Water-cooled heat sink
Patent Information
- Application Number
- CN202521917674.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-05
- Publication Date
- 2026-08-28
- Estimated Expiration
- 2035-09-05
AI Technical Summary
此配置虽有助于标准化组装与模块化设计,但由于管嘴位置偏离其他液冷组件(如水冷头或泵),导致连接至其他液冷组件的软管需具有较长的弯折路径,因而容易造成压损增加、水流速率下降,进而影响整体散热效率
[0016] Compared to conventional designs, the water-cooled radiator of this invention features a pair of nozzles positioned opposite each other at one end of the water tank. These nozzles are located on the protruding sections of the water tank's supporting frame, thereby shortening the distance between the connecting pipe and the water pump and avoiding bending. Furthermore, the water flow in the first water tank is evenly distributed into each water-cooling pipe through the partition, thus improving overall heat dissipation efficiency. Accordingly, the water-cooled radiator is used to dissipate heat from heat-generating components, increasing water flow rate and heat dissipation efficiency, and enhancing ease of use and practicality.
Smart Images

Figure CN224698132U_ABST
Abstract
Description
Technical Field
[0001] This case relates to liquid cooling devices, particularly a water-cooled radiator. Background Technology
[0002] Existing liquid cooling systems are mostly used in electronic devices, such as central processing units and display adapters, for heat dissipation. Furthermore, liquid cooling systems typically include components such as a water radiator, a water block, a circulation pump, and connecting hoses. The water radiator has internal channels for coolant flow, and external fins and fans assist in heat dissipation to remove heat from the system.
[0003] Furthermore, currently, most water cooling radiator nozzles are positioned so that they protrude from the vertical sides of the two water tanks. While this configuration facilitates standardized assembly and modular design, the nozzle position, being offset from other liquid cooling components (such as water blocks or pumps), necessitates longer bends in the hoses connecting to these components. This can easily lead to increased pressure loss, reduced water flow rate, and consequently, compromised overall heat dissipation efficiency. In addition, the increased length of the connecting hoses makes them more susceptible to compression or interference with other mechanisms, reducing system stability and ease of installation.
[0004] In view of this, the applicant has devoted himself to studying the aforementioned prior art and applying theoretical principles to try his best to solve the above-mentioned problems, which has become the target of the applicant's improvement. Utility Model Content
[0005] One objective of this invention is to provide a water-cooled radiator that improves water flow rate and heat dissipation efficiency, and uniformly distributes water flow, thereby increasing ease of use and practicality.
[0006] To achieve the aforementioned objectives, this invention relates to a water-cooled radiator, comprising a frame, multiple water-cooling pipes, multiple heat dissipation fins, a pair of water tanks, a partition, and a pair of nozzles. The frame includes multiple opposing frame plates, including a first frame plate and a second frame plate. The water-cooling pipes are arranged parallel to each other and spaced apart within the frame. The heat dissipation fins are spaced apart between the water-cooling pipes. The water tanks include a first water tank and a second water tank located on opposite sides of the frame, and the first and second water tanks are respectively connected to both ends of the water-cooling pipes. The partition is spaced apart on one side of the water-cooling pipes and is arranged inside the first water tank perpendicular to the extending direction of the water-cooling pipes. The nozzles are respectively arranged at one end of the water tanks with their openings facing each other.
[0007] In one embodiment of this invention, the first water tank has a first protruding section protruding from the second frame plate, and the second water tank has a second protruding section protruding from the second frame plate.
[0008] In one embodiment of this invention, the nozzle includes a first nozzle and a second nozzle, the first nozzle being disposed on a first protruding section and the second nozzle being disposed on a second protruding section.
[0009] In one embodiment of this case, the first nozzle is inserted into the first protruding section in a direction parallel to the water-cooling pipe and is located on one side of the second frame plate, and the second nozzle is inserted into the second protruding section in a direction parallel to the water-cooling pipe and is located on one side of the second frame plate.
[0010] In one embodiment of this case, the first nozzle and the second nozzle are both type I nozzles.
[0011] In one embodiment of this case, a partition divides the interior of the first water tank into an outer water collection area and an inner water collection area. The outer water collection area is connected to the first nozzle, and the inner water collection area is connected to one end of the water cooling pipe.
[0012] In one embodiment of this case, the partition is an L-shaped plate.
[0013] In one embodiment of this case, the frame base further includes a locking fastener, and one end of the first frame plate is locked to the second water tank by the fastener.
[0014] In one embodiment of this case, the water-cooled radiator further includes multiple connecting pipes and a water pump. The water pump has a first pump pipe and a second pump pipe. The connecting pipes include a first connecting pipe and a second connecting pipe. The first pump pipe is connected to a first nozzle through the first connecting pipe and is connected to a first water tank. The second pump pipe is connected to a second nozzle through the second connecting pipe and is connected to a second water tank.
[0015] In one embodiment of this invention, the nozzle includes a first nozzle and a second nozzle, both of which are L-shaped nozzles.
