Super-converged architecture cluster server
The integration of a water-cooling system with a closed circuit addresses the inadequate heat dissipation in superconverged infrastructure cluster servers, ensuring efficient temperature management and protection against dust ingress.
Patent Information
- Application Number
- CN202422109461.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-29
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2034-08-29
AI Technical Summary
The heat generated by existing hyperconverged architecture cluster servers is not easy to dissipate during work, resulting in the server being in a high temperature state for a long time, affecting the equipment life, and the traditional air-cooling heat dissipation effect is limited.
The water cooling system is adopted, including a cooling water tank, a circulating water tank, a water cooling component and a water pump, to accurately cool the server through coolant circulation and realize the recycling of coolant.
It improves the heat dissipation effect of the server, reduces the entry of dust, ensures the server operates safely in a high-temperature environment, and extends the life of the equipment.
Smart Images

Figure CN223110377U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of hyper-converged architecture cluster servers, and specifically relates to a hyper-converged architecture cluster server. Background Technique
[0002] A hyper-converged architecture cluster server is an IT infrastructure that has emerged in recent years. It combines the concept of software-defined data centers and uses software combined with standard x86, ARM and other architecture general-purpose servers to build distributed storage, rather than using traditional centralized storage based on customized hardware. This architecture emphasizes the integrated deployment of distributed storage software and virtualization software, rather than simply the integration of software and hardware.
[0003] For example, a hyper-converged architecture cluster server with the publication number of CN218567952U, specifically related to the technical field of hyper-converged servers, includes a bracket for installing multiple server bodies. The number of brackets is set to two, and multiple server bodies are used together through a hyper-converged architecture. A box body is sleeved outside the two brackets. Both ends of the bracket are connected with connecting rods through bearings. A rotating shaft is arranged between the two brackets, and the rotating shaft is fixedly connected with the four connecting rods. Both ends of the rotating shaft are connected with the inner wall of the box body through sliding components. By first opening the double doors and pulling the bracket to the exit of the box body, and then controlling the micro motor to drive the rotating shaft to rotate, the two brackets on the rotating shaft are sequentially rotated to the exit of the box body, which is convenient for staff to check and maintain the server bodies on the bracket. The structure is stable, the overall height of the device is low, and it is not necessary for the staff to stretch their bodies into the box body for maintenance operations, and the operation is very convenient.
[0004] The above patent is convenient for checking and maintaining the server, but the server will generate more heat during operation. If the heat is not dissipated in time, the server will always be in a high-temperature state. Being in this temperature for a long time will cause damage to the inside of the server. Using general air-cooled heat dissipation has limited heat dissipation effect on the server, and the heat dissipation effect is poor.
[0005] Therefore, we propose a hyper-converged architecture cluster server to solve the problems raised above. Content of the Utility Model
[0006] The purpose of the utility model is to provide a hyper-converged architecture cluster server to solve the problems raised in the above background technique that the server will generate more heat during operation. If the heat is not dissipated in time, the server will always be in a high-temperature state. Being in this temperature for a long time will cause damage to the inside of the server. Using general air-cooled heat dissipation has limited heat dissipation effect on the server, and the heat dissipation effect is poor.
[0007] To achieve the above object, the utility model provides the following technical solution: A hyper-converged architecture cluster server, including an external housing and a cooling water tank fixedly installed at the upper end of the external housing. A circulation water tank is fixedly installed at the lower end inside the external housing. A framework is fixedly installed inside the external housing. A plurality of placement grooves are equidistantly arranged on the framework. A water cooling component is installed on the side wall of the framework. A one-way valve is fixedly installed at the lower end of the inner wall of the external housing.
[0008] Preferably, the water cooling component includes a water outlet main pipe fixedly installed at the lower end of the inner wall of the external housing, and the water outlet main pipe is communicated with the inside of the cooling water tank.
[0009] Preferably, a plurality of branch pipes are equidistantly fixedly installed on both sides of the water outlet main pipe. One end of each branch pipe is fixedly installed with a connecting pipe, and a connection port is provided between the connecting pipe and the branch pipe.
[0010] Preferably, a sealed housing is fixedly installed inside each placement groove. A chamber is provided inside the sealed housing. A piston slider one is slidably connected inside the chamber. Nitrogen is filled on one side of the chamber. A spring is fixedly installed between the other side of the chamber and the inner wall of the sealed housing.
[0011] Preferably, a connecting rod is fixedly installed on the side wall of the piston slider one. The connecting rod is slidably connected with the sealed housing. One end of the connecting rod is fixedly installed with a piston slider two. The piston slider two is slidably connected inside the connecting pipe, and the piston slider two can block the connection port.
[0012] Preferably, a plurality of water cooling pipes are fixedly installed inside the framework. The water cooling pipes are communicated with the connecting pipes. One end of each water cooling pipe is fixedly installed with a water outlet pipe. One ends of the plurality of water outlet pipes are jointly fixedly installed with a water outlet main pipe. The lower end of the water outlet main pipe is communicated with the inside of the circulation water tank. A water pump is fixedly installed at the upper end of the circulation water tank. A return pipe is jointly fixedly installed between the output end of the water pump and the cooling water tank.
