Liquid cooling plate device
By designing a liquid-cooling plate device including a split assembly, a seal assembly, a disassembly assembly assembly and a control assembly, the problem of low flow utilization rate of the existing liquid-cooling plate device is solved, real-time adjustment and optimization of the liquid flow is achieved, and cooling efficiency is improved.
Patent Information
- Application Number
- CN202421162723.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-05-27
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2034-05-27
AI Technical Summary
The existing liquid-cooled plate device is not convenient to adjust the flow rate of the liquid-cooled plate in real time according to different environmental conditions, resulting in poor flow utilization, and the inability to increase the flow rate in places where more cooling is needed, while reducing the flow rate in places where cooling needs are low.
A liquid-cooled plate device is designed, including two liquid-cooled plate bodies, a shunt assembly, a sealing assembly, a disassembly assembly assembly and a control assembly. Through the coordinated work of these components, the liquid flow is diverted, adjusted and sealed, and the flow utilization rate of the liquid-cooled plate is improved.
Through the adjustment control component, real-time adjustment of liquid flow is achieved, the utilization rate of liquid-cooled plate flow is improved, the flow can be dynamically adjusted according to different environmental conditions, and the cooling efficiency is enhanced.
Smart Images

Figure CN222852520U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of liquid cooling plates, and more specifically to a liquid cooling plate device. Background Art
[0002] Liquid cooling plate, also known as water cooling plate, is a device used for heat dissipation. It achieves the effect of heat dissipation by introducing water or other cooling media into the system and using the medium to absorb and remove the heat of the device. The structure of the liquid cooling plate is complex and generally consists of multiple layers, including inner circuit boards, heat sinks, flow path plates and outer shells.
[0003] The liquid cooling plate indirectly transfers the heat of the heating device to the cooling liquid enclosed in the circulation pipeline through the cold plate (usually a closed cavity made of heat-conducting metals such as copper and aluminum). The cooling liquid takes away the heat, thereby achieving heat dissipation.
[0004] Liquid cooling plates are widely used in data center servers, high-performance computers, gaming laptops, desktops and other personal computer fields, as well as industrial control systems, automation equipment and other fields. In these fields, liquid cooling plates can effectively improve the heat dissipation efficiency of equipment, keep the inside of the chassis clean, reduce the impact of dust accumulation on equipment, and thus improve the operating stability and life of the equipment.
[0005] At present, the existing liquid cooling plates are not convenient for independently adjusting the flow according to the real-time working status and environmental conditions of the liquid cooling plates in different environments, which easily causes unnecessary flow loss. It is not convenient to increase the flow in places where more cooling is needed and reduce the flow in places where the cooling demand is lower. The utilization rate of the liquid cooling plate flow is poor.
[0006] In view of this, the utility model provides a liquid cooling plate device. Utility Model Content
[0007] The utility model provides a liquid cooling plate device, which comprises two liquid cooling plate bodies, a flow dividing component is fixedly connected between the two liquid cooling plate bodies, and a sealing component is fixedly connected between the multi-surface outer walls of the two liquid cooling plate bodies;
[0008] The end of the diversion component and the inside of the sealing component are both movably connected with a disassembly component, and a control component is movably connected between the two disassembly components, and the control component is movably connected inside the sealing component.
[0009] As a further improvement of the present technical solution, the diversion assembly includes a support block, which is fixedly connected between the two liquid cooling plate bodies near the center position, the outer wall of the support block is fixedly connected with a plurality of branch pipes, the inner wall of the branch pipe is movably connected with a disassembly assembly near the end, and the diversion assembly is used to distribute the liquid flow.
[0010] As a further improvement of the present technical solution, the sealing assembly includes a sliding rod, and a plurality of the sliding rods are respectively fixedly connected to the outer wall of the liquid cooling plate body near both sides of the branch pipe end. A baffle is movably connected between the sliding rods on the two liquid cooling plate bodies, and a disassembly and assembly assembly is movably connected inside the baffle and the branch pipe. The sealing assembly is used to cover the gap between the two liquid cooling plate bodies.
[0011] As a further improvement of the present technical solution, the disassembly and assembly component includes a support rod, the outer wall of the support rod is fixedly connected with bolts, multiple bolts and the support rod are movably connected inside multiple branch pipes and baffles respectively, one end of the support rod is fixedly connected with a circular plate, and a control component is movably connected between the outer walls of the circular plates at the ends of the two support rods, and the disassembly and assembly component installs and disassembles the control component.
