Rotary heat conduction type spray cooling structure

By rotating the rotating shunt cooling pipe and the blowing module in the heat conduction spray cooling structure, the problem of uneven cooling is solved, and uniform cooling and efficient cooling effects of the cooling pipe are achieved.

CN223376426UActive Publication Date: 2025-09-23DONGTAI CITY HAIDING ELECTRIC EQUIP MFG CO LTD
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Patent Information

Application Number
CN202422622139.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-29
Publication Date
2025-09-23
Estimated Expiration
2034-10-29

AI Technical Summary

Technical Problem

In existing spray cooling devices, the heat dissipation effect on the lower side of the coil is poor, resulting in uneven cooling and affecting the cooling effect.

Method used

It adopts a rotating heat-conducting spray cooling structure, drives the diversion cooling pipe to rotate through a uniform adjustment mechanism, and combines the lifting module and the blowing module to achieve uniform distribution of cooling water, extend the transportation distance, and enhance the cooling effect.

Benefits of technology

It achieves uniform heat dissipation around the cooling pipe, improves the cooling effect and efficiency, ensures that the cooling water fully contacts the pipe, and enhances the cooling uniformity and effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a rotary heat conduction type spray cooling structure which comprises a cooling box, a spray plate, a liquid passing assembly and a uniform adjusting mechanism. According to the utility model, a plurality of shunting cooling pipes are used for shunting, so that liquid is shunted through a plurality of thin branch pipelines to achieve the purpose of rapid cooling, and the key point is that the adjusting motor can drive the driving rod to rotate through the power shaft, and the driving rod drives a plurality of driving sleeves on the driving rod to rotate; in this way, the driving sleeve is engaged with the driven sleeve to rotate continuously, the driven sleeve drives the respective flow dividing cooling pipes to rotate, and when the spraying plate sprays cooling water downwards, due to the fact that the flow dividing cooling pipes rotate continuously, the lower sides, the front sides and the rear sides of the flow dividing cooling pipes can rotate to the upper portions to make full contact with the cooling water; in this way, heat dissipation can be evenly and effectively conducted on the periphery of the flow dividing cooling pipe, and liquid in the flow dividing cooling pipe is evenly cooled.
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Description

Technical Field

[0001] The utility model belongs to the field of cooling devices, in particular to a rotating heat-conducting spray cooling structure. Background Art

[0002] There are many cooling devices for cooling, including closed and open heat exchangers, and heat exchangers are commonly used; spray cooling is also a commonly used cooling method. The current spray cooling device generally sprays cooling water, transports the liquid in the cooling zone through the coil, and then the sprayed cooling water passes through the coil to cool the liquid inside the coil. At the same time, the coil needs to be made of a material with high thermal conductivity; when the above-mentioned spray cooling device is in use, there is often a problem of poor heat dissipation effect on the lower side of the coil, resulting in uneven heat dissipation, because generally when spraying cooling water, the cooling water is generally sprayed to the upper side of the coil first, and then passes downward, so that the lower side of the coil is not fully exposed to the cooling water and the cooling effect is poor. For this reason, it is necessary to improve the cooling effect and uniformity. Utility Model Content

[0003] In view of the above-mentioned deficiencies in the prior art, the problem solved by the present invention is to provide a rotary heat-conducting spray cooling structure with uniform cooling and good cooling effect.

[0004] In order to solve the above problems, the technical solutions adopted by the present invention are as follows:

[0005] A rotary heat-conducting spray cooling structure comprises a cooling box, a spray plate, a liquid flow assembly, and a uniform adjustment mechanism; the spray plate is provided above the interior of the cooling box; the liquid flow assembly is installed below the spray plate; the liquid flow assembly comprises a liquid inlet pipe, a liquid inlet shunt pipe, a rotary joint, a shunt cooling pipe, a liquid discharge shunt pipe, and a liquid discharge pipe; the liquid inlet pipe is installed on one side of the cooling box, the inner end of the liquid inlet pipe extends into the interior of the cooling box, the lower side of the inner end of the liquid inlet pipe is connected to the liquid inlet shunt pipe, and a plurality of rotary joints are evenly installed on the inner side of the liquid inlet shunt pipe; A drain pipe is installed on the other side of the cooling box, and the inner end of the drain pipe extends to the inside of the cooling box. The lower side of the inner end of the drain pipe is connected to the drain diverter pipe, and a plurality of rotating joints are evenly installed on the inner side of the drain diverter pipe; the multiple rotating joints on the inner sides of the liquid inlet diverter pipe and the drain diverter pipe correspond to each other one by one, and the diverter cooling pipes are rotatably installed between the corresponding rotating joints, and the multiple diverter cooling pipes are located directly below the spray plate; the uniform adjustment mechanism is installed inside the cooling box; the uniform adjustment mechanism drives the multiple diverter cooling pipes to rotate.

