Cooling device equipped with a compressor device
11028841 ยท 2021-06-08
Assignee
Inventors
Cpc classification
F25B9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B37/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B37/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B45/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B45/033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04B45/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B45/033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B37/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B37/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Pulse tube coolers and Gifford-McMahon coolers are used to cool nuclear spin tomographs and cryopumps. To supply cooled working gas, gas compressors and in particular helium compressors are used with rotational or rotary valves. The rate at which compressed helium is introduced into the cooling device and let out again lies in the range of 1 Hz. A problem of conventional screw or piston processors is that oil from the compressor mixes with the working gas and thus contaminates the cooling device. By providing a second compressor stage, a common pump device can be used to pump in both directions, which results in a two-stage compressor device. The working gas is compressed in each flow direction of the working liquid, in one flow direction in the first compressor stage and in the opposite flow direction in the second compressor stage. Thus, the efficiency of the compressor device is improved.
Claims
1. A compressor device, comprising: a first compressor chamber that is divided by a first metal bellows into a first gas volume inside the first metal bellows and a first liquid volume outside the first metal bellows, wherein a working gas is present in the first gas volume, and wherein a working liquid is present in the first liquid volume; a first working liquid connection connected to the first liquid volume; a first high-pressure working gas connection connected to the first gas volume; a first low-pressure working gas connection connected to the first gas volume; a first high-pressure check valve connected to the first high-pressure working gas connection, wherein the first high-pressure check valve is adapted to permit working gas to flow only in a direction out of the first gas volume and through the first high-pressure working gas connection; a first low-pressure check valve connected to the first low-pressure working gas connection, wherein the first low-pressure check valve is adapted to permit working gas to flow only in a direction through the first low-pressure working gas connection and into the first gas volume; a second compressor chamber that is divided by a second metal bellows into a second gas volume inside the second metal bellows and a second liquid volume outside the second metal bellows, wherein the working gas is present in the second gas volume, and wherein the working liquid is present in the second liquid volume; a second working liquid connection connected to the second liquid volume; a second high-pressure working gas connection connected to the second gas volume; a second low-pressure working gas connection connected to the second gas volume; a second high-pressure check valve connected to the second high-pressure working gas connection, wherein the second high-pressure check-valve is adapted to permit the working gas to flow only in a direction out of the second gas volume; a second low-pressure check valve connected to the second low-pressure working gas connection, wherein the second low-pressure check valve is adapted to permit the working gas to flow only in a direction into the second gas volume; a pump that compresses the working gas in the first gas volume by pumping the working liquid from the second liquid volume through the second working liquid connection, through the first working liquid connection and into the first liquid volume, and wherein the working gas in the second gas volume is compressed as the pump pumps the working liquid from the first liquid volume into the second liquid volume; a common high-pressure output connection connected to the first and second high-pressure check valves; a common low-pressure input connection connected to the first and second low-pressure check valves; a rotary valve; a first heat exchanger, wherein the working gas flows from the first gas volume, through the first high-pressure working gas connection, through the first heat exchanger and through the rotary valve; and a second heat exchanger, wherein the working gas flows from the second gas volume, through the second high-pressure working gas connection, through the second heat exchanger and through the rotary valve.
