A 5G communication heat dissipation blow plate with an installation structure

CN224627024UActive Publication Date: 2026-08-11FOSHAN SHUNDE LONGHAO NEW MATERIALS TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-22
Publication Date
2026-08-11

AI Technical Summary

Technical Problem

[0003]现有技术中,5G通信设备的散热吹胀板通常采用单一的螺栓固定或简单的搭接方式,仅依靠螺栓的紧固力或板材自身的贴合度来维持连接

Benefits of technology

[0018](1)、通过多组散热吹胀板通过第一连接部、第二连接部与卡接部的层级结构,实现与相邻吹胀板缺口部的精准嵌合,配合固定部的挤压或阻挡作用,能产生持续的摩擦力与限位力,这种“嵌合+限位”的双重固定方式,可有效抵御设备运行时的振动冲击,避免连接松动,同时,散热吹胀板与5G设备通过螺纹孔螺栓固定,形成紧密贴合,确保热量传递路径始终通畅;

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model discloses a 5G communication heat dissipation blow-blown plate with an installation structure, including a heat dissipation blow-blown plate. The heat dissipation blow-blown plate is used to install on 5G communication equipment. The side of the heat dissipation blow-blown plate is provided with an assembly structure for installation. The assembly structure is completed by inserting the first connecting part, the second connecting part, and the snap-fit ​​part into the notch on the side of the heat dissipation blow-blown plate. This utility model achieves precise fitting through the hierarchical structure of multiple sets of first connecting parts, second connecting parts, and snap-fit ​​parts of the heat dissipation blow-blown plate. Multiple sets of blow-blown plates can be spliced ​​without complicated tools by fitting the snap-fit ​​parts and the notch. With the squeezing or blocking effect of the fixing part, the connection is prevented from becoming loose. The multi-level flow distribution structure achieves precise flow distribution and adapts to the first and second heat conduction liquid channels of different sizes to ensure that the heat dissipation liquid fully covers the heat-generating area. The heat dissipation fins on the back and the liquid cooling system form a "liquid cooling + air cooling" synergistic heat dissipation.
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Description

Technical Field

[0001] This utility model relates to the field of 5G communication heat dissipation blowing plate technology, specifically a 5G communication heat dissipation blowing plate with an installation structure. Background Technology

[0002] 5G is short for fifth-generation mobile communication technology. During the use of 5G equipment, heat dissipation plates are generally required to dissipate heat and ensure the operation of the 5G equipment.

[0003] In existing technologies, the heat dissipation expansion plates of 5G communication equipment are usually fixed with a single bolt or a simple overlapping method, relying solely on the tightening force of the bolt or the fit of the plate itself to maintain the connection.

[0004] However, when using a single bolt connection, the installation process requires frequent use of tools to tighten the bolt, which is cumbersome and time-consuming. Especially when splicing multiple heat sinks, uneven connections can easily occur due to inconsistent bolt tightness, affecting heat transfer efficiency. On the other hand, the overlapping connection method lacks a limiting structure, and when the equipment vibrates during operation, the clips can easily loosen or even fall off the slots, resulting in gaps between heat sinks and between the heat sinks and the equipment. This disrupts the heat transfer path, causing a decrease in heat dissipation performance, and in severe cases, may affect the normal operation of 5G equipment.

[0005] In view of this, we have launched a 5G communication heat dissipation blow plate with an installation structure. Utility Model Content

[0006] The purpose of this invention is to provide a 5G communication heat dissipation blower with an installation structure to solve the problems mentioned in the background art.

[0007] To achieve the above objectives, this utility model provides the following technical solution: a 5G communication heat dissipation inflatable plate with an installation structure, comprising: a heat dissipation inflatable plate;

[0008] The heat dissipation expansion plate is used for installation on 5G communication equipment. The side of the expansion plate has an assembly structure for installation. The assembly structure, consisting of a first connecting part, a second connecting part, and a snap-fit ​​part, is inserted into the notch on the side of the expansion plate to complete the assembly. This allows for quick and stable connection between multiple expansion plates. The precise engagement of the snap-fit ​​part and the notch ensures a tight and stable connection, preventing loosening due to equipment vibration and ensuring a continuous and unobstructed heat dissipation path. Assembly can be completed without complex tools, facilitating later maintenance, disassembly, and replacement. This allows the expansion plate to maintain a good fit with the 5G communication equipment, maximizing its heat dissipation performance. This design simplifies the installation process and provides reliable heat dissipation for long-term stable operation of the equipment, making it particularly suitable for 5G communication scenarios with high requirements for heat dissipation efficiency and ease of maintenance.

