Radiator convenient to install
By converting vibration energy into coolant circulation power, and combining it with dampers and shock absorption mechanisms, the problem of radiator damage under vibration environment is solved, achieving energy saving and improved durability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HEBEI RUIFA AUTO RADIATOR
- Filing Date
- 2025-05-06
- Publication Date
- 2026-04-21
AI Technical Summary
Existing automotive radiators are prone to damage under vibration, resulting in a shortened service life, and their reliance on water pumps and electric power to drive coolant circulation increases power generation costs.
An easy-to-install radiator was designed that uses vibration energy to drive coolant circulation. Combined with a damper and shock absorption mechanism, it absorbs vibration energy and converts it into coolant flow power, reducing damage to components.
It reduced power generation costs, extended radiator lifespan, improved operational stability and durability, and reduced maintenance costs.
Smart Images

Figure CN224145757U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of radiator technology, and in particular to a radiator that is easy to install. Background Technology
[0002] In the automotive industry, radiators are indispensable key components to ensure the normal operation of internal equipment. Some internal devices often require cooling systems, combining air cooling and liquid cooling methods to achieve efficient heat dissipation. In water-cooled circulation systems, the continuous flow of coolant relies on a water pump for power. This requires the radiator, water pump, and motor to be powered synchronously, significantly increasing power generation costs and hindering energy conservation, emission reduction, and cost control.
[0003] Furthermore, automotive power generation equipment is often equipped with diesel engines, which generate significant vibrations during operation. Simultaneously, the radiator itself also vibrates during operation. These vibrations, when combined, can damage the internal components of the radiator, leading to problems such as loosening of components and connection failures. This significantly shortens the radiator's lifespan, increases equipment maintenance costs and replacement frequency, and causes considerable inconvenience to the normal use and maintenance of the vehicle.
[0004] Therefore, this utility model provides a heat sink that is easy to install, in order to solve the problems mentioned in the background art. Utility Model Content
[0005] The purpose of this invention is to address the shortcomings of existing technologies by proposing an easy-to-install radiator. During operation, this radiator, through a unique design, converts vibration into cooling fluid circulation power, eliminating the need for a water pump and additional electricity, thus significantly reducing power generation costs. Simultaneously, the upper damper and shock absorption mechanism work together to efficiently absorb vibration, reducing damage to internal components, enhancing operational stability, and extending service life, offering the dual advantages of energy saving and durability.
[0006] To achieve the above objectives, the present invention provides the following technical solution:
[0007] A heat sink that is easy to install includes a mounting bracket. Upper dampers are fixedly installed on both sides of the upper end of the mounting bracket. A heat sink frame is fixedly installed between the lower ends of the two upper dampers. The heat sink frame is hollow inside and forms a water channel. An inlet pipe is fixedly installed inside the front end of the heat sink frame on one side. Corrugated connecting pipes are fixedly installed on both sides of the lower front end of the heat sink frame. A shock-absorbing mechanism is provided between the lower end of the heat sink frame and the mounting bracket.
[0008] The shock absorption mechanism includes a support base, multiple connecting rods, multiple sliding blocks, multiple transmission rods, multiple spring dampers, a support plate, a power shaft, multiple one-way bearings, an auger box, a first water outlet pipe, a second water outlet pipe, and multiple connecting frames.
[0009] Furthermore, one end of each of the multiple connecting rods is rotatably disposed on one side of the lower end of the heat sink, and the other end of each of the multiple connecting rods is rotatably disposed on the upper end of the sliding block, and the multiple sliding blocks are all slidably disposed inside the support base.
[0010] Furthermore, the plurality of spring dampers are respectively fixedly disposed between the plurality of sliding blocks and the support base.
[0011] Furthermore, multiple connecting brackets are respectively fixedly installed at one end of multiple transmission rods, and the other end of multiple connecting brackets is respectively fixedly connected to the lower end of multiple one-way bearings, and multiple one-way bearings are all fixedly sleeved on the power shaft body.
