Integrated water-cooling heat dissipation module
Patent Information
- Application Number
- CN202522294209.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-30
- Publication Date
- 2026-09-29
- Estimated Expiration
- 2035-10-30
AI Technical Summary
[0003]现有传统水冷散热模组在长期使用中易受灰尘堆积影响,空气中的灰尘附着在散热表面会大幅降低热传导效率,而常规散热设计缺乏有效的除尘机制,需要频繁人工清理才能维持散热效果,不仅增加了维护成本,还可能因清理过程中的操作失误对模组造成损坏,进一步限制了其在长期、稳定运行场景下的实用性
[0018]本实用新型中,所述的一种一体式水冷散热模组,通过设置的散热模组,散热模组采用金属冷却槽作为主散热构造,其呈扁平设计且上下表面均设置有若干均布的长凸条能够充分增大循环流动在冷却槽内部冷却液的散热面积,提高散热速率,同时在金属冷却槽的侧边设置有离子风扇,离子风扇启动后能够使侧边的若干矩形出风管向金属冷却槽表面进行吹风作用,增大了金属冷却槽的散热速率,进而使冷却液的散热速率提升,提高了散热速率,另外采用的离子风扇在吹风时,能够使流动的空气中带上离子,具有静电除尘作用,防止散热模组上积灰,使散热模组能够长期保持高效散热效率,加强了实用性。
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Figure CN224816717U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of water cooling technology, and in particular to an integrated water cooling module. Background Technology
[0002] A water-cooled heat dissipation module is a high-efficiency heat dissipation device that transfers heat through liquid circulation. It is mainly used to cool down high-heat-generating equipment (such as computer CPUs, graphics cards, industrial servers, etc.).
[0003] Existing traditional water-cooled heat dissipation modules are susceptible to dust accumulation during long-term use. Dust in the air adhering to the heat dissipation surface will significantly reduce the heat transfer efficiency. Conventional heat dissipation designs lack effective dust removal mechanisms and require frequent manual cleaning to maintain the heat dissipation effect. This not only increases maintenance costs but may also damage the module due to operational errors during the cleaning process, further limiting its practicality in long-term, stable operation scenarios.
[0004] To address the above issues, we propose an integrated water-cooling heat dissipation module. Utility Model Content
[0005] The purpose of this utility model is to address the shortcomings of existing technologies by proposing an integrated water-cooled heat dissipation module.
[0006] To achieve the above objectives, the present invention adopts the following technical solution:
[0007] An integrated water-cooled heat dissipation module includes a structural mounting plate, a rubber hose, a liquid cooling component, and a heat dissipation module. The heat dissipation module includes a metal cooling tank with several long protrusions evenly distributed on its upper and lower surfaces. A circulating water pump and an ion fan are fixedly mounted on the upper side of the structural mounting plate. An upper pipe and a lower pipe are fixedly connected to the air outlet of the ion fan. Horizontal pipes are fixedly connected to the sides of both the upper and lower pipes. Several rectangular air outlet pipes are evenly distributed and fixedly mounted on the sides of the horizontal pipes.
[0008] Furthermore, the two horizontal pipes are located on the right side of the upper and lower surfaces of the metal cooling tank, respectively.
[0009] Furthermore, a number of connecting seats are fixedly connected between the metal cooling tank and the upper side of the structural mounting plate.
[0010] Furthermore, a dustproof mesh cover is fixedly installed at the air inlet of the ion fan.
[0011] Furthermore, the liquid cooling assembly includes a liquid cooling cavity, the bottom of which is evenly provided with several protrusions, and threaded pipes are fixedly connected to both ends of the liquid cooling cavity.
[0012] Furthermore, the liquid cooling cavity is made of thin-walled copper.
[0013] Furthermore, a temperature sensor is fixedly installed on the upper side of the liquid cooling cavity, and the monitoring end of the temperature sensor extends into the interior of the liquid cooling cavity.
[0014] Furthermore, a controller and a power interface are fixedly mounted on the upper side of the structural mounting plate.
[0015] Furthermore, metal tubes are inserted into the lower ends of the two rubber hoses, and an internally threaded cylinder is rotatably installed at the end of the metal tube. The internally threaded cylinder is screwed into the threaded connector. A metal lashing ring is tied to the outside of the connection between the rubber hose and the metal tube. The left rubber hose is connected to the left end of the metal cooling tank.