2. A compressor device, comprising: a first compressor chamber that is divided by a first metal bellows into a first gas volume inside the first metal bellows and a first liquid volume outside the first metal bellows, wherein a working gas is present in the first gas volume, and wherein a working liquid is present in the first liquid volume; a first working liquid connection connected to the first liquid volume; a first high-pressure working gas connection connected to the first gas volume; a first low-pressure working gas connection connected to the first gas volume; a first high-pressure check valve connected to the first high-pressure working gas connection, wherein the first high-pressure check valve is adapted to permit working gas to flow only in a direction out of the first gas volume and through the first high-pressure working gas connection; a first low-pressure check valve connected to the first low-pressure working gas connection, wherein the first low-pressure check valve is adapted to permit working gas to flow only in a direction through the first low-pressure working gas connection and into the first gas volume; a second compressor chamber that is divided by a second metal bellows into a second gas volume inside the second metal bellows and a second liquid volume outside the second metal bellows, wherein the working gas is present in the second gas volume, and wherein the working liquid is present in the second liquid volume; a second working liquid connection connected to the second liquid volume; a second high-pressure working gas connection connected to the second gas volume; a second low-pressure working gas connection connected to the second gas volume; a second high-pressure check valve connected to the second high-pressure working gas connection, wherein the second high-pressure check-valve is adapted to permit the working gas to flow only in a direction out of the second gas volume; a second low-pressure check valve connected to the second low-pressure working gas connection, wherein the second low-pressure check valve is adapted to permit the working gas to flow only in a direction into the second gas volume; a pump that compresses the working gas in the first gas volume by pumping the working liquid from the second liquid volume through the second working liquid connection, through the first working liquid connection and into the first liquid volume, and wherein the working gas in the second gas volume is compressed as the pump pumps the working liquid from the first liquid volume into the second liquid volume; a common high-pressure output connection connected to the first and second high-pressure check valves; a common low-pressure input connection connected to the first and second low-pressure check valves; a rotary valve; and a cryo-cooler, wherein the working gas flows through the first high-pressure working gas connection, through the rotary valve and to the cryo-cooler, and wherein the working gas flows through the second high-pressure working gas connection, through the rotary valve and to the cryo-cooler.
3. A compressor device, comprising: a first compressor chamber that is divided by a first metal bellows into a first gas volume inside the first metal bellows and a first liquid volume outside the first metal bellows, wherein a working gas is present in the first gas volume, and wherein a working liquid is present in the first liquid volume; a first working liquid connection connected to the first liquid volume; a first high-pressure working gas connection connected to the first gas volume; a first low-pressure working gas connection connected to the first gas volume; a first high-pressure check valve connected to the first high-pressure working gas connection, wherein the first high-pressure check valve permits working gas to flow only in a direction out of the first gas volume and through the first high-pressure working gas connection; a first low-pressure check valve connected to the first low-pressure working gas connection, wherein the first low-pressure check valve permits working gas to flow only in a direction through the first low-pressure working gas connection and into the first gas volume; a second compressor chamber that is divided by a second metal bellows into a second gas volume inside the second metal bellows and a second liquid volume outside the second metal bellows, wherein the working gas is present in the second gas volume, and wherein the working liquid is present in the second liquid volume; a second working liquid connection connected to the second liquid volume; a second high-pressure working gas connection connected to the second gas volume; a second low-pressure working gas connection connected to the second gas volume; a second high-pressure check valve connected to the second high-pressure working gas connection, wherein the second high-pressure check-valve permits the working gas to flow only in a direction out of the second gas volume; a second low-pressure check valve connected to the second low-pressure working gas connection, wherein the second low-pressure check valve permits the working gas to flow only in a direction into the second gas volume; a pump that compresses the working gas in the first gas volume by pumping the working liquid from the second liquid volume through the second working liquid connection, through the first working liquid connection and into the first liquid volume, and wherein the working gas in the second gas volume is compressed as the pump pumps the working liquid from the first liquid volume into the second liquid volume; a common high-pressure output connection connected to the first and second high-pressure check valves; a common low-pressure input connection connected to the first and second low-pressure check valves; a high-pressure gas storage container having a high-pressure input and a high-pressure output, wherein the high-pressure input is connected to the common high-pressure output connection; a low-pressure gas storage container having a low-pressure input and a low-pressure output, wherein the low-pressure output is connected the common low-pressure input connection; and a rotary valve connected to the high-pressure output of the high-pressure gas storage container and connected to the low-pressure input of the low-pressure gas storage container.
