Claims
- 1. A transfer line for transferring a cryogenic fluid comprising an inner tube surrounded by an outer tube wherein:(a) a first portion of the cryogenic fluid flows through the inner tube while a second portion flows through an annulus between the inner tube and outer tube; (b) the first portion is at a higher pressure than the second portion by virtue of a means which maintains the pressure in the inner tube higher than the annulus; (c) at least a portion of the transfer line is made of a flexible, polymeric material; and (d) at least a fraction of the second portion of fluid inside the annulus is liquid that provides a refrigeration duty to the first portion of fluid inside the inner tube.
- 2. The transfer line of claim 1 wherein the inner tube is substantially non-porous.
- 3. The transfer line of claim 1 wherein at least a portion of the inner tube is porous with respect to both gas permeation and liquid permeation such that both a gaseous part and a liquid part of the first portion permeates into the annulus to form at least a part of the second portion.
- 4. The transfer line of claim 3 wherein certain sections of the inner tube along the length of the inner tube are of enhanced porosity.
- 5. The transfer line of claim 1 wherein the transfer line is preceded by a flow control means to distribute at least part of the first and second portions of the cryogenic fluid to the inner tube and annulus respectively.
- 6. The transfer line of claim 5 wherein the flow control means is a flow control box comprising:(i) an inlet adapted to receive the cryogenic fluid; (ii) a plurality of valves in fluid communication with the inlet and adapted to receive and pressure regulate a flow of the cryogenic fluid wherein at least one of the valves is an on/off valve and at least one of the valves is a metering valve; and (iii) a three-way coupling having a first end in fluid communication with at least one of the valves and a second end in fluid communication with the transfer line.
- 7. The transfer line of claim 1 wherein at least a fraction of the second portion of fluid in the annulus is transferred to the transfer destination and/or cooling target along with the liquid stream in the inner tube via the use of a coaxial nozzle having an inner conduit in fluid communication with the inner tube of the transfer line and an outer conduit in fluid communication with the annulus of the transfer line.
- 8. The transfer line of claim 1 wherein at least a fraction of the second portion is vented from the annulus away from the transfer destination and/or cooling target.
- 9. The transfer line of claim 1 wherein the polymeric material is selected from the group consisting of carbon-flourine based polymers, co-polymers and composites thereof.
- 10. The transfer line of claim 1 wherein the cryogenic fluid is selected from the group consisting of nitrogen, argon or mixtures thereof.
- 11. The transfer line of claim 1 wherein the transfer line is used to deliver at least a portion of the cryogenic fluid to a transfer destination and/or cooling target selected from the group consisting of:(i) an environmental test chamber used for stress screening electronic components; (ii) a component to be shrink fitted; (iii) a specimen holding container used in for biological storage; (iv) a nitrogen droplet dispenser; (v) a cutting tool and/or workpiece in a machining application; and (vi) a cryoprobe in a cryosurgical system.
- 12. The transfer line of claim 1 wherein substantially all of the inner tube and substantially all of the outer tube are made of a flexible, polymeric material.
- 13. The transfer line of claim 1 wherein substantially all of the outer tube is made of a flexible polymeric material while substantially all of the inner tube is made of a flexible non-polymeric material selected from the group consisting of (i) copper and its alloys, (ii) aluminum and its alloys, (iii) nickel and its alloys, (iv) austenitic stainless steels, (v) dense graphite or (vi) ceramic fiber textile-woven tubing products.
- 14. A method for transferring a cryogenic fluid utilizing a transfer line comprising an inner tube surrounded by an outer tube, said process comprising flowing a first portion of the cryogenic fluid flows through the inner tube while flowing a second portion through an annulus between the inner tube and the outer tube wherein(a) the first portion is at a higher pressure than the second portion by virtue of a means which maintains the pressure in the inner tube higher than the annulus; (b) at least a portion of the transfer line is made of a flexible, polymeric material; and (c) at least a fraction of the second portion of fluid inside the annulus is liquid that provides a refrigeration duty to the first portion of fluid inside the inner tube.
- 15. The method of claim 14 wherein the inner tube is substantially non-porous.
- 16. The method of claim 14 wherein at least a portion of the inner tube is porous with respect to both gas permeation and liquid permeation such that both a gaseous part and a liquid part of the first portion permeates from the inner tube into the annulus to form at least a part of the second portion.
- 17. The method of claim 16 wherein certain sections of the inner tube along the length of the inner tube are of enhanced porosity.
- 18. The method of claim 14 wherein the transfer line is preceded by a flow control means to distribute at least part of the first and second portions of the cryogenic fluid to the inner tube and annulus respectively.
- 19. The method of claim 18 wherein the flow control means is a flow control box comprising:(i) an inlet adapted to receive the cryogenic fluid; (ii) a plurality of valves in fluid communication with the inlet and adapted to receive and pressure regulate a flow of the cryogenic fluid wherein at least one of the valves is an on/off valve and at least one of the valves is a metering valve; and (iii) a three-way coupling having a first end in fluid communication with at least one of the valves and a second end in fluid communication with the transfer line.
- 20. The method of claim 14 wherein at least a fraction of the second portion of fluid in the annulus is transferred to the transfer destination and/or cooling target along with the liquid stream in the inner tube via the use of a coaxial nozzle having an inner conduit in fluid communication with the inner tube of the transfer line and an outer conduit in fluid communication with the annulus of the transfer line.
- 21. The method of claim 14 wherein at least a fraction of the second portion is vented from the annulus away from the transfer destination and/or cooling target.
- 22. The method of claim 14 wherein the polymeric material is selected from the group consisting of carbon-flourine based polymers, co-polymers and composites thereof.
- 23. The method of claim 14 wherein the cryogenic fluid is selected from the group consisting of nitrogen, argon or mixtures thereof.
- 24. The method of claim 14 wherein the transfer line is used to deliver at least a portion of the cryogenic fluid to a transfer destination and/or cooling target selected from the group consisting of:(i) an environmental test chamber used for stress screening electronic components; (ii) a component to be shrink fitted; (iii) a specimen holding container used in for biological storage; (iv) a nitrogen droplet dispenser; (v) a cutting tool and/or a workpiece in a machining application; and (vi) a cryoprobe in a cryosurgical system.
- 25. The method of claim 14 wherein substantially all of the inner tube and substantially all of the outer tube are made of a flexible, polymeric material.
- 26. The method of claim 14 wherein substantially all of the outer tube is made of a flexible polymeric material while substantially all of the inner tube is made of a flexible non-polymeric material selected from the group consisting of (i) copper and its alloys, (ii) aluminum and its alloys, (iii) nickel and its alloys, (iv) austenitic stainless steels, (v) dense graphite or (vi) ceramic fiber textile-woven tubing products.
CROSS-REFERENCE TO RELATED APPLICATIONS
This Application is a Continuation-in-Part of U.S. patent application Ser. No. 09/712,680 which was filed on Nov. 14, 2000.
US Referenced Citations (16)
Foreign Referenced Citations (1)
Number |
Date |
Country |
6210105 |
Aug 1994 |
JP |
Non-Patent Literature Citations (1)
Entry |
Biomedical Instrumentation and Tech., “Development of a High-Performance Multiprobe Cryosurgical Device”, Chang, et al, 1994. |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09/712680 |
Nov 2000 |
US |
Child |
09/911027 |
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US |