Claims
- 1. A hybrid two-stage cryocooler comprising:a first-stage Stirling expander having a first-stage interface and a Stirling expander outlet; a thermal-energy storage device in thermal communication with first-stage interface; a second-stage pulse tube expander having a pulse tube inlet; a gas flow path extending between the Stirling expander outlet and the pulse tube inlet; and a heat exchanger in thermal contact with the gas flow path.
- 2. The cryocooler of claim 1, wherein the thermal-energy storage device comprises a triple-point cooler.
- 3. The cryocooler of claim 1, wherein the thermal-energy storage device comprises a triple-point cooler utilizing a working fluid selected from the group consisting of nitrogen, argon, methane, and neon.
- 4. The cryocooler of claim 1, wherein the first-stage Stirling expander comprisesan expansion volume having an expander inlet and the Stirling expander outlet, a displacer which forces a working gas through the expander inlet and a first-stage regenerator, into the expansion volume, and thence into the gas flow path, and a motor that drives the displacer.
- 5. The cryocooler of claim 4, further includinga motor controller for the motor, the motor controller being operable to alter at least one of the stroke and the phase angle of the motor.
- 6. The cryocooler of claim 5, further includinga heat-load sensor, and wherein the motor controller is responsive to a control signal of the heat-load sensor.
- 7. The cryocooler of claim 1, wherein the pulse tube expander comprisesa pulse tube inlet, a pulse tube gas volume in gaseous communication with the pulse tube inlet, the gas volume including a second-stage regenerator, a pulse tube gas column, and a surge volume, and a second-stage heat exchanger in thermal communication with the second-stage regenerator and the pulse tube gas column.
- 8. A hybrid two stage cryocooler comprising:a first-stage Stirling expander comprising an expansion volume having an expander inlet, a first-stage regenerator, and an outlet, and a displacer which forces a working gas through the expander inlet and the first-stage regenerator, and into the expansion volume; a thermal-energy storage device in thermal communication with the expansion volume of the first-stage Stirling expander; a second-stage pulse tube expander comprising a pulse tube inlet, a pulse tube gas volume in gaseous communication with the pulse tube inlet, the gas volume including a second-stage regenerator, a pulse tube gas column, and a surge volume, and a second-stage heat exchanger in thermal communication with the second-stage regenerator and the pulse tube gas column; the gas flow path establishing gaseous communication between the outlet of the expansion volume of the Stirling expander and the pulse tube inlet, and a flow-through heat exchanger disposed along the gas flow path between the output of the expansion volume of the Stirling expander and the pulse tube inlet.
- 9. The cryocooler of claim 8, wherein the thermal-energy storage device comprises a triple-point cooler.
- 10. The cryocooler of claim 8, wherein the thermal-energy storage device comprises a triple-point cooler utilizing a working fluid selected from the group consisting of nitrogen, argon, methane, and neon.
- 11. The cryocooler of claim 8, wherein the first-stage Stirling expander further comprisesa motor that drives the displacer.
- 12. The cryocooler of claim 11, further includinga motor controller for the motor, the motor controller being operable to alter at least one of an amplitude and a phase angle of the motor.
- 13. The cryocooler of claim 12, further includinga heat load in thermal communication with the second-stage pulse tube expander, and a heat-load sensor in thermal communication with the heat load; and wherein the motor controller is responsive to a control signal of the heat-load sensor.
- 14. The cryocooler of claim 8, wherein the pulse tube expander comprisesa pulse tube inlet, a pulse tube gas volume in gaseous communication with the pulse tube inlet, the gas volume including a second-stage regenerator, a pulse tube gas column, and a surge volume, and a second-stage heat exchanger in thermal communication with the second-stage regenerator and the pulse tube gas column.
- 15. A method for cooling a heat load, comprising the steps of providing a cryocooler comprisinga first-stage Stirling expander having a first-stage interface, a displacer, a first-stage regenerator, a motor that drives the displacer, and a Stirling expander outlet, a thermal-energy storage device in thermal communication with first-stage interface, a second-stage pulse tube expander having a pulse tube inlet, the second-stage pulse tube expander being in thermal contact with the heat load; a motor controller for the motor of the first-stage Stirling expander, the motor controller being operable to vary a relative cooling power of the first-stage Stirling expander and the second-stage pulse tube expander, a gas flow path extending between the Stirling expander outlet and the pulse tube inlet, and a heat exchanger in thermal contact with the gas flow path; operating the motor controller to increase the relative cooling power of the second-stage pulse tube expander for a large heat load, and thereafter to decrease the relative cooling power of the second-stage pulse tube expander.
Parent Case Info
This application is a continuation-in-part of pending application Ser. No. 09/292,028, filed Apr. 16, 1999, now U.S. Pat. No. 6,167,707, for which priority is claimed and whose disclosure is incorporated by reference.
US Referenced Citations (6)
Number |
Name |
Date |
Kind |
4711650 |
Faria et al. |
Dec 1987 |
|
5519999 |
Harpole et al. |
May 1996 |
|
5613365 |
Mastrup et al. |
Mar 1997 |
|
5647219 |
Rattray et al. |
Jul 1997 |
|
5689959 |
Yatsuzuka et al. |
Nov 1997 |
|
5920133 |
Penswick et al. |
Jul 1999 |
|
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09/292028 |
Apr 1999 |
US |
Child |
09/610557 |
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US |