AIR-VAPOR SEPARATION DEVICE FOR SEPARATING AIR FROM REFRIGERANT VAPOR AND METHOD THEREOF
20210116157 · 2021-04-22
Inventors
- Weidong Shen (Beijing, CN)
- Chen Wang (Beijing, CN)
- Hongjie Wu (Beijing, CN)
- Xing Li (Beijing, CN)
- Jingnan Peng (Beijing, CN)
- Zhen SUN (Beijing, CN)
- Xintao Cui (Beijing, CN)
- Jin CHEN (Beijing, CN)
Cpc classification
F25B43/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B31/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2309/004
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The present invention relates to an air-vapor separation device for separating air from refrigerant vapor comprising an air-vapor separation tank, a separation membrane, a mixed gas input passage, a refrigerant vapor output passage, and a control unit, wherein the mixed gas input passage is provided with a compressor and a first control valve, and the refrigerant vapor output passage is provided with a second control valve. The air-vapor separation device of the present invention has the advantages of simple structure, convenient operation, and is reliable and effective in separation of air and refrigerant vapor, with good separation effect.
Claims
1. An air-vapor separation device for separating air and refrigerant vapor, characterized in that, comprising an air-vapor separation tank, a separation membrane, a mixed gas input passage, a refrigerant vapor output passage, and a control unit, wherein the mixed gas input passage is provided with a compressor and a first control valve, and the refrigerant vapor output passage is provided with a second control valve.
2. The air-vapor separation device according to claim 1, characterized in that, the air-vapor separation tank includes a sealed cavity, and one side wall of the sealed cavity is the separation membrane.
3. The air-vapor separation device according to claim 2, characterized in that, the separation membrane is in sealed connection with other side walls of the sealed cavity.
4. The air-vapor separation device according to claim 1, characterized in that, the separation membrane is a microporous one-way filtration membrane, which may only allow the passage of the air in one direction and prevent the passage of the refrigerant vapor according to the difference in molecular size.
5. The air-vapor separation device according to claim 1, characterized in that, the air-vapor separation tank is further provided with a pressure relief valve.
6. The air-vapor separation device according to claim 1, characterized in that, the mixed gas input passage is provided with a nozzle at the sealed cavity of the air-vapor separation tank, and the nozzle is selected from a chrome-plated copper alloy.
7. The air-vapor separation device according to claim 1, characterized in that, the separation membrane is selected from a molecular sieve.
8. The air-vapor separation device according to claim 2, characterized in that, further comprising: a detecting device for detecting a concentration of the refrigerant vapor in the sealed cavity.
9. An air-vapor separation method using the air-vapor separation device according to claim 1, characterized in that, when a mixed gas of the air-refrigerant vapor is required to separate, the control unit issues an instruction to open the first control valve on the mixed gas input passage, to close the second control valve on the refrigerant vapor output passage, and to start the compressor; after a predetermined time period, the control unit issues an instruction to stop the compressor, to close the first control valve, and to stop a delivery of the mixed gas to the sealed cavity; a detecting device continuously monitors a concentration of the refrigerant vapor in the sealed cavity, and when the detecting device detects that the concentration of the refrigerant vapor is greater than or equal to a predetermined value, indicating that only refrigerant vapor remains in the sealed cavity, then, the control unit issues an instruction to open the second control valve for discharging the refrigerant vapor from the sealed cavity through the refrigerant vapor output passage.
10. The air-vapor separation method according to claim 9, characterized in that, after the refrigerant vapor is discharged from the sealed cavity through the refrigerant vapor output passage, it is condensed by a condenser to be recovered and reused.
11. The air-vapor separation device according to claim 3, characterized in that, further comprising: a detecting device for detecting a concentration of the refrigerant vapor in the sealed cavity.
12. The air-vapor separation device according to claim 4, characterized in that, further comprising: a detecting device for detecting a concentration of the refrigerant vapor in the sealed cavity.
13. The air-vapor separation device according to claim 5, characterized in that, further comprising: a detecting device for detecting a concentration of the refrigerant vapor in the sealed cavity.
14. The air-vapor separation device according to claim 6, characterized in that, further comprising: a detecting device for detecting a concentration of the refrigerant vapor in the sealed cavity.
