High-shock-resistance radiator
By introducing elastic buffer grooves and buffer springs into the radiator, the problem of loosening and damage of traditional radiators in vibration environments is solved, achieving high-efficiency shock resistance and extended service life.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- DONGGUAN XINLIYUAN HARDWARE PLASTIC CO LTD
- Filing Date
- 2025-05-30
- Publication Date
- 2026-05-19
AI Technical Summary
Traditional radiators are prone to loosening, deformation, or breakage in vibrating environments due to a lack of effective cushioning and shock-resistant structures, resulting in reduced heat dissipation and shortened service life.
A highly shock-resistant radiator was designed, comprising a heat dissipation base, heat dissipation components, and a buffer component. By setting elastic buffer grooves and buffer springs on the heat dissipation fins, the impact force generated by vibration is absorbed and buffered, and converted into elastic potential energy to reduce damage to the internal structure.
It significantly improves the radiator's shock resistance, reduces the risk of component loosening, deformation and breakage, ensures long-term stable operation in vibration environments, and extends service life.
Smart Images

Figure CN224262330U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of radiator technology, and in particular relates to a highly shock-resistant radiator. Background Technology
[0002] In modern industry and electronic equipment, heat sinks are crucial heat dissipation components, and their performance directly affects the operational stability and lifespan of the equipment. Traditional heat sinks typically consist of basic components such as a heat sink base, heat sink fins, and heat pipes. Their design primarily focuses on improving heat dissipation efficiency, while giving relatively little consideration to buffering and shock resistance.
[0003] In practical use, especially in environments with high vibration, such as electronic equipment in vehicles and construction machinery, or machinery on industrial production lines, traditional radiators face numerous problems. Due to the lack of effective buffering and shock-resistant structures, the impact of vibration directly affects the internal structure of the radiator. Under prolonged vibration and impact, the connections between the heat pipes, heat sink fins, and heat sink base are prone to loosening, deformation, or even breakage; the heat sink fins may also collide with each other due to vibration, causing damage and compromising the radiator's heat dissipation structure.
[0004] These problems not only reduce the heat dissipation effect of the radiator, but also damage the internal structure of the radiator and shorten its service life. Utility Model Content
[0005] The purpose of this utility model is to provide a highly shock-resistant radiator, aiming to solve the technical problem that traditional radiators in the prior art are prone to loosening, deformation or even breakage under long-term vibration and impact, and the heat dissipation fins may also collide with each other due to vibration, resulting in damage to the internal structure of the radiator and shortening its service life.
[0006] To achieve the above objectives, the present invention provides a high shock-resistant radiator, comprising a heat dissipation base, a heat dissipation component, and a buffer component. The heat dissipation base and the heat dissipation component are sequentially arranged and connected. The heat dissipation component is connected to the top side of the heat dissipation base, and the buffer component is connected to the heat dissipation component.
[0007] The heat dissipation base is provided with a first heat dissipation column and a second heat dissipation column. Both the first heat dissipation column and the second heat dissipation column are connected to the heat dissipation base, and the first heat dissipation column is disposed on one side of the second heat dissipation column.
[0008] The heat dissipation assembly includes a heat dissipation base plate, heat dissipation pipes, and heat dissipation fins. The heat dissipation base plate is connected to the heat dissipation fins. The heat dissipation pipes are sequentially inserted through the heat dissipation fins and the heat dissipation base plate. One end of the heat dissipation pipe extends out of the heat dissipation fins, and the other end extends out of the heat dissipation base plate and is disposed within the heat dissipation base. Multiple heat dissipation fins are provided and are evenly distributed on the heat dissipation pipes. Adjacent heat dissipation fins are arranged in parallel and spaced apart, forming multiple elastic buffer grooves.
[0009] The buffer assembly includes a buffer guide rod and buffer springs. The buffer guide rod is movably inserted through multiple heat dissipation fins. Multiple buffer springs are provided and are movably inserted through the buffer guide rod. The multiple buffer springs are all disposed in the elastic buffer groove and abut against the heat dissipation fins.
[0010] As an optional solution of this utility model, multiple heat dissipation pipes are provided and are evenly and fixedly inserted into the heat dissipation fins, with the multiple heat dissipation pipes arranged in parallel and at intervals.
[0011] As an optional solution of this utility model, the plurality of heat dissipation fins are arranged at equal intervals.
[0012] As an optional solution of this utility model, a buffer spring is provided in one of the elastic buffer grooves, and the buffer spring is movably disposed in the elastic buffer groove.