4. A compressor device, comprising: a first compressor chamber that is divided by a first metal bellows into a first gas volume inside the first metal bellows and a first liquid volume outside the first metal bellows, wherein a working gas is present in the first gas volume, and wherein a working liquid is present in the first liquid volume; a first working liquid connection connected to the first liquid volume; a first high-pressure working gas connection connected to the first gas volume; a first low-pressure working gas connection connected to the first gas volume; a first high-pressure check valve connected to the first high-pressure working gas connection, wherein the first high-pressure check valve permits working gas to flow only in a direction out of the first gas volume and through the first high-pressure working gas connection; a first low-pressure check valve connected to the first low-pressure working gas connection, wherein the first low-pressure check valve permits working gas to flow only in a direction through the first low-pressure working gas connection and into the first gas volume; a second compressor chamber that is divided by a second metal bellows into a second gas volume inside the second metal bellows and a second liquid volume outside the second metal bellows, wherein the working gas is present in the second gas volume, and wherein the working liquid is present in the second liquid volume; a second working liquid connection connected to the second liquid volume; a second high-pressure working gas connection connected to the second gas volume; a second low-pressure working gas connection connected to the second gas volume; a second high-pressure check valve connected to the second high-pressure working gas connection, wherein the second high-pressure check-valve permits the working gas to flow only in a direction out of the second gas volume; a second low-pressure check valve connected to the second low-pressure working gas connection, wherein the second low-pressure check valve permits the working gas to flow only in a direction into the second gas volume; a pump that compresses the working gas in the first gas volume by pumping the working liquid from the second liquid volume through the second working liquid connection, through the first working liquid connection and into the first liquid volume, and wherein the working gas in the second gas volume is compressed as the pump pumps the working liquid from the first liquid volume into the second liquid volume; a common high-pressure output connection connected to the first and second high-pressure check valves; a common low-pressure input connection connected to the first and second low-pressure check valves; a high-pressure gas storage container having a high-pressure input and a high-pressure output, wherein the high-pressure input is connected to the common high-pressure output connection; a low-pressure gas storage container having a low-pressure input and a low-pressure output, wherein the low-pressure output is connected the common low-pressure input connection; a first heat exchanger, wherein the working gas flows from the first gas volume, through the first high-pressure working gas connection, through the first heat exchanger to the common high-pressure output connection; and a second heat exchanger, wherein the working gas flows from the second gas volume, through the second high-pressure working gas connection, through the second heat exchanger to the common high-pressure output connection.
5. A compressor device, comprising: a first compressor chamber that is divided by a first metal bellows into a first gas volume inside the first metal bellows and a first liquid volume outside the first metal bellows, wherein a working gas is present in the first gas volume, and wherein a working liquid is present in the first liquid volume; a first working liquid connection connected to the first liquid volume; a first high-pressure working gas connection connected to the first gas volume; a second compressor chamber that is divided by a second metal bellows into a second gas volume inside the second metal bellows and a second liquid volume outside the second metal bellows, wherein the working gas is present in the second gas volume, and wherein the working liquid is present in the second liquid volume; a second working liquid connection connected to the second liquid volume; a second high-pressure working gas connection connected to the second gas volume; a pump that compresses the working gas in the first gas volume by pumping the working liquid from the second liquid volume through the second working liquid connection, through the first working liquid connection and into the first liquid volume, and wherein the working gas in the second gas volume is compressed as the pump pumps the working liquid from the first liquid volume into the second liquid volume; a rotary valve, wherein the working gas flows through the first high-pressure working gas connection to the rotary valve, and wherein the working gas flows through the second high-pressure working gas connection to the rotary valve; a cryo-cooler; a low-pressure gas storage container; and a high-pressure gas storage container, wherein the rotary valve alternately allows working gas to flow from the high-pressure gas storage container into the cryo-cooler and from the cryo-cooler into the low-pressure gas storage container.
6. The compressor device of claim 5, wherein the cryo-cooler is taken from the group consisting of: a Gifford-McMahon cooler and a pulse tube refrigerator.
