Claims
- 1. A method of cooling an object, the method comprising:
a) contacting the object with a heat transfer fluid comprising a major component selected from the group consisting of hydrogen and helium, the object traversing through a heat exchange unit having an object inlet end and an object outlet end; b) preventing ingress of contaminants into the heat exchange unit inlet end and outlet end using a seal gas comprising a major component selected from the group consisting of argon, carbon dioxide, and nitrogen, the seal gas exiting with the heat transfer fluid to form an exit gas (either mixed or not); c) compressing the exit gas to form a compressed recycle gas; and d) routing the compressed recycle gas to a condenser where the compressed recycle gas is cooled to form a cooled recycle composition, and routing the cooled recycle composition to a gas-liquid separator, thus forming an enriched gas that functions as the heat transfer fluid, and an enriched liquid.
- 2. The method of claim 1 wherein at least a portion of the enriched liquid is vaporized and forms a portion of the seal gas.
- 3. The method of claim 1 wherein said controlling comprises adjusting a flow of a liquid cryogen to the condenser.
- 4. The method of claim 3 wherein said cryogen is selected from the group consisting of nitrogen, argon, hydrogen, and mixtures thereof.
- 5. The method of claim 4 wherein said cryogen is nitrogen.
- 6. The method of claim 1 wherein a portion of the seal gas comprising argon is mixed with said helium enriched gas prior to the helium enriched gas entering the heat exchange unit.
- 7. The method of claim 1 wherein said seal gas comprising argon is equally split between heat exchange fiber inlet end and heat exchange unit fiber outlet end.
- 8. A method of cooling an object, the method comprising:
a) contacting the object with a heat transfer fluid comprising a major component selected from the group consisting of hydrogen and helium, the object traversing through a heat exchange unit having an object inlet end and an object outlet end; b) preventing ingress of contaminants into the heat exchange unit inlet end and outlet end using a seal gas comprising a major component selected from the group consisting of argon, carbon dioxide, and nitrogen, the seal gas exiting with the heat transfer fluid to form an exit gas; c) compressing the exit gas to form a compressed recycle gas; d) routing the compressed recycle gas to a recycle gas heat exchanger, where the compressed recycle gas exchanges heat with an enriched liquid to form a mixture comprising the seal gas, and a chilled compressed recycle gas; and e) routing the chilled compressed recycle gas to a condenser where the chilled compressed recycle gas is cooled to form a cooled recycle composition, and routing the cooled recycle composition to a gas-liquid separator, thus forming an enriched gas which functions as the heat transfer fluid, and the enriched liquid. and f) routing the enriched liquid to the recycle gas heat exchanger and thus forming the seal gas.
- 9. The method of claim 8 wherein at least a portion of the enriched liquid is routed to the recycle gas heat exchanger and thus forming a portion of the seal gas.
- 10. The method of claim 8 wherein said controlling comprises adjusting a flow of a liquid cryogen to the condenser.
- 11. The method of claim 10 wherein said cryogen is selected from the group consisting of nitrogen, argon, hydrogen, and mixtures thereof.
- 12. The method of claim 11 wherein said cryogen is nitrogen.
- 13. The method of claim 8 wherein said seal gas comprising argon is equally split between heat exchange fiber inlet end and heat exchange unit fiber outlet end.
- 14. A method of cooling an object, the method comprising:
a) contacting the object with a heat transfer fluid comprising a major component selected from the group consisting of hydrogen and helium, the object traversing through a heat exchange unit having an object inlet end and an object outlet end; b) preventing ingress of contaminants into the heat exchange unit inlet end and outlet end using a seal gas comprising a major component selected from the group consisting of argon, carbon dioxide, and nitrogen, the seal gas exiting with the heat transfer fluid to form an exit gas; c) compressing the exit gas to form a compressed recycle gas; d) routing the compressed recycle gas to a recuperator, where the compressed recycle gas exchanges heat with an enriched liquid to form a composition comprising the seal gas and a chilled compressed recycle gas, and wherein the compressed recycle gas also exchanges heat with an enriched gas; e) routing the chilled compressed recycle gas to a condenser where the chilled compressed recycle gas is cooled to form a cooled recycle composition, and routing the cooled recycle composition to a gas-liquid separator, thus forming the enriched gas and the enriched liquid; and f) routing the enriched gas to the recuperator.
- 15. The method of claim 14 wherein the enriched liquid is routed to the recuperator.
