Fin radiating structure for optimizing performance of radiator
By using an arc-shaped heat sink and heat pipes, combined with forced airflow from a fan, the problem of uneven heat distribution on the heat sink is solved, achieving efficient heat exchange and stable clamping, thus improving the overall performance and safety of the heat sink.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-07
- Publication Date
- 2026-04-14
AI Technical Summary
In the prior art, the flat structure of the heat sink causes uneven heat distribution on the heat sink, which affects the efficiency of heat exchange with cold air and thus affects the overall performance of the heat dissipation system.
It adopts an arc-shaped heat dissipation plate design, combined with heat pipes and conduction plates. Heat is conducted through contact plates with the object surface, and a fan is used to force airflow, increasing the contact area and exchange efficiency with the air. At the same time, the design of levers and blocks ensures the stable clamping of the object.
It improves the uniform distribution of heat and heat dissipation efficiency, ensuring the stability of objects under different conditions and enhancing heat dissipation performance and safety.
Smart Images

Figure CN224121790U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of radiator technology, and in particular to a finned heat dissipation structure for optimizing radiator performance. Background Technology
[0002] A finned heatsink structure that optimizes radiator performance is a specially designed thermal management system aimed at reducing the operating temperature of equipment or components by improving the efficiency of heat conduction, dispersion, and dissipation. Finned heatsink structures that optimize radiator performance have wide applications in any system that requires effective heat dissipation and cooling, aiming to improve energy efficiency, enhance performance, and ensure the long-term stable operation of equipment.
[0003] A typical finned heatsink structure for optimizing radiator performance consists of a contact plate, heat pipes, and heat sink fins. During operation, the contact plate, as the fundamental component of the radiator, directly contacts the heat source, rapidly absorbing heat and transferring it to the heat pipes. The heat pipes, using highly thermally conductive materials, effectively conduct heat outwards to the heat sink fins, while the heat sink fins increase their surface area to promote heat dissipation into the surrounding air, thus achieving heat dissipation.
[0004] However, in some existing devices, the heat sink is usually laid flat. This design limits the uniform distribution and exchange efficiency of heat on the heat sink, causing some heat to accumulate upwards and making it difficult to effectively exchange heat with the surrounding cold air, thus affecting the performance of the entire heat dissipation system. To address this issue, a finned heat dissipation structure that optimizes heat sink performance is proposed. Utility Model Content
[0005] To overcome the above shortcomings, this utility model provides a finned heat dissipation structure that optimizes the performance of the radiator, aiming to improve the problem of low efficiency in heat conduction and heat exchange with cold air in some existing devices.
[0006] To achieve the above objectives, the present invention adopts the following technical solution:
[0007] A finned heat dissipation structure for optimizing radiator performance includes a cover, a heat dissipation mechanism is provided on the top of the cover, a fan is fixedly connected to the outer side of the heat dissipation mechanism, and a fixing mechanism is provided inside the cover.
[0008] The heat dissipation mechanism includes a contact plate, the top of which is fixedly connected to the inner wall of the top of the cover, a plurality of heat-conducting pipes are fixedly connected to the top of the contact plate, a heat-conducting component is fixedly connected to the top of the contact plate, a heat dissipation plate is fixedly connected to the outside of the heat-conducting component, and a conductive plate is fixedly connected to the outside of the heat-conducting pipes, i.e., the side closest to the top of the contact plate.
[0009] As a further description of the above technical solution:
[0010] The heat-conducting component includes multiple heat dissipation pipes, the exterior of which is fixedly connected to the interior of the heat dissipation plate, the top of which is fixedly connected to a limiting ring, the heat dissipation pipes are fixedly connected to the top of the contact plate, the exterior of which penetrates the interior of the heat dissipation plate and the conductive plate, and the exterior of which is adjacent to the exterior of the heat dissipation pipe.
[0011] As a further description of the above technical solution:
[0012] The exterior of each of the heat pipes penetrates the interior of the heat sink and the conductive plate, respectively.
