Claims
- 1. A pulse tube refrigerator system, comprising:
- a first regenerator having an inlet port and an outlet port;
- a first pulse tube having one end portion connected in series to the outlet port of said first regenerator;
- a second regenerator having an inlet port and an outlet port, said inlet port being connected to the outlet port of said first regenerator;
- a second pulse tube having one end portion connected in series to the outlet port of said second regenerator;
- a housing containing said first regenerator, said first pulse tube, said second regenerator, and said second regenerator;
- a first conduit hermetically extending through a wall of said housing and connected to another end portion of said first pulse tube;
- a second conduit hermetically extending through a wall of said housing and connected to another end portion of said second pulse tube; and
- a gas compressor connected to the inlet port of said first regenerator by means of a pipe hermetically extending through a wall of said housing.
- 2. The pulse tube regenerator system according to claim 1, further comprising:
- a first heat exchange portion formed at a connecting portion between said first regenerator and said first pulse tube; and
- a second heat exchange portion formed at a connecting portion between said second regenerator and said second pulse tube.
- 3. The pulse tube regenerator system according to claim 1, wherein said housing includes a first vessel and a second vessel contained in said first vessel, and a space between said first vessel and said second vessel constitutes a vacuum heat insulating space.
- 4. The pulse tube regenerator system according to claim 3, wherein said first regenerator, said first pulse tube, said second regenerator and said second pulse tube are arranged in said vacuum heat insulating space.
- 5. The pulse tube regenerator system according to claim 1, wherein said second pulse tube is longer than said first pulse tube.
- 6. The pulse tube regenerator system according to claim 1, wherein said second pulse tube is at least twice as long as said first pulse tube.
- 7. The pulse tube regenerator system according to claim 1, further comprising a heat conductor for thermally connecting said second pulse tube to a heat exchange portion formed at a connecting portion between said first regenerator and said first pulse tube.
- 8. The pulse tube regenerator system according to claim 1, wherein a refrigerant is housed in said first and second regenerators.
- 9. The pulse tube regenerator system according to claim 1, wherein a first refrigerant is housed in said first regenerator, and a second refrigerant made of a material different from that of said first refrigerant is housed in said second regenerator.
- 10. The pulse tube regenerator system according to claim 1, further comprising a first buffer tank connected to the other end portion of said first conduit.
- 11. The pulse tube regenerator system according to claim 1, further comprising a second buffer tank connected to the other end portion of said second conduit.
- 12. The pulse tube regenerator system according to claim 10, further comprising a first orifice valve arranged in said first conduit.
- 13. The pulse tube regenerator system according to claim 11, further comprising a second orifice valve arranged in said second conduit.
- 14. The pulse tube regenerator system according to claim 10, further comprising a first porous plug having fine gas passageways and arranged in said first conduit.
- 15. The pulse tube regenerator system according to claim 11, further comprising a second porous plug having fine gas passageways and arranged in said second conduit.
- 16. The pulse tube refrigerator system according to claim 1, wherein a coating layer formed of a material having a thermal diffusion coefficient smaller than that of the material for forming the pulse tube is applied to the inner surface of the first or second pulse tube.
- 17. The pulse tube refrigerator system according to claim 16, wherein the coating layer applied to the inner surface of the pulse tube is formed of a material selected from the group consisting of a fluorine resin, acrylic resin and silicone resin.
- 18. The pulse tube refrigerator system according to claim 16, wherein the coating layer applied to the inner surface of the pulse tube has a thickness of 0.2 to 1 .mu.m.
- 19. The pulse tube refrigerator system according to claim 1, wherein said gas compressor is of a rotary type.
- 20. The pulse tube refrigerator system according to claim 1, further comprising:
- a first valve disposed between the discharge port of the gas compressor and the inlet port of the first regenerator;
- a second valve disposed between the suction port of the gas compressor and the inlet port of the first regenerator; and
- a first valve control means for selectively opening/closing alternately the first and second valves to permit a high pressure coolant gas discharged from the discharge port of the gas compressor to be guided into the first and second pulse tubes through the first and second regenerators and, then, to permit said coolant gas to be sucked into the gas compressor through the suction port thereof via the reverse passageway so as to generate coldness.
- 21. The pulse tube refrigerator system according to claim 20, further comprising:
- a third valve disposed between the other end portion of the first pulse tube and the discharge port of the gas compressor;
- a fourth valve disposed between the other end potion of the first pulse tube and the suction port of the gas compressor;
- a fifth valve disposed between the other end portion of the second pulse tube and the discharge port of the gas compressor;
- a sixth valve disposed between the other end portion of the second pulse tube and the suction port of the gas compressor; and
- a second valve control means serving to open/close the third, fourth, fifth and sixth valves in relation to the opening/closing of the first and second valves.
- 22. A pulse tube regenerator system, comprising:
- a regenerator having an inlet port and an outlet port;
- a pulse tube having one end portion connected in series to the outlet port of the regenerator;
- a heat exchange portion formed at a connecting portion between said regenerator and said pulse tube;
- a first vessel containing said regenerator and said pulse tube;
- a second vessel housed in said first vessel and cooled by said heat exchange portion; and
- a gas compressor connected to the inlet port of said regenerator by means of a pipe hermetically extending through a wall of said first vessel.