- 16. The method of claim 14 wherein said controlling comprises adjusting a flow of a liquid cryogen to the condenser.
- 17. The method of claim 16 wherein said cryogen is selected from the group consisting of nitrogen, argon, hydrogen, and mixtures thereof.
- 18. The method of claim 17 wherein said cryogen is nitrogen.
- 19. The method of claim 14 wherein said seal gas comprising argon is equally split between heat exchange fiber inlet end and heat exchange unit fiber outlet end.
- 20. An apparatus comprising:
a) a heat exchange unit for cooling an object having an object inlet end and an object outlet end, and means for allowing a heat transfer fluid selected from the group consisting of hydrogen and helium to contact the object, the heat exchange unit adapted to have the object traverse there through in a mode selected from the group consisting of continuous mode, semi-continuous mode, or batch mode; b) means for preventing ingress of contaminants into the heat exchange unit object inlet end and object outlet end, the means for preventing ingress of contaminants adapted to use a seal gas selected form the group consisting of argon, carbon dioxide, and nitrogen, the means for preventing ingress of contaminants allowing the seal gas to exit the heat exchange unit with the heat transfer fluid to form an exit gas; c) means for compressing the exit gas to form a compressed recycle gas; and d) means for routing the compressed recycle gas to a condenser where the compressed recycle gas is cooled to form a cooled recycle composition, and means for routing the cooled recycle composition to a gas-liquid separator, thus forming an enriched gas that functions as the heat transfer fluid, and an enriched liquid.
- 21. The apparatus of claim 20 including means for heating the enriched liquid to form at least a portionof the seal gas.
- 22. An apparatus comprising:
a) a heat exchange unit for cooling an object having an object inlet end and an object outlet end, and means for allowing a heat transfer fluid selected from the group consisting of hydrogen and helium to contact the object, the heat exchange unit adapted to have the object traverse there through in a mode selected from the group consisting of continuous mode, semi-continuous mode, or batch mode; b) means for preventing ingress of contaminants into the heat exchange unit object inlet end and object outlet end, the means for preventing ingress of contaminants adapted to use a seal gas comprising a major component selected from the group consisting of argon, carbon dioxide, and nitrogen, the means for preventing ingress of contaminants allowing the seal gas to exit with the heat transfer fluid to form an exit gas; c) means for compressing the exit gas to form a compressed recycle gas; and d) means for routing the compressed recycled gas to a recycle gas heat exchanger allowing exchange of heat between the compressed recycle gas and an enriched liquid, thus adapted to form a chilled compressed recycle gas and a composition comprising the seal gas; means for routing the chilled compressed recycle gas to a condenser where the chilled compressed recycle gas is cooled to form a cooled recycle composition, and means for routing the cooled recycle composition to a gas-liquid separator, thus forming an enriched gas which functions as the heat transfer fluid, and forming the enriched liquid.
- 23. The apparatus of claim 22 including means for routing the enriched liquid to the recycle gas heat exchanger and thus forming the seal gas.
- 24. An apparatus comprising:
a) a heat exchange unit for cooling an object having an object inlet end and an object outlet end, and means for allowing a heat transfer fluid selected from the group consisting of hydrogen and helium to contact the object, the heat exchange unit adapted to have the object traverse there through in a mode selected from the group consisting of continuous mode, semi-continuous mode, or batch mode; b) means for preventing ingress of contaminants into the heat exchange unit object inlet end and object outlet end, the means for preventing ingress of contaminants adapted to use a seal gas selected from the group consisting of argon, carbon dioxide, and nitrogen as a major component, the means for preventing ingress of contaminants allowing seal gas to exit with the heat transfer fluid to form an exit gas; c) means for compressing the exit gas to form a compressed recycle gas; d) means for routing the compressed recycle gas to a recuperator, where the compressed recycle gas exchanges heat with an enriched liquid to form a composition comprising the seal gas and a chilled compressed recycle composition, and wherein the compressed recycle gas also exchanges heat with an enriched gas; e) means for routing the chilled compressed recycle composition to a condenser where the chilled compressed recycle composition is cooled to form a cooled recycle composition, and routing the cooled recycle composition to a gas-liquid separator, thus forming the enriched gas and the enriched liquid; and f) means for routing the enriched gas to the recuperator.
- 25. The apparatus of claim 24 including means for routing the enriched liquid to the recuperator.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority from copending provisional patent application serial No. 60/285,363, filed Apr. 20, 2001, incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60285363 |
Apr 2001 |
US |