Micro-pipeline leakage-proof radiator

By installing a protective mechanism on the outside of the micro-channel radiator, the problem of coolant leakage caused by bumps or impacts is solved, achieving all-round protection and ensuring the stability and long-term reliability of the radiator.

CN224121794UActive Publication Date: 2026-04-14SHENZHEN SHUOZHAN HARDWARE ELECTRONIC TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-05-17
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

Microchannel radiators are easily damaged when subjected to bumps or impacts, leading to coolant leakage, which affects heat dissipation efficiency and equipment stability, and poses safety hazards.

Method used

A protective mechanism is installed on the outside of the micro-channel radiator, including anti-collision bars, support mechanisms and shock absorption mechanisms. The anti-collision bars and springs are arranged in a cross pattern to absorb the impact force, and the slide grooves and transmission plates absorb the side impacts to form all-round protection.

Benefits of technology

It effectively prevents micro-channel radiators from being damaged by external impacts, ensures stable operation, extends service life, and guarantees system safety and reliability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a micro-pipeline leakage-proof radiator, and belongs to the technical field of radiators. The micro-pipeline leakage-proof radiator comprises a micro-pipeline radiator body, the outer wall of the micro-pipeline radiator body is movably sleeved with a protection mechanism, the protection mechanism is square, four damping mechanisms are fixedly connected into the protection mechanism, and the opposite sides of the four damping mechanisms are fixedly connected with the outer wall of the micro-pipeline radiator body. Supporting mechanisms are fixedly connected to the four corners of the micro-pipeline radiator. Compared with the prior art, the micro-pipeline radiator has the advantages that the protection mechanisms are arranged outside the micro-pipeline radiator, so that when equipment suffers from external impact force, various external damping protection mechanisms can quickly absorb and disperse the impact force, and the impact force is reduced or completely prevented from being transmitted to the micro-pipeline radiator; therefore, all-directional protection is provided for the micro-pipeline radiator, and the micro-pipeline radiator is prevented from being damaged due to external force impact.
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Description

Technical Field

[0001] This utility model relates to the field of radiator technology, and in particular to a micro-channel leak-proof radiator. Background Technology

[0002] Microchannel radiators are a new type of heat dissipation device. Through fluid circulation within microchannels, heat is transferred from the heat source to the outside of the radiator and finally dissipated into the environment. Microchannel radiators have a large specific surface area, significantly increasing the heat exchange area per unit volume, and a high heat transfer coefficient, enabling them to quickly conduct and dissipate heat.

[0003] Common microchannel radiators lack external protective devices. Due to their delicate structure, especially at the pipe connections, microchannel radiators are often quite fragile. Once they are bumped or impacted, they are easily damaged, leading to internal coolant leakage. Coolant leakage not only reduces the radiator's cooling efficiency and affects its normal operation, but also affects surrounding equipment or circuits, causing serious consequences such as short circuits and corrosion, posing a great threat to the stability and lifespan of the equipment.

[0004] Therefore, this utility model proposes a micro-channel leak-proof radiator. Utility Model Content

[0005] The purpose of this invention is to provide a micro-channel leak-proof radiator to solve the above-mentioned problems.

[0006] To achieve the above objectives, this utility model provides the following technical solution:

[0007] A micro-channel leak-proof radiator includes a micro-channel radiator, a protective mechanism movably sleeved on the outer wall of the micro-channel radiator, the protective mechanism being square, and four sets of shock-absorbing mechanisms fixedly connected inside the protective mechanism, the opposite sides of the four sets of shock-absorbing mechanisms being fixedly connected to the outer wall of the micro-channel radiator, and support mechanisms fixedly connected to the four corners of the micro-channel radiator, the outer wall of the support mechanism being fixedly connected to the inner wall of the four corners of the protective mechanism.

[0008] Furthermore, the protective mechanism includes eight sets of anti-collision bars one and eight sets of anti-collision bars two. The eight sets of anti-collision bars one are arranged vertically, and the eight sets of anti-collision bars two are arranged horizontally. The eight sets of anti-collision bars one and two are all centrally symmetrical about the micro-channel radiator. The contact points of the anti-collision bars one and two are fixedly connected and arranged in a cross pattern.

[0009] Furthermore, both ends of the eight sets of anti-collision rods and the eight sets of anti-collision rods are fixedly connected to extrusion push plates 2, and springs 2 are fixedly connected to the opposite sides of the two sets of extrusion push plates 2. The outer wall of the springs 2 is movably sleeved with the limiting protective shell, and the inside of the limiting protective shell is movably sleeved with the extrusion push plates 2.