[0012] Furthermore, the power shaft is rotatably mounted on the front end of the support plate, the auger box and the support plate are fixedly mounted on the lower side of one side inside the mounting frame, and the front end of the power shaft is fixedly connected to the rotating shaft inside the auger box.
[0013] Furthermore, one end of the first water outlet pipe is fixedly installed at the input end of the auger box, and the other end of the first water outlet pipe is fixedly connected to the corrugated connecting pipe.
[0014] Furthermore, two shock-absorbing mechanisms are provided, and the two shock-absorbing mechanisms are respectively fixedly installed on both sides of the lower end of the mounting frame.
[0015] This utility model has the following beneficial effects:
[0016] 1. The present invention proposes an easy-to-install radiator. This radiator does not require an additional water pump or external power to drive the coolant circulation. It converts the vibration of itself and the generator into the power to drive the coolant flow. The reciprocating motion of the transmission rod drives the power shaft to rotate, which in turn drives the auger in the auger box to rotate to transmit the coolant. This significantly reduces power consumption, lowers power generation costs, and improves energy utilization efficiency.
[0017] 2. The present invention proposes an easy-to-install radiator. The radiator is equipped with a spring damper and a shock absorption mechanism between the heat dissipation frame and the mounting frame. By utilizing the large damping between the sliding block and the support seat and the force when the power shaft rotates, the vibration generated during power generation and heat dissipation can be effectively absorbed, reducing the impact of vibration on the internal components of the radiator, improving the stability of the radiator operation, avoiding damage to components caused by vibration, thereby extending the service life of the radiator and reducing equipment maintenance and replacement costs. Attached Figure Description
[0018] Figure 1 This is an axonometric view of the present invention;
[0019] Figure 2 This is a rear-view axle-side schematic diagram of the present invention;
[0020] Figure 3 This is an axonometric schematic diagram of the shock absorption mechanism of this utility model;
[0021] Figure 4 This is a bottom-view axonometric schematic diagram of the shock absorption mechanism of this utility model.
[0022] Legend:
[0023] 1. Shock absorption mechanism; 2. Corrugated connecting pipe; 3. Heat sink bracket; 4. Input pipe; 5. Upper damper; 6. Mounting bracket; 101. Support base; 102. Connecting rod; 103. Sliding block; 104. Transmission rod; 105. Spring damper; 106. Support plate; 107. Power shaft; 108. One-way bearing; 109. Screw box; 110. First water outlet pipe; 111. Second water outlet pipe; 112. Connecting bracket. Detailed Implementation
[0024] 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.
[0025] Reference Figure 1-4 The present invention provides an embodiment of a radiator that is easy to install, comprising a mounting bracket 6, upper dampers 5 fixedly installed on both sides of the upper end of the mounting bracket 6, a radiator frame 3 fixedly installed between the lower ends of the two upper dampers 5, the radiator frame 3 being hollow inside and forming a water channel, an inlet pipe 4 fixedly installed on one side of the front end of the radiator frame 3, corrugated connecting pipes 2 fixedly installed on both sides of the lower end of the front end of the radiator frame 3, and a shock-absorbing mechanism 1 between the lower end of the radiator frame 3 and the mounting bracket 6, wherein there are two shock-absorbing mechanisms 1, which are respectively fixedly installed on both sides of the lower end of the mounting bracket 6;
[0026] Specifically, the upper damper 5 provides initial shock absorption for the heat sink 3. When the equipment vibrates during operation, the upper damper 5 absorbs some of the vibration energy through its elastic deformation, reducing the direct transmission of vibration to the heat sink 3. The hollow water channel inside the heat sink 3 is used to hold the coolant. The coolant enters through the inlet pipe 4 and then connects to the external cooling system via the corrugated connecting pipe 2, realizing the circulation of the coolant. The corrugated connecting pipe 2 has good flexibility and can adapt to slight displacement of the heat sink 3 to a certain extent, avoiding loosening or breakage of the pipe connection due to vibration. The two shock absorption mechanisms 1 are symmetrically arranged, which can evenly disperse the vibration received by the heat sink 3 and improve the overall shock absorption effect. The cooperation between the upper damper 5 and the shock absorption mechanism 1 forms a double shock absorption structure, which significantly improves the shock absorption performance of the heat sink and effectively reduces the impact of vibration on internal components. The hollow water channel design of the heat sink 3 provides a stable channel for coolant circulation, ensuring the heat dissipation effect. The corrugated connecting pipe 2 enhances the stability and adaptability of the pipe connection, improving the reliability and durability of the heat sink.
