CONDENSER AND OPEN LOOP TWO PHASE COOLING SYSTEM
20230070643 ยท 2023-03-09
Inventors
Cpc classification
F28B1/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B23/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F13/182
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2009/226
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F13/187
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B39/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A condenser includes a casing and pipes. The casing includes an inlet chamber, an outlet chamber, a first inlet, a first outlet, an accommodation space, a second inlet, and a second outlet. The first inlet and the first outlet are respectively in fluid communication with the inlet chamber and the outlet chamber. The accommodation space accommodates a coolant, and the second inlet and the second outlet are in fluid communication with the accommodation space not in fluid communication with the inlet chamber and the outlet chamber. The pipes are in the accommodation space and connect the inlet chamber with the outlet chamber, and a working fluid flows from the inlet chamber to the outlet chamber via the pipes. The first inlet is located closer to the second outlet than the first outlet, and the first outlet is located closer to the second inlet than the first inlet.
Claims
1. A condenser, configured to cool a working fluid via a coolant, the condenser comprising: a casing, comprising an inlet chamber, an outlet chamber, a first inlet, a first outlet, an accommodation space, a second inlet, and a second outlet, wherein the inlet chamber and the outlet chamber are respectively located at two opposite sides of the casing, the first inlet and the first outlet are respectively in fluid communication with the inlet chamber and the outlet chamber, the accommodation space is not in direct fluid communication with the inlet chamber and the outlet chamber, the accommodation space is configure to accommodate the coolant, and the second inlet and the second outlet are in fluid communication with the accommodation space; and a plurality of pipes, disposed in the accommodation space, wherein two opposite ends of each of the plurality of pipes are respectively in fluid communication with the inlet chamber and the outlet chamber, and the working fluid is configured to flow from the inlet chamber to the outlet chamber via the plurality of pipes; wherein the first inlet is located closer to the second outlet than the first outlet, and the first outlet is located closer to the second inlet than the first inlet.
2. The condenser according to claim 1, further comprising at least one baffle, wherein the at least one baffle is fixed to the casing and located in the accommodation space.
3. The condenser according to claim 2, wherein the at least one baffle has a plurality of through holes, and at least some of the plurality of pipes are respectively disposed through the plurality of through holes.
4. The condenser according to claim 3, wherein the quantity of the at least one baffle is plural, and the baffles are misaligned from one another.
5. The condenser according to claim 1, further comprising a plurality of capillary structures, wherein the plurality of capillary structures are respectively disposed in the plurality of pipes.
6. The condenser according to claim 5, wherein each of the plurality of capillary structures extends from one end of one of the plurality of pipes which is in fluid communication with the inlet chamber to another end thereof which is in fluid communication with the outlet chamber, and each of the plurality of capillary structures has a constant thickness from one end thereof located closer to the inlet chamber to another end thereof located closer to the outlet chamber.
7. The condenser according to claim 5, wherein each of the plurality of capillary structures extends from one end of one of the plurality of pipes which is in fluid communication with the inlet chamber to another end thereof which is in fluid communication with the outlet chamber, and each of the plurality of capillary structures has a thickness which gradually increases from one end thereof located closer to the inlet chamber to another end thereof located closer to the outlet chamber.
8. The condenser according to claim 1, wherein a diameter of the first inlet is greater than a diameter of the first outlet.
9. The condenser according to claim 1, wherein each of the plurality of pipes has a diameter which decreases from one end thereof located closer to the inlet chamber to another end thereof located closer to the outlet chamber.
10. The condenser according to claim 1, wherein in a direction of gravity, the first inlet of the casing is located above the first outlet of the casing.
11. An open loop two phase cooling system, comprising: at least one immersion cooling server; a condenser, in fluid communication with the at least one immersion cooling server and configured to cool a working fluid via a coolant; a tank, in fluid communication with the at least one immersion cooling server; a cooling distribution unit, in fluid communication with the condenser; and a fluid driver, in fluid communication with the tank; wherein the condenser comprises: a casing, comprising an inlet chamber, an outlet chamber, a first inlet, a first outlet, an accommodation space, a second inlet, and a second outlet, wherein the inlet chamber and the outlet chamber are respectively located at two opposite sides of the casing, the first inlet and the first outlet are respectively in fluid communication with the inlet chamber and the outlet chamber, the accommodation space is not in fluid communication with the inlet chamber and the outlet chamber, the accommodation space is configured to accommodate the coolant, and the second inlet and the second outlet are in fluid communication with the accommodation space; and a plurality of pipes, disposed in the accommodation space, wherein two opposite ends of each of the plurality of pipes are respectively in fluid communication with the inlet chamber and the outlet chamber, and the working fluid is configured to flow from the inlet chamber to the outlet chamber via the plurality of pipes; wherein the first inlet is located closer to the second outlet than the first outlet, and the first outlet is located closer to the second inlet than the first inlet.
12. The open loop two phase cooling system according to claim 11, further comprising at least one baffle, wherein the at least one baffle is fixed to the casing and located in the accommodation space.
13. The open loop two phase cooling system according to claim 11, further comprising a plurality of capillary structures, wherein the plurality of capillary structures are respectively disposed in the plurality of pipes.
14. The open loop two phase cooling system according to claim 11, wherein a diameter of the first inlet is greater than a diameter of the first outlet.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] The present invention will become more fully understood from the detailed description given hereinbelow and the accompanying drawings which are given by way of illustration only and thus are not limitative of the present invention and wherein:
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DETAILED DESCRIPTION
[0019] In the following detailed description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the disclosed embodiments. It will be apparent, however, that one or more embodiments may be practiced without these specific details. In other instances, well-known structures and devices are schematically shown in order to simplify the drawing.
