Double-sided cooling radiator structure assembly

By setting a seal chamber structure of slide rod, restriction disk and restriction block in the double-sided cooling radiator structural assembly, the heat exchange tube is avoided when the heat exchange tube is squeezed by the heating plate, and the heat dissipation efficiency is improved through the design of the pre-cooling tank and the heat discharge fan, and the problems of easy breakage and lack of pre-cooling in the prior art are solved.

CN222888167UActive Publication Date: 2025-05-20HUBEI YOUCHENG THERMAL EQUIP CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202421693072.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-17
Publication Date
2025-05-20
Estimated Expiration
2034-07-17

AI Technical Summary

Technical Problem

When the existing double-sided cooling radiator structural components are subject to extrusion by the heating plate, they are prone to damage to the heat exchange tube and lack effective pre-cooling measures, which affects the efficiency and life of the system.

Method used

A double-sided cooling radiator structural component is designed, and a sealing chamber is formed by setting a slide rod, a restriction disk and a restriction block between the upper and lower heat exchange plates to prevent the heat exchanger from being squeezed; at the same time, a pre-cooling tank and a heat discharge fan are added to achieve pre-cooling of the heat exchanger.

Benefits of technology

It effectively avoids damage to the heat exchange pipe, extends its service life, reduces maintenance costs and downtime; at the same time, it improves the efficiency of the heat exchange process, adapts to high-load working scenarios, and improves energy utilization efficiency.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN222888167U_ABST
    Figure CN222888167U_ABST
Patent Text Reader

Abstract

The utility model provides a double-sided cooling radiator structure assembly. The double-face cooling radiator structure assembly comprises an upper heat exchange plate, a lower heat exchange plate is arranged at the bottom of the upper heat exchange plate, pipe burying plates are fixedly connected to the upper heat exchange plate and the lower heat exchange plate, a water inlet is formed in the left side of each pipe burying plate, and a water outlet is formed in the right side of each pipe burying plate; a plurality of sliding rods are fixedly connected to the bottom of the upper heat exchange plate, limiting discs are fixedly connected to the bottoms of the sliding rods, a plurality of limiting blocks are fixedly connected to the top of the lower heat exchange plate, limiting holes are formed in the tops of the limiting blocks, sliding holes are formed in the limiting blocks, and the limiting discs are matched with the sliding holes. The double-sided cooling radiator structure assembly provided by the utility model has the effects of guaranteeing the stable operation of equipment and improving the energy utilization efficiency.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the field of heat dissipation structures, and in particular to a double-sided cooling radiator structural component. Background Technology

[0002] With the development of electronic equipment, the power of power-consuming components in electronic equipment is getting bigger and bigger. As a result, the heat generated by electronic equipment increases. In order to ensure that the electronic equipment is in the best working state, a heat sink is needed to dissipate heat for the electronic equipment. The double-sided cooling heat sink structure component is usually a component in which an insulating heat-conducting substrate is welded on both sides of the power chip, and all power terminals are connected to the insulating heat-conducting substrate. A heat sink is installed on the outside of the insulating heat-conducting substrate. The existing double-sided cooling heat sink structure component has certain defects.

[0003] When the heat receiving plate of a traditional radiator is squeezed, the middle part will sag downward, which makes it impossible to effectively prevent the heat exchange tube from being squeezed, which can easily lead to damage of the heat exchange tube, thus affecting the normal operation of the entire system. This situation will bring many problems in practical applications, such as frequent maintenance and replacement costs, and production interruptions caused by equipment failures. In addition, the existing radiator lacks effective pre-cooling measures before entering the heat exchange tank. This makes the heat exchange tank need to bear a greater workload. In the long run, it will not only shorten the service life of the heat exchange tank, but also may lead to reduced system efficiency and energy waste.

[0004] Therefore, it is necessary to provide a double-sided cooling radiator structural component to solve the above technical problems. Contents of utility model

[0005] The utility model provides a double-sided cooling radiator structural component, which solves the problems of insufficient anti-extrusion performance and pre-cooling of heat exchange tubes.

