Integrated water-cooling radiator

By adding a connecting part to the water-cooled radiator and adding protrusions to the heat dissipation fins, the problem of unstable connection between the water pump and the heat dissipation radiator is solved, thereby improving the stability and heat dissipation efficiency of the radiator.

CN223624580UActive Publication Date: 2025-12-02DONGGUAN HONGHUI ELECTRONIC TECH CO LTD
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Patent Information

Application Number
CN202422950327.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-29
Publication Date
2025-12-02
Estimated Expiration
2034-11-29

AI Technical Summary

Technical Problem

In existing water-cooled radiators, the connection between the water pump and the cooling radiator is prone to detachment due to shaking or liquid impact, causing the radiator to malfunction.

Method used

By setting up connecting parts, including delivery pipes, fixed connecting columns and clamping connecting frames, the water pump and the heat dissipation water drain are tightly connected, enhancing stability. Furthermore, protrusions are added to the heat dissipation fins to increase the contact area and improve heat exchange efficiency.

Benefits of technology

It effectively reduces the risk of connection disconnection caused by water pump vibration, and improves the working stability and heat dissipation efficiency of the radiator.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an integrated water row radiator which comprises a water pump, a connecting part and a radiating water row, and the water pump is connected with the radiating water row based on the connecting part. The heat dissipation water row comprises a heat dissipation channel and heat dissipation fins, and each heat dissipation fin extends towards the direction of the water pump to form a convex hull; the convex hulls are distributed on the corresponding heat dissipation fins according to preset positions; the connecting part comprises a conveying pipeline, a fixed connecting column and a clamping connecting frame, the conveying pipeline is inserted into the heat dissipation water row, the fixed connecting column is fixedly connected with the heat dissipation water row, and the clamping connecting frame is tightly attached to the heat dissipation water row. According to the radiator, the water pump and the heat dissipation water row are tightly connected through the connecting part, the risk that the water pump is disconnected from the heat dissipation water row due to shaking in the using process is reduced, and the working stability of the radiator is improved.
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Description

Technical Field

[0001] This utility model relates to the field of radiator technology, and in particular to an integrated water-cooled radiator. Background Technology

[0002] A water-cooled radiator mainly consists of a radiator, water pipes, a water pump, and a sufficient water source. The water pump delivers water to the radiator through the water pipes, where the water exchanges heat with the radiator. The water pump drives the water source to circulate, and the water carrying heat flows out, while new, cool water continues to absorb heat to cool the radiator.

[0003] Currently, in all-in-one water cooling radiators on the market, the water pump and the radiator are connected by a long pipe. This connection method is prone to problems, as the pipe may sway due to the vibration of the water pump during operation or due to the impact of liquid, causing the pipe to detach from the radiator and rendering the water cooling radiator inoperable. Utility Model Content

[0004] The purpose of this utility model is to overcome the shortcomings of the prior art. This utility model provides an integrated water-cooled radiator. By setting a connecting part, the water pump and the cooling water duct are tightly connected, reducing the risk of the water pump shaking and disconnecting from the cooling water duct during use, and improving the working stability of the radiator.

[0005] Accordingly, this utility model proposes an integrated water-cooled radiator, which includes: a water pump, a connecting part, and a heat dissipation water duct, wherein the water pump is connected to the heat dissipation water duct based on the connecting part;

[0006] The cooling water duct includes a cooling channel and cooling fins, with each cooling fin extending toward the water pump to form a protrusion; the protrusions are distributed on the corresponding cooling fins at preset positions.

[0007] The connecting part includes: a conveying pipe, a fixed connecting column, and a clamping connecting frame. The conveying pipe is inserted into the heat dissipation water drain, the fixed connecting column is fixedly connected to the heat dissipation water drain, and the clamping connecting frame is in close contact with the drain.

[0008] Preferably, the heat dissipation radiator further includes a first outer shell and a second outer shell, the first outer shell and the second outer shell being located at opposite ends of the heat dissipation radiator, and the first outer shell being provided with a first connecting hole and a second connecting hole;

[0009] The delivery pipe is inserted into the first connection hole, and the fixed connection post is inserted into the second connection hole.

