Self-cooled modular radiator
By using a modular design and threaded connection structure, the stability problem of self-cooling radiators in combined use is solved, achieving efficient heat dissipation for long and curved electrical components, and improving the adaptability and service life of the radiator.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-10
- Publication Date
- 2026-04-03
AI Technical Summary
Existing self-cooling radiators lack a stable connection structure when used in combination, making them difficult to combine and expand flexibly and adapt to different heat dissipation needs. In particular, they are not effective at dissipating heat from long heating elements and curved electrical components.
The design incorporates heat-conducting blocks, heat dissipation fins, connecting blocks, and plug rods. Threaded connections, anti-slip pads, and wear-resistant pads enhance connection stability, enabling modular assembly and angle adjustment of the radiator to meet the heat dissipation needs of different electrical components.
It enables flexible combination and stable connection of heat sinks, improves the heat dissipation effect on long and curved electrical components, and enhances service life and heat dissipation efficiency.
Smart Images

Figure CN224083916U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of radiator technology, specifically to a self-cooling modular radiator. Background Technology
[0002] A self-cooled modular radiator is a device that dissipates heat through natural or forced convection and is typically used in electronic equipment, industrial equipment, or other systems that require heat dissipation.
[0003] Self-cooling radiators are typically used as independent units. When dissipating heat from long heat-generating components, a single radiator cannot cool the entire long heat-generating component. Multiple self-cooling radiators need to be used in combination. However, there is no connecting structure between self-cooling radiators, which leads to unstable cooperation between the combined radiators. It is not possible to flexibly combine and expand the heat dissipation units according to needs to adapt to different heat dissipation requirements. Utility Model Content
[0004] In view of the problems existing in the prior art, the purpose of this utility model is to provide a self-cooling modular radiator to solve the problems in the background art.
[0005] To achieve the above objectives, the present invention adopts the following technical solution;
[0006] A self-cooling modular radiator includes a heat-conducting block, with heat dissipation fins arranged at equal intervals fixedly connected to the top of the heat-conducting block. An installation groove is provided on the left side of the bottom of the heat-conducting block, and an installation block is fixedly connected to the inner wall of the installation groove. A plug rod threadedly connected to the back of the installation block is inserted therethrough. A connecting block is fixedly connected to the right side of the heat-conducting block, and the connecting block has a plug hole adapted to the plug rod.
[0007] As a further description of the above technical solution:
[0008] An anti-slip pad is fixedly connected to the inner wall of the socket, and the anti-slip pad is circular.
[0009] As a further description of the above technical solution:
[0010] A wear-resistant pad is fixedly connected to the inner wall of the mounting groove, and the surface of the wear-resistant pad is provided with anti-slip texture.
[0011] As a further description of the above technical solution:
[0012] A thermal pad, which is a silicone layer, is fixedly connected to the bottom of the thermal block.
[0013] As a further description of the above technical solution:
[0014] The heat dissipation fins have equally spaced grooves on both the left and right sides, and the grooves are square in shape.
[0015] As a further description of the above technical solution:
[0016] The top of the heat dissipation fins is provided with heat-conducting plates arranged at equal intervals. The heat-conducting plates are n-shaped. The inner side of the heat-conducting plates is slidably connected to two grooves respectively. A slider is fixedly connected to the inner side of the heat-conducting plates. The heat dissipation fins are provided with sliding grooves arranged at equal intervals. The inner wall of the sliding grooves is slidably connected to the slider. A locking rod threadedly connected to the heat-conducting plates is inserted through the heat-conducting plates.
[0017] Compared with existing technologies, the advantages of this utility model are:
[0018] This solution allows for convenient and quick assembly and fixing of heat sinks based on the length of electrical components, adapting to different heat dissipation needs. Furthermore, the angle between adjacent heat sinks can be adjusted, enabling the assembled heat sinks to better contact curved electrical components and improving the heat dissipation effect on curved electrical components. Attached Figure Description
[0019] Figure 1 One of the perspective views of this utility model;
[0020] Figure 2 This is a second perspective view of the present utility model;
[0021] Figure 3 This is a cross-sectional view of the two heat-conducting blocks after they have been connected in this utility model;
[0022] Figure 4 This is a side sectional view of the two heat-conducting blocks after they are connected in this utility model;
[0023] Figure 5 This utility model Figure 4 Enlarged view of part A in the middle.
[0024] Explanation of the labels in the diagram:
[0025] 1. Heat-conducting block; 2. Heat dissipation fins; 3. Mounting groove; 4. Mounting block; 5. Insert rod; 6. Connecting block; 7. Insertion hole; 8. Anti-slip pad; 9. Wear-resistant pad; 10. Heat-conducting pad; 11. Groove; 12. Heat-conducting plate; 13. Slider; 14. Slide groove; 15. Locking rod. Detailed Implementation
[0026] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model;
[0027] Please see Figure 1-5In this utility model: a self-cooling modular radiator includes a heat-conducting block 1, with heat dissipation fins 2 arranged at equal intervals fixedly connected to the top of the heat-conducting block 1, an installation groove 3 is provided on the left side of the bottom of the heat-conducting block 1, an installation block 4 is fixedly connected to the inner wall of the installation groove 3, a plug rod 5 threadedly connected to the back of the installation block 4 is inserted therethrough, and a connecting block 6 is fixedly connected to the right side of the heat-conducting block 1, with a plug hole 7 on the connecting block 6 that is adapted to the plug rod 5.