[0013] As a further description of the above technical solution:
[0014] The fixing mechanism includes two locking rods, the two locking rods are slidably connected to the inside of the cover, and locking blocks are fixedly connected to one side of the outer side of each of the two locking rods;
[0015] As a further description of the above technical solution:
[0016] The card block is fixedly connected to a connecting post inside, and a locking block is rotatably connected to the outside of the connecting post;
[0017] As a further description of the above technical solution:
[0018] A slot is provided on the outer side of the locking block, i.e. the side away from the connecting block. A locking post is slidably connected to the outer side of the locking block. A locking block is fixedly connected to the outer side of the locking post. A limit block is fixedly connected to the other side of the outer side of the two locking rods.
[0019] As a further description of the above technical solution:
[0020] The connecting post and the locking post are respectively located outside the two locking blocks. By rotating the locking block, the groove on the outside of the locking block engages with the outside of the other locking block.
[0021] As a further description of the above technical solution:
[0022] The heat sink has an arc shape on the outside, and the openings on both sides of the heat sink face upwards. The arc-shaped area is also circular.
[0023] This utility model has the following beneficial effects:
[0024] 1. In this utility model, the contact plate comes into contact with the surface of the heated object, which can effectively transfer heat. At the same time, the conduction plate and the heat pipe can effectively transfer heat to the interior of the heat sink for effective heat dissipation. The arc-shaped heat sink design not only increases the contact area with the air, but also promotes the convection effect, further improving the heat dissipation performance, enabling rapid exchange with the cool air in the air and improving the heat dissipation efficiency.
[0025] 2. In this utility model, the relative sliding of the locking rod and the tight connection of the locking block ensure that a uniform and stable clamping force is always applied to the object, effectively preventing the object from shifting. The rotational design of the connecting column and the locking block enhances the locking effect, so that the object can remain stable under any working conditions, improving the safety of use and meeting the needs in different application scenarios. Attached Figure Description
[0026] Figure 1 This is a three-dimensional schematic diagram of a finned heat dissipation structure for optimizing radiator performance proposed in this utility model.
[0027] Figure 2 This is a schematic diagram of the conductive plate of a finned heat dissipation structure that optimizes the performance of a heat sink, as proposed in this utility model.
[0028] Figure 3 This is a schematic diagram of the limiting block for a finned heat dissipation structure that optimizes the performance of a heat sink, as proposed in this utility model.
[0029] Figure 4 This is a schematic diagram of the clip structure of the fin heat dissipation structure for optimizing the performance of a heat sink proposed in this utility model;
[0030] Figure 5 This is a schematic diagram of the heat pipe structure of a finned heat dissipation structure that optimizes the performance of a heat sink, as proposed in this utility model.
[0031] Legend:
[0032] 1. Cover; 2. Fan; 3. Heat dissipation mechanism; 31. Heat sink; 32. Limiting ring; 33. Heat pipe; 34. Conductive plate; 35. Contact plate; 36. Heat pipe; 4. Fixing mechanism; 41. Connecting block; 42. Locking block; 43. Connecting post; 44. Locking block; 45. Locking post; 46. Locking slot; 47. Locking rod; 48. Limiting block. Detailed Implementation
[0033] 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 of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0034] Reference Figure 1 , Figure 2 and Figure 5 The present invention provides an embodiment of a finned heat dissipation structure for optimizing heat sink performance, comprising a cover 1 designed to cover the surface of the connected object, a heat dissipation mechanism 3 provided on the top of the cover 1, a fan 2 fixedly connected to the outer side of the heat dissipation mechanism 3, and a fixing mechanism 4 provided inside the cover 1.