7. A compressor device, comprising: a first compressor chamber that is divided by a first metal bellows into a first gas volume inside the first metal bellows and a first liquid volume outside the first metal bellows, wherein a working gas is present in the first gas volume, and wherein a working liquid is present in the first liquid volume; a first working liquid connection connected to the first liquid volume; a first high-pressure working gas connection connected to the first gas volume; a first low-pressure working gas connection connected to the first gas volume; a first high-pressure check valve connected to the first high-pressure working gas connection, wherein the first high-pressure check valve is adapted to permit working gas to flow only in a direction out of the first gas volume and through the first high-pressure working gas connection; a first low-pressure check valve connected to the first low-pressure working gas connection, wherein the first low-pressure check valve is adapted to permit working gas to flow only in a direction through the first low-pressure working gas connection and into the first gas volume; a second compressor chamber that is divided by a second metal bellows into a second gas volume inside the second metal bellows and a second liquid volume outside the second metal bellows, wherein the working gas is present in the second gas volume, and wherein the working liquid is present in the second liquid volume; a second working liquid connection connected to the second liquid volume; a second high-pressure working gas connection connected to the second gas volume; a second low-pressure working gas connection connected to the second gas volume; a second high-pressure check valve connected to the second high-pressure working gas connection, wherein the second high-pressure check-valve is adapted to permit the working gas to flow only in a direction out of the second gas volume; a second low-pressure check valve connected to the second low-pressure working gas connection, wherein the second low-pressure check valve is adapted to permit the working gas to flow only in a direction into the second gas volume; a pump that compresses the working gas in the first gas volume by pumping the working liquid from the second liquid volume through the second working liquid connection, through the first working liquid connection and into the first liquid volume, and wherein the working gas in the second gas volume is compressed as the pump pumps the working liquid from the first liquid volume into the second liquid volume; a common high-pressure output connection connected to the first and second high-pressure check valves; a common low-pressure input connection connected to the first and second low-pressure check valves; a high-pressure gas storage container having a high-pressure input and a high-pressure output, wherein the high-pressure input is connected to the common high-pressure output connection; a low-pressure gas storage container having a low-pressure input and a low-pressure output, wherein the low-pressure output is connected the common low-pressure input connection; and a rotary valve connected to the high-pressure output of the high-pressure gas storage container and connected to the low-pressure input of the low-pressure gas storage container.
8. The compressor device of claim 7, further comprising: a cryo-cooler connected to the rotary valve, wherein the rotary valve is adapted to alternately permit high-pressure working gas from the high-pressure gas storage container to flow to the cryo-cooler, and to allow low-pressure gas from the cryo-cooler to flow to the low-pressure gas storage container.
9. A compressor device, comprising: a first compressor chamber that is divided by a first metal bellows into a first gas volume inside the first metal bellows and a first liquid volume outside the first metal bellows, wherein a working gas is present in the first gas volume, and wherein a working liquid is present in the first liquid volume; a first working liquid connection connected to the first liquid volume; a first high-pressure working gas connection connected to the first gas volume; a first low-pressure working gas connection connected to the first gas volume; a first high-pressure check valve connected to the first high-pressure working gas connection, wherein the first high-pressure check valve permits working gas to flow only in a direction out of the first gas volume and through the first high-pressure working gas connection; a first low-pressure check valve connected to the first low-pressure working gas connection, wherein the first low-pressure check valve permits working gas to flow only in a direction through the first low-pressure working gas connection and into the first gas volume; a second compressor chamber that is divided by a second metal bellows into a second gas volume inside the second metal bellows and a second liquid volume outside the second metal bellows, wherein the working gas is present in the second gas volume, and wherein the working liquid is present in the second liquid volume; a second working liquid connection connected to the second liquid volume; a second high-pressure working gas connection connected to the second gas volume; a second low-pressure working gas connection connected to the second gas volume; a second high-pressure check valve connected to the second high-pressure working gas connection, wherein the second high-pressure check-valve permits the working gas to flow only in a direction out of the second gas volume; a second low-pressure check valve connected to the second low-pressure working gas connection, wherein the second low-pressure check valve permits the working gas to flow only in a direction into the second gas volume; a pump that compresses the working gas in the first gas volume by pumping the working liquid from the second liquid volume through the second working liquid connection, through the first working liquid connection and into the first liquid volume, and wherein the working gas in the second gas volume is compressed as the pump pumps the working liquid from the first liquid volume into the second liquid volume; a common high-pressure output connection connected to the first and second high-pressure check valves; a common low-pressure input connection connected to the first and second low-pressure check valves; a high-pressure gas storage container having a high-pressure input and a high-pressure output, wherein the high-pressure input is connected to the common high-pressure output connection; a low-pressure gas storage container having a low-pressure input and a low-pressure output, wherein the low-pressure output is connected the common low-pressure input connection; and a cryo-cooler connected to a rotary valve, wherein the rotary valve is adapted to alternately permit high-pressure working gas from the high-pressure gas storage container to flow to the cryo-cooler, and to permit low-pressure gas from the cryo-cooler to flow to the low-pressure gas storage container.
