Efficient crossed aluminum plate radiator
By using cross-plate design and reinforced components, the problems of insufficient heat dissipation area and loose structure of existing aluminum plate radiators are solved, achieving efficient heat dissipation and structural stability, making it suitable for aluminum plate radiators operating under high loads.
Patent Information
- Application Number
- CN202520029763.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-06
- Publication Date
- 2025-12-23
- Estimated Expiration
- 2035-01-06
AI Technical Summary
Existing aluminum plate radiators have limited heat dissipation area and loose structure, lacking stability, which affects heat dissipation efficiency and structural stability.
The cross-plate design increases the heat dissipation area, and the structural stability is ensured by reinforcing and positioning components. Combined with a protective mesh, the heat dissipation efficiency and stability are improved.
Increasing the heat dissipation area per unit volume improves heat dissipation efficiency, enhances structural stability, ensures stable operation of equipment under high loads, and facilitates disassembly and maintenance.
Smart Images

Figure CN223714454U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of radiator technology, and specifically relates to a high-efficiency cross-plate radiator. Background Technology
[0002] An aluminum plate radiator is a heat dissipation device made of aluminum plate material. Its main function is to conduct heat from the heat source and dissipate it into the surrounding air through thermally conductive materials to achieve the purpose of heat dissipation and cooling.
[0003] For example, Chinese patent CN214666280U discloses an aluminum plate finned radiator, which includes a heat dissipation base plate for mounting a heat source. The heat dissipation base plate is provided with a plurality of first heat dissipation fins, and a plurality of second heat dissipation fins are symmetrically arranged on both sides of the first heat dissipation fins. The second heat dissipation fins are perpendicular to the first heat dissipation fins. An exhaust fan is provided above the first heat dissipation fins. The exhaust fan is detachably connected to the heat dissipation base plate through four mounting posts provided at the four apex corners of its lower surface.
[0004] While the aforementioned patents can solve the problem of poor heat dissipation in existing finned radiators, existing radiators still have some shortcomings that need improvement. Traditional heat dissipation fin designs mostly adopt a parallel arrangement, which limits sufficient contact with air, resulting in a relatively limited heat dissipation area and thus affecting the improvement of heat dissipation efficiency. In addition, heat dissipation fins are usually installed using a plug-in method. Although this design facilitates the replacement and maintenance of fins, it sacrifices the stability of the installation to a certain extent, making the overall structure appear relatively loose and lacking sufficient compactness and stability. Utility Model Content
[0005] In view of the problems mentioned in the background art, the purpose of this utility model is to provide a high-efficiency cross-type aluminum plate heat sink to solve the problems mentioned in the background art.
[0006] The above-mentioned technical objective of this utility model is achieved through the following technical solution:
[0007] A high-efficiency cross-plate radiator includes a mounting plate, a cooling fan fixedly connected to one side of the mounting plate, a cross plate on the mounting plate located on one side of the cooling fan, guide vanes fixedly connected to both sides of the cross plate, a reinforcing component in the middle of the cross plate, connecting slots on both sides of the mounting plate near the cross plate, connecting blocks inserted into the connecting slots, one end of the connecting block being fixedly connected to one end of the cross plate, a positioning component between the connecting block and the connecting slot, and an adjustment component on the mounting plate near the positioning component.
[0008] As a preferred technical solution, protective nets are fixedly connected to both sides of the cooling fan, and one side of the protective net is in contact with the cross plate.
[0009] As a preferred technical solution, the reinforcement component includes a mounting column, which is fixedly connected between the cross plates. A ring is sleeved on the outer side of the mounting column and is fixedly connected to the cross plate. A mounting hole is formed between the ring and the cross plate, and a triangular block is fixedly connected inside the mounting hole.
[0010] As a preferred technical solution, the positioning component includes a slider, which is slidably connected to both sides of the inner side of the mounting plate. One end of the slider is fixedly connected to a positioning rod. The inside of the connecting block is provided with a positioning hole, and one side of the positioning rod slides into the connecting groove and is movably connected to the positioning hole.