[0009] Preferably, the first connecting part is connected to one side surface of the heat dissipation expansion plate, the second connecting part is integrally formed and connected to the surface of the first connecting part, and the snap-fit ​​part is integrally formed and connected to the surface of the second connecting part. The notch is opened on the side of the heat dissipation expansion plate, and the snap-fit ​​part snaps into the notch. The side of the heat dissipation expansion plate is integrally formed and connected to a fixing part for fixing the snap-fit ​​part. The surface of the heat dissipation expansion plate is provided with heat dissipation components for heat dissipation. The integrally formed connection method enhances the overall strength and stability of the structure, and the setting of the fixing part further improves the firmness of the snap-fit, making it less likely for the heat dissipation expansion plate to shift during equipment operation, laying the foundation for the efficient operation of the heat dissipation components.

[0010] Preferably, the heat dissipation assembly includes a first heat-conducting liquid channel and a second heat-conducting liquid channel connected to the surface of the heat dissipation inflatable plate. The size of the second heat-conducting liquid channel is smaller than that of the first heat-conducting liquid channel. A first bend is provided on one side of the surface of the first heat-conducting liquid channel, and a second bend is provided on one side of the surface of the second heat-conducting liquid channel. The heat-conducting liquid channels of different sizes can be adapted to the heat distribution in different areas of the equipment. The design of the bend can extend the flow time of the heat dissipation liquid in the channel, increase the heat exchange efficiency, and make the heat dissipation more targeted and effective.

[0011] Preferably, a first diversion section is provided on one side of the surface of the first heat transfer fluid channel and the second heat transfer fluid channel, a second diversion section is provided on one side of the first diversion section, an inlet is provided on one side of the second diversion section, and an inlet is provided on one side of the inlet. The multi-stage diversion structure can evenly distribute the heat transfer fluid entering from the inlet into different heat transfer fluid channels, avoid insufficient local heat dissipation due to uneven flow distribution, and ensure that each channel can fully exert its heat dissipation function.

[0012] Preferably, a third diversion section is provided on the other side of the surface of the first heat transfer fluid channel and the second heat transfer fluid channel, a fourth diversion section is provided on one side of the third diversion section, an outlet is provided on one side of the fourth diversion section, and an outlet is opened on one side of the outlet. The cooperation between the diversion section and the outlet can orderly collect and discharge the heat transfer fluid that has completed heat exchange, forming a complete heat transfer fluid circulation loop, ensuring the continuity and stability of the heat dissipation process, and allowing heat to be continuously carried away.

[0013] Preferably, the surface of the first heat-conducting liquid channel is provided with a first heat dissipation groove at equal intervals, and the surface of the second heat-conducting liquid channel is provided with a second heat dissipation groove at equal intervals. The equal-interval heat dissipation grooves significantly increase the contact area between the heat-conducting liquid channel and the air, accelerate the speed at which heat is dissipated to the outside, and form a synergistic heat dissipation with the heat dissipation liquid in the channel, further improving the heat dissipation efficiency of the heat dissipation component.

[0014] Preferably, the back of the heat dissipation blow-up plate is provided with heat dissipation fins at equal intervals, and the surface of the heat dissipation fins is provided with notches for heat dissipation; the equally spaced heat dissipation fins increase the heat dissipation area of ​​the heat dissipation blow-up plate, and the notches on the surface of the fins can promote air circulation and enhance the air convection heat dissipation effect, forming a dual heat dissipation mode of "liquid cooling + air cooling" with the heat conduction liquid channel, which greatly improves the overall heat dissipation efficiency.