10. The compressor device of claim 9, wherein the cryo-cooler is taken from the group consisting of: a Gifford-McMahon cooler and a pulse tube refrigerator.
11. A compressor device, comprising: a first compressor chamber that includes a first metal bellows, wherein the first metal bellows divides the first compressor chamber into a first gas volume inside the first metal bellows and a first liquid volume outside the first metal bellows, wherein a working gas is present in the first gas volume, and wherein a working liquid is present in the first liquid volume; a low-pressure gas connection connected to the first gas volume; a low-pressure check valve that permits the working gas to flow only in a direction into the first gas volume; a first middle-pressure check valve that permits the working gas to flow only in a direction out of the first gas volume; a second compressor chamber that includes a second metal bellows, wherein the second metal bellows divides the second compressor chamber into a second gas volume inside the second metal bellows and a second liquid volume outside the second metal bellows, wherein the working gas is present in the second gas volume, and wherein the working liquid is present in the second liquid volume; a gas line connecting the first gas volume to the second gas volume via the first middle-pressure check valve; a high-pressure check valve that permits the working gas to flow only in a direction out of the second gas volume; and a pump that pumps the working liquid between the first liquid volume and the second liquid volume, wherein the working gas in the first gas volume is compressed as the pump pumps the working liquid from the second liquid volume into the first liquid volume, and wherein the working gas in the second gas volume is compressed as the pump pumps the working liquid from the first liquid volume into the second liquid volume.
12. The compressor device of claim 11, further comprising: a second middle-pressure check valve that permits the working gas to flow only in a direction into the second gas volume, wherein the first and second middle-pressure check valves are connected via the gas line between the first and second gas volumes.
13. The compressor device of claim 11, further comprising: a buffer storage container arranged in the gas line between the first middle-pressure check valve and the second gas volume, wherein the working gas flows from the first gas volume, through the first middle-pressure check valve, through the buffer storage container, and into the second gas volume.
14. The compressor device of claim 11, further comprising: a cryo-cooler, wherein the working gas flows from the second gas volume to the cryo-cooler, and wherein the working gas flows from the cryo-cooler to the first gas volume.
15. The compressor device of claim 14, wherein the cryo-cooler is a Joule-Thomson cooler.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The accompanying drawings, where like numerals indicate like components, illustrate embodiments of the invention.
(2)
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DETAILED DESCRIPTION
(14) Reference will now be made in detail to some embodiments of the invention, examples of which are illustrated in the accompanying drawings.
(15) The compressor device according to the present invention can be designed either as a non-transporting compressor device 10 or as a transporting compressor device 11. In the non-transporting configuration, a predetermined amount of working gas 12 is alternately compressed and relaxed in two transporting stages. No working gas is supplied from the outside or discharged to the outside in the non-transporting compressor device 10.
(16)
(17) The gas flow is controlled in a simple manner during compression and relaxation of the gas using check valves 17 at high-pressure working gas connections 19-20 and by using check valves 18 at low-pressure working gas connections 21-22. The compressed working gas 12 is cooled after each compression stroke in the two compressor stages 13-14 using heat exchangers 23-24 downstream of the high pressure working gas connections 19-20.
(18) A high-pressure gas line 25 and a low-pressure gas line 26 are configured to store gas on account of their volume. Alternatively, a low-pressure gas storage container 27 and a high-pressure gas storage container 28 are provided in the high-pressure gas line 25 and in the low-pressure gas line 26, respectively.