[0016] Compared to conventional designs, the water-cooled radiator of this invention features a pair of nozzles positioned opposite each other at one end of the water tank. These nozzles are located on the protruding sections of the water tank's supporting frame, thereby shortening the distance between the connecting pipe and the water pump and avoiding bending. Furthermore, the water flow in the first water tank is evenly distributed into each water-cooling pipe through the partition, thus improving overall heat dissipation efficiency. Accordingly, the water-cooled radiator is used to dissipate heat from heat-generating components, increasing water flow rate and heat dissipation efficiency, and enhancing ease of use and practicality. Attached Figure Description
[0017] Figure 1 This is a three-dimensional schematic diagram of the water-cooled radiator in this case.
[0018] Figure 2 This is a cross-sectional view of the water-cooled radiator in this case.
[0019] Figure 3 for Figure 2 A magnified view of a portion of the image.
[0020] Figure 4 This is a schematic diagram illustrating the application of the water-cooled radiator in this case.
[0021] Figure 5 This is another example of the nozzle setup in this case.
[0022] Explanation of reference numerals in the attached figures:
[0023] 1: Water-cooled radiator;
[0024] 10: Frame base;
[0025] 11: Frame plate;
[0026] 111: First frame plate;
[0027] 112: Second frame plate;
[0028] 12: Partition;
[0029] 13: Locking hardware;
[0030] 20: Water-cooled pipe;
[0031] 30: Heat dissipation fins;
[0032] 40: Water tank;
[0033] 401: Outer catchment area;
[0034] 402: Inner catchment area;
[0035] 41: First water tank;
[0036] 411: First protruding segment;
[0037] 42: Second water tank;
[0038] 421: Second protruding segment;
[0039] 50: Nozzle;
[0040] 51: First nozzle;
[0041] 52: Second nozzle;
[0042] 60: Connecting pipe;
[0043] 61: First connecting pipe;
[0044] 62: Second connecting pipe;
[0045] 70: Water pump;
[0046] 71: First pump pipe;
[0047] 72: Second pump pipe. Detailed Implementation
[0048] The detailed description and technical content of this case are illustrated below with reference to the accompanying drawings. However, the accompanying drawings are for reference and illustration only and are not intended to limit the scope of this case.
[0049] Please refer to Figures 1 to 3 The figures shown are a three-dimensional schematic diagram, a cross-sectional view, and a partially enlarged view of the water-cooled radiator of this invention. This invention relates to a water-cooled radiator 1, comprising a frame base 10, multiple water-cooling pipes 20, multiple heat dissipation fins 30, a pair of water tanks 40, a partition plate 12, and a pair of nozzles 50. The frame base 10 includes multiple frame plates 11 arranged opposite each other. The multiple water-cooling pipes 20 are arranged parallel and spaced apart within the frame base 10. The multiple heat dissipation fins 30 are spaced apart between the multiple water-cooling pipes 20. The pair of water tanks 40 are located on opposite sides of the frame base 10 and are respectively connected to both ends of the multiple water-cooling pipes 20. The partition plate 12 is located inside one of the water tanks 40. The pair of nozzles 50 are respectively arranged at one end of the pair of water tanks 40 with their openings facing each other.
[0050] Specifically, the frame base 10 includes a plurality of frame plates 11 disposed opposite to each other. The plurality of frame plates 11 includes a first frame plate 111 and a second frame plate 112. The water tank 40 includes a first water tank 41 and a second water tank 42. The first water tank 41 has a first protruding section 411 protruding from the second frame plate 112. The second water tank 42 has a second protruding section 421 protruding from the second frame plate 112.
[0051] In one embodiment of this invention, the frame base 10 further includes a partition 12. Specifically, the partition 12 is an L-shaped plate and is disposed inside the first water tank 41. The partition 12 is spaced apart on one side of the plurality of water-cooling pipes 20 and is disposed inside the first water tank 41 perpendicular to the extending direction of the plurality of water-cooling pipes 20. Furthermore, both ends of the partition 12 extend from one side of the first frame plate 111 to the second frame plate 112 at a distance, and extend from one side of the first frame plate 111 to one side of the second frame plate 112. Furthermore, the partition 12 divides the interior of the first water tank 41 into an outer water collection area 401 and an inner water collection area 402. The outer water collection area 401 is connected to the first nozzle 51. The inner water collection area 402 is connected to one end of the plurality of water-cooling pipes 20. In addition, the frame base 10 also includes a locking fastener 13. One end of the first frame plate 111 is locked to the second water tank 42 by the locking fastener 13.
[0052] It should be noted that the partition 12 is designed to allow the water in the first water tank 41 to flow evenly into each water cooling pipe 20, thereby improving the overall heat dissipation efficiency.
[0053] In this embodiment, the nozzle 50 includes a first nozzle 51 and a second nozzle 52. The first nozzle 51 is disposed on the first protruding section 411. The second nozzle 52 is disposed on the second protruding section 421. Furthermore, the first nozzle 51 is inserted into the first protruding section in a direction parallel to the plurality of water-cooling pipes 20 and is located on one side of the second frame plate 112. The second nozzles are respectively inserted into the second protruding section in a direction parallel to the plurality of water-cooling pipes 20 and are located on one side of the second frame plate 112.