[0015] Preferably, the heat dissipation expansion plate has threaded holes at the four corners of its surface for bolt installation. The threaded holes provide a simple and reliable way to fix the heat dissipation expansion plate to the 5G communication equipment. Bolt fixing ensures that the two fit tightly together, reduces heat loss during the heat transfer process, and facilitates disassembly and adjustment according to actual needs.

[0016] Preferably, the assembly structure further includes a substrate connecting the bottom of the heat dissipation blow-up plate to the 5G communication equipment. The substrate has equally spaced slots for installation, and multiple sets of heat dissipation blow-up plates are installed in the slots. Screw holes for screw installation are respectively opened at the four corners of the substrate. The substrate is fixed to the equipment through the screw holes, providing a stable installation platform for the heat dissipation blow-up plates. The equally spaced slots ensure that multiple sets of heat dissipation blow-up plates are evenly distributed, which not only avoids installation chaos, but also allows each blow-up plate to fully contact the heat of the equipment, improving the overall heat dissipation balance.

[0017] Compared with the prior art, the beneficial effects of this utility model are:

[0018] (1) Through the hierarchical structure of multiple heat dissipation expansion plates through the first connecting part, the second connecting part and the snap-fit ​​part, the precise fitting with the notch of the adjacent expansion plate is achieved. With the squeezing or blocking effect of the fixing part, continuous friction and limiting force can be generated. This dual fixing method of "fitting + limiting" can effectively resist the vibration and impact of the equipment during operation and avoid loosening of the connection. At the same time, the heat dissipation expansion plate and the 5G equipment are fixed by threaded hole bolts to form a tight fit, ensuring that the heat transfer path is always unobstructed.

[0019] (2) The flow rate is accurately distributed through a multi-stage diversion structure (second diversion section and first diversion section), which is adapted to the first and second heat transfer fluid channels of different sizes to ensure that the heat transfer fluid fully covers the heat-generating area. The curved section design extends the residence time of the heat transfer fluid. Combined with the heat exchange area expanded by the equally spaced heat dissipation grooves, the heat exchange efficiency is significantly improved. The heat dissipation fins on the back adopt an equally spaced arrangement and a notch design to accelerate air convection and form a "liquid cooling + air cooling" synergistic heat dissipation with the liquid cooling system.

[0020] (3) The modular design of the assembly structure allows multiple sets of blow-up plates to be spliced ​​without complicated tools by the interlocking of the snap-fit ​​and the notch. The automatic limit function of the fixing part simplifies the installation process. The cooperation of the threaded hole and the bolt makes the fixing operation of the blow-up plate and the equipment intuitive and efficient. During the later maintenance, a set of blow-up plates can be disassembled and replaced separately without disassembling the entire system, which greatly shortens the maintenance time.

[0021] (4) The design of the substrate brings multiple practical benefits. It is firmly connected to the 5G communication equipment through the four corner screw holes, providing a solid foundation for the heat dissipation system and avoiding the overall displacement caused by equipment vibration. The equally spaced holes and slots make multiple heat dissipation expansion plates evenly distributed, which not only ensures that each expansion plate fully contacts the heat of different areas of the equipment, but also avoids that the distribution is too dense and affects the air circulation. At the same time, the holes and slots form a lateral limit on the expansion plates to prevent slippage. Moreover, the substrate can quickly conduct the heat of the equipment to each expansion plate. With the heat dissipation components of the expansion plates themselves, the heat dissipation efficiency is greatly improved, and the stability and reliability of the heat dissipation system are enhanced. Attached Figure Description

[0022] Figure 1 This is a schematic diagram of the structure of the heat dissipation expansion plate, the first heat conduction fluid channel, and the second heat conduction fluid channel of this utility model when connected.

[0023] Figure 2 This is a top view of the structure of this utility model;

[0024] Figure 3 This is a schematic diagram of the structure of the heat dissipation blowing plate, the first connecting part, the second connecting part, and the snap-fit ​​part of this utility model;

[0025] Figure 4 This is a side view of the structure of this utility model;

[0026] Figure 5 This is a schematic diagram of the structure of multiple heat dissipation blowing plates assembled together according to this utility model;

[0027] Figure 6 This is a schematic diagram of the structure of the heat dissipation inflatable plate of this utility model during assembly;

[0028] Figure 7 This is a schematic diagram of the structure of the heat dissipation and expansion plate of this utility model during installation.