[0012] As a further improvement of the present technical solution, the control component includes a valve housing, which is movably connected between the outer walls of the circular plates at the ends of the two support rods, a valve ball is movably connected inside the valve housing, a rotating rod is fixedly connected to the outer wall of the valve ball, and the rotating rod passes through the end of the valve housing and is fixedly connected to a turntable, and the control component is used to adjust the liquid flow inside the branch pipe.
[0013] Compared with the prior art, the utility model has the following beneficial effects:
[0014] By using the disassembly and assembly components to drive multiple control components to be installed at the end of the shunt component, by movably connecting the sealing component between the outer walls of the two liquid cooling plate bodies, and by installing the disassembly and assembly component at the other end of the control component into the inside of the sealing component, the position of the sealing component is fixed, and at the same time, the liquid flow inside the shunt component is adjusted by adjusting the control component, thereby improving the utilization rate of the liquid cooling plate body flow. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] The present invention is described in more detail below by way of example with reference to the accompanying drawings, in which:
[0016] Figure 1 It is a schematic diagram of the internal structure of the utility model;
[0017] Figure 2 It is a schematic diagram of the overall structure of the utility model;
[0018] Figure 3 This is a schematic diagram of the distribution structure of the utility model;
[0019] Figure 4 It is a schematic diagram of the adjustment structure of the utility model.
[0020] The meanings of the numbers in the figure are as follows: 1. Liquid cooling plate body; 11. Diverter assembly; 110. Support block; 111. Branch pipe; 12. Sealing assembly; 120. Baffle; 121. Slide rod; 13. Disassembly and assembly assembly; 130. Support rod; 131. Bolt; 132. Round plate; 14. Control assembly; 140. Valve housing; 141. Valve ball; 142. Turn rod; 143. Turntable. DETAILED DESCRIPTION
[0021] like Figure 1-4 As shown, the device includes two liquid cooling plate bodies 1, a flow dividing component 11 is fixedly connected between the two liquid cooling plate bodies 1, and a sealing component 12 is fixedly connected between multiple outer walls of the two liquid cooling plate bodies 1;
[0022] The end of the flow dividing component 11 and the inside of the sealing component 12 are both movably connected with a disassembly component 13, and a control component 14 is movably connected between the two disassembly components 13, and the control component 14 is movably connected inside the sealing component 12;
[0023] First, the specific structure of the flow splitter assembly 11 is disclosed. The flow splitter assembly 11 includes a support block 110. The support block 110 is fixedly connected between the two liquid cooling plate bodies 1 near the center. The outer wall of the support block 110 is fixedly connected with a plurality of branch pipes 111. The inner wall of the branch pipe 111 is movably connected with a disassembly assembly 13 near the end. The flow splitter assembly 11 is used to distribute the liquid flow. The liquid inside the plurality of branch pipes 111 is connected through the support block 110, so that the liquid between the plurality of branch pipes 111 can flow to each other, thereby dispersing the liquid flow inside the two liquid cooling plate bodies 1.