[0010] Preferably, the first housing has a first flow cavity, the second housing has a second flow cavity, and the first flow cavity is connected to the second flow cavity through the heat dissipation channel.

[0011] Preferably, the first housing has a plurality of first fixing holes on the side near the heat dissipation channel, and the second housing has a plurality of second fixing holes on the side near the heat dissipation channel.

[0012] Preferably, the conveying pipe is provided with a first fixing groove, and the first fixing groove has a sealing ring;

[0013] The fixed connecting column is provided with a second fixing groove, and the second fixing groove has a sealing ring.

[0014] Preferably, the clamping connecting frame includes: a first clamping part, a second clamping part, and a rotating adjusting rod;

[0015] The rotating adjusting rod drives the first clamping part to move along the adjusting direction, and the rotating adjusting rod also drives the second clamping part to move along the adjusting direction simultaneously.

[0016] Preferably, the rotating adjusting rod is inserted into the connecting part, and the rotating adjusting rod has threads.

[0017] Preferably, the first clamping part is located on one side of the first housing, and the first clamping part includes a first clamping block and a first connecting rod, with one end of the first connecting rod fixedly connected to the first clamping block;

[0018] The other end of the first connecting rod is threaded and engages with the rotating adjusting rod.

[0019] Preferably, the second clamping part is located on the side of the first housing opposite to the first clamping part, and the second clamping part includes a second clamping block and a second connecting rod, with one end of the second connecting rod fixedly connected to the second clamping block;

[0020] The other end of the second connecting rod is threaded and engages with the rotating adjusting rod.

[0021] Preferably, when the rotating adjusting rod is rotated under force, the rotating adjusting rod drives the first clamping part and the second clamping part to move closer to each other or further away from each other.

[0022] The beneficial effects of this utility model are:

[0023] This invention extends bulges on the heat dissipation fins to increase the contact area between the heat dissipation fins and the external environment, thereby accelerating the heat exchange rate between the heat dissipation fins and the air and thus improving the heat dissipation efficiency. This invention also provides a connecting part that tightly connects the water pump and the cooling water duct, reducing the risk of the water pump shaking and disconnecting from the cooling water duct during use, and improving the working stability of the radiator. Attached Figure Description

[0024] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0025] Figure 1 This is a structural schematic diagram of the integrated water-cooled radiator in this utility model;

[0026] Figure 2 This is a cross-sectional view of the integrated water-cooled radiator of this utility model;

[0027] Figure 3 This is an exploded view of the heat dissipation radiator in this utility model;

[0028] Figure 4 This is a schematic diagram of the heat dissipation fins in this utility model;

[0029] Figure 5 This is a schematic diagram of the connecting part in this utility model;

[0030] Figure 6 This is a cross-sectional view of the connecting part in this utility model.

[0031] In the attached drawings: 1. Water pump; 2. Connecting part; 21. Delivery pipe; 211. First fixing groove; 22. Fixing connecting column; 221. Second fixing groove; 23. Clamping connecting frame; 231. First clamping part; 2311. First clamping block; 2312. First connecting rod; 232. Second clamping part; 2321. Second clamping block; 2322. Second connecting rod; 233. Rotating adjusting rod; 2331. First gear; 2332. Second gear; 3. Cooling water drain; 31. Cooling channel; 32. Cooling fins; 321. Protrusion; 33. First outer shell; 330. First flow cavity; 331. First connecting hole; 332. Second connecting hole; 34. Second outer shell; 340. Second flow cavity. Detailed Implementation

[0032] 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 skilled in the art without creative effort are within the protection scope of the present utility model.