[0029] In the diagram: 1. Heat dissipation expansion plate; 2. Buckle; 3. First heat conduction fluid channel; 4. First bend section; 5. First heat dissipation groove; 6. Inlet nozzle; 7. Liquid inlet; 8. Second branch section; 9. First branch section; 10. Second heat conduction fluid channel; 11. Second heat dissipation groove; 12. Second bend section; 13. Outlet nozzle; 14. Liquid outlet; 15. Fourth branch section; 16. Third branch section; 17. First connecting part; 18. Second connecting part; 19. Snap-fit ​​part; 20. Notch part; 21. Heat dissipation fins; 22. Base plate; 23. Notch; 24. Fixing part; 25. Screw hole; 26. Groove. Detailed Implementation

[0030] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0031] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installed", "equipped with", "sleeved with", "connected", etc., should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium; it can be a connection within two components. For those skilled in the art, the specific meaning of the above terms in this utility model can be understood according to the specific circumstances.

[0032] Example 1:

[0033] Please see Figure 1-6 This utility model provides a technical solution: a 5G communication heat dissipation inflatable plate with an installation structure, comprising: a heat dissipation inflatable plate 1 as the core heat dissipation carrier, which can be directly assembled onto the surface of a 5G communication device. The assembly structure integrated on its side is the key to achieving multiple sets of collaborative work: through the fixed support of the first connecting part 17 and the extension conduction of the second connecting part 18, the snap-fit ​​part 19 and the notch part 20 of the adjacent inflatable plate are finally precisely fitted together. With the limiting reinforcement of the fixing part 24, multiple sets of inflatable plates can be quickly spliced ​​together, and the risk of loosening caused by equipment vibration can be resisted, ensuring that the heat dissipation path is continuously unobstructed. This tool-free assembly logic greatly reduces the installation threshold and provides convenience for subsequent disassembly and replacement, ensuring that the inflatable plate is always in close contact with the surface of the device, avoiding heat dissipation efficiency loss due to poor contact.

[0034] From a structural detail perspective, the first connecting part 17, the second connecting part 18, and the snap-fit ​​part 19 adopt an integrated molding process, which strengthens the overall strength of the connecting structure. The corresponding design of the notch part 20 and the fixing part 24 restricts the displacement of the snap-fit ​​part 19 in the spatial dimension, forming a dual stabilizing mechanism of "fitting + limiting". In addition, the threaded holes 2 at the four corners of the heat dissipation expansion plate 1 can be used with bolts to achieve single-point fixing. The bottom substrate 22 serves as an auxiliary installation carrier. Multiple sets of expansion plates are arranged in an orderly manner through the equally spaced holes 26 on the surface. They are then fixed to the equipment with the help of the four corner screw holes 25, forming a dual installation system of "single-point fixing + substrate bearing", which further improves the stability of the overall structure.

[0035] The heat dissipation performance relies on the synergistic effect of multi-dimensional heat dissipation components: the first heat conduction liquid channel 3 and the second heat conduction liquid channel 10 on the surface constitute the main heat dissipation path. The two achieve differentiated distribution of heat dissipation liquid flow through size difference (the second heat conduction liquid channel 10 is smaller) to adapt to the heat density of different areas. The first bend section 4 and the second bend section 12 on the channel extend the flow path of the heat dissipation liquid. With the first heat dissipation groove 5 and the second heat dissipation groove 11 distributed at equal intervals, the heat dissipation area is expanded while the heat exchange efficiency between the heat dissipation liquid and the channel wall is enhanced.

[0036] The circulation logic of the heat exchanger follows a path of "precise distribution - efficient heat exchange - centralized discharge": after being injected into the inlet 7 of the inlet nozzle 6, it is evenly distributed through the second distribution section 8 and the first distribution section 9, and enters the two heat conduction channels respectively; the heat exchanged heat exchanger converges through the third distribution section 16 and the fourth distribution section 15, and is finally discharged from the outlet 14 of the outlet nozzle 13, forming a closed loop circulation. The heat dissipation fins 21 on the back of the blown plate are designed with equal spacing and surface notches 23 to accelerate air convection, forming a "liquid cooling + air cooling" composite heat dissipation mode with the liquid cooling system, which significantly improves heat dissipation efficiency.