[0011] As a preferred technical solution, the mounting plate has a groove inside, the slider is slidably connected inside the groove, and a partition is fixedly connected inside the groove.
[0012] As a preferred technical solution, the debugging assembly includes a debugging rod, which is rotatably connected to one side of the slide groove. A protrusion is fixedly connected to the outer surface of one side of the debugging rod. A first toothed cone is fixedly connected to one side of the debugging rod. A second toothed cone is meshed with one side of the first toothed cone. A transmission rod is fixedly connected to one side of the second toothed cone. Lead screws are fixedly connected to both sides of the transmission rod. The lead screws are rotatably connected to the inside of the slide groove. A positioning rod is threaded to the outer surface of the lead screws.
[0013] As a preferred technical solution, the mounting plate is fixedly connected to two fixing blocks on both sides of the end away from the cross plate, and the fixing blocks are provided with fixing screw holes inside.
[0014] In summary, the present invention has the following main advantages:
[0015] First, by setting up a cross plate and installing multiple guide vanes on the cross plate, more heat dissipation surface is formed within a unit volume. This design greatly increases the heat dissipation area, allowing heat to be transferred to the surrounding air more quickly and improving heat dissipation efficiency. Installing reinforcing components on the cross plate can improve the structural strength of the cross plate, prevent loosening, and enhance the structural stability of the radiator, thus facilitating heat dissipation.
[0016] Secondly, by opening a connecting groove on the mounting plate and fixing a connecting block on the cross plate, the connecting block is inserted into the connecting groove. The transmission rod drives the lead screw to rotate, thereby moving the positioning rod on the lead screw and inserting it into the positioning hole. This fixes the connecting block to the connecting groove, thus fixing the cross plate on the mounting plate. This method not only ensures that the heat dissipation cross plate is installed firmly and stably, but also facilitates subsequent disassembly and maintenance, resulting in better performance. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the structure of this utility model;
[0018] Figure 2 This is a schematic diagram of the internal structure of one side of the mounting plate of this utility model;
[0019] Figure 3 This is a schematic diagram of the back structure of the mounting plate of this utility model;
[0020] Figure 4 This is a utility model Figure 2 A magnified structural diagram at point A;
[0021] Figure 5 This is a utility model Figure 2 A magnified structural diagram at point B.
[0022] Reference numerals: 1. Mounting plate; 2. Cooling fan; 3. Protective net; 4. Cross plate; 5. Guide plate; 6. Reinforcing component; 61. Mounting post; 62. Ring; 63. Mounting hole; 64. Triangular block; 7. Connecting groove; 8. Connecting block; 9. Positioning component; 91. Positioning rod; 92. Positioning hole; 93. Slider; 10. Adjustment component; 101. Adjustment rod; 1011. Protrusion; 102. First toothed cone; 103. Second toothed cone; 104. Transmission rod; 105. Lead screw; 11. Slide groove; 12. Partition plate; 13. Fixing block; 14. Fixing screw hole. Detailed Implementation
[0023] Example
[0024] refer to Figures 1 to 5This embodiment describes a high-efficiency cross-plate radiator, comprising a mounting plate 1, a cooling fan 2 fixedly connected to one side of the mounting plate 1, a cross plate 4 located on one side of the cooling fan 2 on the mounting plate 1, guide vanes 5 fixedly connected to both sides of the cross plate 4, a reinforcing component 6 located in the middle of the cross plate 4, connecting grooves 7 on both sides of the mounting plate 1 near the cross plate 4, connecting blocks 8 inserted into the connecting grooves 7, one end of the connecting blocks 8 fixedly connected to one end of the cross plate 4, a positioning component 9 located between the connecting blocks 8 and the connecting grooves 7, and an adjustment component 10 located on the mounting plate 1 near the positioning component 9. Through these improvements, heat is effectively transferred to the surrounding air, accelerating heat dissipation, improving the overall efficiency of the heat dissipation system, ensuring the stability and reliability of the equipment under long-term high-load operation, enhancing the structural stability of the radiator, reducing the risk of fin loosening or falling off due to vibration, impact, or long-term use, and facilitating disassembly and maintenance.