[0013] As an optional solution of this utility model, the buffer assembly is provided in three parts and is evenly arranged on the heat dissipation fins.
[0014] As an optional solution of this utility model, multiple first heat dissipation columns are provided, and the multiple first heat dissipation columns are arranged in parallel and spaced apart, and are uniformly fixedly connected to the heat dissipation base.
[0015] As an optional solution of this utility model, multiple second heat dissipation columns are provided, which are arranged in parallel and spaced apart, and are uniformly fixedly connected to the heat dissipation base.
[0016] The high shock-resistant radiator provided in this embodiment of the present invention has at least one of the following technical effects:
[0017] The high-vibration-resistant radiator provided in this application effectively absorbs and buffers the impact force generated by external vibrations through the compression and expansion of the buffer spring within the elastic buffer groove. When the radiator is subjected to vibration, the buffer spring can quickly deform, converting the vibration energy into its own elastic potential energy, thereby reducing the direct impact of vibration on the internal structure of the radiator and preventing damage to components such as heat pipes and heat dissipation fins due to vibration, significantly improving the radiator's vibration resistance. Because it effectively reduces the damage to the internal structure of the radiator caused by vibration, it lowers the risk of component loosening, deformation, and breakage, enabling the radiator to operate stably for a long time in vibration environments, thus extending the radiator's service life. Attached Figure Description
[0018] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0019] Figure 1 A perspective view of a high shock-resistant radiator provided for an embodiment of this utility model.
[0020] Figure 2 A side view of a high shock-resistant radiator provided in an embodiment of this utility model.
[0021] Figure 3 An exploded view of the high shock-resistant radiator provided in the embodiment of this utility model.
[0022] Figure 4 A perspective view of the heat dissipation base of the high shock-resistant radiator provided in the embodiment of this utility model.
[0023] Figure 5 for Figure 2 A magnified view of part A in the image.
[0024] The following are the labeling elements in the figure:
[0025] 1. Heat sink base; 2. Heat dissipation assembly; 3. Cushioning assembly;
[0026] 11. First heat sink; 12. Second heat sink;
[0027] 21. Heat dissipation base plate; 22. Heat dissipation pipes; 23. Heat dissipation fins; 24. Flexible buffer groove;
[0028] 31. Buffer guide rod; 32. Buffer spring. Detailed Implementation
[0029] The embodiments of this utility model are described in detail below. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the embodiments of this utility model, and should not be construed as limiting the utility model.
[0030] In the description of the embodiments of this utility model, it should be understood that the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings. They are only for the convenience of describing the embodiments of this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0031] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of embodiments of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified.
[0032] In this embodiment of the invention, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this embodiment of the invention according to the specific circumstances.
[0033] In one embodiment of this utility model, such as Figures 1-5 As shown, a high shock-resistant radiator is provided, including a heat dissipation base 1, a heat dissipation component 2 and a buffer component 3. The heat dissipation base 1 and the heat dissipation component 2 are arranged and connected in sequence. The heat dissipation component 2 is connected to the top side of the heat dissipation base 1 and the buffer component 3 is connected to the heat dissipation component 2.
[0034] The heat dissipation base 1 is provided with a first heat dissipation column 11 and a second heat dissipation column 12. The first heat dissipation column 11 and the second heat dissipation column 12 are both fixedly connected to the heat dissipation base 1, and the first heat dissipation column 11 is located on one side of the second heat dissipation column 12.
[0035] The heat dissipation assembly 2 includes a heat dissipation base plate 21, heat dissipation pipes 22, and heat dissipation fins 23. The heat dissipation base plate 21 is fixedly connected to the heat dissipation fins 23. The heat dissipation pipes 22 are sequentially fixedly inserted through the heat dissipation fins 23 and the heat dissipation base plate 21. One end of the heat dissipation pipe 22 extends out of the heat dissipation fins 23, and the other end extends out of the heat dissipation base plate 21 and is disposed within the heat dissipation base 1. Multiple heat dissipation fins 23 are provided and are evenly distributed on the heat dissipation pipes 22. Adjacent heat dissipation fins 23 are arranged parallel and spaced apart, forming multiple elastic buffer grooves 24.
[0036] The buffer assembly 3 includes a buffer guide rod 31 and a buffer spring 32. The buffer guide rod 31 is movably inserted through multiple heat dissipation fins 23. Multiple buffer springs 32 are provided and are movably inserted through the buffer guide rod 31. The multiple buffer springs 32 are all set in the elastic buffer groove 24 and abut against the heat dissipation fins 23.
