Radiator assembly with protection effect
By introducing a protective plate, damper, and spring structure into the radiator assembly, the problem of compression deformation caused by vibration is solved, resulting in a radiator assembly design with longer life and convenient disassembly and assembly.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- KUNSHAN MINGHAO TECHNOLOGY CO LTD
- Filing Date
- 2025-06-04
- Publication Date
- 2026-05-12
AI Technical Summary
Existing radiators suffer from compression deformation between the inlet and pipes due to vibration during use, which affects disassembly and replacement. The lack of protective mechanisms also shortens the service life of the radiators.
A radiator assembly with a protective plate and a damper was designed. The combination of compression springs and return springs provides buffer protection to prevent compression and collision deformation, and the limit block and tension spring enable quick assembly and disassembly.
It improves the service life of the radiator, prevents deformation from squeezing and impact, simplifies the disassembly and assembly process of the pipeline, and enhances the convenience and stability of operation.
Smart Images

Figure CN224234047U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of radiator technology, specifically a radiator assembly with protective effect. Background Technology
[0002] A radiator assembly is an integrated system of heat conduction and heat convection. It uses the high thermal conductivity of metal to transfer heat from the heat source to the heat sink fins, and then uses airflow to dissipate the heat into the environment. Its core function is to maintain the equipment within a safe temperature range and prevent performance degradation or hardware damage caused by overheating. Traditionally, radiators are mostly connected to pipes by threaded connections. However, direct threaded connections are prone to loosening after prolonged use, which can lead to poor sealing of the inlet and leakage, reducing the practicality of the radiator.
[0003] To overcome the aforementioned shortcomings, in existing technology 1 (Chinese patent application number CN202222679110.8, application date 2022-10-11), a car radiator with good sealing performance, the cooperation between the locking block and the locking groove provides a limiting effect for the positioning rod inside the positioning groove, thereby providing a limiting effect between the fixed seat and the docking seat. At this time, even if the screw is loose, the fixed seat and the docking seat will not easily break apart, further improving the stability of this structure during use, and thus improving the stability of the car radiator during use, thereby reducing the failure rate of the car during use. Although the existing technology can improve the sealing between the inlet and the pipe, in actual use of the radiator body, the vibration generated during the cooperation will cause the inlet and the pipe to be squeezed and deformed, which will affect the disassembly and replacement of the pipe later. The lack of a protective mechanism to protect the inlet and the pipe shortens the service life of the radiator body. Therefore, a radiator assembly with protective effect has been proposed to solve the above problems well. Utility Model Content
[0004] The purpose of this utility model is to provide a radiator assembly with protective effect, in order to solve the problem mentioned in the background art that, in actual use, the radiator body on the market will experience squeezing deformation between the water inlet and the pipe due to vibration generated during use, which will affect the subsequent disassembly and replacement of the pipe, and the lack of a protective mechanism to protect the water inlet and the pipe will shorten the service life of the radiator body.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a radiator assembly with protective effect, comprising a radiator body and a row of heat dissipation fins disposed above the radiator body for heat dissipation, wherein the front side of the radiator body is provided with an interface for water inlet and drainage, and the two interfaces are connected to a delivery pipe via a mounting plate; a protective plate is slidably mounted on the front side of the radiator body via a first compression spring, and the inner sides of the two protective plates are respectively provided with delivery pipes, wherein the length of the delivery pipe is greater than the length of the connection between the interface and the delivery pipe.
[0006] Preferably, two dampers are connected to the opposite sides of the two protective plates, and the two dampers have the same structure.
[0007] Preferably, the inner side of the protective plate described above is rotatably connected to two extrusion rods, and the two extrusion rods are inclined, and the bottom ends of the two extrusion rods are rotatably connected to a moving block.
[0008] Preferably, the surface of the protective plate below is connected to one end of two first return springs and the other end of the two first return springs is connected to a movable block, wherein the two movable blocks are slidably installed inside the protective plate.
[0009] Preferably, the mounting plate has a limiting block slidably mounted inside by a second reset spring, and the two limiting blocks are symmetrically arranged about the vertical center line of the mounting plate, with the outer ends of the two limiting blocks extending through into the interior of the interface, and the outer ends of the two limiting blocks corresponding to a pressing rod.
[0010] Preferably, one end of a tension spring is connected to the outer side of the two pressing rods, and the two tension springs have the same structure, and the other end of the two tension springs is connected to an interface.
[0011] Preferably, a second compression spring is connected inside the mounting plate, and the second compression spring is evenly spaced. A top plate is connected to the top of the second compression spring. The top plate is slidably installed inside the mounting plate, and the mounting plate is located above the top plate.
[0012] Compared with the prior art, the beneficial effects of this utility model are as follows:
[0013] A protective plate is provided, which is slidably installed on the outer side of the radiator body by two first compression springs. Since the two protective plates are connected by two dampers, the buffer protection performance between the two protective plates can be increased by the two dampers, so as to avoid the phenomenon of collision deformation of the delivery pipe when the radiator body is squeezed and collided, thereby improving the service life of the radiator body.
