Liquid immersion cooling device
The immersion cooling apparatus addresses inefficiencies in existing cooling systems by using a vertical arrangement of inclined casings and headers, enhancing layout and cooling efficiency while minimizing refrigerant use and maintenance.
Patent Information
- Application Number
- JP2022117547
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-07-22
- Publication Date
- 2025-12-26
- Estimated Expiration
- 2042-07-22
AI Technical Summary
Existing cooling systems for electronic devices are inefficient in terms of layout and cooling, leading to large systems that consume excessive energy and refrigerant.
An immersion cooling apparatus with a casing group of inclined casings arranged vertically, a supply header and discharge header extending vertically, a refrigerant compression section, and a heat exchange section to improve layout efficiency and cooling efficiency.
The apparatus enhances layout efficiency by preventing random horizontal spreading of casings and improves cooling efficiency by ensuring smooth refrigerant flow and heat exchange, reducing refrigerant usage and maintenance complexity.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to an immersion cooling device. [Background technology]
[0002] Patent Document 1 discloses a cooling system for cooling electronic devices having heat-generating elements. The cooling system has a cooling tank filled with a refrigerant. The electronic devices are immersed in the refrigerant in the cooling tank. Multiple electronic devices are arranged upright in the cooling tank. The refrigerant in the cooling tank cools the heat-generating elements, and then circulates to be cooled outside the cooling tank and supplied back to the cooling tank. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] International Publication No. 2016 / 075838 Summary of the Invention [Problem to be solved by the invention]
[0004] However, in the cooling system described in Patent Document 1, multiple electronic devices are arranged vertically in one cooling tank, which results in a large cooling system. Therefore, improving the arrangement efficiency is an issue from the viewpoint of miniaturizing the cooling system. At the same time, improving the cooling efficiency is also an issue from the viewpoint of saving energy and refrigerant.
[0005] The present disclosure has been made to solve the above-mentioned problems, and has an object to provide an immersion cooling device that can improve layout efficiency and cooling efficiency. [Means for solving the problem]
[0006] In order to solve the above problems, the present disclosure provides an immersion cooling apparatus that cools a heat generating element provided on a substrate, and has a box shape that extends downward toward one horizontal side, the substrate and the heating element but Containment was These have a sloped casing. The aforementioned The system includes a casing group in which inclined casings are arranged in a vertical direction, a supply side header extending in a vertical direction on the other horizontal side of the casing group and capable of introducing a first refrigerant into each of the inclined casings, a discharge side header extending in a vertical direction on one horizontal side of the casing group and into which the first refrigerant is introduced from each of the inclined casings, a refrigerant compression section that compresses the first refrigerant from the discharge side header to the supply side header, and a heat exchange section that cools the first refrigerant by exchanging heat between the first refrigerant and a second refrigerant supplied from outside. [Effects of the Invention]
[0007] The immersion cooling apparatus of the present disclosure can improve layout efficiency and cooling efficiency. [Brief explanation of the drawings]
[0008] [Figure 1] 1 is a schematic diagram showing a schematic configuration of an entire immersion cooling apparatus according to an embodiment of the present disclosure. FIG. [Figure 2] FIG. 2 is a schematic diagram showing a schematic configuration inside a tilted casing according to an embodiment of the present disclosure. [Figure 3] FIG. 10 is an enlarged view showing the configuration of the end portion of the inclined casing near the supply-side header according to the embodiment of the present disclosure. [Figure 4] FIG. 1 is a schematic diagram illustrating a schematic configuration inside a server housing according to an embodiment of the present disclosure. [Figure 5] FIG. 1 is a schematic diagram illustrating a rail provided within a tilted casing according to an embodiment of the present disclosure. [Figure 6] FIG. 1 is a schematic diagram illustrating a schematic configuration inside a server housing according to an embodiment of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION
[0009] An immersion cooling apparatus 10 according to an embodiment of the present disclosure will now be described with reference to FIGS. 1, an immersion cooling apparatus 10 is used to cool electronic devices that perform high-speed calculations. In this embodiment, the immersion cooling apparatus 10 is used in a server 1 installed in a data center. A plurality of servers 1 are provided.
[0010] 2, the server 1 has a printed circuit board and elements such as CPU and GPU chips mounted on the printed circuit board. The CPU and GPU are components that handle high-speed calculations, so they are subjected to high loads and generate heat at higher temperatures than other parts of the server 1.
[0011] A data center is equipped with a heat exchanger 4 that uses water as a refrigerant. Examples of the heat exchanger 4 include a dry cooler and a chiller. The immersion cooling apparatus 10 of this embodiment is provided separately from the heat exchanger 4 and is used to cool elements that generate heat at high temperatures, such as a CPU or GPU.
[0012] Hereinafter, the printed circuit board of the server 1 will be simply referred to as the "board 2," and elements such as the CPU and GPU that generate particularly high temperatures within the board 2 will be referred to as the "heat generating element 3."
[0013] The substrate 2 is formed in a rectangular plate shape, and a heating element 3 is provided on the surface of the substrate 2.