[0016] Furthermore, the circulating water pump is connected to the upper end of the rubber hose on the right side, and the output end of the circulating water pump is connected to the right side of the metal cooling tank.
[0017] Compared with related technologies, the integrated water-cooled heat dissipation module proposed in this utility model has the following beneficial effects:
[0018] In this utility model, an integrated water-cooled heat dissipation module is described. The heat dissipation module uses a metal cooling tank as its main heat dissipation structure. It has a flat design with several evenly distributed long protrusions on both the upper and lower surfaces, which significantly increases the heat dissipation area of the coolant circulating inside the cooling tank, improving the heat dissipation rate. Simultaneously, an ion fan is installed on the side of the metal cooling tank. When the ion fan is activated, several rectangular air outlets on the side blow air onto the surface of the metal cooling tank, increasing the heat dissipation rate of the metal cooling tank and thus improving the heat dissipation rate of the coolant. Furthermore, the ion fan carries ions into the flowing air during airflow, providing electrostatic dust removal and preventing dust accumulation on the heat dissipation module. This allows the heat dissipation module to maintain high heat dissipation efficiency for a long time, enhancing its practicality. Attached Figure Description
[0019] Figure 1 This is a three-dimensional structural diagram of an integrated water-cooling heat dissipation module proposed in this utility model. Figure 1 ;
[0020] Figure 2 This is a three-dimensional structural diagram of an integrated water-cooled heat dissipation module proposed in this utility model. Figure 2 ;
[0021] Figure 3 This is a partial three-dimensional structural diagram of an integrated water-cooling heat dissipation module proposed in this utility model. Figure 1 ;
[0022] Figure 4This is a partial three-dimensional structural diagram of an integrated water-cooling heat dissipation module proposed in this utility model. Figure 2 ;
[0023] Figure 5 This is a partial three-dimensional structural diagram of an integrated water-cooling heat dissipation module proposed in this utility model. Figure 3 ;
[0024] Figure 6 This is a partial three-dimensional structural diagram of an integrated water-cooling heat dissipation module proposed in this utility model. Figure 4 .
[0025] In the diagram: 1. Structural mounting plate; 2. Controller; 3. Power interface; 4. Rubber hose; 41. Metal tube; 42. Internally threaded cylinder; 43. Metal ferrule; 5. Liquid cooling assembly; 51. Liquid cooling cavity; 52. Protrusion; 53. Threaded connector; 54. Temperature sensor; 6. Heat dissipation module; 61. Metal cooling tank; 62. Long protrusion; 63. Connecting seat; 64. Circulating water pump; 65. Ion fan; 66. Dustproof mesh cover; 67. Top pipe; 68. Bottom pipe; 69. Horizontal pipe; 610. Rectangular exhaust duct. Detailed Implementation
[0026] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0027] Reference Figures 1-6 An integrated water-cooled heat dissipation module includes a structural mounting plate 1, a rubber hose 4, a liquid cooling component 5, and a heat dissipation module 6. The heat dissipation module 6 includes a metal cooling tank 61, with several long protrusions 62 evenly distributed on the upper and lower surfaces of the metal cooling tank 61. A circulating water pump 64 and an ion fan 65 are fixedly installed on the upper side of the structural mounting plate 1. An upper pipe 67 and a lower pipe 68 are fixedly connected to the air outlet of the ion fan 65. Horizontal pipes 69 are fixedly connected to the sides of both the upper pipe 67 and the lower pipe 68. Several rectangular air outlet pipes 610 are evenly distributed and fixedly installed on the sides of the horizontal pipes 69.
[0028] With the above configuration, the structural mounting plate 1 provides a stable mounting base for the entire module. The long protrusion 62 of the metal cooling tank 61 can increase the heat dissipation area of the coolant. The circulating water pump 64 can drive the coolant to circulate. The ion wind generated by the ion fan 65 can be blown to the metal cooling tank 61 through the upper pipe 67, the lower pipe 68 and the horizontal pipe 69, and then blown to the metal cooling tank 61 by the rectangular air outlet pipe 610, thus achieving auxiliary heat dissipation and electrostatic dust removal.