[0037] Overall, the structure, through modular assembly, composite heat dissipation, and multiple fixing designs, not only meets the high heat dissipation efficiency requirements of 5G equipment, but also reduces the long-term operating cost of the equipment by simplifying the installation and maintenance process.

[0038] Specifically, in use, the connection of multiple sets of heat dissipation expansion plates 1 is as follows: the first connecting part 17 is tightly attached to and fixed on one side surface of the heat dissipation expansion plate 1, which can provide a stable support base for the entire connection structure. The second connecting part 18, which is integrally formed with the first connecting part 17, extends outward. The shape of the snap-fit ​​part 19 at its end matches the notch 20 on the side of another heat dissipation expansion plate 1, and can be precisely embedded into the notch 20. During the snap-fit ​​process, the outer surface of the snap-fit ​​part 19 is in close contact with the inner wall of the notch 20, generating a certain friction force, which initially realizes the connection of the two sets of heat dissipation expansion plates. At the same time, the fixing part 24 on the side of the heat dissipation expansion plate 1 will squeeze or block from the outside or inside of the snap-fit ​​part 19, further restricting the movement of the snap-fit ​​part 19 in the notch 20. Even when the equipment vibrates during operation, it can effectively prevent the connection from loosening and ensure that the multiple sets of heat dissipation expansion plates 1 form a stable whole.

[0039] Fixing to 5G communication equipment: The threaded holes 2 at the four corners of the surface of the heat dissipation blow plate 1 are aligned with the corresponding threaded holes on the equipment. The bolts are passed through the threaded holes 2 and tightened to make the heat dissipation blow plate 1 directly attached to the surface of the equipment. When the 5G communication equipment is running, the heat generated by its internal components will be transferred through the equipment shell to the surface of the heat dissipation blow plate 1 that is in close contact with it. Since the heat dissipation blow plate 1 is made of a material with good thermal conductivity, the heat can be quickly diffused inside it.

[0040] Coolant Injection and Distribution: The coolant enters through the inlet 7 of the inlet nozzle 6. The shape design of the inlet 7 facilitates the smooth flow of the coolant and reduces turbulence. The incoming coolant first reaches the second distribution section 8. The second distribution section 8 has a distribution structure inside, which can evenly distribute the coolant to the first distribution section 9. The first distribution section 9 is connected to the first heat transfer fluid channel 3 and the second heat transfer fluid channel 10. Since the size of the second heat transfer fluid channel 10 is smaller than that of the first heat transfer fluid channel 3, the first distribution section 9 will reasonably distribute the amount of coolant flowing in according to the size and resistance of the two channels to ensure that there is enough coolant in both channels for heat exchange.

[0041] Heat exchange process: The heat dissipation fluid entering the first heat conduction fluid channel 3 will come into full contact with the inner wall of the channel during the flow process. When it flows through the first bend section 4, the flow direction of the heat dissipation fluid changes and forms a vortex, which increases the residence time of the heat dissipation fluid in the channel, allowing the heat dissipation fluid to absorb the heat around the channel more fully. At the same time, the first heat dissipation grooves 5, which are equally spaced on the surface of the first heat conduction fluid channel 3, increase the contact area between the channel and the outside air. Heat will be transferred through the channel wall to the surface of the first heat dissipation grooves 5 and then dissipated into the air. The flow of the heat dissipation fluid in the second heat conduction fluid channel 10 is similar to that in the first heat conduction fluid channel 3. The second bend section 12 extends the flow path of the heat dissipation fluid and the heat exchange time. The second heat dissipation groove 11 also expands the heat dissipation area, further enhancing the heat dissipation effect.