[0014] (Configuration of the immersion cooling device) Next, the configuration of the immersion cooling apparatus 10 will be described. As shown in Figures 1 and 2, the immersion cooling apparatus 10 includes a rack 20, a casing group 30, a seal unit 11, a server housing 40, a nozzle 12, a backflow prevention door 50, a supply side header 60, a supply side connection line 13, a valve 14, a discharge side header 70, a backflow prevention cover 80, a refrigerant pressure-feeding unit 15, a first connecting pipe 16, a second connecting pipe 17, and a heat exchange unit 90.
[0015] (rack) The rack 20 is a cubic storage shelf that houses the casing group 30. The rack 20 has a rack body 21, an entrance door 22, an exit door 23, support columns 24, and beams 25. The rack body 21 has a rectangular plate-like upper wall 21a extending horizontally, a lower wall 21b formed in the same shape as the upper wall and positioned directly below the upper wall, and a pair of side walls 21c that connect the side edges of the upper wall 21a and the lower wall 21b and are provided facing each other in the horizontal direction. The rack body 21 is formed in a cylindrical shape that opens on both sides in the horizontal direction perpendicular to the facing direction of the pair of side walls 21c.
[0016] Hereinafter, the horizontal direction in which the rack body 21 is opened will be referred to as the "front-rear direction Da," and the horizontal direction perpendicular to the front-rear direction Da will be referred to as the "width direction Dw." Furthermore, one side of the front-rear direction Da will be referred to as the "one horizontal side D1," and the other side of the front-rear direction Da will be referred to as the "other horizontal side D2."
[0017] In the following description, among the openings of the rack body 21, the opening on the other horizontal side D2 will be referred to as the "entrance side opening 21d", and the opening on the one horizontal side D1 will be referred to as the "exit side opening 21e". An entrance door 22 is provided at the entrance side opening 21d, and an exit door 23 is provided at the exit side opening 21e.
[0018] The entrance door 22 is provided on the other horizontal side D2 of the rack 20. The entrance door 22 is a rectangular plate-shaped member extending in the vertical direction that opens and closes the space within the rack 20. The entrance door 22 closes all of the entrance-side opening 21d except for the lower end. The entrance door 22 is provided so that it can rotate, for example, from 80 to 110 degrees around one edge 21f extending in the vertical direction on the entrance-side opening 21d side of the outer surface of the side wall 21c from a state in which the entrance-side opening 21d is closed. In this embodiment, the entrance door 22 can rotate 90 degrees around the edge 21f on the entrance-side opening 21d side.
[0019] The exit door 23 is provided on one horizontal side D1 of the rack 20. The exit door 23 is a rectangular plate-shaped member extending in the vertical direction that opens and closes the space within the rack 20. The exit door 23 closes all of the exit-side opening 21e except for the lower end. The exit door 23 is provided so that it can rotate, for example, from 80 to 110 degrees around one edge 21g extending in the vertical direction on the entrance-side opening 21d side of the outer surface of the side wall 21c when the exit-side opening 21e is closed. In this embodiment, the exit door 23 can rotate 90 degrees around the edge 21g on the exit-side opening 21e side.
[0020] In the space defined by the rack body 21, the entrance door 22, and the exit door 23, a support pillar 24 extending upward from the bottom wall 21b of the rack body 21 is provided.
[0021] Four support pillars 24 are provided in a rectangular lattice pattern when viewed from above and below. All four support pillars 24 are fixed to the inner surface of side wall 21c of rack main body 21. Two of the four support pillars 24 are disposed near entrance opening 21d, and the remaining two support pillars 24 are disposed near exit opening 21e. Hereinafter, the two support columns 24 near the entrance opening 21d will be referred to as "first support columns 24a," and the two support columns 24 near the exit opening 21e will be referred to as "second support columns 24b."
[0022] The two first pillars 24a face each other in the width direction Dw. Similarly, the two second pillars 24b face each other in the width direction Dw. The two first columns 24a and the two second columns 24b are connected to each other by beams 25 extending in the width direction Dw.
[0023] The beams 25 are rod-shaped members formed with a rectangular cross section when viewed from the width direction Dw. Hereinafter, of the beams 25, the beam 25 connecting the two first columns 24a will be referred to as the "first beam 25a," and the beam 25 connecting the two second columns 24b will be referred to as the "second beam 25b."
[0024] The first beams 25a and the second beams 25b are provided in plurality and spaced apart at equal intervals in the vertical direction. The first beams 25a and the second beams 25b are provided in equal numbers and at the same positions in the vertical direction. However, the first beams 25a are formed thicker in the vertical direction than the second beams 25b. Furthermore, when the first beams 25a and the second beams 25b are provided at the same positions in the vertical direction, the upper surface 25c of the first beams 25a is located higher than the upper surface 25d of the second beams 25b.
[0025] (Casing group) The casing group 30 is housed in the above-mentioned rack 20. The casing group 30 has box-shaped inclined casings 31 extending horizontally, and is an assembly of these inclined casings 31 arranged in the vertical direction.
[0026] (inclined casing) The inclined casing 31 accommodates the substrate 2 of the server 1. That is, the inclined casing 31 can accommodate the heating element 3 provided on the substrate 2. The inclined casing 31 is disposed on top of the first beam 25a and the second beam 25b, which are located at the same position in the vertical direction, so as to bridge the first beam 25a and the second beam 25b. As described above, when the first beam 25a and the second beam 25b are located at the same position in the vertical direction, the upper surface 25c of the first beam 25a is located higher than the upper surface 25d of the second beam 25b. Therefore, the inclined casing 31 is inclined so as to extend downward as it moves toward one horizontal side D1.