(19) In the transporting configuration of a second compressor device 11, the working gas 12 is first compressed or pre-compressed in the first compressor stage 13 and stored intermediately in a buffer storage container 29. The second compressor stage 14 operates in an idle mode and serves as a compensation container 31 for the working liquid 15. When an amount of working gas 12 at a middle pressure Pmid is reached in the buffer storage 29, which corresponds to the second gas volume 33 in the second compressor stage 14, during the next compressor stroke the pre-compressed working gas 12 from the buffer storage 29 is compressed in the second compressor stage 14 to an end pressure Pend. The working gas 12 compressed to an end pressure Pend is then released to the outside or stored in the high-pressure gas storage container 28.
(20) In the transporting configuration of the first compressor device 10, the working gas 12 is first compressed or pre-compressed in the first compressor stage 13 and at the same time is transferred into the second gas volume 33 of the second compressor stage 14. In the second compressor stage 14, the working gas 12 which has been pre-compressed to a middle pressure Pmid is then compressed to the end pressure Pend. The working gas 12 which has been compressed to the end pressure Pend is then released to the outside or stored in the high-pressure gas storage container 28.
(21) Hydraulic oil as defined by the German Industry Standard DIN 51524 is preferably used as the working liquid 15, which is additionally water-free or desiccated. In the first and second compressor devices 10 and 11, the hydraulic oil is present in a closed system comprising the pump 16, the working liquid compensation container 31 and a liquid volume 30 in the compressor chamber 13 such that during operation no water from the environment can be absorbed by the hydraulic oil. Alternatively, water can also be used as the working liquid 15. Water is also advantageous as the working liquid because in the case of a defect, water that has penetrated into a downstream cryo-cooler can be removed more easily than can hydraulic oil that has penetrated into a downstream cooler. Water also is more advantageous as a working liquid in explosion-protected applications because water is noncombustible and non-explosive. Moreover, water is non-toxic and therefore environmentally friendly.
(22) For cryo-applications, helium, neon or nitrogen are preferably used as the working gas 12, depending on the temperature range.
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(24) The two compressor stages 13-14 are constructed in the same way such that both of the gas volumes 32-33 are equal and both of the liquid volumes 30-31 are equal. The gas volumes 32-33 are inside the metal bellows 36-37, and the liquid volumes are outside the metal bellows 36-37. A connection 38-39 for the working fluid leads out of each of the liquid volumes 30-31. The gas volumes 32-33 are each connected both to a high-pressure working gas connection 19-20 and to a low-pressure working gas connection 21-22. The low-pressure working gas connections 21-22 are provided with check valves 18 that are permeable in the direction of compressor stages 13-14. The high-pressure working gas connections 19-20 are provided with check valves 17 that, in contrast to check valves 18 at the low-pressure working gas connections 21-22, have opposite forward directions. Thus, the check valves 17 permit working gas to flow only in the direction out of the gas volumes 32-33, and the check valves 18 permit working gas to flow only in the direction into the gas volume 32-33. The high-pressure working gas connections 19-20 are connected to the common high-pressure gas line 25 via the check valves 17. The low-pressure working gas connections 21-22 are connected to the low-pressure gas line 26 via the check valves 18.
(25) The check valves 17 in the high-pressure working gas connections 19-20 are permeable in the direction of the common high-pressure gas line 25, and the check valves 18 in the low-pressure working gas connections 21-22 are permeable in the direction of the compressor stages 13-14. The common high-pressure gas line 25 and the common low-pressure gas line 26 end in a motor rotary valve 40 and alternately connect the high-pressure gas line 25 and the low-pressure gas line 26 to a cooling device 41. The cooling device 41 may be a Giffon-McMahon cooler or a pulse tube refrigerator. In some aspects, the cooling device is considered part of the compressor device. In other aspects, the compressor device and the cooling device are separate components. Due to their volume, the high-pressure gas line 25 and the low pressure gas line 26 act as gas storage. In addition, the low-pressure gas storage container 27 and the high-pressure gas storage container 28 are provided in the high-pressure and low-pressure gas lines 25-26. The heat exchangers 23-24 for cooling the compressed working gas are connected downstream of check valves 17 on the two high-pressure working gas connections 19-20. The two working liquid connections 38-39 are connected to a common electromotive pump device 16 that alternatingly pumps working liquid 15 into the first and second liquid volumes 30-31 of the first and second compressor stages 13-14. Either the working liquid 15 is pumped from the second liquid volume 31 into the first liquid volume 30 or vice versa.