[0013] Compared with the prior art, the beneficial effects of the utility model are:
[0014] 1. When the server is working, due to the different working states among the servers, there are certain differences in the temperatures of the servers during operation. When the server generates a relatively high temperature during operation, the low-temperature cooling liquid in the cooling water tank can flow into the framework among the servers through the water cooling component. Under the flow of the coolant, the heat generated during the operation of the server is taken away, and the inside of the external housing is cooled. The device has a better heat dissipation effect inside the device through the water cooling method, and the device is in a sealed environment, which can reduce the entry of dust and other sundries.
[0015] 2. With the cooperation among the cooling water tank, the return water pipe, the circulating water tank, the frame, the placement groove, the sealed housing, the chamber, the first piston slider, the spring, the connecting rod, the second piston slider, the main water outlet pipe, the branch pipe, the connecting pipe, the connection port, the water cooling pipe, the water outlet pipe, the main water outlet manifold, the one-way valve and the water pump, when the server operates to generate a relatively high temperature, the device automatically conducts water cooling on the server with a relatively high temperature, realizes precise cooling, and pumps the cooled coolant back into the cooling water tank to realize the recycling of the coolant. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 It is a schematic perspective view of the overall structure of the present utility model;
[0017] Figure 2 It is a schematic cross-sectional view of the overall structure of the present utility model;
[0018] Figure 3 It is a schematic view of the structure of the water cooling component system of the present utility model;
[0019] Figure 4 It is a schematic cross-sectional view of the water cooling component system of the present utility model;
[0020] Figure 5 For the present utility model Figure 4 The enlarged schematic view at position A;
[0021] Figure 6 For the present utility model Figure 4 The enlarged schematic view at position B.
[0022] In the figure: 1. Outer housing; 2. Cooling water tank; 21. Return water pipe; 3. Circulating water tank; 4. Frame; 41. Placement groove; 42. Sealed housing; 43. Chamber; 44. First piston slider; 45. Spring; 46. Connecting rod; 47. Second piston slider; 5. Water cooling component; 51. Main water outlet pipe; 52. Branch pipe; 53. Connecting pipe; 531. Connection port; 54. Water cooling pipe; 55. Water outlet pipe; 56. Main water outlet manifold; 6. One-way valve; 7. Water pump. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0023] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0024] Embodiment 1: Please refer to Figure 1 - Figure 4, A hyper-converged architecture cluster server, including an external housing 1 and a cooling water tank 2 fixedly installed at the upper end of the external housing 1. A circulating water tank 3 is fixedly installed at the lower end inside the external housing 1. A frame 4 is fixedly installed inside the external housing 1. A plurality of placement slots 41 are equidistantly arranged on the frame 4. A water-cooling component 5 is installed on the side wall of the frame 4. A one-way valve 6 is fixedly installed at the lower end of the inner wall of the external housing 1.
[0025] In this embodiment: The server is fixedly installed inside the external housing 1 through the plurality of placement slots 41 on the frame 4. When the server is working, due to the different working states of each server, there are certain differences in the temperatures of each server during operation. When the server generates a relatively high temperature during operation, the low-temperature cooling liquid in the cooling water tank 2 can flow into the frame 4 between each server through the water-cooling component 5. Under the flow of the coolant, the heat generated by the server during operation is taken away, and the inside of the external housing 1 is cooled. This device has a better heat dissipation effect inside the device through the water-cooling method, and the device is in a closed environment, which can reduce the entry of dust and other sundries.
[0026] Embodiment Two: This embodiment is an improvement made on the basis of Embodiment 1. Specifically, please refer to Figure 3 - Figure 6 , The water-cooling component 5 includes a water outlet main pipe 51 fixedly installed at the lower end of the inner wall of the external housing 1. The water outlet main pipe 51 is communicated with the inside of the cooling water tank 2, and the coolant in the cooling water tank 2 can be transported out through the water outlet main pipe 51.
[0027] A plurality of branch pipes 52 are equidistantly fixedly installed on both sides of the water outlet main pipe 51. One end of each branch pipe 52 is fixedly installed with a connecting pipe 53. A connecting port 531 is provided between the connecting pipe 53 and the branch pipe 52. The water outlet main pipe 51 can be divided into multiple branches through the branch pipes 52.
[0028] A sealed housing 42 is fixedly installed inside each placement slot 41. A chamber 43 is provided inside the sealed housing 42. A piston slider one 44 is slidably connected inside the chamber 43. Nitrogen is filled on one side of the chamber 43. A spring 45 is fixedly installed between the other side of the chamber 43 and the inner wall of the sealed housing 42. In the natural state, the spring 45 can push and compress the unexpanded nitrogen. When the nitrogen expands due to heat, it will push and compress the spring 45.
[0029] A connecting rod 46 is fixedly installed on the side wall of the piston slider one 44. The connecting rod 46 is slidably connected with the sealed housing 42. One end of the connecting rod 46 is fixedly installed with a piston slider two 47. The piston slider two 47 is slidably connected inside the connecting pipe 53. The piston slider two 47 can block the connecting port 531. When the temperature is relatively low, the piston slider two 47 blocks the connecting port 531, and at this time, there will be no flow of coolant in the water-cooling pipe 54 at this place.