[0027] A first refrigerant R1 can be stored inside the inclined casing 31. The first refrigerant R1 is an insulating refrigerant. The first refrigerant R1 cools the heating element 3 in a liquid phase. Examples of the first refrigerant R1 include fluorocarbon-based liquids.
[0028] Next, the shape of the inclined casing 31 will be described in more detail. The inclined casing 31 includes a casing body 32 , a flange 33 , a supply-side manifold 34 , and a rail 35 .
[0029] The casing body 32 is a member that constitutes the main part of the inclined casing 31 and is used to house the substrate 2, and is formed in a box shape with an outer rectangular plate shape extending horizontally. The casing body 32 is open in the front-rear direction Da (see FIGS. 3 and 4). Hereinafter, of the openings of the casing body 32, the opening on the other horizontal side D2 will be referred to as a "first opening 32a", and the opening on the one horizontal side D1 will be referred to as a "second opening 32b".
[0030] 2 and 3, the flange 33 is provided around the entire periphery of the end portion on the first opening 32a side of the casing body 32. The flange 33 is provided so as to protrude perpendicularly from the outer surface of the casing body 32.
[0031] The supply-side manifold 34 is provided at an end of the casing body 32 on the first opening 32a side. The supply-side manifold 34 extends in the width direction Dw. The supply-side manifold 34 distributes the first refrigerant R1 introduced from a supply-side header 60 (described later) evenly within the casing body 32 in the width direction Dw.
[0032] The supply side manifold 34 has a manifold body 36 , a lid portion 37 , and an introduction portion 38 . The manifold body 36 is a box-shaped container extending in the width direction Dw. The manifold body 36 is fitted into the first opening 32a. The manifold body 36 has a rectangular cross section when viewed from the width direction Dw, and is open toward the other horizontal side D2.
[0033] The lid portion 37 closes the opening of the manifold body 36 from the other horizontal side D2. The lid portion 37 is formed in a rectangular plate shape extending in the width direction Dw. The outer peripheral edge of the lid portion 37 overlaps with the flange 33. The lid portion 37 is fixed to the flange 33 by, for example, bolting.
[0034] The introduction portion 38 is provided at the end opposite the manifold main body 36 across the lid portion 37 in the front-rear direction Da. The introduction portion 38 is a cylindrical member that introduces the first refrigerant R1 from the supply-side header 60 to the supply-side manifold 34. The introduction portion 38 is in communication with the manifold main body 36. A plurality of introduction portions 38 (three in this embodiment) are provided and spaced apart at equal intervals in the width direction Dw.
[0035] 2 and 5, the rails 35 are provided on each of a pair of side walls 32c that face each other in the width direction Dw of the casing main body 32. The rails 35 protrude inward in the width direction Dw from plate members 39 that are overlapping and fixed to the inner surfaces of the side walls 32c and extend in the front-rear direction Da. The rails 35 are square bar-shaped members that are formed with a rectangular cross section when viewed in the front-rear direction Da.
[0036] (Sealing part) As shown in Figures 3 and 4, the seal portions 11 are provided at the end of each inclined casing 31 on one horizontal side D1 and the other horizontal side D2. The seal portions 11 suppress leakage of the first refrigerant R1. More specifically, at the end of the inclined casing 31 on the supply-side manifold 34 side, the seal portions 11 are provided between the manifold body 36 and the first opening 32a of the inclined casing 31 and between the lid portion 37 and the flange 33 of the inclined casing 31. Furthermore, at the end of the inclined casing 31 opposite the supply-side manifold 34, the seal portions 11 are provided between the outer surface of the inclined casing 31 and an inlet 73 of a discharge-side header 70 (described later).
[0037] (server chassis) A server housing 40 is provided inside each casing. The server housing 40 is box-shaped and houses the board 2 of the server 1 inside. As shown in Fig. 6, the server housing 40 is formed in the shape of a rectangular plate extending horizontally.
[0038] Inlet holes 41a are formed in the front wall 41 on the other horizontal side D2 of the server housing 40 to introduce the first refrigerant R1 into the server housing 40. A plurality of inlet holes 41a are formed throughout the front wall 41. In addition, outlet holes 42a are formed in the rear wall 42 on the one horizontal side D1 of the server housing 40 to discharge the first refrigerant R1 from within the server housing 40 to the outside. A plurality of outlet holes 42a are formed throughout the rear wall 42.
[0039] Guides 44 are provided on a pair of side walls 43 of the server housing 40 that face each other in the width direction Dw. The guides 44 are members that position the server housing 40 and guide movement of the server housing 40 in the front-to-rear direction Da when the server housing 40 is inserted into or removed from the inclined casing 31. The guides 44 protrude outward in the width direction Dw from the outer surfaces of the side walls 43 and extend in the front-to-rear direction Da. The guides 44 are square rod-shaped members that have a rectangular cross section when viewed in the front-to-rear direction Da. Two guides 44 are provided on each side wall, spaced apart in the vertical direction, and sandwich the rails 35 of the inclined casing 31 from above and below. Therefore, when the server housing 40 is inserted into or removed from the inclined casing 31, the server housing 40 moves linearly in the front-to-rear direction Da along the rails 35.