[0033] Figure 1 A schematic diagram of the integrated water-cooled radiator of this utility model is shown. Figure 2 A cross-sectional view of the water-cooled radiator of this invention is shown. Figure 3 An exploded view of the heat dissipation radiator in this invention is shown. Figure 4 A schematic diagram of the heat dissipation fins in this invention is shown. Figure 5 A schematic diagram of the connecting part in this utility model is shown. Figure 6 A cross-sectional view of the connecting part in this utility model is shown. The integrated water-cooled radiator includes: a water pump 1, a connecting part 2, and a cooling water radiator 3. The water pump 1 is connected to the cooling water radiator 3 via the connecting part 2. The cooling water radiator 3 includes: a heat dissipation channel 31 and heat dissipation fins 32. Each heat dissipation fin 32 extends towards the water pump 1 to form a protrusion 321. The protrusions 321 are distributed on the corresponding heat dissipation fins 32 according to preset positions. The connecting part 2 includes: a delivery pipe 21, a fixed connecting post 22, and a clamping connecting frame 23. The delivery pipe 21 is inserted into the cooling water radiator 3. The fixed connecting post 22 is fixedly connected to the cooling water radiator 3. The clamping connecting frame 23 is in close contact with the cooling water radiator 3. In this embodiment, the cooling water radiator 3 includes twelve heat dissipation pipes and thirteen heat dissipation fins 32, wherein each heat dissipation pipe is located between two heat dissipation fins 32, thereby increasing the contact area between the heat dissipation pipe and the heat dissipation fins 32 and accelerating the heat dissipation efficiency. Each of the heat dissipation fins 32 extends towards the water pump 1 to form a protrusion 321. The protrusion 321 increases the contact area between the heat dissipation fin 32 and the external environment, accelerating the heat exchange rate between the heat dissipation fin 32 and the air, thereby increasing the heat dissipation efficiency. The connecting part 2 is used to tightly connect the water pump 1 and the cooling water radiator 3, reducing the risk of the water pump 1 shaking and disconnecting from the cooling water radiator 3 during use, and improving the working stability of the radiator.

[0034] Furthermore, the cooling water radiator 3 also includes a first outer shell 33 and a second outer shell 34, which are located at opposite ends of the cooling water radiator 3. The first outer shell 33 is provided with a first connecting hole 331 and a second connecting hole 332. The delivery pipe 21 is inserted into the first connecting hole 331, and the fixed connecting post 22 is inserted into the second connecting hole 332. One end of the delivery pipe 21 is inserted into the first connecting hole 331, and the other end of the delivery pipe 21 is connected to the output end of the water pump 1. When the water pump 1 outputs liquid, the liquid enters the first outer shell 33 through this delivery pipe 21. The fixed connecting post 22, inserted into the second connecting hole 332, is used to limit the movement range of the connecting part 2, preventing the water pump 1 from shifting due to prolonged shaking during use, and ensuring that the water pump 1 remains connected to the cooling water radiator 3 during use.

[0035] Furthermore, the first outer shell 33 has a first flow cavity 330, and the second outer shell 34 has a second flow cavity 340. The first flow cavity 330 is connected to the second flow cavity 340 via the heat dissipation channel 31. The first flow cavity 330 has a partition that divides it into an inlet cavity and an outlet cavity. The inlet cavity is connected to the water pump 1 via the connecting part 2, and is connected to the second flow cavity 340 via a heat dissipation pipe. The second flow cavity 340 is connected to the outlet cavity via the heat dissipation pipe. That is, after water enters the inlet cavity, it flows through the heat dissipation pipe into the outlet cavity, and then flows out of the outlet cavity, forming a circulation loop. This circulates the internal water source, carrying away heat from the heat dissipation pipe and ensuring the heat dissipation effect of the radiator.