[0042] Heat sink collection and discharge: After the heat sink has completed heat absorption, it flows out from the first heat conduction channel 3 and the second heat conduction channel 10 and enters the third diversion section 16. The third diversion section 16 will collect the heat sink from the two channels and then transport it to the fourth diversion section 15. The fourth diversion section 15 guides the heat sink to the outlet nozzle 13 and finally discharges it from the outlet 14. After being cooled, the discharged heat sink can be injected again from the inlet 7 to form a continuous circulating heat sink circuit, which continuously removes the heat generated by the equipment.

[0043] The heat dissipation fins 21 on the back of the heat dissipation expansion plate 1 are arranged at equal intervals. This arrangement ensures that each fin can fully contact the air without obstructing airflow due to excessively small spacing. The heat dissipation fins 21 are made of a high thermal conductivity material, which can quickly absorb the heat on the back of the heat dissipation expansion plate 1. The notches 23 on the surface of the heat dissipation fins 21 allow air to flow more smoothly between the heat dissipation fins 21, forming convection and accelerating the speed at which heat is dissipated from the surface of the heat dissipation fins 21 into the air. The heat dissipation function of the heat dissipation fins 21 works in conjunction with the heat transfer fluid circulation system. When the heat transfer fluid circulation removes most of the heat, the heat dissipation fins 21 can dissipate the remaining heat on the surface of the heat dissipation expansion plate 1 in a timely manner. The two work together to greatly improve the overall heat dissipation efficiency.

[0044] After multiple sets of heat dissipation expansion plates 1 are connected by the assembly structure, their respective first heat conduction fluid channels 3 and second heat conduction fluid channels 10 are interconnected to form a larger and more complex heat dissipation fluid network. This network can cover more heat-generating areas of the equipment, allowing heat to be transferred and dissipated over a larger area.

[0045] Example 2:

[0046] Please see Figure 7 The present invention provides a technical solution that is basically the same as that of embodiment 1, with the following slight differences: the assembly structure further includes a substrate 22 connecting the bottom of the heat dissipation blow-out plate 1 to the 5G communication device, and the surface of the substrate 22 is provided with equally spaced holes and slots 26 for installation, and multiple sets of heat dissipation blow-out plates 1 are installed in the holes and slots 26. Screw holes 25 for screw installation are respectively provided at the four corners of the surface of the substrate 22.

[0047] Specifically, during use, the substrate 22 itself needs to be fixedly installed with the 5G communication equipment. Screw holes 25 are opened at the four corners of the surface of the substrate 22. The staff will use screws to pass through these screw holes 25 to firmly fix the substrate 22 to the designated installation position of the 5G communication equipment. This step provides a stable foundation platform for the subsequent installation of the heat dissipation expansion plate 1, ensuring that the entire heat dissipation system can be closely connected with the equipment and avoiding overall displacement due to factors such as vibration during equipment operation.

[0048] Next, the heat dissipation blow-up plate 1 is assembled with the substrate 22. The surface of the substrate 22 is provided with equally spaced holes and slots 26. The size and shape of these holes and slots 26 match the bottom of the heat dissipation blow-up plate 1. During installation, multiple sets of heat dissipation blow-up plates 1 are respectively embedded into these holes and slots 26. The equally spaced design of the holes and slots 26 can ensure that multiple sets of heat dissipation blow-up plates 1 are evenly distributed on the substrate 22. This layout can ensure that each heat dissipation blow-up plate 1 can fully contact the heat of different areas of the equipment, and can also avoid affecting air circulation due to excessive density, thereby ensuring the heat dissipation effect. At the same time, the holes and slots 26 play a lateral limiting role for the heat dissipation blow-up plate 1, preventing the heat dissipation blow-up plate 1 from sliding left and right or back and forth on the substrate 22.

[0049] In terms of heat conduction, the heat generated by the 5G communication equipment during operation will first be transferred to the substrate 22 in contact with it. Since the substrate 22 and the bottom of the heat dissipation blow plate 1 are tightly attached through the slots 26, the heat will be quickly conducted from the substrate 22 to each heat dissipation blow plate 1 embedded in the slots 26. Subsequently, the heat dissipation blow plate 1 will dissipate the heat through its own heat dissipation components, such as the first heat conduction liquid channel 3, the second heat conduction liquid channel 10, and the heat dissipation fins 21, thereby achieving effective heat dissipation for the 5G communication equipment.