[0040] (nozzle) 1 and 2, the nozzles 12 are provided in each inclined casing 31 and attached to the outer bottom surface of the supply-side manifold 34 on the side opposite the lid 37. The nozzles 12 communicate with the supply-side manifold 34 and spray the first refrigerant R1 supplied from the supply-side header 60 radially toward the server housings 40. The nozzles 12 are formed in a tapered shape that widens in diameter toward one horizontal side D1.
[0041] (Backflow prevention door) The backflow prevention door 50 is provided in each inclined casing 31 and prevents the first refrigerant R1 in the inclined casing 31 from flowing back toward the other horizontal side D2. The backflow prevention door 50 has a hinge 51 and a backflow prevention door body 52. As shown in Fig. 4, the hinge 51 is disposed inside the inclined casing 31 and attached to the upper wall 32d. The hinge 51 is a spring-loaded hinge. The backflow prevention door main body 52 extends downward from the hinge 51 and also extends in the width direction Dw. The elastic force of the spring of the hinge 51 attempts to maintain the backflow prevention door main body 52 in a position perpendicular to the horizontal plane.
[0042] The backflow prevention door 50 closes the flow path of the first refrigerant R1 and opens the flow path of the first refrigerant R1 when an external force of a predetermined magnitude or greater is applied in a direction toward one horizontal side D1. In this embodiment, when no server housing 40 is placed in the inclined casing 31, the backflow prevention door main body 52 in the inclined casing 31 is maintained in a position perpendicular to the horizontal plane by the elastic force of the hinge 51. Therefore, the flow path of the first refrigerant R1 in the inclined casing 31 is closed by the backflow prevention door main body 52. In contrast, when a server housing 40 is placed in the inclined casing 31, the backflow prevention door main body 52 is pushed by the server housing 40 and receives an external force in a direction toward one horizontal side D1. This external force causes the backflow prevention door main body 52 to rotate about the hinge 51, opening the flow path of the first refrigerant R1.
[0043] (Supplier Header) 1 and 2, the supply-side header 60 is provided on the inner surface of the entrance door 22. The supply-side header 60 extends vertically on the other horizontal side D2 of the casing group 30 and is capable of introducing the first refrigerant R1 into each of the inclined casings 31. The supply-side header 60 is formed in a cylindrical shape extending vertically. The supply-side connection line 13 is provided with a plurality of supply-side connection lines 13.
[0044] (Supply side connection line) The supply-side connection line 13 connects the supply-side header 60 to each of the inclined casings 31 in a state of communication with each other. A plurality of supply-side connection lines 13 (three in this embodiment) are provided for each inclined casing 31, and each is connected to the introduction section 38 of the corresponding inclined casing 31. The supply-side connection line 13 is provided with a valve 14 that can open and close the supply-side connection line 13.
[0045] (valve) A valve 14 is provided for each inclined casing 31. In this embodiment, one valve 14 is provided at the base of the three supply-side connection lines 13 connected to the corresponding inclined casing 31, and can simultaneously open and close these three supply-side connection lines 13. The supply-side connection lines 13 are flexible tubes that can be deformed in accordance with the rotation of the entrance door 22.
[0046] (Discharge side header) The discharge-side header 70 is housed within the rack body 21 and extends vertically on one horizontal side D1 of the casing group 30. The first refrigerant R1 is introduced into the discharge-side header 70 from each of the inclined casings 31. The discharge-side header 70 has a discharge-side header main body 71 and a storage section 72.
[0047] The discharge-side header body 71 is adjacent to one horizontal side D1 of the casing group 30. The discharge-side header body 71 is a box-shaped container with a rectangular plate-like outer shape extending in the vertical direction. In this embodiment, both ends of the discharge-side header body 71 in the width direction Dw are fixed to the inner surface of the side wall 21c of the rack body 21. The discharge-side header body 71 is provided with inlets 73 at positions corresponding to each inclined casing 31. The first refrigerant R1 introduced from the inclined casing 31 flows into the inlets 73. In this embodiment, the second opening 32b of the corresponding inclined casing 31 is inserted into each inlet 73. In addition, the above-mentioned seal portion 11 is provided between the inlet 73 and the inclined casing 31.
[0048] The storage section 72 is provided at the lower end of the inclined casing 31. The storage section 72 stores the refrigerant introduced into the discharge-side header main body 71. The dimension of the storage section 72 in the front-rear direction Da is larger than the dimension of the inclined casing 31 in the front-rear direction Da. The storage section 72 is placed on the bottom wall 21b of the rack main body 21.
[0049] (Backflow prevention cover) The backflow prevention covers 80 are provided at positions corresponding to the inlets 73 in the discharge header 70. The backflow prevention covers 80 prevent the first refrigerant R1 from flowing back from the discharge header 70 into the inclined casing 31. The backflow prevention covers 80 extend in the width direction Dw and cover the inlets 73 from above and one horizontal side D1 at a distance. As shown in FIG. 4 , the backflow prevention cover 80 has an upper wall 81 and a rear wall 82.