[0036] Furthermore, the first outer shell 33 has a plurality of first fixing holes on the side near the heat dissipation channel 31, and the second outer shell 34 has a plurality of second fixing holes on the side near the heat dissipation channel 31. In this embodiment, the first outer shell 33 has twelve first fixing holes, and the second outer shell 34 has twelve second fixing holes. The first fixing holes are used to fix one end of the heat dissipation pipe, and the second fixing holes are used to fix the other end of the heat dissipation pipe. The twelve first fixing holes correspond to fixing one end of one of the twelve heat dissipation pipes, and the twelve second fixing holes correspond to fixing the other end of one of the twelve heat dissipation pipes. By fixing both ends, the position of the heat dissipation pipe can be kept unchanged during the heat dissipation process, thereby optimizing the heat dissipation effect and reducing the thermal resistance during the heat dissipation process, so that heat can be transferred to the heat dissipation medium more quickly, thereby accelerating the heat dissipation speed.

[0037] Furthermore, the conveying pipe 21 is provided with a first fixing groove 211, and the first fixing groove 211 has a sealing ring; the fixing connecting column 22 is provided with a second fixing groove 221, and the second fixing groove 221 has a sealing ring. In this embodiment, the first fixing groove 211 is used to fix the conveying pipe 21 in the first connecting hole 331, and the second fixing groove 221 is used to fix the connecting column in the second connecting hole 332. When the first connecting hole 331 is engaged in the first fixing groove 211, the sealing ring located on the first fixing groove 211 is deformed by the compression of the first connecting hole 331 and the first fixing groove 211, filling the gap between the first connecting hole 331 and the first fixing groove 211. This helps the sealing ring to block the first connecting hole 331, reducing the risk of liquid flowing out of the first connecting hole 331. Furthermore, increasing the contact area between the sealing ring and the first connecting hole 331 also increases the contact area between the sealing ring and the first fixing groove 211, thereby increasing the friction between the three and reducing the risk of liquid flowing out of the first connecting hole 331 due to the movement of the sealing ring. Similarly, when the second connecting hole 332 is engaged in the second fixing groove 221, the sealing ring located on the second fixing groove 221 is deformed by the compression of the second connecting hole 332 and the second fixing groove 221, filling the gap between the second connecting hole 332 and the second fixing groove 221. This helps the sealing ring to block the second connecting hole 332, reducing the risk of liquid flowing out of the second connecting hole 332. Furthermore, increasing the contact area between the sealing ring and the second connecting hole 332 also increases the contact area between the sealing ring and the second fixing groove 221, thereby increasing the friction between the three and reducing the risk of liquid flowing out of the second connecting hole 332 due to the movement of the sealing ring.

[0038] Furthermore, the clamping connecting frame 23 includes: a first clamping part 231, a second clamping part 232, and a rotating adjusting rod 233; the rotating adjusting rod 233 drives the first clamping part 231 to move along the adjusting direction and simultaneously drives the second clamping part 232 to move along the adjusting direction. The first clamping part 231 and the second clamping part 232 are used to strengthen the connection between the connecting part 2 and the heat dissipation radiator 3. The rotating adjusting rod 233 is used to adjust the position of the first clamping part 231 and the second clamping part 232, so that the first clamping part 231 and the second clamping part 232 can move to the corresponding position and fit tightly against the first outer shell 33. This prevents the clamping connecting frame 23 from shaking due to the influence of the air pump during use, ensuring that the clamping connecting frame 23 is more stable on the heat dissipation radiator 3, reducing the risk of the clamping connecting frame 23 slipping or shaking, and improving safety during use.

[0039] Furthermore, rubber pads are provided on both the first clamping part 231 and the second clamping part 232. These rubber pads increase the friction between the first clamping part 231 and the first housing 33, and between the second clamping part 232 and the first housing 33, thereby enhancing the connection strength between them. The rubber pads also absorb the shaking of the clamping connecting frame 23 caused by the air pump, preventing the risk of shaking of the cooling water duct 3 and ensuring stable operation of the radiator.

[0040] Furthermore, the rotating adjusting rod 233 is inserted into the connecting part 2, and the rotating adjusting rod 233 has a first gear 2331, which is fixedly connected to the rotating adjusting rod 233. The portion of the rotating adjusting rod 233 inserted into the connecting part 2 is connected to both the first clamping part 231 and the second clamping part 232. That is, the first gear 2331 is connected to both the first clamping part 231 and the second clamping part 232, ensuring that the rotating adjusting rod 233 can simultaneously control both the first clamping part 231 and the second clamping part 232. This helps to shorten the time required for the clamping connecting part 2 to clamp or release the first outer shell 33.