[0010] Furthermore, the support mechanism includes a connecting groove plate, the interior of which is provided with a sliding groove, and a connecting support rod is slidably sleeved inside the sliding groove. A limit block is fixedly sleeved on the top of the outer wall of the connecting support rod, and the outer wall of the limit block is in contact with the connecting groove plate. A spring is movably sleeved on the outer wall of the connecting support rod, and the inner wall of the spring is fixedly connected to the micro-channel radiator.

[0011] Furthermore, the shock absorption mechanism includes a shock absorption shell, the outer wall of which is fixedly connected to the micro-channel radiator, a compression push plate is movably sleeved inside the shock absorption shell, a transmission telescopic rod is fixedly sleeved on the inner wall of the compression push plate, a hinge block is hinged to the top of the transmission telescopic rod, the outer wall of the hinge block is fixedly connected to the connecting transmission plate, and both ends of the connecting transmission plate are fixedly connected to two sets of limiting protective shells.

[0012] Furthermore, each set of connecting groove plates has its two sides fixedly connected to the outer walls of two sets of limiting protective shells. The outer wall of the connecting groove plate is provided with a protective arc plate, and both sides of the protective arc plate are fixedly connected to the two sets of limiting protective shells.

[0013] The technical effects and advantages of this utility model are as follows:

[0014] 1. By installing protective mechanisms on the outside of the micro-channel radiator, when the equipment is subjected to external impact, the various external shock-absorbing and protective mechanisms can quickly absorb and disperse the impact force, reducing or completely avoiding the transmission of the impact force to the micro-channel radiator itself. This provides all-round protection for the micro-channel radiator, preventing damage to the micro-channel radiator due to external impact, ensuring the stable operation of the radiator under complex working conditions, extending its service life, and ensuring the safety and reliability of the entire system. Attached Figure Description

[0015] Figure 1 This is an overall appearance drawing of a micro-channel leak-proof radiator according to the present invention;

[0016] Figure 2 This is a structural diagram of a protective device for a micro-channel leak-proof radiator according to the present invention;

[0017] Figure 3 This is a cross-sectional view of a protective device for a micro-channel leak-proof radiator according to the present invention;

[0018] Figure 4 This is a partial cross-sectional view of a micro-channel leak-proof radiator according to the present invention;

[0019] Figure 5 This is an enlarged view of part A of the micro-channel leak-proof radiator of this utility model;

[0020] Figure 6 This is an enlarged view of part B of the micro-channel leak-proof radiator of this utility model.

[0021] Explanation of reference numerals in the attached figures:

[0022] 1. Microchannel radiator; 2. Shock-absorbing shell; 3. Connecting transmission plate; 4. Anti-collision bar one; 5. Anti-collision bar two; 6. Limiting protective shell; 7. Protective arc plate; 8. Connecting groove plate; 9. Limiting block; 10. Spring one; 11. Connecting support rod; 12. Spring two; 13. Hinge block; 14. Transmission telescopic rod; 15. Extrusion push plate one; 16. Extrusion push plate two. Detailed Implementation

[0023] 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.

[0024] Example 1

[0025] Please see Figures 1 to 6 As shown, the micro-channel leak-proof radiator provided by this utility model includes a micro-channel radiator 1. A protective mechanism is movably sleeved on the outer wall of the micro-channel radiator 1. The protective mechanism is square. Four sets of shock-absorbing mechanisms are fixedly connected inside the protective mechanism. The opposite sides of the four sets of shock-absorbing mechanisms are fixedly connected to the outer wall of the micro-channel radiator 1. Supporting mechanisms are fixedly connected to the four corners of the micro-channel radiator 1. The outer wall of the supporting mechanism is fixedly connected to the inner wall of the four corners of the protective mechanism.

[0026] The protective mechanism includes eight sets of anti-collision bars 1 4 and eight sets of anti-collision bars 2 5. The eight sets of anti-collision bars 1 4 are placed vertically, and the eight sets of anti-collision bars 2 5 are placed horizontally. The eight sets of anti-collision bars 1 4 and anti-collision bars 2 5 are all centrally symmetrical about the micro-channel radiator 1. The contact points of anti-collision bars 1 4 and anti-collision bars 2 5 are fixedly connected and are placed in a cross pattern.