[0027] The shock absorption mechanism 1 includes a support base 101, multiple connecting rods 102, multiple sliding blocks 103, multiple transmission rods 104, multiple spring dampers 105, a support plate 106, a power shaft 107, multiple one-way bearings 108, an auger box 109, a first water outlet pipe 110, a second water outlet pipe 111, and multiple connecting frames 112. One end of each of the multiple connecting rods 102 is rotatably mounted on one side of the lower end of the heat sink 3, and the other end of each of the multiple connecting rods 102 is rotatably mounted on the upper end of the sliding block 103. The multiple sliding blocks 103 are all slidably mounted inside the support base 101, and the multiple spring dampers 105 are respectively fixedly mounted between the multiple sliding blocks 103 and the interior of the support base 101.
[0028] Specifically, when the heat sink 3 is displaced due to vibration, it drives the connecting rod 102 to move. The rotation of the connecting rod 102 pushes the sliding block 103 to slide within the support base 101. During the sliding process of the sliding block 103, the spring damper 105 is compressed or stretched. The spring damper 105 generates a damping force to resist the movement of the sliding block 103 and absorb vibration energy. At the same time, the sliding of the sliding block 103 drives the transmission rod 104 to move through the connecting frame 112, providing power for the subsequent rotation of the drive shaft 107. The cooperation between the spring damper 105 and the sliding block 103 can efficiently absorb vibration energy and effectively reduce the vibration amplitude. By using the kinetic energy generated by the vibration to drive the transmission rod 104, the originally harmful vibration is converted into usable energy, providing a power basis for coolant circulation, reducing the use of additional power equipment, and reducing costs.
[0029] Multiple connecting brackets 112 are fixedly installed at one end of multiple transmission rods 104, and the other end of multiple connecting brackets 112 is fixedly connected to the lower end of multiple one-way bearings 108. Multiple one-way bearings 108 are fixedly sleeved on the shaft of the power shaft 107. The power shaft 107 is rotatably installed at the front end of the support plate 106. The auger box 109 and the support plate 106 are fixedly installed at the lower end of one side inside the mounting frame 6. The front end of the power shaft 107 is fixedly connected to the rotating shaft inside the auger box 109. One end of the first water outlet pipe 110 is fixedly installed at the input end of the auger box 109. The other end of the first water outlet pipe 110 is fixedly connected to the corrugated connecting pipe 2.
[0030] Specifically, the transmission rod 104 reciprocates under the drive of the sliding block 103, causing the one-way bearing 108 to rotate via the connecting frame 112. Due to the one-way transmission characteristic of the one-way bearing 108, the power shaft 107 always rotates in the same direction, regardless of how the transmission rod 104 reciprocates. The rotation of the power shaft 107 drives the auger inside the auger box 109 to rotate. The suction force generated by the auger rotation causes the coolant to enter the auger box 109 from the corrugated connecting pipe 2 through the first outlet pipe 110, and then be discharged through the second outlet pipe 111, realizing the circulation of the coolant. The application of the one-way bearing 108 ensures that the power shaft 107 rotates stably and continuously in the same direction, guaranteeing the stable pumping effect of the auger box 109 on the coolant. The entire process utilizes vibration energy to drive the coolant circulation, eliminating the need for additional electricity and reducing power generation costs. The compact structure organically combines vibration damping and coolant circulation functions, improving the integration and practicality of the radiator.