[0054] Please refer to another source. Figure 4 This is a schematic diagram illustrating the application of the water-cooled radiator in this case. The water-cooled radiator 1 of this case also includes multiple connecting pipes 60 and a water pump 70. The water pump 70 has a first pump pipe 71 and a second pump pipe 72. The multiple connecting pipes 60 include a first connecting pipe 61 and a second connecting pipe 62. Furthermore, the first pump pipe 71 is connected to the first nozzle 51 via the first connecting pipe 61, thus connecting to the first water tank 41. Additionally, the second pump pipe 72 is connected to the second nozzle 52 via the second connecting pipe 62, thus connecting to the second water tank 42.
[0055] Water in the water-cooled radiator 1 enters the water tank 40 through the multiple connecting pipes 60 and the nozzles 50, and then flows evenly into each water-cooling pipe 20. It should be noted that the nozzles 50 are respectively arranged at one end of the water tank 40 with their openings facing each other. The nozzles 50 are located on the protruding section of the water tank 40 that protrudes from the frame 10, thereby shortening the distance between the multiple connecting pipes 60 and the water pump 70 and avoiding bending. Furthermore, the water flow in the first water tank 41 can flow evenly into each water-cooling pipe 20 through the partition 12, thereby improving the overall heat dissipation efficiency. Accordingly, the water-cooled radiator 1 can dissipate heat from the heat-generating components. The water in the water-cooled radiator 1 can increase its flow rate under the action of the water pump 70, thereby improving the overall heat dissipation efficiency.
[0056] Please refer to another source. Figure 5 This is another example of the nozzle configuration in this case. The difference between this embodiment and the previous embodiment lies in the nozzle configuration. In this embodiment, the nozzle 50 includes a first nozzle 51 and a second nozzle 52, and both the first nozzle 51 and the second nozzle 52 are L-shaped nozzles. It is worth noting that the first water tank 41 and the second water tank 42 do not have protruding sections when the first nozzle 51 and the second nozzle 52 are installed. The first nozzle 51 and the second nozzle 52 are directly inserted into the sides of the first water tank 41 and the second water tank 42 with their openings facing each other.
[0057] The above description is merely a preferred embodiment of this case and is not intended to define the scope of the patent in this case. Other equivalent variations that utilize the spirit of the patent in this case should all fall within the scope of the patent in this case.
Claims
1. A water-cooled radiator, characterized in that, include: A frame base includes multiple frame plates arranged opposite to each other, the multiple frame plates including a first frame plate and a second frame plate; Multiple water-cooling pipes are arranged in parallel and spaced apart in the frame. Multiple heat dissipation fins are spaced apart between the multiple water cooling pipes; A pair of water tanks, including a first water tank and a second water tank disposed on opposite sides of the frame, wherein the first water tank and the second water tank are respectively connected to both ends of the plurality of water-cooling pipes; The partition is spaced on one side of the plurality of water-cooling pipes and is arranged inside the first water tank perpendicular to the extending direction of the plurality of water-cooling pipes; as well as A pair of nozzles are respectively installed at one end of the water tank with the nozzles facing each other.
2. The water-cooled radiator as described in claim 1, characterized in that, The first water tank has a first protruding section that protrudes from the second frame plate, and the second water tank has a second protruding section that protrudes from the second frame plate.
3. The water-cooled radiator as described in claim 2, characterized in that, The nozzle includes a first nozzle and a second nozzle, the first nozzle being disposed on the first protruding section and the second nozzle being disposed on the second protruding section.
4. The water-cooled radiator as described in claim 3, characterized in that, The first nozzle is inserted into the first protruding section in a direction parallel to the plurality of water-cooling pipes and is located on one side of the second frame plate. The second nozzle is inserted into the second protruding section in a direction parallel to the plurality of water-cooling pipes and is located on one side of the second frame plate.
5. The water-cooled radiator as described in claim 3, characterized in that, The first nozzle and the second nozzle are both type I nozzles.
6. The water-cooled radiator as described in claim 3, characterized in that, The partition divides the interior of the first water tank into an outer water collection area and an inner water collection area. The outer water collection area is connected to the first nozzle, and the inner water collection area is connected to one end of the plurality of water-cooling pipes.
7. The water-cooled radiator as described in claim 1, characterized in that, The partition is an L-shaped plate.
8. The water-cooled radiator as described in claim 1, characterized in that, The frame base also includes a locking device, and one end of the first frame plate is locked to the second water tank by the locking device.
9. The water-cooled radiator as described in claim 3, characterized in that, It also includes multiple connecting pipes and a water pump. The water pump has a first pump pipe and a second pump pipe. The multiple connecting pipes include a first connecting pipe and a second connecting pipe. The first pump pipe is connected to the first nozzle through the first connecting pipe and is connected to the first water tank. The second pump pipe is connected to the second nozzle through the second connecting pipe and is connected to the second water tank.
10. The water-cooled radiator as described in claim 1, characterized in that, The nozzle pair includes a first nozzle and a second nozzle, and the first nozzle and the second nozzle are both L-shaped nozzles.