[0029] In this configuration, two horizontal pipes 69 are located on the right side of the upper and lower surfaces of the metal cooling tank 61, and several connecting seats 63 are fixedly connected between the metal cooling tank 61 and the upper side of the structural mounting plate 1. A dustproof mesh cover 66 is fixedly installed at the air inlet of the ion fan 65.
[0030] With the above-mentioned arrangement, the positions of the two horizontal pipes 69 can ensure that the rectangular air outlet pipe 610 blows air all over the upper and lower surfaces of the metal cooling tank 61. The connecting seat 63 can fix the relative position of the metal cooling tank 61 and the structural mounting plate seat 1. The dustproof mesh cover 66 can prevent external dust from entering the ion fan 65 and avoid the fan from being blocked or damaged.
[0031] In this method, metal tubes 41 are inserted into the lower ends of the two rubber hoses 4, and internal threaded cylinders 42 are rotatably installed at the ends of the metal tubes 41. The internal threaded cylinders 42 are screwed into the threaded connectors 53. A metal ties 43 is tied to the outside of the connection between the rubber hoses 4 and the metal tubes 41. The left rubber hose 4 is connected to the left end of the metal cooling tank 61.
[0032] With the above configuration, the metal tube 41 can be inserted between the rubber hose 4 and the threaded connector 53. The screw connection between the internal threaded cylinder 42 and the threaded connector 53 can achieve a sealed connection between the rubber hose 4 and the liquid cooling component 5. The metal ferrule 43 can reinforce the connection between the rubber hose 4 and the metal tube 41 to prevent coolant leakage. The left rubber hose 4 can connect the metal cooling tank 61 and the liquid cooling component 5 to form a coolant circulation path.
[0033] In this configuration, the circulating water pump 64 is connected to the upper end of the right rubber hose 4, and the output end of the circulating water pump 64 is connected to the right side of the metal cooling tank 61.
[0034] With the above configuration, the circulating water pump 64 can pump the heat-absorbing coolant delivered from the liquid cooling component 5 through the rubber hose 4 into the metal cooling tank 61 for heat dissipation. The cooled coolant then flows back to the liquid cooling component 5, completing the entire coolant circulation and heat dissipation process.
[0035] In this method, the liquid cooling assembly 5 includes a liquid cooling cavity 51, with several protrusions 52 evenly distributed at the bottom of the liquid cooling cavity 51. Threaded pipes 53 are fixedly connected to both ends of the liquid cooling cavity 51. The liquid cooling cavity 51 is made of thin-walled copper. A temperature sensor 54 is fixedly installed on the upper side of the liquid cooling cavity 51, and the monitoring end of the temperature sensor 54 extends into the interior of the liquid cooling cavity 51.
[0036] With the above-mentioned configuration, the protrusion 52 at the bottom of the liquid cooling cavity 51 can increase the contact area with the heat-generating device and improve the heat absorption efficiency; the thin-walled copper material has excellent thermal conductivity and can quickly transfer the heat of the heat-generating device to the coolant; the temperature sensor 54 can monitor the temperature of the coolant in the liquid cooling cavity 51 in real time, which is convenient for adjusting the heat dissipation intensity according to the temperature.
[0037] It should be noted that the entire liquid cooling assembly 5 is bonded to the important electronic components such as the processing chip that need to dissipate heat and cool down by means of cooling adhesive, so as to achieve the function of water cooling. This fixing method is a conventional technical means, which will not be described in detail here. The liquid cooling assembly 5 and the rubber hose 4 are installed by screw connection. Thus, the entire cooling device can be easily replaced with liquid cooling chambers 51 of different specifications according to needs, which improves the applicability.
[0038] In this method, a controller 2 and a power interface 3 are fixedly installed on the upper side of the structural mounting plate 1.
[0039] With the above settings, the controller 2 can receive monitoring data from the temperature sensor 54 and control the operation of the circulating water pump 64 and the ion fan 65 according to the data. The power interface 3 can be connected to an external power source to provide power support for electrical components such as the controller 2, the circulating water pump 64, and the ion fan 65.