[0014] Furthermore, while the two protective plates are being squeezed, collided, contracted, and moved, the two squeezing rods connected to the bottom of the upper protective plate will simultaneously squeeze the two moving blocks to expand and move. The two moving blocks will stop moving after they reach the limit position, which can avoid the phenomenon of the two protective plates contracting too much and causing collision damage to the interface and the conveying pipe, thus improving practicality.
[0015] Furthermore, by utilizing the movable blocks connected to the surface of the lower protective plate via two first return springs, the positions of the two movable blocks after compression and movement can be elastically reset by the elastic force of the two first return springs themselves. This allows the two protective plates that have been compressed and moved to be reset and moved, so as to facilitate subsequent cyclic buffer protection.
[0016] Equipped with pressing rods, when it is necessary to disassemble and replace the conveying pipe, simply press the two pressing rods to compress and retract the two limit blocks through the two tension springs. After the two limit blocks retract and move into the interior of the mounting plate, the mounting plate can be removed from the interface, thus allowing the conveying pipe to be disassembled and replaced, making the operation more time-saving and labor-saving.
[0017] Furthermore, during the disassembly and replacement of the interface and the mounting plate, a second compression spring with a coil of compression and contraction will use its own elasticity to reset the position of the top plate after the compression and downward movement, and then the rising top plate will push the mounting plate out of the interface, thus realizing quick and easy disassembly and replacement of the delivery pipe, which is more practical. Attached Figure Description
[0018] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0019] Figure 2 This is a three-dimensional structural diagram of the present invention viewed from below;
[0020] Figure 3 This is a partial three-dimensional structural diagram of the protective plate and conveying pipe of this utility model;
[0021] Figure 4 This utility model Figure 1 Enlarged structural diagram at point A in the middle;
[0022] Figure 5 This is a partial three-dimensional structural diagram of the interface and delivery pipe of this utility model;
[0023] Figure 6 This is a three-dimensional structural diagram of the interface and top plate of this utility model after they have been moved.
[0024] In the diagram: 1. Radiator body; 2. Heat sink fins; 3. Interface; 4. Delivery pipe; 5. Protective plate; 6. First compression spring; 7. Damper; 8. Compression rod; 9. Mounting plate; 10. Moving block; 11. First return spring; 12. Pressing rod; 13. Tension spring; 14. Limiting block; 15. Second return spring; 16. Top plate; 17. Second compression spring. Detailed Implementation
[0025] 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.
[0026] This utility model provides the following technical solution: a heat sink assembly with protective effect:
[0027] Example 1: To address the issue that in the actual use of existing radiator bodies 1, vibrations during operation can cause compression deformation between the inlet and the pipes, affecting subsequent pipe disassembly and replacement, and lacking a protective mechanism to protect the inlet and pipes, thus shortening the service life of the radiator body 1, the following solution is disclosed: a radiator body 1, and a row of heat dissipation fins 2 disposed on top of the radiator body 1 for heat dissipation. The front side of the radiator body 1 is provided with inlet and outlet interfaces 3, and the two interfaces 3 are connected to a delivery pipe 4 via a mounting plate 9. A protective plate 5 is slidably mounted on the front side of the radiator body 1 via a first compression spring 6, and the inner sides of the two protective plates 5 correspond to the delivery pipe 4. The length of the delivery pipe 4 is greater than the length of the connection between the interface 3 and the delivery pipe 4.
[0028] Two dampers 7 are connected to the opposite sides of the two protective plates 5, and the two dampers 7 have the same structure. Two compression rods 8 are rotatably connected to the inner side of the upper protective plate 5, and the two compression rods 8 are inclined. The bottom ends of the two compression rods 8 are rotatably connected to the moving blocks 10. The surface of the lower protective plate 5 is connected to one end of two first return springs 11, and the other end of the two first return springs 11 is connected to the moving blocks 10. The two moving blocks 10 are slidably installed inside the protective plate 5.
[0029] like Figures 1-4As shown, when the radiator body 1 vibrates during use, the two protective plates 5 will retract and move through the two first compression springs 6. At this time, the damper 7 connected to the inner side of the two protective plates 5 will increase the buffer protection performance between the two protective plates 5, avoid the phenomenon of collision deformation when the interface 3 and the delivery pipe 4 are squeezed and collided, and improve the service life of the radiator body 1.
[0030] While the two protective plates 5 are being squeezed, collided, contracted, and moved, the upper protective plate 5 will simultaneously drive the two squeezing rods 8 to squeeze the two moving blocks 10 on the surface of the lower protective plate 5 to expand their position. After the two moving blocks 10 move to the limit position, they will stop moving. This avoids the phenomenon that the two protective plates 5 contract too much and cause collision damage to the interface 3 and the conveying pipe 4. Finally, the two first reset springs 11 can reset the position of the two moving blocks 10 after being squeezed and moved by their own elasticity. This can assist the two protective plates 5 in cyclic buffering protection, making it more practical.