[0041] Furthermore, the first clamping part 231 is located on one side of the first outer shell 33. The first clamping part 231 includes a first clamping block 2311 and a first connecting rod 2312. One end of the first connecting rod 2312 is fixedly connected to the first clamping block 2311; the other end of the first connecting rod 2312 is threaded and engages with the rotating adjusting rod 233. The engagement of the first connecting rod 2312 with the rotating adjusting rod 233 means that the first connecting rod 2312 and the first gear 2331 are engaged. When the rotating adjusting rod 233 rotates in the forward direction, it drives the first gear 2331 to move. The first gear 2331 drives the first connecting rod 2312 to move. The movement of the first connecting rod 2312 drives the first clamping block 2311 to move, which is beneficial for adjusting the distance between the first clamping part 231 and the first outer shell 33.

[0042] Furthermore, the second clamping part 232 is located on the side of the first outer shell 33 opposite to the first clamping part 231, and the first clamping part 231 and the second clamping part 232 are symmetrically distributed based on the rotation adjustment rod 233. The second clamping part 232 includes a second clamping block 2321 and a second connecting rod 2322. One end of the second connecting rod 2322 is fixedly connected to the second clamping block 2321; the other end of the second connecting rod 2322 is threaded and engages with the rotation adjustment rod 233. The engagement of the second connecting rod 2322 with the rotation adjustment rod 233 means that the second connecting rod 2322 engages with the first gear 2331. When the rotation adjustment rod 233 rotates in the forward direction, it drives the first gear 2331 to move, which in turn drives the second connecting rod 2322 to move. The movement of the second connecting rod 2322 then drives the first clamping block 2311 to move, which facilitates adjusting the distance between the second clamping part 232 and the first outer shell 33.

[0043] Furthermore, when the rotating adjusting rod 233 is rotated under force, it drives the first clamping part 231 and the second clamping part 232 to move closer or further apart. When the rotating adjusting rod 233 rotates and drives the first clamping part 231 and the second clamping part 232 to move closer together, the clamping connecting frame 23 clamps the first outer shell 33, strengthening the connection between the clamping connecting frame 23 and the heat dissipation radiator 3 and reducing the risk of the clamping connecting frame 23 falling off during use; when the rotating adjusting rod 233 rotates and drives the first clamping part 231 and the second clamping part 232 to move further apart, the clamping connecting frame 23 releases the first outer shell 33, facilitating maintenance and repair by personnel and extending the service life of the clamping connecting frame 23.

[0044] Furthermore, the top of the first outer casing 33 is provided with a fixing toothed hole. The rotating adjustment rod 233 is inserted into the connecting part 2 through this fixing toothed hole, and the rotating adjustment rod 233 is provided with a second gear 2332 that mates with the fixing toothed hole. This gear is fixedly connected to the rotating adjustment rod 233. The fixing toothed hole is used to fix the rotating adjustment rod 233, preventing the rotating adjustment rod 233 from rotating on its own and reducing the risk of the rotating adjustment rod 233 being passively rotated. When rotating the rotating adjustment rod 233, it is necessary to pull the rotating adjustment rod 233 away from the connecting part 2, and ensure that the second gear 2332 is not in contact with the fixing toothed hole before rotating. When it is necessary to fix the rotating adjustment rod 233, the rotating adjustment rod 233 needs to be inserted into the fixing tooth hole, and the second gear 2332 is correspondingly inserted into the fixing tooth hole. The fixing gear restricts the rotation of the second gear 2332, preventing the rotating adjustment rod 233 from rotating on its own without external force. This helps to increase the stability of the clamping connecting frame 23 and ensures that the clamping connecting frame 23 maintains stable performance during long-term operation.