[0050] The upper wall 81 is provided on the inner surface of the discharge header 70 on the side where the inlet 73 is formed. The upper wall 81 is attached to the corresponding inlet 73 by, for example, welding, and extends in the front-to-rear direction Da. The upper wall 81 is linearly inclined so as to be gradually positioned lower as it extends rearward. The rear wall 82 is provided at the rear end of the upper wall 81 and extends vertically downward from the rear end of the upper wall 81. The rear wall 82 is formed at a position spaced rearward from the second opening 32b of the inclined casing 31 so as to cover the entire second opening 32b. The rear wall 82 is formed integrally with the upper wall 81.
[0051] (Refrigerant pressure delivery section) As shown in FIG. 1 , the refrigerant pumping unit 15 is housed in the rack 20 and disposed below the casing group 30. The refrigerant pumping unit 15 is connected to the lower part of the discharge side header 70 by a first connecting pipe 16 and to the lower part of the supply side header 60 by a second connecting pipe 17. The first connecting pipe 16 connects the discharge side header 70 to the refrigerant pumping unit 15, and the second connecting pipe 17 connects the supply side header 60 to the refrigerant pumping unit 15. The refrigerant pumping unit 15 pumps the first refrigerant R1 from the lower part of the discharge side header 70 to the lower part of the supply side header 60. In this embodiment, the refrigerant pumping unit 15 is a pump.
[0052] (Heat exchange part) The heat exchange unit 90 is provided below the casing group 30. In this embodiment, the heat exchange unit 90 is provided in the storage unit 72 of the discharge side header 70. The heat exchange unit 90 cools the first refrigerant R1 by exchanging heat between the second refrigerant R2 supplied from the outside and the first refrigerant R1.
[0053] The heat exchange section 90 in this embodiment is a plurality of heat transfer tubes 91 that penetrate the storage section 72 in the width direction Dw. The heat transfer tubes 91 are in communication with the heat exchanger 4 provided externally. The second refrigerant R2 of the heat exchanger 4 flows through the heat transfer tubes 91. The plurality of heat transfer tubes 91 extend parallel to one another and are arranged at equal intervals. In this embodiment, the second refrigerant R2 in the heat transfer tubes 91 forms a counterflow in at least a portion of the storage section 72, flowing in the opposite direction to the flow direction of the first refrigerant R1.
[0054] (First refrigerant circulation) Next, the circulation of the first refrigerant R1 within the immersion cooling apparatus 10 will be described. First, when the refrigerant pumping unit 15 is operated, the first refrigerant R1 is supplied from the supply-side header 60 into each inclined casing 31. At this time, the first refrigerant R1 is sprayed into the inclined casing 31 by the multiple nozzles 12. The first refrigerant R1 flows as a jet in the front-to-rear direction Da within each casing. The first refrigerant R1 within the casing flows into the server housing 40, passes through the heating elements 3, and exchanges heat with the heating elements 3. This cools the heating elements 3. Meanwhile, the first refrigerant R1 is heated by the heat from the heating elements 3. The first refrigerant R1 is then discharged from the server housing 40 and introduced into the discharge-side header 70 from each inclined casing 31. The first refrigerant R1 flows downward within the discharge-side header 70 due to the pressure of the refrigerant pumping unit 15 and its own weight. The first refrigerant R1 is then temporarily stored in the storage section 72 of the discharge-side header 70.
[0055] On the other hand, the second refrigerant R2 flows in the width direction Dw within the heat transfer tubes 91. The first refrigerant R1 exchanges heat with the second refrigerant R2 while circulating within the discharge header 70. As a result, the first refrigerant R1 is cooled and the second refrigerant R2 is heated. After exchanging heat with the first refrigerant R1, the second refrigerant R2 is sent to the external heat exchanger 4. The second refrigerant R2 is cooled by the heat exchanger 4 and supplied to each heat transfer tube 91 again.
[0056] After the first refrigerant R1 is cooled by heat exchange with the second refrigerant R2, it is pressure-fed again to the supply-side header 60 by the refrigerant pressure-fed unit 15. Then, as described above, the first refrigerant R1 is supplied again into the inclined casing 31. In this manner, the first refrigerant R1 circulates within the immersion cooling apparatus 10.
[0057] (Action and effect) The immersion cooling apparatus 10 of this embodiment provides the following advantageous effects. In this embodiment, the immersion cooling apparatus 10 includes a casing group 30 including inclined casings 31 arranged in a vertical direction, each capable of accommodating a heating element 3, a supply header 60 extending in a vertical direction on the other horizontal side D2 of the casing group 30 and capable of introducing the first refrigerant R1 into each of the inclined casings 31, and a discharge header 70 extending in a vertical direction on one horizontal side D1 of the casing group 30 and into which the first refrigerant R1 is introduced from each of the inclined casings 31. The inclined casings 31 extend downward as they approach the one horizontal side D1.
[0058] The casing group 30 is configured by arranging a plurality of inclined casings 31 in the vertical direction, which prevents the plurality of inclined casings 31 from being randomly arranged and spreading out in the horizontal direction, thereby improving arrangement efficiency. Furthermore, because each inclined casing 31 extends downward as it moves horizontally, the first refrigerant R1 can flow smoothly horizontally inside the inclined casing 31. This allows the immersion cooling apparatus 10 to quickly guide the first refrigerant R1 that has absorbed heat from the heat-generating element 3 to the discharge header 70, thereby improving cooling efficiency.