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(27) In the second operating phase shown in
(28) In the third phase shown in
(29) In the fourth phase shown in
(30) The operating phase illustrated in
(31) By providing a high-pressure storage 28 and a low-pressure storage 27, the rotational frequency of rotary valve 40 is decoupled from the frequency of compression in the two compressor stages. Alternatively, the rotational frequency of rotary valve 40 is synchronized with the frequency of the compressor strokes. In that case, the high-pressure and low-pressure storage volumes 28, 27 may be dispensed with.
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(33) Compressor device 11 includes the buffer storage container 29 that is connected via a first gas line 42 and a first lock valve 43 to the second low-pressure working gas connection 22 of the second compressor stage 14. The first high-pressure working gas connection 19 is connected to the buffer storage 29 via the first heat exchanger 23 and a second gas line 44. The low-pressure gas storage 27 is connected via a third gas line 45 and check valve 18 to the first low-pressure working gas connection 21 of the first compressor stage 13. Working gas 12 from the low-pressure gas storage 27 that is to be compressed is supplied to the first compressor stage 13 via the first low-pressure working gas connection 21. The second high-pressure working gas connection 20 of the second compressor stage 14 is connected to the high-pressure gas storage 28 via check valve 17, the second heat exchanger 24 and a fourth gas line 46.
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(36) The operating phases illustrated in
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(39) In an alternative embodiment to that of
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(41) Hydraulic oils as defined by German Industry Standard DIN 51524 are suited as the working liquid 15. The H, HL, HLP and HVLP oils are oils that are readily compatible with customary sealing plastics, such as NBR (acrylonitrile butadiene rubber). However, NBR is not sufficiently helium-impermeable. HF oils are frequently incompatible with customary sealing materials, as described at http://de.wikipedia.org/wiki/Liste_der_Kunststoffe.
(42) Alternatively, water can also be used as the working liquid 15. Water as the working liquid is also advantageous because in the case of defects in a downstream cryo-cooler, penetrated water can more easily be removed than can hydraulic oil that has penetrated into a cooler connected downstream. In addition, water is appropriate as the working liquid in applications protected against explosions because water is non-combustible and non-explosive. Moreover, water is non-toxic and therefore environmentally friendly.
REFERENCE NUMERALS
(43) P0 outlet pressure
(44) Pmid1 middle pressure 1
(45) Pmid2 middle pressure 2
(46) Pend end pressure
(47) 10 transporting compressor device
(48) 11 non-transporting compressor device
(49) 12 working gas
(50) 13 first compressor stage
(51) 14 second compressor stage
(52) 15 working liquid
(53) 16 common electromotive pump device
(54) 17 check valves
(55) 18 check valves
(56) 19 first high-pressure working gas connection
(57) 20 second high-pressure working gas connection
(58) 21 first low-pressure working gas connection
(59) 22 second low-pressure working gas connection
(60) 23 first heat exchanger
(61) 24 second heat exchanger
(62) 25 high-pressure gas line
(63) 26 low-pressure gas line
(64) 27 low pressure gas storage
(65) 28 high-pressure gas storage
(66) 29 buffer storage
(67) 30 first liquid volume
(68) 31 second liquid volume
(69) 32 first gas volume
(70) 33 second gas volume
(71) 34 first compressor chamber
(72) 35 second compressor chamber
(73) 36 first metal bellows
(74) 37 second metal bellows
(75) 38 first working liquid connection
(76) 39 second working liquid connection
(77) 40 electromotive rotary valve
(78) 41 cooling device
(79) 42 first gas line
(80) 43 first lock valve
(81) 44 second gas line
(82) 45 third gas line
(83) 46 fourth gas line
(84) 47 Joule-Thomson cooler
(85) Although the present invention has been described in connection with certain specific embodiments for instructional purposes, the present invention is not limited thereto. Accordingly, various modifications, adaptations, and combinations of various features of the described embodiments can be practiced without departing from the scope of the invention as set forth in the claims.