[0024] According to the above disclosure of the specific structure of the sealing assembly 12, the sealing assembly 12 includes a sliding rod 121, and a plurality of sliding rods 121 are respectively fixedly connected to the outer wall of the liquid cooling plate body 1 near the ends of the branch pipe 111 on both sides, and a baffle 120 is movably connected between the sliding rods 121 on the two liquid cooling plate bodies 1, and the inside of the baffle 120 and the inside of the branch pipe 111 are both movably connected with a disassembly assembly 13, and the sealing assembly 12 is used to block the gap between the two liquid cooling plate bodies 1, and the sliding groove on one side of the baffle 120 is passed through between the sliding rods 121 on the outer walls of the two liquid cooling plate bodies 1, so as to connect the sliding rod 121 with the baffle 120, so as to facilitate the baffle 120 to block the gap between the two liquid cooling plate bodies 1;
[0025] According to the above disclosure of the specific structure of the disassembly assembly 13, the disassembly assembly 13 includes a support rod 130, the outer wall of the support rod 130 is fixedly connected with a bolt 131, and multiple bolts 131 and the support rod 130 are respectively movably connected to the inside of multiple branch pipes 111 and the baffle 120, one end of the support rod 130 is fixedly connected with a circular plate 132, and the outer walls of the circular plates 132 at the ends of the two support rods 130 are movably connected with the control assembly 14. The disassembly assembly 13 is installed and disassembled by the control assembly 14. The circular plate 132 is driven to rotate inside the valve housing 140 by rotating the support rod 130 to prevent the rotation of the support rod 130 from affecting the direction of the valve housing 140. The bolts 131 on the outer wall of the support rod 130 are screwed into the inner wall of the branch pipe 111 and the inside of the baffle 120 by rotating the support rod 130, so that the two support rods 130 on the valve housing 140 connect the branch pipe 111 and the baffle 120, and the position of the baffle 120 is fixed. At the same time, the valve housing 140 is installed between the baffle 120 and the branch pipe 111;
[0026] According to the above disclosure of the specific structure of the control component 14, the control component 14 includes a valve housing 140, which is movably connected between the outer walls of the circular plates 132 at the ends of the two support rods 130, and a valve ball 141 is movably connected inside the valve housing 140, and a rotating rod 142 is fixedly connected to the outer wall of the valve ball 141, and the rotating rod 142 passes through the end of the valve housing 140 and is fixedly connected to a turntable 143. The control component 14 is used to adjust the liquid flow inside the branch pipe 111, and the rotating rod 142 is driven to rotate by rotating the turntable 143, and the valve ball 141 is driven to rotate inside the valve housing 140 by rotating the rotating rod 142. By adjusting the direction of the circular hole inside the valve ball 141, when the circular hole inside the valve ball 141 is aligned with the circular holes at both ends of the valve housing 140, it is convenient for the liquid to flow between the branch pipe 111 and the baffle 120, and the liquid flow at the ends of multiple branch pipes 111 is adjusted.
[0027] The improvement of this embodiment is that: the slide groove on one side of the baffle 120 is passed through between the slide bars 121 on the outer walls of the two liquid cooling plate bodies 1, so that the slide bar 121 is connected to the baffle 120, so that the baffle 120 can conveniently cover the gap between the two liquid cooling plate bodies 1, and the circular plate 132 is driven to rotate inside the valve housing 140 by rotating the support rod 130, so as to avoid the rotation of the support rod 130 affecting the direction of the valve housing 140, and the bolt 131 on the outer wall of the support rod 130 is screwed into the inner wall of the branch pipe 111 and the inside of the baffle 120 by rotating the support rod 130, so that the two support rods 130 on the valve housing 140 connect the branch pipe 111 and the baffle 120, and the position of the baffle 120 is adjusted. While fixing, the valve housing 140 is installed between the baffle 120 and the branch pipe 111, and the liquid inside the multiple branch pipes 111 is connected through the support block 110, so that the liquid between the multiple branch pipes 111 can flow together, and the liquid flow inside the two liquid cooling plate bodies 1 is dispersed. The rotating disk 143 is driven to rotate the rotating rod 142, and the rotating rod 142 is driven to rotate the valve ball 141 inside the valve housing 140. By adjusting the direction of the circular hole inside the valve ball 141, when the circular hole inside the valve ball 141 is aligned with the circular holes at both ends of the valve housing 140, it is convenient for the liquid to flow between the branch pipe 111 and the baffle 120, and the liquid flow at the ends of the multiple branch pipes 111 is adjusted;
[0028] In summary, the working principle of this solution is as follows:
[0029] The disassembly assembly 13 drives multiple control assemblies 14 to be installed at the end of the diverter assembly 11, and the sealing assembly 12 is movably connected between the outer walls of the two liquid cooling plate bodies 1, and the disassembly assembly 13 at the other end of the control assembly 14 is installed inside the sealing assembly 12, so as to fix the position of the sealing assembly 12, wherein the disassembly assembly 13 drives the circular plate 132 to rotate inside the valve housing 140 by rotating the support rod 130, so as to prevent the rotation of the support rod 130 from affecting the direction of the valve housing 140, and the bolts 131 of the outer wall of the support rod 130 are screwed into the inner wall of the branch pipe 111 and the inside of the baffle 120 by rotating the support rod 130, so that the two support rods 130 on the valve housing 140 connect the branch pipe 111 and the baffle 120, and the position of the baffle 120 is fixed. At the same time, the valve housing 140 is installed between the baffle 120 and the branch pipe 111, wherein the sealing assembly 12 drives the circular plate 132 to rotate inside the valve housing 140 by rotating the support rod 130 1, thereby connecting the sliding rod 121 with the baffle 120, so as to facilitate the baffle 120 to cover the gap between the two liquid cooling plate bodies 1, and at the same time, the liquid flow inside the shunt component 11 is adjusted by adjusting the control component 14, wherein the shunt component 11 connects the liquid between the multiple branch pipes 111 through the support block 110, so as to facilitate the mutual circulation of liquid between the multiple branch pipes 111, and disperse the liquid flow inside the two liquid cooling plate bodies 1, wherein the control component 14 drives the rotating rod 142 to rotate by rotating the rotating disk 143, and drives the valve ball 141 to rotate inside the valve shell 140 by rotating the rotating rod 142, and by adjusting the direction of the circular hole inside the valve ball 141, when the circular hole inside the valve ball 141 is aligned with the circular holes at both ends of the valve shell 140, it is convenient for the liquid to circulate between the branch pipe 111 and the baffle 120, and the liquid flow at the ends of the multiple branch pipes 111 is adjusted, so as to improve the utilization rate of the flow of the liquid cooling plate body 1.