[0059] In this embodiment, the immersion cooling apparatus 10 further includes a plurality of supply side connection lines 13 that connect the supply side header 60 to each of the inclined casings 31 in a fluid communication state, and a valve 14 that is provided for each inclined casing 31 and can open and close the supply side connection line 13.
[0060] As a result, by operating the valve 14 to close the supply-side connecting line 13, it is possible to easily stop the supply of the first refrigerant R1 to the inclined casing 31 connected to that supply-side connecting line 13. This makes it easy to remove any inclined casing 31. This makes it easy to remove each inclined casing 31 for maintenance.
[0061] In this embodiment, the immersion cooling apparatus 10 further includes a backflow prevention door 50 that is provided in each inclined casing 31 and blocks the flow path of the first refrigerant R1 and opens the flow path of the first refrigerant R1 when an external force of a predetermined magnitude or greater is applied in the direction toward one horizontal side D1.
[0062] This makes it possible to prevent the first refrigerant R1 from flowing back to the other horizontal side D2 within the inclined casing 31 without impeding the first refrigerant R1 from flowing to the one horizontal side D1.
[0063] In this embodiment, the discharge header 70 is provided with inlets 73 at positions corresponding to the inclined casings 31, through which the first refrigerant R1 introduced from the inclined casings 31 flows in. The immersion cooling apparatus 10 further includes backflow prevention covers 80 that are provided at positions corresponding to the inlets 73 in the discharge header 70 and that cover the inlets 73 from above and from one horizontal side D1 at a distance.
[0064] This prevents the first refrigerant R1 from flowing back into the inclined casing 31 as the first refrigerant R1 flows downward within the discharge side header 70, without preventing the first refrigerant R1 from being discharged from the inclined casing 31 toward the discharge side header 70. In this way, providing the backflow prevention door 50 or the backflow prevention cover 80 to the immersion cooling apparatus 10 prevents the first refrigerant R1 from flowing backward, allowing the first refrigerant R1 to flow more smoothly inside the inclined casing 31. Therefore, the immersion cooling apparatus 10 can more quickly guide the first refrigerant R1 that has absorbed heat from the heating element 3 to the discharge header 70, thereby further improving cooling efficiency.
[0065] Furthermore, by providing the immersion cooling apparatus 10 with the above-described valve 14, backflow prevention door 50, and backflow prevention cover 80 as in this embodiment, it becomes possible to stop the flow of the first refrigerant R1 into each inclined casing 31 without stopping the overall flow of the first refrigerant R1 inside the immersion cooling apparatus 10. This allows the servers 1 housed in the inclined casings 31 to be removed individually, allowing maintenance of the servers 1 individually.
[0066] In this embodiment, the immersion cooling apparatus 10 further includes a rack 20 that houses the casing group 30. The rack 20 has an entrance door 22 on the other horizontal side D2 that can open and close the space inside the rack 20. The supply side header 60 is provided on the entrance door 22.
[0067] When the entrance door 22 is opened, the supply side header 60 also moves together with the entrance door 22. This makes it easy to remove the inclined casing 31. This makes it even easier to remove the server 1 along with the inclined casing 31 for maintenance.
[0068] In this embodiment, the heat exchange section 90 is provided below the casing group 30.
[0069] This allows the first refrigerant R1 to be cooled by the heat exchanger 4 without filling the supply side header 60 and the discharge side header 70 with the first refrigerant R1, thereby reducing the amount of first refrigerant R1 used.
[0070] In this embodiment, the immersion cooling apparatus 10 further includes nozzles 12 that are provided in each inclined casing 31 and that spray the first refrigerant R1 supplied from the supply-side header 60 .
[0071] As a result, the immersion cooling apparatus 10 can smooth the flow of the first refrigerant R1 inside the inclined casing 31 by the inclination of the inclined casing 31, while generating convection in the first refrigerant R1 inside the inclined casing 31 by the spray from the nozzle 12. This improves the heat exchange efficiency between the heating element 3 and the first refrigerant R1, thereby further improving the cooling efficiency.
[0072] In this embodiment, the immersion cooling apparatus 10 further includes seals 11 provided at the ends of the one horizontal side D1 and the other horizontal side D2 of each inclined casing 31 to prevent leakage of the first refrigerant R1.
[0073] This suppresses leakage of the first refrigerant R1 when the first refrigerant R1 is introduced into the inclined casing 31 and when the first refrigerant R1 is discharged from the inclined casing 31, thereby reducing the amount of first refrigerant R1 used.
[0074] (Other embodiments) The above describes in detail the embodiments of the present disclosure with reference to the drawings, but the specific configuration is not limited to this embodiment, and design changes and the like are also included within the scope that does not deviate from the gist of the present disclosure.
[0075] In the above embodiment, the heat exchanger 90 is provided in the reservoir 72 of the discharge header 70, but this is not limited to this. The heat exchanger 90 may be provided directly below the casing group 30, and may perform heat exchange between the first refrigerant R1 and the second refrigerant R2 in the first connecting pipe 16 and the second connecting pipe 17 that connect the supply header 60 and the discharge header 70.