[0006] In order to solve the above technical problems, the utility model provides a double-sided cooling radiator structural component comprising: an upper heat exchange plate, a lower heat exchange plate is arranged at the bottom of the upper heat exchange plate, the upper heat exchange plate and the lower heat exchange plate are fixedly connected with buried tube plates, a water inlet is provided on the left side of the buried tube plate, and a water outlet is provided on the right side of the buried tube plate, a plurality of sliding rods are fixedly connected to the bottom of the upper heat exchange plate, a limiting plate is fixedly connected to the bottom of the sliding rod, a plurality of limiting blocks are fixedly connected to the top of the lower heat exchange plate, a limiting hole is provided on the top of the limiting block, a sliding hole is provided inside the limiting block, and the limiting plate is adapted to the sliding hole.

[0007] Preferably, a first hose is sleeved on the water outlet, a confluence pipe is fixedly connected to the first hose, a water pump is installed on the confluence pipe, a pre-cooling tank is fixedly connected to the confluence pipe, fins are fixedly connected to the surface of the pre-cooling tank, a stable base is fixedly connected to the bottom of the pre-cooling tank, a heat dissipation mounting plate is fixedly connected to the top of the pre-cooling tank, two heat dissipation fans are installed on the heat dissipation mounting plate, a return pipe is fixedly connected to the right side of the pre-cooling tank, and the other end of the return pipe is fixedly connected to a heat exchanger.

[0008] Preferably, a controller is installed on the heat exchanger, a second hose is fixedly connected to the heat exchanger, and the other end of the second hose is sleeved on the water inlet.

[0009] Preferably, the controller is electrically connected to the water pump and the heat dissipation fans.

[0010] Preferably, four plug-in plates are fixedly connected to the upper heat exchange plate, and a plurality of fastening holes are formed in the plug-in plates.

[0011] Preferably, four plug-in blocks are fixedly connected to the lower heat exchange plate, plug-in grooves are formed in the plug-in blocks, and fasteners are arranged on the plug-in blocks.

[0012] Compared with the related art, a double-sided cooling radiator structure component provided by the present utility model has the following beneficial effects:

[0013] When the two heat-receiving plates are under extrusion, this structure can prevent the heat exchange tubes from being affected by the extrusion and damaged, greatly extending the service life of the heat exchange tubes. This enables the radiator to not require frequent replacement of the heat exchange tubes during long-term use, reducing the maintenance cost and the downtime caused by component replacement, ensuring the continuous and stable operation of related equipment. Moreover, the pre-cooling measure before entering the heat exchanger can significantly reduce the working intensity and make the heat exchange process more efficient. This not only speeds up the heat transfer and dissipation speed but also enables the entire radiator system to handle more heat under the same conditions, thus better adapting to high-load working scenarios and improving the energy utilization efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] Figure 1 is a schematic structural diagram of a preferred embodiment of a double-sided cooling radiator structure component provided by the present utility model;

[0015] Figure 2 is Figure 1 the left view schematic diagram of the double-sided cooling radiator structure component shown;

[0016] Figure 3 is Figure 1 the enlarged schematic diagram of part A shown;

[0017] Figure 4 isFigure 2 Schematic enlarged view of part B shown

[0018] Reference numerals in the figure: 1, upper heat exchange plate; 2, lower heat exchange plate; 3, buried pipe plate; 4, water inlet; 5, water outlet; 6, sliding rod; 7, limiting disc; 8, limiting block; 9, limiting hole; 10, sliding hole; 11, hose 1; 12, confluence pipe; 13, water pump; 14, precooling tank; 15, fin; 16, stable base; 17, heat dissipation mounting plate; 18, heat dissipation fan; 19, return pipe; 20, heat exchanger; 21, controller; 22, hose 2; 23, plug-in board; 24, fastening hole; 25, plug-in block; 26, plug-in groove; 27, fastener. Specific embodiments

[0019] The present utility model will be further described below in conjunction with the accompanying drawings and embodiments.