[0037] The high-vibration-resistant radiator provided in this application effectively absorbs and buffers the impact force generated by external vibrations through the compression and expansion of the buffer spring 32 within the elastic buffer groove 24. When the radiator is subjected to vibration, the buffer spring 32 can quickly deform, converting the vibration energy into its own elastic potential energy, thereby reducing the direct impact of vibration on the internal structure of the radiator and preventing damage to components such as the heat pipe 22 and heat dissipation fins 23 due to vibration, significantly improving the radiator's vibration resistance. Because the damage to the internal structure of the radiator caused by vibration is effectively reduced, the risk of component loosening, deformation, and breakage is lowered, enabling the radiator to operate stably for a long time in a vibration environment, thus extending the radiator's service life.
[0038] Heat dissipation process: The heat generated by the equipment operation is first conducted to the heat dissipation base 1. The first heat dissipation column 11 and the second heat dissipation column 12 on the heat dissipation base 1 increase the heat dissipation area and initially dissipate some heat. Subsequently, the heat is transferred to the heat dissipation fins 23 through the heat dissipation pipes 22 that are fixedly installed in the heat dissipation base plate 21 and the heat dissipation fins 23. The heat dissipation fins 23 are in full contact with the air and dissipate the heat to the surrounding environment through convection, achieving efficient heat dissipation.
[0039] Vibration Resistance Process: When the equipment is in a vibrating environment, the impact force generated by external vibration is transmitted to the radiator. At this time, the buffer assembly 3 plays a crucial role. The buffer guide rod 31 passes through the heat dissipation fins 23, providing support and guidance for the buffer spring 32. The buffer spring 32, within the elastic buffer groove 24, is compressed and deformed after being subjected to impact force, converting vibration energy into its own elastic potential energy. As the vibration weakens, the buffer spring 32 returns to its original shape, releasing its elastic potential energy. In this process, it effectively buffers and absorbs vibration energy, reducing the impact of vibration on the internal structure of the radiator, such as the heat dissipation pipes 22 and the heat dissipation fins 23, ensuring the stable operation of the radiator in a vibrating environment and extending its service life.
[0040] In another embodiment of this utility model, multiple heat pipes 22 are provided and are evenly and fixedly inserted into the heat dissipation fins 23. The multiple heat pipes 22 are arranged in parallel and spaced apart. The multiple parallel and spaced heat pipes 22 can evenly conduct heat from the heat source (such as the heat sink 1) to the entire area of the heat dissipation fins 23, avoiding excessive local temperature. For example, the heat generated by heat sources such as the CPU is quickly dispersed to each heat dissipation fin 23 through the heat pipes 22, forming a uniform heat distribution.
[0041] In another embodiment of this utility model, multiple heat dissipation fins 23 are arranged at equal intervals. The equidistant arrangement of the heat dissipation fins 23 ensures that heat can be evenly transferred and dissipated throughout the entire heat dissipation area, avoiding localized poor heat dissipation caused by uneven fin spacing. The relatively consistent airflow space between each fin allows for a uniform distribution of air velocity and flow rate as air passes through the heat dissipation fins 23, enhancing the convective heat dissipation effect.
[0042] In another embodiment of this utility model, a buffer spring 32 is provided within an elastic buffer groove 24, and the buffer spring 32 is movably disposed within the elastic buffer groove 24. Each buffer spring 32 within its corresponding elastic buffer groove 24 can independently respond to vibration impacts, precisely buffering vibrations of different directions and intensities. When a certain area is subjected to vibration, the corresponding buffer spring 32 can quickly compress and deform, converting the vibration energy of that area into elastic potential energy, preventing the vibration from being excessively transmitted to other parts of the radiator, thereby effectively protecting the internal structure.
[0043] In another embodiment of this utility model, three buffer components 3 are provided and evenly distributed on the heat dissipation fins 23. The three evenly distributed buffer components 3 can buffer and protect the heat sink from shock from different directions. In actual vibration environments, the direction of vibration is uncertain. The evenly distributed buffer components 3 can ensure that the impact force can be absorbed in a timely and effective manner regardless of the direction of the vibration, avoiding damage to the heat sink due to excessive local stress, and comprehensively improving the shock resistance performance of the heat sink.
