling the heater portion;

a heater network configured in parallel with the quench protection switch, the heater network in thermal contact with each of the coils;

such that a quench of any one of the superconducting coils activates the switch heater coupled therewith and the activated switch heater triggers a quench of the quench protection switch; and

wherein the quench of the quench protection switch activates the heater network to trigger a quench of all remaining superconducting coils.

9. The superconducting generator as in claim 8 , wherein the heater network comprises a plurality of heaters connected in parallel, with each superconducting coil in thermal contact with at least one of the heaters.

10. The superconducting generator as in claim 8 , wherein the heater network comprises a plurality of heaters connected in series, with each superconducting coil in thermal contact with at least one of the heaters.

11. The superconducting generator as in claim 8 , wherein the heater network comprises a plurality of heaters connected in parallel and a plurality of heaters connected in series, with each superconducting coil in thermal contact with at least one of the heaters.

12. The superconducting generator as in claim 8 , wherein the heater network comprises a single heater, with each superconducting coil in thermal contact with the single heater.

13. The superconducting generator as in claim 8 , further comprising a voltage clamp device across the heater network.

14. The superconducting generator as in claim 8 , further comprising a shielding coil applied to the quench protection switch to accelerate quenching of the heater network.

15. The superconducting generator as in claim 8 , wherein the superconducting generator is a wind turbine generator.

16. A wind turbine power generating system, comprising:

a tower;

a hub, and a plurality of blades connected to the hub;

a rotor connected to the hub;

a superconducting generator coupled to the rotor, the superconducting generator further comprising:

a plurality of superconducting field coils arranged in series;

a quench protection system, the quench protection system further comprising:

at least one switch heater electrically coupled across each of the field coils;

a quench protection switch configured in series with the superconducting coils, each of the switch heaters in thermal contact with the quench protection switch, the quench protection switch comprising a non-inductive superconductive switch with a superconductive wire portion and a heater portion wherein the wire portion is switched between a resistive state and a superconductive state by controlling the heater portion;

a heater network configured in parallel with the quench protection switch, the heater network in thermal contact with each of the coils;

such that a quench of any one of the superconducting coils activates the switch heater coupled therewith and the activated switch heater triggers a quench of the quench protection switch; and

wherein the quench of the quench protection switch activates the heater network to trigger a quench of all remaining superconducting coils.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 17, 2023
From: GENERAL ELECTRIC COMPANY
To: GENERAL ELECTRIC RENOVABLES ESPAÑA, S.L.
Reel/Frame 065594/0897 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 3, 2019
From: WU, ANBO; PARIZH, MICHAEL; XU, MINFENG
To: GENERAL ELECTRIC COMPANY
Reel/Frame 048780/0674 →
Continuity (1)
Related Publication 20200321152A1 · Oct 8, 2020