[0020] In addition, the terms used in the present invention, such as technical and scientific terms, have its own meanings and can be comprehended by those skilled in the art, unless the terms are additionally defined in the present invention. That is, the terms used in the following paragraphs should be read on the meaning commonly used in the related fields and will not be overly explained, unless the terms have a specific meaning in the present invention.
[0021] Refer to
[0022] The condenser 10, the immersion cooling server 20, the tank 30, and the fluid driver 50 are in fluid communication with one another, and a working fluid (not shown) can sequentially flow through the immersion cooling server 20, the condenser 10, the tank 30, and the fluid driver 50 so as to complete a first cooling circulation. The condenser 10 is in fluid communication with the cooling distribution unit 40, and a coolant (not shown) can sequentially flow through the condenser 10 and the cooling distribution unit 40 so as to complete a second cooling circulation.
[0023] Refer to
[0024] The condenser 10 is configured to cool the working fluid (not shown) via the coolant (not shown). The coolant is, for example, water, and the working fluid is, for example, a dielectric fluid. In this embodiment, the condenser 10 includes a casing 100, a plurality of pipes 200, a plurality of baffles 300, and a plurality of capillary structures 400.
[0025] In this embodiment, the casing 100 includes an inlet chamber 101, an outlet chamber 102, a first inlet 103, a first outlet 104, an accommodation space 105, a second inlet 106, and a second outlet 107. The inlet chamber 101 and the outlet chamber 102 are respectively located at two opposite sides of the casing 100. The first inlet 103 and the first outlet 104 are respectively in fluid communication with the inlet chamber 101 and the outlet chamber 102.
[0026] In addition, a diameter D1 of the first inlet 103 is greater than a diameter D2 of the first outlet 104. Therefore, a difference between a speed of the gaseous working fluid flowing to the inlet chamber 101 from the first inlet 103 and a speed of the liquid working fluid flowing out of the outlet chamber 102 from the first outlet 104 can be decreased, so that the cooling efficiency of the coolant to the working fluid can be improved, and the size of the condenser 10 can be reduced.
[0027] In addition, in this embodiment, in a direction G of gravity, the first inlet 103 is located above the first outlet 104, such that it facilitates the recycling of the liquid working fluid flowing out of the condenser 10 from the first outlet 104.
[0028] Moreover, the first inlet 103 is located closer to the second outlet 107 than the first outlet 104, and the first outlet 104 is located closer to the second inlet 106 than the first inlet 103.
[0029] The accommodation space 105 is not in fluid communication with the inlet chamber 101 and the outlet chamber 102, and the accommodation space 105 is configured to accommodate the coolant. The second inlet 106 and the second outlet 107 are in fluid communication with the accommodation space 105.
[0030] The pipes 200 are disposed in the accommodation space 105. Two opposite ends of each of the pipes 200 are respectively in fluid communication with the inlet chamber 101 and the outlet chamber 102. The working fluid is configured to flow from the inlet chamber 101 to the outlet chamber 102 via the pipes 200. Furthermore, in this embodiment, each of the pipes 200 has a diameter D3 which gradually decreases from one end thereof in fluid communication with the inlet chamber 101 to another end thereof in fluid communication with the outlet chamber 102, such that a difference between a speed of the gaseous working fluid and a speed of the liquid working fluid in the pipes 200 can be reduced, thereby increasing the recycling efficiency of the working fluid. In some other embodiments, each of the pipes may have a constant diameter from one end thereof in fluid communication with the inlet chamber to another end thereof in fluid communication with the outlet chamber.
[0031] In this embodiment, the baffles 300 are fixed to the casing 100 and located in the accommodation space 105, such that the coolant can be maintained in the accommodation space 105 much longer, thereby increasing the heat exchange efficiency between the working fluid and the coolant. In this embodiment, each of the baffles 300 has a plurality of through holes 301. At least some of the pipes 200 are respectively disposed through the through holes 301 of each baffle 300. Moreover, the baffles 300 are misaligned from one another so as to increase the time that the coolant is held in the accommodation space 105. In some other embodiments, the baffles may not be misaligned with one another. In another embodiment, the baffles may not have any through hole and may be directly fixed to outer surfaces of the pipes. In still another embodiment, the condenser may not include the baffles 300.
[0032] Refer to
[0033] Refer to
[0034] According to the condensers and the open loop two phase cooling system as discussed in the above embodiments, the first inlet is located closer to the second outlet than the first outlet, and the first outlet is located closer to the second inlet than the first inlet., such that the coolant and the working fluid can respectively flow in the accommodation space and the pipes along two opposite directions. Therefore, the temperature difference between the coolant and the working fluid can be ensured to increase the heat exchange efficiency between the coolant and the working fluid.
[0035] According to the condensers and the open loop two phase cooling system as discussed in the above embodiments, since the volume of the gaseous working fluid is greater than that of the liquid working fluid, by designing the diameter of the first inlet to be greater than the diameter of the first outlet can increase the heat dissipation performance of the condenser.
[0036] In one embodiment of the invention, the condenser disclosed by the invention can be applied to a server, and the server may be applied to artificial intelligence (AI) computing, edge computing and can be used as 5G server, cloud computing server, or vehicle internet server.
[0037] It will be apparent to those skilled in the art that various modifications and variations can be made to the present invention. It is intended that the specification and examples be considered as exemplary embodiments only, with a scope of the invention being indicated by the following claims and their equivalents.