[0035] The heat dissipation mechanism 3 includes a contact plate 35, designed to effectively conduct heat to the surface of the object it contacts. The top of the contact plate 35 is fixedly connected to the inner top wall of the cover 1. Multiple heat-conducting pipes 36 are fixedly connected to the top of the contact plate 35, designed to provide good heat transfer capability, enabling rapid heat transfer. A heat-conducting component, including multiple heat dissipation pipes 33, is fixedly connected to the top of the contact plate 35. The heat dissipation component receives heat and releases it outwards. The exterior of the multiple heat dissipation pipes 33 is fixedly connected to the interior of the heat dissipation plate 31. Limiting rings 32 are fixedly connected to the top of each of the multiple heat dissipation pipes 33 to prevent them from falling off. The heat dissipation pipes 33 are fixedly connected to the top of the contact plate 35. The exterior of the multiple heat dissipation pipes 33 penetrates the interior of the heat dissipation plate 31 and the conductive plate 34, respectively. The heat pipe 36 is located on the outer side adjacent to the heat dissipation pipe 33. A heat dissipation plate 31 is fixedly connected to the outside of the heat conduction component, which can transfer heat to the outside and exchange it with the cold air in the air. The heat dissipation plate 31 is arc-shaped, and the openings on both sides of the heat dissipation plate 31 face upwards, which can quickly exchange with the cold air in the air. At the same time, the arc-shaped area is round. A conductive plate 34 is fixedly connected to the outside of the heat conduction pipe 36, that is, the outer side near the top of the contact plate 35. It is designed on the top of the cover 1. When the object inside the cover 1 dissipates heat, the contact plate 35 can directly contact the surface of the object. At the same time, the contact plate 35 can absorb and transfer the heat flowing out from the top of the cover 1. The outside of the multiple heat conduction pipes 36 respectively penetrates the interior of the heat dissipation plate 31 and the conductive plate 34.
[0036] Reference Figure 3 and Figure 4The fixing mechanism 4 includes two locking rods 47, designed to provide stable fixing. The two locking rods 47 are placed opposite each other, with their outer surfaces slidably connected to the inside of the cover 1. Each locking rod 47 has a locking block 44 fixedly connected to its outer side. When the locking rods 47 engage and slide the object, they simultaneously drive the locking blocks 44 to slide accordingly. A connecting post 43 is fixedly connected inside the locking block 44, providing stable support. A locking block 42 is rotatably connected to the outside of the connecting post 43. Supported by the connecting post 43, the locking block 42 can rotate smoothly outside the connecting post 43. The outside of the locking block 42 is away from the connecting post 43. A slot 46 is provided on the outer side of block 41, which provides good positioning capability. A locking post 45 is slidably connected to the outside of block 44. The locking post 45 passes through block 44 and can slide inside the slot 46 to fix it. A locking block 44 is fixedly connected to the outer side of the locking post 45, which can easily drive the locking post 45 to slide. A limiting block 48 is fixedly connected to the other side of the two locking rods 47. The limiting block 48 is designed to prevent the locking rods 47 from falling off during sliding. The connecting post 43 and the locking post 45 are respectively outside the two locking blocks 44. By rotating the locking block 42, the groove on the outside of the locking block 42 is locked onto the outside of the other locking block 44.
[0037] Working Principle: During normal operation, the object is confined by the interior of the cover 1. The object releases heat, which is first transferred to the heat dissipation pipes 33 and 36 via the contact plate 35. The contact plate 35 effectively contacts the object's surface, ensuring good heat conduction. Multiple heat dissipation pipes 33 and 36 absorb the transferred heat and further transfer it to the heat dissipation plate 31. The heat dissipation plate 31 has an arc shape with upward-facing openings on both sides. After heat is conducted to the heat dissipation plate 31 through the heat dissipation pipes 33, it quickly exchanges heat with the cool air. The arc shape helps increase the contact area with the air, thereby accelerating heat dissipation efficiency. Convection is formed between the heat dissipation plate 31 and the air, making the heat dissipation effect more significant. Simultaneously, the limiting ring 32 ensures the stability of the heat dissipation pipes 33 during operation, preventing them from falling off due to vibration. During this process, the fan 2 forces airflow, continuously introducing cool air into the heat dissipation structure, further accelerating the cooling effect. The position of the fan 2 effectively provides continuous airflow to the heat dissipation plate 31, allowing heat to be carried away in a timely manner, thereby improving the overall heat dissipation performance of the structure. In summary, the synergistic effect of the contact plate 35, heat pipe 36, heat sink 31, conduction plate 34 and fan 2 forms an efficient heat conduction and heat dissipation process, ensuring that heat is effectively drawn out from the heat source object and quickly released into the environment.