15. The air-vapor separation device according to claim 7, characterized in that, further comprising: a detecting device for detecting a concentration of the refrigerant vapor in the sealed cavity.
Description
BRIEF DESCRIPTION OF THE ACCOMPANYING DRAWINGS
[0021]
[0022]
[0023] Description of reference numerals: 1—refrigerant storage tank, 2—immersed blade cabinet, 3—first condenser, 4—second condenser, 5—drying filter, 7—first pressure relief valve, 8—air-vapor separation device, 81—air-vapor separation tank, 82—air-vapor separation membrane, 83—compressor, 84—first control valve, 85—second control valve, 9—first on-off valve, 10—second on-off valve, 11—third on-off valve, 13—condensation coil, 14—refrigerant delivery pump.
DETAILED DESCRIPTION OF THE PREFERRED EXAMPLES
[0024] To make the purpose, technical solutions and advantages of the present invention clearer, the embodiments of the present invention will be described below in detail in combination with the drawings. It should be noted that, in the case of no conflicts, the embodiments in the present invention and features in the embodiments can be combined mutually and arbitrarily.
[0025] According to an embodiment of the present invention, an immersed liquid-cooling system directly immerses a server board in a sealed cavity filled with refrigerant, and uses phase change heat transfer technology to solve the heat dissipation problem of the high-density server. Specifically, a blade server with a cabinet structure is adopted, and the blade server is a low-cost server platform for high availability and high density by inserting multiple card server units in a standard height rack cabinet (blade cabinet). The server board is installed in the blade cabinet, and all the boards are immersed in the refrigerant, and a certain space is left above the liquid surface as a gas phase zone.
[0026] As shown in
[0027] The immersed blade cabinet 2 is inserted with a plurality of card type server board units that are all immersed in the refrigerant. The refrigerant is an evaporative cooling medium, preferably a fluorocarbon compound that meets environmental requirements. The medium has high insulation properties and does not cause short-circuit electrical accidents like water-cooling even if it leaks out, and has a boiling temperature that can be selected according to the optimal working temperature of the chip, the boiling point being generally selected to be 30-65 degrees. A certain space is left above the liquid level of the refrigerant in the immersed blade cabinet 2 as a gas phase zone. Since the immersed cooling is adopted, the heat radiated from the heating element of the server board unit is transferred to the liquid refrigerant in the immersed blade cabinet 2 during operation, and the liquid refrigerant absorbs heat to heat up for absorbing a large amount of heat caused by boiling vaporization when the temperature reaches a corresponding saturation temperature so as to cool the heating element. The generated refrigerant vapor is diffused by the action of buoyancy to the gas phase zone above the liquid level of the refrigerant of the submerged blade cabinet 2, and the refrigerant vapor is drawn into the first condenser 3 through the air outlet line.
[0028] The first condenser 3 is a water-cooling condenser, that is, the secondary cooling medium is water. The first condenser 3 includes a sealed housing, a condensing coil 13 in the housing, and a first pressure relief valve 7, a cooling water flowing in the condensing coil 13; the housing is filled with refrigerant vapor delivered by the submerged blade cabinet 2 through the air outlet line. Since the original air in the system is usually not completely discharged, a top end of the first condenser 3 has a mixed gas of air and refrigerant vapor. An opening is provided at the top end of the first condenser 3, and the mixed gas of air and refrigerant vapor is sent into the air-vapor separator 8 via a transfer line through the opening.
[0029] The refrigerant storage tank 1 includes a first outlet, a second outlet, a first inlet, and a second inlet, and a refrigerant liquid in a liquid state is stored in the refrigerant storage tank 1. Similarly, since the original air in the system is usually not completely discharged, an upper space of the refrigerant storage tank 1 also has a mixed gas of air and refrigerant vapor. The refrigerant storage tank 1 delivers the liquid refrigerant to the submerged blade cabinet 2 via the first outlet through the refrigerant delivery pump 14. The first inlet and the second outlet are disposed at an upper portion of the refrigerant storage tank 1, wherein the first inlet receives the refrigerant liquid condensed by the first condenser 3, and the second outlet sends the mixed gas of the upper space of the refrigerant storage tank 1 into the air-vapor separator 8. The refrigerant vapor separated by the air-vapor separator 8 is condensed by the second condenser 4 and then sent back to the refrigerant storage tank 1 by the second inlet.