[0030] Inside the frame 4, a plurality of water-cooling pipes 54 are fixedly installed. The water-cooling pipes 54 are communicated with the connecting pipes 53. One end of each water-cooling pipe 54 is fixedly installed with a water outlet pipe 55. One ends of the plurality of water outlet pipes 55 are commonly fixedly installed with a main water outlet pipe 56. The lower end of the main water outlet pipe 56 is communicated with the inside of the circulation water tank 3. A water pump 7 is fixedly installed at the upper end of the circulation water tank 3. A water return pipe 21 is commonly fixedly installed between the output end of the water pump 7 and the cooling water tank 2. The water pump 7 can pump the coolant after participating in cooling in the circulation water tank 3 back into the cooling water tank 2 for recycling.
[0031] In this embodiment: When the temperature of a certain server in the placement groove 41 rises to the temperature that needs to be cooled due to high-intensity work, the high temperature of the server itself causes the nitrogen gas filled in the sealed housing 42 on the side wall to expand due to heat. The expanded nitrogen gas pushes the piston slider one 44 outward along the inner wall of the chamber 43. The movement of the piston slider one 44 pushes the connecting rod 46 outward. The movement of the connecting rod 46 drives the piston slider two 47 to slide along the inner wall of the connecting pipe 53. When the piston slider two 47 slides, the connecting port 531 on the side wall is exposed and communicated with the branch pipe 52. At this time, the coolant can flow along the main water outlet pipe 51, the branch pipe 52, the connecting pipe 53, and the water-cooling pipe 54 to dissipate heat inside the frame 4. After flowing out of the water-cooling pipe 54, it flows into the main water outlet pipe 56 along the water outlet pipe 55, and finally centrally flows into the lower circulation water tank 3 for collection. The water pump 7 can pump the coolant in the circulation water tank 3 back into the cooling water tank 2 along the water return pipe 21 for recycling. When the server generates a relatively high temperature during operation, the device automatically performs water-cooling on the server with a relatively high temperature and pumps the cooled coolant back into the cooling water tank 2 to realize the recycling of the coolant.
[0032] The content not detailedly described in this specification belongs to the prior art well-known to those skilled in the art.
[0033] Although the present utility model has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements on some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present utility model shall be included within the protection scope of the present utility model.
Claims
1. A hyper-converged architecture cluster server, comprising an external housing (1) and a cooling water tank (2) fixedly installed at the upper end of the external housing (1). A circulation water tank (3) is fixedly installed at the lower end inside the external housing (1), characterized in that: A frame (4) is fixedly installed inside the external housing (1). A plurality of placement grooves (41) are equidistantly formed in the frame (4). A water cooling component (5) is installed on the side wall of the frame (4). A one-way valve (6) is fixedly installed at the lower end of the inner wall of the external housing (1).
2. The hyper-converged architecture cluster server according to claim 1, wherein: The water cooling component (5) includes a water outlet main pipe (51) fixedly installed at the lower end of the inner wall of the external housing (1). The water outlet main pipe (51) is communicated with the inside of the cooling water tank (2).
3. The hyper-converged architecture cluster server according to claim 2, characterized in that: A plurality of branch pipes (52) are equidistantly and fixedly installed on both sides of the water outlet main pipe (51). One end of each branch pipe (52) is fixedly installed with a connecting pipe (53). A connection port (531) is formed between the connecting pipe (53) and the branch pipe (52).
4. The hyper-converged architecture cluster server according to claim 3, wherein: A sealed housing (42) is fixedly installed inside each of the placement grooves (41). A chamber (43) is formed inside the sealed housing (42). A piston slider one (44) is slidably connected inside the chamber (43). Nitrogen is filled on one side of the chamber (43). A spring (45) is fixedly installed between the other side of the chamber (43) and the inner wall of the sealed housing (42).
5. The hyper-converged architecture cluster server according to claim 4, wherein: A connecting rod (46) is fixedly installed on the side wall of the piston slider one (44). The connecting rod (46) is slidably connected with the sealed housing (42). One end of the connecting rod (46) is fixedly installed with a piston slider two (47). The piston slider two (47) is slidably connected inside the connecting pipe (53). The piston slider two (47) can block the connection port (531).
6. The hyper-converged architecture cluster server according to claim 5, characterized in that: A plurality of water cooling pipes (54) are fixedly installed inside the frame (4). The water cooling pipes (54) are communicated with the connecting pipes (53). One end of each water cooling pipe (54) is fixedly installed with a water outlet pipe (55). One ends of the plurality of water outlet pipes (55) are jointly fixedly installed with a water outlet main pipe (56). The lower end of the water outlet main pipe (56) is communicated with the inside of the circulation water tank (3). A water pump (7) is fixedly installed at the upper end of the circulation water tank (3). A return pipe (21) is jointly fixedly installed between the output end of the water pump (7) and the cooling water tank (2).
Citation Information
Patent Citations
Super-converged architecture cluster server
CN218567952U