Claims
- 1. A cooling system for circulating a refrigerant flowing through a heat exchanger which is connected to a cryocooler coldhead, the cooling system delivering the refrigerant to a load and comprising:
- a conduit circuit connected to the load and within which the refrigerant circulates;
- a first and a second reservoir, each connected within the conduit, each holding at least a portion of the refrigerant;
- a heater configured to independently heat the first and second reservoirs, the heater operating, in a first mode, to heat the first reservoir, thereby causing the refrigerant to flow from the first reservoir through the load and heat exchanger via the conduit circuit and into the second reservoir, and operating, in a second mode, to heat the second reservoir to cause the refrigerant to flow from the second reservoir through the load and heat exchanger via the conduit circuit and into the first reservoir.
- 2. The system of claim 1 further comprising a first valve connected within the conduit circuit, the first valve having an input coupled to the first and the second reservoirs and an output coupled to the load.
- 3. The system of claim 2 further comprising a second valve connected within the conduit circuit, the second valve having an input coupled to an output of the heat exchanger and first reservoir.
- 4. The system of claim 3 further comprising a third valve connected within the conduit circuit, the third valve having an input coupled to an input of the heat exchanger and the first and second reservoirs, and the conduit circuit includes a venting backup line coupled between the heat exchanger, the third valve and the first and second reservoirs.
- 5. The system of claim 1 wherein the heater comprises a pair of heating elements, each heating element associated with a respective one of the first and second reservoirs.
- 6. The system of claim 1 further comprising a cold box which encloses the heat exchanger and the first and the second reservoirs.
- 7. The system of claim 1 wherein the conduit circuit includes vacuum insulated transfer lines.
- 8. The system of claim 1 wherein the load is a rotor of a superconducting motor.
- 9. The system of claim 1 wherein the refrigerant is selected from a group consisting of helium, neon, nitrogen, hydrogen, oxygen and mixtures thereof.
- 10. The system of claim 8 wherein the refrigerant is neon.
- 11. The system of claim 1 wherein the refrigerant is a fluorocarbon liquid cryogen.
- 12. The system of claim 11 wherein the liquid cryogen is a fluoroalkane.
- 13. A method of cooling a load with a system having a heat exchanger coupled to a cryocooler coldhead and the load via a conduit circuit having a refrigerant circulating therethrough, the method comprising:
- a) providing a first and a second reservoir, each connected within the conduit, each holding at least a portion of the refrigerant;
- b) heating the first reservoir to cause the refrigerant to flow from the first reservoir through the load and heat exchanger via the conduit circuit and into the second reservoir, said heating of the first reservoir continuing until the refrigerant is substantially depleted from the first reservoir; and
- c) heating the second reservoir to cause the refrigerant to flow from the second reservoir through the load and heat exchanger via the conduit circuit and into the first reservoir, said heating of the second reservoir continuing until the refrigerant is substantially depleted from the second reservoir.
- 14. The method of claim 13 further comprising repeating steps b) and c) in alternating manner.
- 15. The method of claim 13 wherein the system further comprises a first valve and a second valve connected within the conduit circuit, the first valve having an input coupled to the first and the second reservoirs and an output coupled to the load, the second valve having an input coupled to an output of the heat exchanger and first reservoir, the method further comprising:
- prior to step b), actuating the first valve to allow the refrigerant to flow from the first reservoir to the load and actuating the second valve to allow the refrigerant to flow into the second reservoir from the load; and
- prior to step c), actuating the first valve to allow the refrigerant to flow from the second reservoir to the load and actuating the second valve to allow the refrigerant to flow into the first reservoir from the load.
- 16. The method of claim 15 wherein the system further comprises a third valve connected within the conduit circuit, the third valve having an input coupled to an input of the heat exchanger and the first and second reservoirs, and the conduit circuit includes a venting backup line coupled between the third valve and the first reservoir and second reservoirs, the method comprising:
- prior to step b), actuating the third valve to allow the refrigerant to flow from the first reservoir to the load; and
- prior to step c), actuating the third valve to allow the refrigerant to flow from the second reservoir to the load.
- 17. The method of claim 13 wherein the refrigerant is selected from a group consisting of helium, neon, nitrogen, hydrogen, oxygen, a fluorocarbon and mixtures thereof.
- 18. The method of claim 13 further comprising performing steps a), b) and c) at a pressure level substantially equal to one atmosphere.
- 19. The method of claim 13 further comprising performing steps a), b) and c) at a pressure level exceeding one atmosphere.
- 20. A system for cooling a load to cryogenic temperatures comprising:
- a conduit circuit, connected to the superconducting load and within which a refrigerant circulates;
- a heat exchanger, connected within the conduit circuit and to a cryocooler coldhead, the heat exchanger disposed remotely from the load;
- a first and a second reservoir, each connected within the conduit, each holding at least a portion of the refrigerant;
- a heater configured to independently heat the first and second reservoirs, the heater operating, in a first mode, to heat the first reservoir, thereby causing the refrigerant to flow from the first reservoir through the superconducting load and heat exchanger via the conduit circuit and into the second reservoir, and operating, in a second mode, to heat the second reservoir to cause the refrigerant to flow from the second reservoir through the superconducting load and heat exchanger via the conduit circuit and into the first reservoir.
Government Interests
This invention arose in part out of research pursuant to Subcontract No. QZ001 awarded by the Department of Energy under Prime Contract No. DE-FC36-93CH10580.
US Referenced Citations (13)