[0027] Both ends of the eight sets of anti-collision bars 1 and 2 are fixedly connected to the extrusion push plate 2 16. The opposite sides of the two sets of extrusion push plates 2 16 are fixedly connected to the spring 2 12. The outer wall of the spring 2 12 is movably sleeved with the limiting protective shell 6, and the inside of the limiting protective shell 6 is movably sleeved with the extrusion push plate 2 16.

[0028] Eight sets of anti-collision bars 1 and eight sets of anti-collision bars 2 are installed on the outside of the micro-channel radiator 1. These anti-collision bars are arranged in a cross pattern to form a protective barrier. When a part of the radiator is impacted by external forces, the other sets of anti-collision bars 1 and 2 can effectively disperse the impact force. The impact force is transmitted to the spring 2 12 through multiple sets of extrusion push plates 2 16 and slides inside the limiting protective shell 6. The spring 2 12 absorbs, transforms and ultimately cancels the impact force through its elastic properties, thereby preventing the impact force from acting directly on the micro-channel radiator 1. This effectively prevents the radiator from being damaged by external impacts and effectively isolates the micro-channel radiator 1 from the harsh external environment, ensuring its stable operation and long-term reliability under complex working conditions.

[0029] Example 2

[0030] Based on Example 1, please refer to Figures 1 to 6 As shown, the support mechanism includes a connecting groove plate 8, with a sliding groove inside the connecting groove. A connecting support rod 11 is slidably sleeved inside the sliding groove. A limiting block 9 is fixedly sleeved on the top of the outer wall of the connecting support rod 11. The outer wall of the limiting block 9 is in contact with the connecting groove plate 8. A spring 10 is movably sleeved on the outer wall of the connecting support rod 11. The inner wall of the spring 10 is fixedly connected to the micro-channel radiator 1.

[0031] Both sides of each set of connecting groove plates 8 are fixedly connected to the outer walls of two sets of limiting protective shells 6. The outer wall of the connecting groove plate 8 is provided with a protective arc plate 7, and both sides of the protective arc plate 7 are fixedly connected to two sets of limiting protective shells 6.

[0032] When the impact force acts on the corner, the protective arc plate 7 first contacts the impact force and disperses it to the limiting protective shells 6 at both ends. Under the action of the impact force, if the positions of the two sets of limiting protective shells 6 shift, the connecting support rod 11 will slide flexibly inside the connecting groove plate 8, thereby ensuring that the micro-channel radiator 1 always remains stably in the middle position, effectively reducing the positional shift of the radiator caused by the impact and maintaining its stability. Before the impact occurs, the spring 10 pushes the connecting groove plate 8 outward through its elastic potential energy, so that the external protective frame and the micro-channel radiator... A certain safe distance is maintained between the devices 1 to provide buffer space for the radiator. After the impact ends, the elastic potential energy of the spring 10 quickly takes effect, pushing the connecting slot plate 8 back to its initial position. At the same time, it ensures that the connecting support rod 11 is always stably held in the middle position of the connecting slot plate 8, providing continuous support and protection for the radiator. This allows the micro-channel radiator 1 to be fully protected when facing impact, not only avoiding structural damage caused by impact, but also ensuring the stability and reliability of the radiator during the impact process, enabling it to operate stably under complex and changing working conditions.

[0033] The shock absorption mechanism includes a shock absorption shell 2. The outer wall of the shock absorption shell 2 is fixedly connected to the micro-channel radiator 1. An extrusion push plate 15 is movably sleeved inside the shock absorption shell 2. A transmission telescopic rod 14 is fixedly sleeved on the inner wall of the extrusion push plate 15. A hinge block 13 is hinged to the top of the transmission telescopic rod 14. The outer wall of the hinge block 13 is fixedly connected to the connecting transmission plate 3. Both ends of the connecting transmission plate 3 are fixedly connected to two sets of limiting protective shells 6.

[0034] When impacted from the side, the surface of the connecting transmission plate 3 comes into contact with the impact force, pushing the transmission telescopic rod 14 to slide into the shock-absorbing housing 2, and pushing the extrusion push plate 15 to move inward synchronously. The shock-absorbing housing 2 and the interior of the extrusion push plate 15 are in a closed state. When impacted, the air inside the shock-absorbing housing 2 and the extrusion push plate 15 is compressed, absorbing and offsetting the impact, thereby keeping the micro-channel radiator 1 stable. At the same time, when the connecting transmission plate 3 is offset, the hinge block 13 and the transmission telescopic rod 14 are hinged and rotated to prevent the side impact force from causing damage between the shock-absorbing housing 2 and the transmission telescopic rod 14.