[0030] As shown in
[0031] The cooling cycle process of the submerged liquid-cooling system is as follows:
[0032] As shown in
[0033] As shown in
[0034] The air-vapor separation tank 81 includes a sealed cavity, and one side wall of the sealed cavity is the separation membrane 82; the separation membrane 82 is in sealed connection with other side walls of the sealed cavity; the separation membrane 82 is a microporous one-way filtration membrane, which may only allow the passage of the air in one direction and prevent the passage of the refrigerant vapor according to the difference in molecular size. The separation membrane 82 may be considered to select a corresponding molecular sieve according to the molecular particle size range of the refrigerant vapor and the air. Further, the air-vapor separation tank 81 is further provided with a pressure relief valve thereon for relieving the pressure when the pressure in the sealed cavity exceeds a predetermined value to ensure safety of the apparatus.
[0035] The mixed gas input passage A is provided with a nozzle at the sealed cavity of the air-vapor separation tank 81 to increase the injection speed of the mixed gas into the sealed cavity, and the nozzle is selected from a chrome-plated copper alloy.
[0036] Moreover, the air-vapor separation tank 81 is further provided with a pressure relief valve thereon for relieving the pressure when the pressure in the air-vapor separator exceeds a certain predetermined value.
[0037] The working process of the air-vapor separation device 8 is as follows:
[0038] When the mixed gas of the air-refrigerant vapor is required to separate, the control unit issues an instruction to open the first control valve 84 on the mixed gas input passage A, to close the second control valve 85 on the refrigerant vapor output passage B, and to start the compressor 83; the mixed gas is sprayed into the sealed cavity at a high speed from the nozzle at a constant pressure P, the mixed gas flowing in the sealed cavity at a high speed, and the molecular particle size of the air in the mixed gas is smaller than the pore diameter in the separation membrane 82 for being discharged to the outside of the sealed cavity through the separation membrane 82, wherein the molecular particle size of the refrigerant vapor in the mixed gas is larger than the pore diameter of the separation membrane 82 for being prevented from passing through the separation membrane 82 and being retained in the sealed cavity; after a certain period of time T1, the control unit issues an instruction to stop the compressor 83 and to close the first control valve 84, and the delivery of the mixed gas to the sealed cavity is stopped; then, the detecting device continuously monitors the concentration of the refrigerant vapor in the sealed cavity, and after continuing for a period of time T2, the detecting device detects that the concentration of the refrigerant vapor is 99.9% or more, indicating that the air has been completely discharged to the outside of the sealed cavity through the separation membrane 82 while only refrigerant vapor remaining in the sealed cavity, and the air is successfully separated from the refrigerant vapor in the mixed gas; at this time, the control unit issues an instruction to open the second control valve 85, and the refrigerant vapor is discharged into the sealed cavity through the refrigerant vapor output passage B for being condensed by the second condenser 4 and being recycled and reused; subsequently, after the refrigerant vapor is completely discharged from the sealed cavity, the control unit re-issues an instruction to open the first control valve 84 on the mixed gas input passage A and to close the second control valve 85 on the refrigerant vapor output passage B while activating the compressor 83 to enter the next working cycle.
[0039] The technical means adopted by the above embodiment for discharging the air from the sealed cavity while retaining the refrigerant vapor in the sealed cavity separates the mixed gas of the air-refrigerant vapor. Of course, the separation membrane 82 through which the refrigerant vapor may pass may also be used, thereby separating the mixed gas by leaving the air in the sealed cavity while discharging the refrigerant vapor, and having a separation effect that may also be achieved, which will not be described in detail.
[0040] The air-vapor separation device and method of the invention has the advantages of simple structure, convenient operation, and is reliable and effective in separation of air and refrigerant vapor, with good separation effect.
[0041] While the embodiments of the present invention have been described above, the described embodiments are merely illustrative of the embodiments of the present invention, and are not intended to limit the present invention. Any modification and variation in the form and details of the embodiments may be made by those skilled in the art without departing from the spirit and scope of the invention, and maybe ought to fall within the scope of protection of the present application.