[0031] Working Principle: When the radiator is running, the vibrations generated by the radiator itself and the generator are transmitted to the heat sink 3, causing the heat sink 3 to vibrate and shift. The vibration of the heat sink 3 drives the connected rod 102 to move, which in turn pushes the sliding block 103 to slide within the support base 101. During the sliding process of the sliding block 103, the transmission rod 104 is driven to slide within the support base 101 through the connecting frame 112. The sliding of the transmission rod 104 causes the one-way bearing 108 sleeved on the power shaft 107 to be stressed, driving the power shaft 107 to rotate. The front end of the power shaft 107 is fixedly connected to the rotating shaft inside the auger box 109. The rotation of the power shaft 107 drives the auger inside the auger box 109 to rotate, thereby realizing the circulation of coolant through the first outlet pipe 110 into the auger box 109 and then out through the second outlet pipe 111.
[0032] Meanwhile, during the sliding of the sliding block 103, the spring damper 105 generates a damping force, which quickly resets the sliding block 103 after it moves, ensuring that the transmission rod 104 can continue to reciprocate and maintain the continuous rotation of the power shaft 107. Furthermore, throughout the process, the spring damper 105 and the shock absorption mechanism 1 effectively absorb vibrations by utilizing the large damping between the sliding block 103 and the support base 101, as well as the force generated when the power shaft 107 rotates, reducing the impact of vibrations on the overall structure and internal components of the radiator and ensuring stable operation of the radiator.
[0033] 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 heat sink that is easy to install, comprising a mounting bracket (6), characterized in that: The mounting bracket (6) has upper dampers (5) fixedly installed on both sides of the upper end. A heat sink (3) is fixedly installed between the lower ends of the two upper dampers (5). The heat sink (3) is hollow inside and forms a water channel. An input pipe (4) is fixedly installed inside the front end of the heat sink (3) on one side. Corrugated connecting pipes (2) are fixedly installed on both sides of the lower front end of the heat sink (3). A shock absorption mechanism (1) is installed between the lower end of the heat sink (3) and the mounting bracket (6). The shock absorption mechanism (1) includes a support base (101), multiple connecting rods (102), multiple sliding blocks (103), multiple transmission rods (104), multiple spring dampers (105), a support plate (106), a power shaft (107), multiple one-way bearings (108), an auger box (109), a first water outlet pipe (110), a second water outlet pipe (111), and multiple connecting frames (112).
2. A heat sink for easy installation according to claim 1, characterized in that: One end of each of the multiple connecting rods (102) is rotatably disposed on the lower side of the heat sink (3), and the other end of each of the multiple connecting rods (102) is rotatably disposed on the upper end of the sliding block (103). The multiple sliding blocks (103) are all slidably disposed inside the support base (101).
3. A heat sink for easy installation according to claim 1, characterized in that: Multiple spring dampers (105) are respectively fixedly disposed between multiple sliding blocks (103) and the support base (101).
4. The easily installed heat sink of claim 1, wherein: Multiple connecting brackets (112) are fixedly installed at one end of multiple transmission rods (104), and the other end of multiple connecting brackets (112) is fixedly connected to the lower end of multiple one-way bearings (108). Multiple one-way bearings (108) are all fixedly sleeved on the shaft body of the power shaft (107).
5. The easily installed heat sink of claim 1, wherein: The power shaft (107) is rotatably mounted on the front end of the support plate (106). The auger box (109) and the support plate (106) are fixedly mounted on the lower side of the inside of the mounting frame (6). The front end of the power shaft (107) is fixedly connected to the rotating shaft inside the auger box (109).
6. The easily installed heat sink of claim 1, wherein: One end of the first water outlet pipe (110) is fixedly installed at the input end of the auger box (109), and the other end of the first water outlet pipe (110) is fixedly connected to the corrugated connecting pipe (2).
7. The easily installed heat sink of claim 1, wherein: There are two shock absorption mechanisms (1), and the two shock absorption mechanisms (1) are respectively fixedly installed on both sides of the lower end of the mounting frame (6).