Claims
- 1. A regenerator sleeve for forming a cryocooler expansion space comprising:
- (a) a cylindrical base portion for connecting to a cryocooler crankcase and formed to receive a regenerator piston assembly therein; and
- (b) a cold well tube having by a thin outer wall and having a longitudinal bore of an inner diameter passing therethrough, an upper end for connecting to the cylindrical base portion, a cold end opposite the upper end for providing the expansion space within the longitudinal bore at the cold end and wherein the thin outer wall includes an outer surface substantially having an outer diameter centered with respect to the longitudinal bore and further comprising at least one facet formed thereon for reducing the thickness of the thin outer wall in the region of the facet.
- 2. A regenerator sleeve according to claim 1 further comprising a cold well end cap connected to the cold well tube at the cold end for sealing the cold well tube.
- 3. A regenerator sleeve according to claim 2 wherein the cold well tube adjacent to the cold end further comprises a mounting area having a circular cross-section for receiving the cold well end cap thereon.
- 4. A regenerator sleeve according to claim 3 wherein the at least one facet comprises a plurality of facets and wherein each of the plurality of facets subtends an equal angle with respect to a longitudinal axis of the cold well tube and further wherein each of the plurality of facets meets two adjacent facets at apexes formed therebetween and wherein each of the plurality of facets extends along the outer surface substantially from the upper end to the mounting area.
- 5. A regenerator sleeve according to claim 4 wherein said equal angle is substantially 20 degrees.
- 6. A regenerator sleeve according to claim 1 wherein the at least one facet extends along the outer surface substantially from the upper end to the cold end.
- 7. A regenerator sleeve according to claim 1 wherein the at least one facet comprises a plurality of facets.
- 8. A regenerator sleeve according to claim 7 wherein each of the plurality of facets extends along the outer surface substantially from the upper end to the cold end.
- 9. A regenerator sleeve according to claim 7 wherein each of the plurality of facets subtends an equal angle with respect to a longitudinal axis of the cold well tube and further wherein each of the plurality of facets meets two adjacent facets at apexes formed therebetween.
- 10. A regenerator sleeve according to claim 9 wherein each of the plurality of facets extends along the outer surface substantially from the upper end to the cold end.
- 11. A regenerator sleeve according to claim 1 further comprising at least one meshed heat exchange element housed within the cold well tube longitudinal bore for allowing the pressurized refrigeration gas to pass therethrough in alternating directions thereby removing thermal energy from the pressurized refrigeration gas.
- 12. A regenerator sleeve according to claim 11 further comprising:
- (a) a regenerator sleeve housed within the cylindrical base portion;
- (b) a regenerator piston movable within the regenerator sleeve for changing the volume of a pressurized refrigeration gas contained within the cold well tube longitudinal bore; and,
- (c) a regenerator tube housed within the cold well tube longitudinal bore for containing the at least one meshed heat exchange element.
- 13. A regenerator sleeve according to claim 1 where the cylindrical base portion and the cold well tube are integrally formed.
- 14. A regenerator sleeve according to claim 13 wherein the regenerator assembly comprises titanium.
- 15. A method for cooling an element to be cooled comprising the steps of:
- (a) providing a regenerator assembly having a cylindrical base portion for connecting to a cryocooler crankcase and forming the cylindrical base portion to receive a regenerator piston assembly therein;
- (b) providing a cold well tube having by a thin outer wall having a longitudinal bore of an inner diameter passing therethrough, an upper end for connecting to the cylindrical base portion, a cold end opposite the upper end for providing an expansion space within the longitudinal bore at the cold end and wherein the thin outer wall includes an outer surface substantially having an outer diameter centered with respect to the longitudinal bore;
- (c) sealing the expansion space with a cold well end cap connected to the cold well at the cold end;
- (d) reciprocating a regenerator piston within the regenerator piston assembly thereby cyclically varying the volume of a pressurized refrigeration gas received from the crankcase and contained within the cold well tube longitudinal bore and for allowing the pressurized refrigeration gas to pass through the longitudinal bore in alternating directions thereby removing thermal energy from the pressurized refrigeration gas; and,
- (e) providing at least one facet formed on the cold well tube outer surface for reducing the thickness of the thin outer wall in the region of the facet.
- 16. A method according to claim 15, further comprising the step of, forming a plurality of facets on the cold well tube outer surface for reducing the thickness of the thin outer wall in the region of each of the plurality facets.
- 17. A method according to claim 15, further comprising the step of, providing at least one meshed heat exchange element housed within the longitudinal bore for allowing the pressurized refrigeration gas to pass therethrough in alternating directions thereby removing thermal energy from the pressurized refrigeration gas.
- 18. A method according to claim 16 wherein each of the plurality of facets extends along the outer surface substantially from the upper end to the cold end.
- 19. An integrated cryocooler assembly comprising:
- (a) a reciprocating compression piston housed within a crankcase for compressing a refrigeration gas in a compression space;
- (b) a reciprocating regenerator piston for changing the volume of the pressurized refrigeration gas in an expansion space;
- (c) a drive motor and a drive coupling for driving the compressor and the regenerator piston 90 degrees out of phase with each other;
- (d) a passage formed between the compression space and the expansion space for allowing the refrigeration gas to pass in alternating directions between the compression space and the expansion space;
- (e) a regenerator sleeve comprising a cylindrical base portion for connecting to the crankcase and formed to receive at least a portion of the regenerator piston therein, the regenerator sleeve further comprising a cold well tube having by a thin outer wall having a longitudinal bore of an inner diameter passing therethrough, the cold well tube having an upper end for connecting to the cylindrical base portion, a cold end opposite the upper end for providing the expansion space within the longitudinal bore at the cold end and wherein the thin outer wall includes an outer surface substantially having an outer diameter centered with respect to the longitudinal bore and further comprising at least one facet formed thereon for reducing the thickness of the thin outer wall in the region of the facet.
- 20. An integrated cryocooler assembly according to claim 19 further comprising a cold well end cap connected to the cold well tube at the cold end for sealing the cold well tube.
- 21. A regenerator sleeve according to claim 20 wherein the cold well tube adjacent to the cold end further comprises a mounting area having a circular cross-section for receiving the cold well end cap thereon.
- 22. A regenerator sleeve according to claim 21 wherein the at least one facet comprises a plurality of facets and wherein each of the plurality of facets subtends an equal angle with respect to a longitudinal axis of the cold well tube and further wherein each of the plurality of facets meets two adjacent facets at apexes formed therebetween and wherein each of the plurality of facets extends along the outer surface substantially from the upper end to the mounting area.
- 23. A regenerator sleeve according to claim 22 wherein said equal angle is substantially 20 degrees.
RELATED APPLICATIONS
This application is related to commonly assigned application Ser. No. 09/177,228, filed even dated herewith, entitled INTEGRATED CRYOCOOLER ASSEMBLY WITH IMPROVED COMPRESSOR PERFORMANCE.
US Referenced Citations (1)
Number |
Name |
Date |
Kind |
4858442 |
Stetson |
Aug 1989 |
|