[0035] When subjected to a side impact, the surface of the connecting transmission plate 3 first comes into direct contact with the impact force. Under the action of the impact force, the transmission telescopic rod 14 is pushed and slides into the interior of the shock-absorbing housing 2, while simultaneously driving the extrusion push plate 15 to move inward. The interior of the shock-absorbing housing 2 and the extrusion push plate 15 are in a completely sealed state. When the impact force is applied, the internal air is rapidly compressed to form a high-pressure air cushion, which effectively absorbs and offsets the impact energy, reduces the impact force on the micro-channel radiator 1, and ensures that the radiator always maintains stable operation. At the same time, when the connecting transmission plate 3 is displaced due to the impact force, the hinge structure between the hinge block 13 and the transmission telescopic rod 14 can rotate flexibly, dispersing the side impact force and preventing the impact force from acting directly between the shock-absorbing housing 2 and the transmission telescopic rod 14, thereby preventing structural damage caused by the impact, effectively extending its service life, and ensuring the reliability and safety of the equipment under complex working conditions.

[0036] 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 micro-channel leak-proof radiator, characterized in that, The device includes a microchannel radiator (1), the outer wall of which is movably fitted with a protective mechanism. The protective mechanism is square, and four sets of shock-absorbing mechanisms are fixedly connected inside the protective mechanism. The opposite sides of the four sets of shock-absorbing mechanisms are fixedly connected to the outer wall of the microchannel radiator (1). Support mechanisms are fixedly connected to the four corners of the microchannel radiator (1), and the outer wall of the support mechanism is fixedly connected to the inner wall of the four corners of the protective mechanism.

2. The micro-channel leak-proof radiator according to claim 1, characterized in that, The protective mechanism includes eight sets of anti-collision rods (4) and eight sets of anti-collision rods (5). The eight sets of anti-collision rods (4) are arranged vertically, and the eight sets of anti-collision rods (5) are arranged horizontally. The eight sets of anti-collision rods (4) and anti-collision rods (5) are all centrally symmetrical with the micro-channel radiator (1) as the center. The contact points of the anti-collision rods (4) and the anti-collision rods (5) are fixedly connected and arranged in a cross pattern.

3. A micro-channel leak-proof radiator according to claim 2, characterized in that, Both ends of the eight sets of anti-collision rods (4) and the eight sets of anti-collision rods (5) are fixedly connected to the extrusion push plate (16). The opposite sides of the two sets of extrusion push plates (16) are fixedly connected to the spring (12). The outer wall of the spring (12) is movably sleeved with the limiting protective shell (6), and the inside of the limiting protective shell (6) is movably sleeved with the extrusion push plate (16).

4. A micro-channel leak-proof radiator according to claim 1, characterized in that, The support mechanism includes a connecting groove plate (8), the inside of which is provided with a sliding groove, and a connecting support rod (11) is slidably sleeved inside the sliding groove. A limiting block (9) is fixedly sleeved on the top of the outer wall of the connecting support rod (11), and the outer wall of the limiting block (9) is in contact with the connecting groove plate (8). A spring (10) is movably sleeved on the outer wall of the connecting support rod (11), and the inner wall of the spring (10) is fixedly connected to the micro-channel radiator (1).

5. A micro-channel leak-proof radiator according to claim 1, characterized in that, The shock absorption mechanism includes a shock absorption shell (2), the outer wall of which is fixedly connected to the micro-channel radiator (1), and a compression push plate (15) is movably sleeved inside the shock absorption shell (2). A transmission telescopic rod (14) is fixedly sleeved on the inner wall of the compression push plate (15). A hinge block (13) is hinged to the top of the transmission telescopic rod (14). The outer wall of the hinge block (13) is fixedly connected to the connecting transmission plate (3). The two ends of the connecting transmission plate (3) are fixedly connected to two sets of limiting protective shells (6).

6. A micro-channel leak-proof radiator according to claim 4, characterized in that, Both sides of each set of connecting groove plates (8) are fixedly connected to the outer walls of two sets of limiting protective shells (6). The outer wall of the connecting groove plate (8) is provided with a protective arc plate (7). Both sides of the protective arc plate (7) are fixedly connected to two sets of limiting protective shells (6).