[0025] refer to Figure 2 The cooling fan 2 is fixedly connected to both sides with a protective net 3, and one side of the protective net 3 is in contact with the cross plate 4; by setting the protective net 3, debris is prevented from contacting the blades of the cooling fan 2.
[0026] refer to Figure 4 The reinforcing component 6 includes a mounting post 61, which is fixedly connected between the cross plates 4. A ring 62 is sleeved on the outer side of the mounting post 61 and fixedly connected to the cross plate 4. A mounting hole 63 is formed between the ring 62 and the cross plate 4, and a triangular block 64 is fixedly connected inside the mounting hole 63. By installing the ring 62 on the cross plate 4 and installing the triangular block 64 inside the mounting hole 63 of the ring 62, the structural strength of the cross plate 4 can be improved and it is not easy to deform.
[0027] refer to Figure 2-3 The positioning component 9 includes a slider 93, which is slidably connected to both sides of the interior of the mounting plate 1. One end of the slider 93 is fixedly connected to a positioning rod 91. The interior of the connecting block 8 has a positioning hole 92. One side of the positioning rod 91 slides into the connecting groove 7 and is movably connected to the positioning hole 92. By setting the positioning component 9, the slider 93 can drive the positioning rod 91 to move, so that the positioning rod 91 is inserted into the positioning hole 92, thereby fixing the connecting block 8 and the connecting groove 7, thus fixing the cross plate 4 on the mounting plate 1. After the positioning rod 91 leaves the positioning hole 92, the connecting block 8 separates from the connecting groove 7, and the cross plate 4 can be removed.
[0028] refer to Figure 2The mounting plate 1 has a sliding groove 11 inside, and the slider 93 is slidably connected inside the sliding groove 11. A partition 12 is fixedly connected inside the sliding groove 11. By setting the sliding groove 11, the slider 93 can slide inside the mounting plate 1, so that the slider 93 drives the positioning rod 91 to move horizontally.
[0029] refer to Figure 5 The debugging assembly 10 includes a debugging rod 101, which is rotatably connected to one side of the inner side of the slide groove 11. A protrusion 1011 is fixedly connected to the outer surface of one side of the debugging rod 101. A first toothed cone 102 is fixedly connected to one side of the debugging rod 101. A second toothed cone 103 is meshed with one side of the first toothed cone 102. A transmission rod 104 is fixedly connected to one side of the second toothed cone 103. Lead screws 105 are fixedly connected to both sides of the transmission rod 104. The lead screws 105 are rotatably connected to the inside of the slide groove 11. The positioning rod 91 is threadedly connected to the outer surface of the lead screws 105. By setting the debugging assembly 10, rotating the debugging rod 101 drives the first toothed cone 102 to rotate, which in turn drives the second toothed cone 103 to rotate. This causes the second toothed cone 103 to drive the transmission rod 104 to rotate, and the transmission rod 104 drives the lead screws 105 on both sides to rotate, thus providing power for the movement of the positioning rod 91.
[0030] refer to Figure 3 The mounting plate 1 is fixedly connected to two sides of the end away from the cross plate 4. The fixing block 13 has a fixing screw hole 14 inside. The fixing block 13 and the fixing screw hole 14 are used to install and fix the heat sink.