[0076] Furthermore, in the above embodiment, the heat exchange section 90 is a plurality of heat transfer tubes 91 that penetrate the storage section 72 in the width direction Dw, but this is not limited to this. The heat exchange section 90 may be, for example, heat transfer tubes 91 that extend vertically within the discharge header 70. In this case, the backflow prevention door 50 and the backflow prevention cover 80 do not need to be provided. If the backflow prevention door 50 and the backflow prevention cover 80 are not provided, the first refrigerant R1 is blown directly from the inclined casing 31 onto the heat transfer tubes 91, which may improve the heat exchange efficiency between the first refrigerant R1 and the second refrigerant R2.
[0077] In the above embodiment, the second refrigerant R2 in the heat transfer tube 91 flows in a counterflow direction opposite to the flow direction of the first refrigerant R1 in at least a portion of the storage portion 72, but this is not limited to this. The second refrigerant R2 in the heat transfer tube 91 may flow in the same direction as the first refrigerant R1 in the storage portion 72, or the flow of the second refrigerant R2 in the heat transfer tube 91 may be set without taking into consideration the flow of the first refrigerant R1.
[0078] <Additional Notes> The immersion cooling apparatus 10 described in each embodiment can be understood, for example, as follows.
[0079] (1) The immersion cooling apparatus 10 according to the first aspect is an immersion cooling apparatus 10 for cooling a heating element 3 provided on a substrate 2, and includes: a casing group 30 having inclined casings 31 arranged in a vertical direction, each inclined casing 31 being box-shaped and extending downward toward one horizontal side D1 and capable of accommodating the heating element 3; a supply-side header 60 extending in a vertical direction on the other horizontal side D2 of the casing group 30 and capable of introducing a first refrigerant R1 into each of the inclined casings 31; a discharge-side header 70 extending in a vertical direction on the one horizontal side D1 of the casing group 30 and into which the first refrigerant R1 is introduced from each of the inclined casings 31; a refrigerant pumping unit 15 for pumping the first refrigerant R1 from the discharge-side header 70 to the supply-side header 60; and a heat exchange unit 90 for cooling the first refrigerant R1 by exchanging heat between the first refrigerant R1 and a second refrigerant R2 supplied from an external source.
[0080] The casing group 30 is configured by arranging a plurality of inclined casings 31 in the vertical direction. Furthermore, since each inclined casing 31 extends downward as it approaches the horizontal direction, the first refrigerant R1 can flow smoothly in the horizontal direction inside the inclined casing 31.
[0081] (2) The second aspect of the immersion cooling apparatus 10 may be the immersion cooling apparatus 10 of (1), further comprising a plurality of supply side connection lines 13 that connect the supply side header 60 to each of the inclined casings 31 in a fluid communication state, and a valve 14 that is provided for each of the inclined casings 31 and can open and close the supply side connection line 13.
[0082] As a result, by operating the valve 14 to close the supply-side connecting line 13, it is possible to easily stop the supply of the first refrigerant R1 to the inclined casing 31 connected to that supply-side connecting line 13. This makes it easy to remove any inclined casing 31.
[0083] (3) The immersion cooling apparatus 10 of a third aspect may be the immersion cooling apparatus 10 of (1) or (2), further comprising a backflow prevention door 50 provided in each of the inclined casings 31, which closes the flow path of the first refrigerant R1 and opens the flow path of the first refrigerant R1 when an external force of a predetermined magnitude or greater is applied in a direction toward one horizontal side D1.
[0084] This makes it possible to prevent the first refrigerant R1 from flowing back to the other horizontal side D2 within the inclined casing 31 without impeding the first refrigerant R1 from flowing to the one horizontal side D1.
[0085] (4) The fourth aspect of the immersion cooling apparatus 10 is the immersion cooling apparatus 10 of any one of (1) to (3), wherein the discharge side header 70 is provided with inlets 73 at positions corresponding to the inclined casings 31, through which the first refrigerant R1 introduced from the inclined casings 31 flows, and may further include backflow prevention covers 80 provided at positions corresponding to the inlets 73 in the discharge side header 70, covering the inlets 73 from above and one horizontal side D1 at a distance.
[0086] This prevents the first refrigerant R1 from flowing back into the inclined casing 31 as the first refrigerant R1 flows downward within the discharge side header 70, without preventing the first refrigerant R1 from being discharged from the inclined casing 31 toward the discharge side header 70.
[0087] (5) The immersion cooling apparatus 10 of a fifth aspect is the immersion cooling apparatus 10 of any one of (1) to (4), further comprising a rack 20 in which the casing group 30 is housed, the rack 20 having an entrance door 22 on the other horizontal side D2 that can open and close the space within the rack 20, and the supply side header 60 may be provided on the entrance door 22.
[0088] When the entrance door 22 is opened, the supply header 60 also moves together with the entrance door 22. This makes it easy to remove the inclined casing 31.
[0089] (6) The immersion cooling apparatus 10 of a sixth aspect is the immersion cooling apparatus 10 of any one of (1) to (5), wherein the heat exchange unit 90 may be provided below the casing group 30.