[0044] In another embodiment of this utility model, multiple first heat dissipation columns 11 are provided, arranged in parallel and spaced intervals, and uniformly fixedly connected to the heat dissipation base 1. The addition of the first heat dissipation columns 11 significantly increases the contact area between the heat dissipation base 1 and the air. After the equipment generates heat during operation, more heat can be quickly conducted to the surface of the first heat dissipation columns 11, accelerating heat dissipation through air convection and other means, thereby effectively reducing the equipment temperature and ensuring normal operation of the equipment.
[0045] In another embodiment of this utility model, multiple second heat dissipation columns 12 are provided, arranged in parallel and at intervals, and uniformly fixedly connected to the heat dissipation base 1. The arrangement of the second heat dissipation columns 12 greatly expands the contact area between the heat dissipation base 1 and the air. When the equipment generates heat during operation and conducts it to the heat dissipation base 1, these heat dissipation columns can quickly absorb the heat and efficiently dissipate it to the surrounding environment through air convection and other means, effectively reducing the operating temperature of the equipment and ensuring that the equipment operates stably within a suitable temperature range.
[0046] The high-vibration-resistant radiator provided in this application effectively absorbs and buffers the impact force generated by external vibrations through the compression and expansion of the buffer spring 32 within the elastic buffer groove 24. When the radiator is subjected to vibration, the buffer spring 32 can quickly deform, converting the vibration energy into its own elastic potential energy, thereby reducing the direct impact of vibration on the internal structure of the radiator and preventing damage to components such as the heat pipe 22 and heat dissipation fins 23 due to vibration, significantly improving the radiator's vibration resistance. Because the damage to the internal structure of the radiator caused by vibration is effectively reduced, the risk of component loosening, deformation, and breakage is lowered, enabling the radiator to operate stably for a long time in a vibration environment, thus extending the radiator's service life.
[0047] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions and improvements 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 highly shock-resistant radiator, characterized in that, It includes a heat dissipation base, a heat dissipation component, and a buffer component. The heat dissipation base and the heat dissipation component are arranged and connected in sequence. The heat dissipation component is connected to the top side of the heat dissipation base, and the buffer component is connected to the heat dissipation component. The heat dissipation base is provided with a first heat dissipation column and a second heat dissipation column. Both the first heat dissipation column and the second heat dissipation column are connected to the heat dissipation base, and the first heat dissipation column is disposed on one side of the second heat dissipation column. The heat dissipation assembly includes a heat dissipation base plate, heat dissipation pipes, and heat dissipation fins. The heat dissipation base plate is connected to the heat dissipation fins. The heat dissipation pipes are sequentially inserted through the heat dissipation fins and the heat dissipation base plate. One end of the heat dissipation pipe extends out of the heat dissipation fins, and the other end extends out of the heat dissipation base plate and is disposed within the heat dissipation base. Multiple heat dissipation fins are provided and are evenly distributed on the heat dissipation pipes. Adjacent heat dissipation fins are arranged in parallel and spaced apart, forming multiple elastic buffer grooves. The buffer assembly includes a buffer guide rod and buffer springs. The buffer guide rod is movably inserted through multiple heat dissipation fins. Multiple buffer springs are provided and are movably inserted through the buffer guide rod. The multiple buffer springs are all disposed in the elastic buffer groove and abut against the heat dissipation fins.
2. The high shock-resistant radiator according to claim 1, characterized in that, The heat dissipation pipes are provided in multiple quantities and are evenly and fixedly installed on the heat dissipation fins. The multiple heat dissipation pipes are arranged in parallel and at intervals.
3. The high shock-resistant radiator according to claim 1, characterized in that, The heat dissipation fins are arranged at equal intervals.
4. A high-shock-resistant radiator according to claim 1, characterized in that, A buffer spring is provided in one of the elastic buffer grooves, and the buffer spring is movably disposed in the elastic buffer groove.
5. A high-shock-resistant radiator according to claim 1, characterized in that, The buffer assembly consists of three parts, which are evenly distributed on the heat dissipation fins.
6. A high-shock-resistant radiator according to claim 1, characterized in that, The first heat dissipation column is provided in multiples, and the multiple first heat dissipation columns are arranged in parallel and spaced apart, and are evenly fixedly connected to the heat dissipation base.
7. A high-shock-resistant radiator according to claim 1, characterized in that, The second heat dissipation column is provided in multiples, and the multiple second heat dissipation columns are arranged in parallel and spaced apart, and are evenly fixedly connected to the heat dissipation base.