[0031] Operating principle and advantages: When installing the cross plate 4, align the connecting block 8 of the cross plate 4 with the connecting groove 7 of the mounting plate 1. Then, rotate the adjusting rod 101 to drive the first toothed cone 102 to rotate. The first toothed cone 102 drives the second toothed cone 103 to rotate, thereby causing the second toothed cone 103 to drive the transmission rod 104 to rotate. The transmission rod 104 drives the lead screws 105 on both sides to rotate, causing the positioning rod 91 on the surface of the lead screw 105 to move and insert into the positioning hole 92. At this time, the connecting block 8 is fixed with the connecting groove 7, completing the installation of the cross plate 4. A ring 62 is installed in the middle of the cross plate 4. The ring 62 itself has a certain rigidity and constraint function. When it is installed in the middle of the cross plate 4, it can restrict the cross plate 4. The deformation range of the fork plate 4 under stress is measured. At the same time, the combination of the ring 62 and the triangular block 64 further enhances this constraint effect. Multiple guide vanes 5 are installed on the cross plate 4 to form more heat dissipation surfaces per unit volume. This design greatly increases the heat dissipation area, allowing heat to be transferred to the surrounding air more quickly and improving heat dissipation efficiency. The installation of reinforcing components 6 on the cross plate 4 can improve the structural strength of the cross plate 4, preventing loosening and enhancing the structural stability of the radiator, thus facilitating heat dissipation. When it is necessary to disassemble and maintain the cross plate 4, the positioning rod 91 can be separated from the positioning hole 92 by rotating the adjustment rod 101, which provides convenience for disassembly and maintenance work.
Claims
1. A high-efficiency cross-type aluminum plate heat sink, comprising a mounting plate (1), characterized in that: A cooling fan (2) is fixedly connected to one side of the mounting plate (1). A cross plate (4) is provided on the mounting plate (1) on one side of the cooling fan (2). A guide plate (5) is fixedly connected to both sides of the cross plate (4). A reinforcing component (6) is provided in the middle of the cross plate (4). A connecting groove (7) is provided on both sides of the end of the mounting plate (1) near the cross plate (4). A connecting block (8) is inserted into the inside of the connecting groove (7). One end of the connecting block (8) is fixedly connected to one end of the cross plate (4). A positioning component (9) is provided between the connecting block (8) and the connecting groove (7). An adjustment component (10) is provided on the side of the mounting plate (1) near the positioning component (9).
2. The high-efficiency cross-plate heat sink according to claim 1, characterized in that: Both sides of the cooling fan (2) are fixedly connected with protective nets (3), and one side of one of the protective nets (3) is in contact with the cross plate (4).
3. The high-efficiency cross-plate heat sink according to claim 1, characterized in that: The reinforcement component (6) includes a mounting post (61) which is fixedly connected between the cross plates (4). A ring (62) is sleeved on the outside of the mounting post (61) and the ring (62) is fixedly connected to the cross plate (4).
4. The high-efficiency cross-plate heat sink according to claim 3, characterized in that: A mounting hole (63) is formed between the ring (62) and the cross plate (4), and a triangular block (64) is fixedly connected inside the mounting hole (63).
5. A high-efficiency cross-plate heat sink according to claim 1, characterized in that: The positioning component (9) includes a slider (93), which is slidably connected to both sides of the inside of the mounting plate (1). One end of the slider (93) is fixedly connected to a positioning rod (91). The inside of the connecting block (8) is provided with a positioning hole (92). One side of the positioning rod (91) slides into the connecting groove (7) and is movably connected to the positioning hole (92).
6. A high-efficiency cross-plate heat sink according to claim 5, characterized in that: The mounting plate (1) has a groove (11) inside, the slider (93) is slidably connected inside the groove (11), and a partition (12) is fixedly connected inside the groove (11).
7. A high-efficiency cross-plate heat sink according to claim 6, characterized in that: The debugging assembly (10) includes a debugging rod (101), which is rotatably connected to one side of the slide groove (11). A protrusion (1011) is fixedly connected to one side of the outer surface of the debugging rod (101). A first toothed cone (102) is fixedly connected to one side of the debugging rod (101). A second toothed cone (103) is meshed with one side of the first toothed cone (102). A transmission rod (104) is fixedly connected to one side of the second toothed cone (103). A lead screw (105) is fixedly connected to both sides of the transmission rod (104). The lead screw (105) is rotatably connected to the inside of the slide groove (11). The positioning rod (91) is threadedly connected to the outer surface of the lead screw (105).
8. The high-efficiency cross-plate heat sink according to claim 1, characterized in that: The mounting plate (1) is fixedly connected to two fixing blocks (13) on both sides of the end away from the cross plate (4), and the fixing blocks (13) are provided with fixing screw holes (14).
Citation Information
Patent Citations
Aluminum plate fin type radiator
CN214666280U