[0045] In summary, this invention increases the contact area between the heat dissipation fins and the external environment by extending protrusions on the heat dissipation fins, thereby accelerating the heat exchange rate between the heat dissipation fins and the air and thus improving the heat dissipation efficiency. In addition, this invention provides a connecting part that tightly connects the water pump and the cooling water duct, reducing the risk of the water pump shaking and disconnecting from the cooling water duct during use, and improving the working stability of the radiator.

[0046] Furthermore, the above provides a detailed description of an integrated water-cooled radiator provided by the embodiments of this utility model. Specific examples have been used to illustrate the principles and implementation methods of this utility model. The description of the above embodiments is only for the purpose of helping to understand the method and core ideas of this utility model. At the same time, for those skilled in the art, there will be changes in the specific implementation methods and application scope based on the ideas of this utility model. Therefore, the content of this specification should not be construed as a limitation of this utility model.

Claims

1. An integrated water-cooled radiator, characterized in that, The integrated water-cooled radiator includes: a water pump, a connecting part, and a heat dissipation water drain, wherein the water pump is connected to the heat dissipation water drain based on the connecting part; The cooling water duct includes a cooling channel and cooling fins, with each cooling fin extending toward the water pump to form a protrusion; the protrusions are distributed on the corresponding cooling fins at preset positions. The connecting part includes: a conveying pipe, a fixed connecting column, and a clamping connecting frame. The conveying pipe is inserted into the heat dissipation water drain, the fixed connecting column is fixedly connected to the heat dissipation water drain, and the clamping connecting frame is in close contact with the heat dissipation water drain.

2. The integrated water-cooled radiator according to claim 1, characterized in that, The cooling water duct also includes a first outer shell and a second outer shell, which are located at opposite ends of the cooling water duct. The first outer shell is provided with a first connecting hole and a second connecting hole. The delivery pipe is inserted into the first connection hole, and the fixed connection post is inserted into the second connection hole.

3. The integrated water-cooled radiator according to claim 2, characterized in that, The first housing has a first flow cavity, and the second housing has a second flow cavity, wherein the first flow cavity is connected to the second flow cavity via the heat dissipation channel.

4. The integrated water-cooled radiator according to claim 2, characterized in that, The first outer casing has a plurality of first fixing holes on the side near the heat dissipation channel, and the second outer casing has a plurality of second fixing holes on the side near the heat dissipation channel.

5. The integrated water-cooled radiator according to claim 3, characterized in that, The conveying pipe is provided with a first fixing groove, and the first fixing groove has a sealing ring; The fixed connecting column is provided with a second fixing groove, and the second fixing groove has a sealing ring.

6. The integrated water-cooled radiator according to claim 2, characterized in that, The clamping connection frame includes: a first clamping part, a second clamping part, and a rotating adjustment rod; The rotating adjusting rod drives the first clamping part to move along the adjusting direction, and the rotating adjusting rod also drives the second clamping part to move along the adjusting direction simultaneously.

7. The integrated water-cooled radiator according to claim 6, characterized in that, The rotating adjustment rod is inserted into the connecting part, and the rotating adjustment rod has threads.

8. The integrated water-cooled radiator according to claim 6, characterized in that, The first clamping part is located on one side of the first housing. The first clamping part includes a first clamping block and a first connecting rod. One end of the first connecting rod is fixedly connected to the first clamping block. The other end of the first connecting rod is threaded and engages with the rotating adjusting rod.

9. The integrated water-cooled radiator according to claim 8, characterized in that, The second clamping part is located on the side of the first housing opposite to the first clamping part. The second clamping part includes a second clamping block and a second connecting rod. One end of the second connecting rod is fixedly connected to the second clamping block. The other end of the second connecting rod is threaded and engages with the rotating adjusting rod.

10. The integrated water-cooled radiator according to claim 9, characterized in that, When the rotating adjusting rod is rotated under force, it drives the first clamping part and the second clamping part to move closer to each other or further away from each other.