[0031] Example 2 differs from Example 1 in that it allows for assisted and quick disassembly of the conveying pipe 4, thereby improving the efficiency of disassembly and replacement of the conveying pipe 4 and making the operation more time-saving and labor-saving. The following is disclosed:
[0032] Inside the mounting plate 9, a limiting block 14 is slidably mounted via a second reset spring 15. The two limiting blocks 14 are symmetrically arranged about the vertical center line of the mounting plate 9, and their outer ends extend through to the interior of the interface 3. The outer ends of the two limiting blocks 14 correspond to a pressing rod 12. The outer sides of the two pressing rods 12 are connected to one end of a tension spring 13, and the two tension springs 13 have the same structure. The other end of the two tension springs 13 is connected to the interface 3. Inside the mounting plate 9, a second compression spring 17 is connected, and the second compression spring 17 is evenly spaced. The top of the second compression spring 17 is connected to a top plate 16, which is slidably mounted inside the mounting plate 9. Above the top plate 16, the mounting plate 9 is located.
[0033] like Figures 1-6As shown, when the conveying pipe 4 needs to be quickly disassembled and replaced, simply press the two pressing rods 12, and the tension spring 13 will simultaneously squeeze the two limiting blocks 14 to retract and move. After the two limiting blocks 14 retract and move into the interior of the mounting plate 9, the mounting plate 9 can be removed from the interior of the interface 3, thereby enabling the disassembly and replacement of the conveying pipe 4. Conversely, when the mounting plate 9 is inserted into the interior of the interface 3, the two inclined limiting blocks 14 will retract and move under the pressure of the interface 3. At this time, the two second reset springs 15 will automatically spring the two limiting blocks 14 into the interior of the interface 3 through their own elasticity, thereby achieving the limitation and fixation of the conveying pipe 4, preventing the conveying pipe 4 from loosening and falling off due to shaking during use, thus improving stability.
[0034] During the process of disassembling and replacing the interface 3 and the mounting plate 9, the second compression spring 17, which has a coil of compression and storage, will use its own elasticity to reset and move the top plate 16 after it has been compressed and moved downward. At this time, the reset and moved top plate 16 will push the mounting plate 9 to the outside of the interface 3, thereby enabling quick and easy disassembly and replacement of the conveying pipe 4, making the operation more time-saving and labor-saving.
[0035] The above is the entire working process of the device, and all contents not described in detail in this specification are existing technologies known to those skilled in the art.
[0036] The contents not described in detail in this specification are existing technologies known to those skilled in the art. Although the present invention 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 invention should be included within the protection scope of the present invention.
Claims
1. A radiator assembly with protective effect, comprising a radiator body (1) and a row of heat sinks (2) disposed above the radiator body (1) for heat dissipation, wherein the front side of the radiator body (1) is provided with an interface (3) for water inlet and water outlet, and the two interfaces (3) are connected to a delivery pipe (4) via a mounting plate (9). Its features are: The front side of the radiator body (1) is slidably mounted with a protective plate (5) via a first compression spring (6), and the inner sides of the two protective plates (5) are respectively connected to a conveying pipe (4). At the same time, the length of the conveying pipe (4) is greater than the length of the connection between the interface (3) and the conveying pipe (4).
2. A heat sink assembly with protective effect according to claim 1, characterized in that: Two dampers (7) are connected to the opposite sides of the two protective plates (5), and the two dampers (7) have the same structure.
3. A heat sink assembly with protective effect according to claim 1, characterized in that: The inner side of the protective plate (5) above is rotatably connected to two extrusion rods (8), and the two extrusion rods (8) are inclined, and the bottom ends of the two extrusion rods (8) are rotatably connected to a moving block (10).
4. A heat sink assembly with protective effect according to claim 3, characterized in that: The surface of the protective plate (5) below is connected to one end of two first return springs (11) and the other end of the two first return springs (11) is connected to a moving block (10), wherein the two moving blocks (10) are slidably installed inside the protective plate (5).
5. A heat sink assembly with protective effect according to claim 1, characterized in that: The mounting plate (9) is slidably mounted with a limiting block (14) by a second reset spring (15), and the two limiting blocks (14) are symmetrically arranged about the vertical center line of the mounting plate (9), and the outer ends of the two limiting blocks (14) extend through to the interior of the interface (3), wherein the outer ends of the two limiting blocks (14) correspond to a pressing rod (12).
6. A heat sink assembly with protective effect according to claim 5, characterized in that: The outer sides of the two pressing rods (12) are connected to one end of the tension spring (13), and the two tension springs (13) have the same structure, and the other end of the two tension springs (13) is connected to the interface (3).
7. A heat sink assembly with protective effect according to claim 5, characterized in that: The mounting plate (9) is connected to a second compression spring (17) inside, and the second compression spring (17) is set at equal intervals. The top of the second compression spring (17) is connected to a top plate (16). The top plate (16) is slidably installed inside the mounting plate (9), and the mounting plate (9) is located above the top plate (16).