[0020] Please refer to Figure 1 , Figure 2 , Figure 3 , Figure 4 , wherein, Figure 1 is a schematic structural diagram of a preferred embodiment of a double-sided cooling radiator structure assembly provided by the present utility model; Figure 2 is Figure 1 a left view schematic diagram of the double-sided cooling radiator structure assembly shown; Figure 3 is Figure 1 a schematic enlarged view of part A shown;

[0021] Figure 4 is Figure 2 a schematic enlarged view of part B shown. A double-sided cooling radiator structure assembly includes: an upper heat exchange plate 1, a lower heat exchange plate 2 is arranged at the bottom of the upper heat exchange plate 1, buried pipe plates 3 are fixedly connected to both the upper heat exchange plate 1 and the lower heat exchange plate 2, a water inlet 4 is opened on the left side of the buried pipe plate 3, a water outlet 5 is opened on the right side of the buried pipe plate 3, a plurality of sliding rods 6 are fixedly connected to the bottom of the upper heat exchange plate 1, a limiting disc 7 is fixedly connected to the bottom of the sliding rod 6, a plurality of limiting blocks 8 are fixedly connected to the top of the lower heat exchange plate 2, a limiting hole 9 is opened at the top of the limiting block 8, a sliding hole 10 is opened inside the limiting block 8, and the limiting disc 7 is adapted to the sliding hole 10. This structure can prevent the heat exchange tubes from being implicated and squeezed and damaged when the two heat-receiving plates are under extrusion, greatly prolonging the service life of the heat exchange tubes. This enables the radiator to not require frequent replacement of the heat exchange tubes during long-term use, reducing the maintenance cost and the downtime caused by replacing components, and ensuring the continuous and stable operation of related equipment.

[0022] A hose 11 is sleeved on the water outlet 5. A confluence pipe 12 is fixedly connected to the hose 11. A water pump 13 is installed on the confluence pipe 12. A pre-cooling tank 14 is fixedly connected to the confluence pipe 12. Fins 15 are fixedly connected to the surface of the pre-cooling tank 14. A stable base 16 is fixedly connected to the bottom of the pre-cooling tank 14. A heat dissipation mounting plate 17 is fixedly connected to the top of the pre-cooling tank 14. Two heat dissipation fans 18 are installed on the heat dissipation mounting plate 17. A return pipe 19 is fixedly connected to the right side of the pre-cooling tank 14. The other end of the return pipe 19 is fixedly connected to a heat exchanger 20. After the heat exchange liquid passes through the heat exchange and is discharged from the heat exchange pipe through the water outlet 5, it all enters the pre-cooling tank 14 through the confluence pipe 12. Air is introduced from both sides of the pre-cooling tank 14 by the heat dissipation fans 18 and discharged by the heat dissipation fans 18. The fins 15 can improve the pre-cooling efficiency of the pre-cooling tank 14.

[0023] A controller 21 is installed on the heat exchanger 20. A hose 22 is fixedly connected to the heat exchanger 20. The other end of the hose 22 is sleeved with the water inlet 4. After the heat exchanger 20 cools the heat exchange liquid, it is introduced into the heat exchange pipes in the buried pipe plate 3 through the hose 22.

[0024] The controller 21 is electrically connected to the water pump 13, and the controller 21 is electrically connected to the heat dissipation fans 18. The controller 21 controls the start and stop of the water pump 13, the heat dissipation fans 18 and the heat exchanger 20.

[0025] Four plug-in plates 23 are fixedly connected to the upper heat exchange plate 1. A number of fastening holes 24 are provided in the plug-in plates 23. A row of fastening holes 24 on the plug-in plates 23 is adapted to the fasteners 27 on the plug-in blocks 25.

[0026] Four plug-in blocks 25 are fixedly connected to the lower heat exchange plate 2. Plug-in slots 26 are provided in the plug-in blocks 25. Fasteners 27 are provided on the plug-in blocks 25. After the plug-in plates 23 are inserted into the plug-in slots 26, the corresponding fasteners 27 and fastening holes 24 are used to fix the upper heat exchange plate 1 and the lower heat exchange plate 2 together. At the same time, the design of multiple rows of fastening holes 24 enables the distance between the two heat exchange plates to be adjusted within a certain range.