[0028] In this invention, the heat-conducting block 1 and the heat dissipation fins 2 can form a heat sink. When dissipating heat from long electrical components, firstly, select a sufficient number of heat-conducting blocks 1 according to the length of the electrical component. Then, rotate the insert rod 5 on each heat-conducting block 1 until one end of the insert rod 5 is flush with the front of the mounting block 4. Then, insert the connecting block 6 on the heat-conducting block 1 into the mounting groove 3 on the adjacent heat-conducting block 1. The connecting block 6 will contact the front of the mounting block 4 and the inner wall of the mounting groove 3 respectively. Then, the user rotates the insert rod 5 in the opposite direction, and the insert rod 5 will move towards the front. The insert rod 5 will then be inserted into the insertion hole 7 on the connecting block 6. As the insert rod 5 moves, the insert rod 5 will press the connecting block 6 tightly against the inner wall of the mounting groove 3, thereby locking the connecting block 6. At this time, the two adjacent heat-conducting blocks 1 will be connected. After connecting all the heat-conducting blocks 1 together, the effect of combining multiple heat sinks can be achieved. The combined heat sink can be used for dissipating heat from long electrical components.
[0029] Furthermore, when the surface of some electrical components has a certain curvature, the angle between two adjacent heat-conducting blocks 1 can be adjusted, thereby increasing the contact area between multiple heat-conducting blocks 1 and the electrical components, effectively improving the heat dissipation effect on curved electrical components, and is suitable for heat dissipation of curved electrical components.
[0030] Please see Figure 4 Among them, the inner wall of the socket 7 is fixedly connected with an anti-slip pad 8, which is circular in shape.
[0031] In this invention, the anti-slip pad 8 can increase the friction between the insertion hole 7 and the insertion rod 5, thereby improving the stability of the connection between the heat-conducting blocks 1.
[0032] Please see Figure 4 Among them, the inner wall of the mounting groove 3 is fixedly connected with a wear-resistant pad 9, and the surface of the wear-resistant pad 9 is provided with anti-slip texture.
[0033] In this invention, the wear-resistant pad 9 can reduce wear, extend service life, and increase friction, thereby improving the stability of the connection between the heat-conducting blocks 1.
[0034] Please see Figure 1-4 The bottom of the heat-conducting block 1 is fixedly connected to a heat-conducting pad 10, which is a silicone layer.
[0035] In this invention, the thermal pad 10 has a certain degree of flexibility, which allows the thermal block 1 to better fit with the electrical components, effectively improving the heat dissipation effect on the electrical components.
[0036] Please see Figure 1-4 The heat dissipation fins 2 have equally spaced grooves 11 on both the left and right sides, and the grooves 11 are square in shape.
[0037] In this invention, the groove 11 increases the contact area between the heat dissipation fins 2 and the air, which helps to improve the heat dissipation effect of the radiator.
[0038] Please see Figure 1-4 The heat dissipation fin 2 has heat-conducting plates 12 arranged at equal intervals on its top. The heat-conducting plates 12 are n-shaped. The inner side of the heat-conducting plates 12 is slidably connected to two grooves 11. The inner side of the heat-conducting plates 12 is fixedly connected to a slider 13. The heat dissipation fin 2 has grooves 14 arranged at equal intervals. The inner wall of the grooves 14 is slidably connected to the slider 13. A locking rod 15 threadedly connected to the heat-conducting plates 12 is inserted into the heat-conducting plates 12.
[0039] In this invention, when the heat-conducting plate 12 is slid upward, it will slide along the inner wall of the groove 11, and the slider 13 will slide along the inner wall of the slide groove 14. The heat-conducting plate 12 can increase the contact area between the heat dissipation fins 2 and the air, further improving the heat dissipation effect of the radiator. The position of the heat-conducting plate 12 can be locked by rotating the locking rod 15.
[0040] The above are merely preferred embodiments of this utility model; however, the scope of protection of this utility model is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in this utility model, based on the technical solution and its improved concept, should be included within the scope of protection of this utility model.
Claims
1. A self-cooling modular heat sink, comprising a heat-conducting block (1), characterized in that: The top of the heat-conducting block (1) is fixedly connected with heat dissipation fins (2) arranged at equal intervals. The bottom left side of the heat-conducting block (1) is provided with an installation groove (3). The inner wall of the installation groove (3) is fixedly connected with an installation block (4). The back of the installation block (4) is inserted with a threaded rod (5). The right side of the heat-conducting block (1) is fixedly connected with a connecting block (6). The connecting block (6) is provided with a socket (7) that matches the plug rod (5).
2. The self-cooling modular radiator according to claim 1, characterized in that: An anti-slip pad (8) is fixedly connected to the inner wall of the socket (7), and the anti-slip pad (8) is circular.
3. The self-cooling modular radiator according to claim 1, characterized in that: The inner wall of the mounting groove (3) is fixedly connected to a wear-resistant pad (9), and the surface of the wear-resistant pad (9) is provided with anti-slip texture.
4. A self-cooling modular radiator according to claim 1, characterized in that: The bottom of the heat-conducting block (1) is fixedly connected to a heat-conducting pad (10), which is a silicone layer.
5. A self-cooling modular radiator according to claim 1, characterized in that: The heat dissipation fins (2) have equally spaced grooves (11) on both the left and right sides, and the grooves (11) are square in shape.
6. A self-cooling modular radiator according to claim 5, characterized in that: The top of the heat dissipation fin (2) is provided with heat-conducting plates (12) arranged at equal intervals. The heat-conducting plates (12) are n-shaped. The inner side of the heat-conducting plates (12) is slidably connected to two grooves (11). The inner side of the heat-conducting plates (12) is fixedly connected to a slider (13). The heat dissipation fin (2) is provided with sliding grooves (14) arranged at equal intervals. The inner wall of the sliding grooves (14) is slidably connected to the slider (13). A locking rod (15) threadedly connected to the heat-conducting plates (12) is inserted through them.