[0050] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A 5G communication heat dissipation inflatable plate with an installation structure, characterized in that, include: The heat dissipation blow plate (1) is used to install on 5G communication equipment. The side of the heat dissipation blow plate (1) is provided with an assembly structure for installation. The assembly structure is inserted into the notch (20) on the side of the heat dissipation blow plate (1) by the first connecting part (17), the second connecting part (18) and the snap-fit ​​part (19) of the assembly structure, and then the assembly is completed. This enables a fast and stable connection between multiple heat dissipation blow plates (1). The precise snap-fit ​​between the snap-fit ​​part (19) and the notch (20) allows the heat dissipation blow plate (1) to always be in contact with the 5G communication equipment and give full play to its heat dissipation performance.

2. The 5G communication heat dissipation blowing plate with an installation structure according to claim 1, characterized in that, The first connecting part (17) is connected to one side surface of the heat dissipation blow plate (1), the second connecting part (18) is integrally formed and connected to the surface of the first connecting part (17), and the snap-fit ​​part (19) is integrally formed and connected to the surface of the second connecting part (18). The notch part (20) is opened on the side of the heat dissipation blow plate (1), and the snap-fit ​​part (19) is snapped into the notch part (20). The side of the heat dissipation blow plate (1) is integrally formed and connected to a fixing part (24) for fixing the snap-fit ​​part (19). The surface of the heat dissipation blow plate (1) is provided with a heat dissipation component for heat dissipation.

3. A 5G communication heat dissipation blowing plate with an installation structure according to claim 2, characterized in that, The heat dissipation assembly includes a first heat conduction fluid channel (3) and a second heat conduction fluid channel (10) connected to the surface of the heat dissipation blow plate (1). The size of the second heat conduction fluid channel (10) is smaller than that of the first heat conduction fluid channel (3). A first bend section (4) is provided on one side of the surface of the first heat conduction fluid channel (3), and a second bend section (12) is provided on one side of the surface of the second heat conduction fluid channel (10).

4. A 5G communication heat dissipation blowing plate with an installation structure according to claim 3, characterized in that, The first heat transfer fluid channel (3) and the second heat transfer fluid channel (10) are provided with a first flow divider (9) on one side of their surfaces, a second flow divider (8) is provided on one side of the first flow divider (9), an inlet (6) is provided on one side of the second flow divider (8), and an inlet (7) is provided on one side of the inlet (6).

5. A 5G communication heat dissipation blow-blown plate with an installation structure according to claim 4, characterized in that, A third diversion section (16) is provided on the other side of the surface of the first heat transfer fluid channel (3) and the second heat transfer fluid channel (10). A fourth diversion section (15) is provided on one side of the third diversion section (16). An outlet (13) is provided on one side of the fourth diversion section (15), and an outlet (14) is opened on one side of the outlet (13).

6. A 5G communication heat dissipation blow-blown plate with an installation structure according to claim 5, characterized in that, The surface of the first heat-conducting liquid channel (3) is provided with a first heat dissipation groove (5) at equal intervals, and the surface of the second heat-conducting liquid channel (10) is provided with a second heat dissipation groove (11) at equal intervals.

7. A 5G communication heat dissipation blowing plate with an installation structure according to claim 1, characterized in that, The heat dissipation blow plate (1) has heat dissipation fins (21) evenly spaced on its back side, and the surface of the heat dissipation fins (21) has notches (23) for heat dissipation.

8. A 5G communication heat dissipation blow-blown plate with an installation structure according to claim 1, characterized in that, The heat dissipation expansion plate (1) has threaded holes (2) at the four corners of its surface for bolt installation.

9. A 5G communication heat dissipation blowing plate with an installation structure according to claim 1, characterized in that, The assembly structure also includes a substrate (22) connecting the bottom of the heat dissipation blow plate (1) to the 5G communication device, and the surface of the substrate (22) is provided with equally spaced holes (26) for installation, and multiple sets of heat dissipation blow plates (1) are installed in the holes (26), and screw holes (25) for screw installation are provided at the four corners of the surface of the substrate (22).