[0027] The working principle of a double-sided cooling radiator structure component provided by the present utility model is as follows:

[0028] Since this structure is mainly placed between two components that need heat dissipation, when these two components are squeezed, they will dent inward and exert pressure on the heat exchange tubes in the buried tube plate 3, which may cause them to rupture and result in liquid leakage. By setting multiple limiting blocks 8, the sliding rod 6 and the limiting disc 7 slide in the sliding holes 10 inside the limiting blocks 8. The limiting disc 7 and the sliding holes 10 form a sealed cavity. When the heat receiving plate is squeezed, the air inside the sealed cavity is compressed to form a buffer distance. Even when the limiting disc 7 slides to the bottom, the height of the limiting blocks 8 is higher than that of the two buried tube plates 3, ensuring that they will not be squeezed.

[0029] Compared with the related art, a double-sided cooling radiator structure component provided by the present utility model has the following beneficial effects:

[0030] When the two heat receiving plates are under extrusion, this structure can prevent the heat exchange tubes from being implicated and damaged, greatly extending the service life of the heat exchange tubes. This enables the radiator to not require frequent replacement of the heat exchange tubes during long-term use, reducing the maintenance cost and the downtime caused by component replacement, ensuring the continuous and stable operation of related equipment. Moreover, the pre-cooling measure before entering the heat exchanger can significantly reduce the working intensity and make the heat exchange process more efficient. This not only speeds up the heat transfer and dissipation rate but also allows the entire radiator system to handle more heat under the same conditions, thus better adapting to high-load working scenarios and improving the energy utilization efficiency.

[0031] The above are only the embodiments of the present utility model, and thus do not limit the patent scope of the present utility model. Any equivalent structure or equivalent process transformation made by using the specification and drawings of the present utility model, or directly or indirectly applied in other related technical fields, shall be similarly included in the patent protection scope of the present utility model.

Claims

1. A double-sided cooling radiator structural component, characterized in that: include: An upper heat exchange plate, a lower heat exchange plate is arranged at the bottom of the upper heat exchange plate, the upper heat exchange plate and the lower heat exchange plate are fixedly connected with buried tube plates, a water inlet is opened on the left side of the buried tube plate, and a water outlet is opened on the right side of the buried tube plate, a plurality of sliding rods are fixedly connected to the bottom of the upper heat exchange plate, a limiting disk is fixedly connected to the bottom of the sliding rod, a plurality of limiting blocks are fixedly connected to the top of the lower heat exchange plate, a limiting hole is opened on the top of the limiting block, a sliding hole is opened inside the limiting block, and the limiting disk is adapted to the sliding hole.

2. A double-sided cooling radiator structural assembly according to claim 1, characterized in that: A hose 1 is sleeved on the water outlet, a confluence pipe is fixedly connected to the hose 1, a water pump is installed on the confluence pipe, a precooling tank is fixedly connected to the confluence pipe, fins are fixedly connected to the surface of the precooling tank, a stable base is fixedly connected to the bottom of the precooling tank, a heat exhaust mounting plate is fixedly connected to the top of the precooling tank, two heat exhaust fans are installed on the heat exhaust mounting plate, a return pipe is fixedly connected to the right side of the precooling tank, and a heat exchanger is fixedly connected to the other end of the return pipe.

3. A double-sided cooling radiator structural assembly according to claim 2, characterized in that: A controller is installed on the heat exchanger, and a second hose is fixedly connected to the heat exchanger, and the other end of the second hose is sleeved with the water inlet.

4. A double-sided cooling radiator structural assembly according to claim 3, characterized in that: The controller is electrically connected to the water pump, and the controller is electrically connected to the heat exhaust fan.

5. A double-sided cooling radiator structural assembly according to claim 1, characterized in that: Four plug-in plates are fixedly connected to the upper heat exchange plate, and a plurality of fastening holes are provided on the plug-in plates.

6. A double-sided cooling radiator structural assembly according to claim 1, characterized in that: Four plug-in blocks are fixedly connected to the lower heat exchange plate, plug-in slots are provided on the plug-in blocks, and fasteners are arranged on the plug-in blocks.