[0040] The working principle of the integrated water-cooled heat dissipation module provided by this utility model is as follows:
[0041] Driven by the circulating water pump 64, the coolant forms a circulation loop through the right rubber hose 4, the metal cooling tank 61, and the left rubber hose 4. The liquid cooling cavity 51 of the liquid cooling component 5 (thin-walled copper metal with a protrusion 52 at the bottom) is in contact with the heat-generating equipment, absorbing heat and raising the temperature of the coolant. The heated coolant flows into the metal cooling tank 61, where the long protrusions 62 on its upper and lower surfaces increase the heat dissipation area. At the same time, the ion fan 65 starts, and the generated ion wind is blown from the rectangular air outlet 610 to the metal cooling tank 61 through the upper pipe 67, the lower pipe 68, and the horizontal pipe 69, assisting in cooling the coolant and completing the heat dissipation cycle.
[0042] Temperature sensor 54 monitors the coolant temperature in the liquid cooling chamber 51 in real time. After the data is transmitted to controller 2, controller 2 can adjust the speed of circulating water pump 64 and the wind speed of ion fan 65 to achieve intelligent heat dissipation. The ion wind blown out by ion fan 65 also has an electrostatic dust removal function, which can prevent dust from accumulating on the surface of metal cooling tank 61 and ensure long-term efficient heat dissipation of heat dissipation module 6. Power interface 3 supplies power to the entire module. Dustproof mesh cover 66 prevents dust from entering ion fan 65. Rubber hose 4 is screwed to liquid cooling component 5 through metal insert 41 and internal threaded cylinder 42, and the connection is reinforced by metal ferrule 43 to ensure the sealing and stability of coolant circulation.
[0043] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the content of this utility model specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.
Claims
1. An integrated water-cooled heat dissipation module, characterized in that, It includes a structural mounting plate base (1), rubber hoses (4), liquid cooling components (5) and heat dissipation modules (6); The heat dissipation module (6) includes a metal cooling tank (61). Several long protrusions (62) are evenly distributed on the upper and lower surfaces of the metal cooling tank (61). A circulating water pump (64) and an ion fan (65) are fixedly installed on the upper side of the structural mounting plate (1). An upper pipe (67) and a lower pipe (68) are fixedly connected to the air outlet of the ion fan (65). A horizontal pipe (69) is fixedly connected to the sides of both the upper pipe (67) and the lower pipe (68). Several rectangular air outlet pipes (610) are evenly distributed and fixedly installed on the sides of the horizontal pipe (69).
2. The integrated water-cooled heat dissipation module according to claim 1, characterized in that, The two horizontal tubes (69) are located on the right side of the upper and lower surfaces of the metal cooling tank (61), respectively.
3. The integrated water-cooled heat dissipation module according to claim 1, characterized in that, A number of connecting seats (63) are fixedly connected between the metal cooling tank (61) and the upper side of the structural mounting plate (1).
4. The integrated water-cooled heat dissipation module according to claim 1, characterized in that, A dustproof mesh cover (66) is fixedly installed at the air inlet of the ion fan (65).
5. The integrated water-cooled heat dissipation module according to claim 1, characterized in that, The liquid cooling assembly (5) includes a liquid cooling cavity (51), and a number of protrusions (52) are evenly distributed at the bottom of the liquid cooling cavity (51). Threaded pipes (53) are fixedly connected to both ends of the liquid cooling cavity (51).
6. The integrated water-cooled heat dissipation module according to claim 5, characterized in that, The liquid cooling cavity (51) is made of thin-walled copper.
7. The integrated water-cooled heat dissipation module according to claim 5, characterized in that, A temperature sensor (54) is fixedly installed on the upper side of the liquid cooling cavity (51), and the monitoring end of the temperature sensor (54) extends into the liquid cooling cavity (51).
8. The integrated water-cooled heat dissipation module according to claim 1, characterized in that, The controller (2) and power interface (3) are fixedly installed on the upper side of the mounting plate (1).
9. The integrated water-cooled heat dissipation module according to claim 1, characterized in that, Metal tubes (41) are inserted into the lower ends of the two rubber hoses (4). An internal threaded cylinder (42) is rotatably installed at the end of the metal tube (41). The internal threaded cylinder (42) is screwed into the threaded connector (53). A metal ties (43) is tied to the outside of the connection between the rubber hose (4) and the metal tube (41). The left side of the rubber hose (4) is connected to the left end of the metal cooling tank (61).
10. The integrated water-cooled heat dissipation module according to claim 1, characterized in that, The circulating water pump (64) is connected to the upper end of the rubber hose (4) on the right side, and the output end of the circulating water pump (64) is connected to the right side of the metal cooling tank (61).