[0038] When an object needs to be secured, the two levers 47 begin to slide relative to each other. During this sliding process, the locking block 44 is tightly connected to the outside of the levers 47, thus sliding along with the levers 47 to ensure a consistently uniform force is applied to the object. Simultaneously, there is rotation between the connecting post 43 and the locking block 42, allowing the locking block 42 to rotate smoothly outside the connecting post 43. As the locking block 42 rotates, the outside of the slot 46 effectively engages with the other locking block 44, helping to lock the object's position and prevent displacement. Furthermore, the locking post 45 can slide freely inside the slot 46 and forms an effective connection with the locking block 44. The sliding of the locking post 45 allows it to adjust its fixed position as needed, while ensuring coordination with the movement of the locking block 44.
[0039] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A finned heat dissipation structure for optimizing radiator performance, comprising a cover (1), characterized in that: The top of the cover (1) is provided with a heat dissipation mechanism (3), and a fan (2) is fixedly connected to the outer side of the heat dissipation mechanism (3). The inside of the cover (1) is provided with a fixing mechanism (4). The heat dissipation mechanism (3) includes a contact plate (35), the top of which is fixedly connected to the top inner wall of the cover (1), a plurality of heat-conducting pipes (36) are fixedly connected to the top of the contact plate (35), a heat-conducting component is fixedly connected to the top of the contact plate (35), a heat dissipation plate (31) is fixedly connected to the outside of the heat-conducting component, and a conductive plate (34) is fixedly connected to the outside of the heat-conducting pipes (36), i.e., to the side closest to the top of the contact plate (35).
2. The finned heat dissipation structure for optimizing radiator performance according to claim 1, characterized in that: The heat-conducting component includes multiple heat dissipation pipes (33), the exterior of the multiple heat dissipation pipes (33) is fixedly connected to the interior of the heat dissipation plate (31), the top of the multiple heat dissipation pipes (33) is fixedly connected to the limit rings (32), the heat dissipation pipes (33) are fixedly connected to the top of the contact plate (35), the exterior of the multiple heat dissipation pipes (33) respectively penetrates the interior of the heat dissipation plate (31) and the conductive plate (34), and the exterior of the multiple heat-conducting pipes (36) is adjacent to the exterior of the heat dissipation pipes (33).
3. The finned heat dissipation structure for optimizing radiator performance according to claim 1, characterized in that: The exterior of the plurality of heat pipes (36) respectively penetrates the interior of the heat sink (31) and the conductive plate (34).
4. The finned heat dissipation structure for optimizing radiator performance according to claim 1, characterized in that: The fixing mechanism (4) includes two locking rods (47), the two locking rods (47) are slidably connected to the inside of the cover (1) on the outside, and locking blocks (44) are fixedly connected to the outside side of the two locking rods (47) respectively.
5. The finned heat dissipation structure for optimizing radiator performance according to claim 4, characterized in that: The internal connection of the locking block (44) is fixedly connected to the connecting post (43), and the external connection of the connecting post (43) is rotatably connected to the locking block (42).
6. The finned heat dissipation structure for optimizing radiator performance according to claim 5, characterized in that: A slot (46) is provided on the outer side of the locking block (42), that is, the outer side away from the connecting block (41). A locking post (45) is slidably connected to the outer side of the locking block (44). A locking block (44) is fixedly connected to the outer side of the locking post (45). A limit block (48) is fixedly connected to the other side of the two locking rods (47).
7. The finned heat dissipation structure for optimizing radiator performance according to claim 6, characterized in that: The connecting post (43) and the locking post (45) are respectively located outside the two locking blocks (44). By rotating the locking block (42), the groove outside the locking block (42) engages with the outside of the other locking block (44).
8. The finned heat dissipation structure for optimizing radiator performance according to claim 1, characterized in that: The heat sink (31) has an arc shape on the outside, and the openings on both sides of the heat sink (31) face upwards. The arc-shaped area is circular.