[0030] The above shows and describes the basic principle, main features and advantages of the utility model. Those skilled in the art should understand that the utility model is not limited by the above embodiments. The above embodiments and descriptions are only preferred examples of the utility model and are not used to limit the utility model. Without departing from the spirit and scope of the utility model, the utility model may have various changes and improvements, which fall within the scope of the utility model to be protected. The scope of protection of the utility model is defined by the attached claims and their equivalents.
Claims
1. A liquid cooling plate device, comprising a liquid cooling plate body (1), characterized in that: A flow dividing component (11) is fixedly connected between the two liquid cooling plate bodies (1), and a sealing component (12) is fixedly connected between multiple outer walls of the two liquid cooling plate bodies (1); The end of the flow diversion component (11) and the interior of the sealing component (12) are both movably connected with a disassembly component (13), and a control component (14) is movably connected between the two disassembly components (13), and the control component (14) is movably connected inside the sealing component (12).
2. The liquid cooling plate device according to claim 1, characterized in that: The flow distribution component (11) comprises a support block (110), wherein the support block (110) is fixedly connected between two liquid cooling plate bodies (1) near a center position, a plurality of branch pipes (111) are fixedly connected to the outer wall of the support block (110), and a disassembly assembly (13) is movably connected to the inner wall of the branch pipe (111) near an end portion, and the flow distribution component (11) is used to distribute liquid flow.
3. The liquid cooling plate device according to claim 1, characterized in that: The sealing assembly (12) comprises a sliding rod (121), and a plurality of the sliding rods (121) are respectively fixedly connected to the outer wall of the liquid cooling plate body (1) at both sides near the end of the branch pipe (111), a baffle (120) is movably connected between the sliding rods (121) on the two liquid cooling plate bodies (1), and a disassembly assembly (13) is movably connected inside the baffle (120) and inside the branch pipe (111), and the sealing assembly (12) is used to cover the gap between the two liquid cooling plate bodies (1).
4. The liquid cooling plate device according to claim 3, characterized in that: The disassembly assembly (13) comprises a support rod (130), the outer wall of the support rod (130) is fixedly connected with a bolt (131), a plurality of the bolts (131) and the support rod (130) are respectively movably connected inside a plurality of branch pipes (111) and a baffle (120), one end of the support rod (130) is fixedly connected with a circular plate (132), a control assembly (14) is movably connected between the outer walls of the circular plates (132) at the ends of two support rods (130), and the disassembly assembly (13) is used to install and disassemble the control assembly (14).
5. The liquid cooling plate device according to claim 4, characterized in that: The control component (14) comprises a valve housing (140), wherein the valve housing (140) is movably connected between the outer walls of the circular plates (132) at the ends of the two support rods (130), a valve ball (141) is movably connected inside the valve housing (140), a rotating rod (142) is fixedly connected to the outer wall of the valve ball (141), and a rotating disk (143) is fixedly connected to the end of the rotating rod (142) that passes through the valve housing (140). The control component (14) is used to adjust the liquid flow inside the branch pipe (111).