[0090] This allows the first refrigerant R1 to be cooled by the heat exchanger 4 without filling the supply side header 60 and the discharge side header 70 with the first refrigerant R1.
[0091] (7) The seventh aspect of the immersion cooling apparatus 10 may be any of the immersion cooling apparatuses 10 (1) to (6) and further include a nozzle 12 provided in each of the inclined casings 31 and configured to spray the first refrigerant R1 supplied from the supply-side header 60.
[0092] As a result, the immersion cooling apparatus 10 can smooth the flow of the first refrigerant R1 within the inclined casing 31 by inclining the inclined casing 31, while generating convection within the first refrigerant R1 within the inclined casing 31 by spraying from the nozzle 12.
[0093] (8) The immersion cooling apparatus 10 of the eighth aspect may be any of the immersion cooling apparatuses 10 of (1) to (7), and may further include a sealing portion 11 provided at the end of each of the inclined casings 31 on one horizontal side D1 and the other horizontal side D2, to suppress leakage of the first refrigerant R1.
[0094] This prevents the first refrigerant R1 from leaking when the first refrigerant R1 is introduced into the inclined casing 31 and when the first refrigerant R1 is discharged from the inclined casing 31. [Explanation of symbols]
[0095] 1...Server 2...Substrate 3...Heat generating element 4...Heat exchanger 10...Immersion cooling device 11...Sealing portion 12...Nozzle 13...Supply side connection line 14...Valve 15...Refrigerant pressure feeding portion 16...First connecting pipe 17...Second connecting pipe 20...Rack 21...Rack body 21a...Upper wall 21b...Lower wall 21c...Side wall 21d...Inlet side opening 21e...Outlet side opening 21f...Edge 21g...Edge Da...Front-to-back direction Dw...Width direction D1...One side in horizontal direction D2...Other side in horizontal direction 22...Entrance door 23...Exit door 24...Support 24a...First support 24b...Second support 25...Beam 25a...First beam 25b...Second beam 25c...Top surface 25d...Top surface 30Casing group 31...Inclined casing 32...Casing body 32a...First opening 32b...Second opening 32c...Side wall 32d...Top wall 33...Flange 34...Supply side manifold 35...Rail 36...Manifold body 37...Cover 38...Inlet 39...Plate 40...Server housing 41...Front wall 41a...Inlet hole 42...Rear wall 42a...Discharge hole 43...Side wall 44...Guide 50...Backflow prevention door 51...Hinge 52...Backflow prevention door body 60...Supply side header 70...Discharge side header 71...Discharge side header body 72...Storage section 73...Inlet 80...Backflow prevention cover 81...Top wall 82...Rear wall 90...Heat exchange section 91...Heat transfer tube R1...First refrigerant R2...Second refrigerant A...Tilt angle Da...Front-to-back direction D1...One side in the horizontal direction D2...Other side in the horizontal direction Dw...Width direction
Claims
1. An immersion cooling device that cools a heat generating element provided on a substrate, a casing group including inclined casings each having a box shape extending downward toward one horizontal side and accommodating the substrate and the heating element, the inclined casings being arranged in a vertical direction; a supply-side header extending in the vertical direction on the other horizontal side of the casing group and capable of introducing the first refrigerant into each of the inclined casings; a discharge-side header extending in the vertical direction on one horizontal side of the casing group, into which the first refrigerant is introduced from each of the inclined casings; a refrigerant pumping unit that pumps the first refrigerant from the discharge-side header to the supply-side header; a heat exchange unit that cools the first refrigerant by exchanging heat between the first refrigerant and a second refrigerant supplied from an external source; An immersion cooling device comprising:
2. a plurality of supply-side connection lines that connect the supply-side header and each of the inclined casings in a state of communication with each other; a valve provided for each of the inclined casings and capable of opening and closing the supply side connection line; The immersion cooling apparatus of claim 1 further comprising:
3. 3. The immersion cooling apparatus according to claim 1, further comprising a backflow prevention door provided in each of the inclined casings, the backflow prevention door closing a flow path of the first refrigerant and opening the flow path of the first refrigerant when an external force of a predetermined magnitude or greater is applied in one horizontal direction.
4. the discharge-side header is provided with inlet ports at positions corresponding to the inclined casings, through which the first refrigerant introduced from the inclined casings flows, 3. The immersion cooling apparatus according to claim 1, further comprising backflow prevention covers provided in the discharge header at positions corresponding to the inlets, the backflow prevention covers covering the inlets from above and one horizontal side at intervals.
5. Further, a rack is provided in which the casing group is accommodated, the rack has an entrance door on the other side in the horizontal direction that can open and close the space inside the rack, The immersion cooling apparatus according to claim 1 , wherein the supply-side header is provided on the entrance door.
6. The immersion cooling apparatus according to claim 1 , wherein the heat exchange unit is provided below the casing group.
7. The immersion cooling apparatus according to claim 1 or 2, further comprising a nozzle provided in each of the inclined casings and configured to spray the first refrigerant supplied from the supply-side header.
8. 3. The immersion cooling apparatus according to claim 1, further comprising seal portions provided at ends of one horizontal side and the other horizontal side of each of the inclined casings, the seal portions preventing leakage of the first refrigerant.
Citation Information
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