- 23. The pulse tube regenerator system according to claim 22, wherein a space between said first vessel and said second vessel constitutes a vacuum heat insulating space, and said regenerator and said pulse tube are arranged in said vacuum heat insulating space.
- 24. The pulse tube regenerator system according to claim 22, wherein an atmosphere in said second vessel is maintained in a cryogenic condition.
- 25. The pulse tube regenerator system according to claim 22, further comprising a pipe connected to another end portion of said pulse tube and hermetically extending through a wall of said first vessel.
- 26. The pulse tube regenerator system according to claim 22, wherein a refrigerant is housed in said regenerators.
- 27. The pulse tube regenerator system according to claim 25, further comprising a buffer tank connected to the other end portion of said pipe.
- 28. The pulse tube regenerator system according to claim 27, further comprising an orifice valve arranged in said pipe.
- 29. The pulse tube regenerator system according to claim 27, further comprising a porous plug having fine gas passageways and arranged in said pipe.
- 30. The pulse tube regenerator system according to claim 22, wherein a coating layer formed of a material having a thermal diffusion coefficient smaller than that of the material for forming the pulse tube is applied to the inner surface of the pulse tube.
- 31. The pulse tube refrigerator system according to claim 30, wherein the coating layer applied to the inner surface of the pulse tube is formed of a material selected from the group consisting of a fluorine resin, acrylic resin and silicone resin.
- 32. The pulse tube refrigerator system according to claim 30, wherein the coating layer applied to the inner surface of the pulse tube has a thickness of 0.2 to 1 mm.
- 33. The pulse tube refrigerator system according to claim 22, wherein said gas compressor is of a rotary type.
- 34. The pulse tube regenerator system according to claim 22, further comprising:
- a first valve disposed between the discharge port of the gas compressor and the inlet port of the regenerator;
- a second valve disposed between the suction port of the gas compressor and the inlet port of the regenerator;
- a first valve control means for selectively opening/closing alternately the first and second valves to permit a high pressure coolant gas discharged from the discharge port of the gas compressor to be guided into the pulse tube through the regenerator and, then, to permit said coolant gas to be sucked into the gas compressor through the suction port thereof via the reverse passageway so as to generate coldness;
- a third valve disposed between the other end portion of the pulse tube and the discharge port of the gas compressor;
- a fourth valve disposed between the other end portion of the pulse tube and the suction port of the gas compressor; and
- a second valve control means serving to open/close the third and fourth valves in relation to the opening/closing of the first and second valves.
- 35. A pulse tube refrigerator system, comprising:
- a first regenerator having an inlet port and an outlet port;
- a first pulse tube having one end portion connected in series to the outlet port of said first regenerator;
- a second regenerator having an inlet port and an outlet port, said inlet port being connected to the outlet port of said first regenerator;
- a second pulse tube having one end connected in series to the outlet port of said second regenerator;
- a heat conductor for thermally connecting said second pulse tube to a heat exchange portion formed at a connecting portion between said first regenerator and said first pulse tube;
- a housing containing said first regenerator, said first pulse tube, said second regenerator, and said second pulse tube; and
- a gas compressor connected to the inlet port of said first regenerator by means of a pipe hermetically extending trough a wall of said housing.
- 36. The pulse tube regenerator system according to claim 35, further comprising:
- a first pipe connected to another end portion of said first pulse tube and hermetically extending through a wall of said housing; and
- and second pipe connected to another end portion of said second pulse tube and hermetically extending through a wall of said housing.
- 37. The pulse tube regenerator system according to claim 35, further comprising:
- a first heat exchange portion formed at a connecting portion between said first regenerator and said first pulse tube; and
- a second heat exchange portion formed at a connecting portion between said second regenerator and said second pulse tube.
- 38. The pulse tube regenerator system according to claim 35, wherein said housing includes a first vessel and a second vessel contained in said first vessel, and a space between said first vessel and said second vessel constitutes a vacuum heat insulating space.
- 39. The pulse tube regenerator system according to claim 38, wherein said first regenerator, said first pulse tube, said second regenerator and said second pulse tube are arranged in said vacuum heat insulating space.
- 40. The pulse tube regenerator system according to claim 35, wherein said second pulse tube is longer than said first pulse tube.
- 41. The pulse tube regenerator system according to claim 35, wherein said second pulse tube is at least twice as long as said first pulse tube.
Priority Claims (2)
Number |
Date |
Country |
Kind |
4-132523 |
May 1992 |
JPX |
|
4-249988 |
Sep 1992 |
JPX |
|
Parent Case Info
This is a division, of application Ser. No. 08/065/900, filed on May, 25, 1993, now U.S. Pat. No. 5, 335,535.
US Referenced Citations (7)
Divisions (1)
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Number |
Date |
Country |
Parent |
65900 |
May 1993 |
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