[0006] Furthermore, it also includes a support plate; the support plate is installed inside the cooling box; the uniform adjustment mechanism is installed on the support plate.

[0007] Furthermore, the uniform adjustment mechanism includes an adjusting motor, a power shaft, a driving rod, a driving sleeve, and a driven sleeve; the adjusting motor is installed on the rear side of the support plate; the front side of the adjusting motor is connected to the power shaft, the outer end of the power shaft is connected to the driving rod, and multiple driving sleeves are evenly sleeved and installed on the driving rod; a driven sleeve is respectively sleeved and installed on the diversion cooling pipe; the upper side of the driving sleeve is threadedly engaged with the lower side of the driven sleeve.

[0008] Furthermore, the driving sleeve and the driven sleeve are an engaging connection structure of a worm gear.

[0009] Furthermore, it also includes a lifting module and a blowing module; the inner end of the liquid inlet pipe is connected to the liquid inlet guide pipe, the lower side of the liquid inlet guide pipe is connected to the liquid inlet diversion pipe through a plurality of telescopic cooling pipes, and the lower side of the liquid inlet diversion pipe is installed on the support plate; the inner end of the drain pipe is connected to the drain guide pipe, the lower side of the drain guide pipe is connected to the drain diversion pipe through a plurality of telescopic cooling pipes, and the lower side of the drain diversion pipe is installed on the support plate; a plurality of blowing modules are respectively installed on both sides of the middle of the cooling box; the lifting module is installed on the cooling box and drives the support plate to move downward, the support plate moves downward and drives the plurality of telescopic cooling pipes to stretch downward, and the telescopic cooling pipes face the blowing module after stretching.

[0010] Furthermore, the lifting module includes a lifting block, a lifting motor, and a power screw; the lifting blocks are respectively installed on both sides of the support plate, the lifting blocks are installed on the inner wall of the cooling box for sliding up and down, the lifting motor is installed on one side of the cooling box, the lifting motor drives the power screw, and the power screw is screwed to a lifting block.

[0011] Furthermore, the blowing module includes a blowing motor, a rotating shaft, and blowing blades; multiple blowing motors are installed on both sides of the middle of the cooling box, the rotating shaft is connected to the inner side of the blowing motor, the inner end of the rotating shaft extends to the side of the inside of the cooling box, and multiple blowing blades are evenly connected around the inner end of the rotating shaft.

[0012] Furthermore, the diversion cooling pipe is made of heat-conducting material.

[0013] Furthermore, a conical drainage cover with a larger upper portion and a smaller lower portion is provided at the lower end of the cooling box.

[0014] The beneficial effects of the utility model are as follows:

[0015] 1. The utility model performs diversion through multiple diversion cooling pipes, so that the liquid is diverted through multiple thin branch pipes to achieve the purpose of rapid cooling. The key is that the regulating motor of the utility model can drive the driving rod to rotate through the power shaft, and the driving rod drives the multiple driving sleeves thereon to rotate, so that the driving sleeve engages with the driven sleeve to rotate continuously, so that the driven sleeve drives the respective diversion cooling pipes to rotate. When the spray plate sprays cooling water downward, the diversion cooling pipe is constantly rotating, so that the lower side and the front and rear sides of the diversion cooling pipe can be rotated to the upper part to fully contact the cooling water, so that the heat can be evenly and effectively dissipated around the diversion cooling pipe, so that the liquid inside the diversion cooling pipe is evenly cooled.

[0016] 2. When the cooling effect needs to be improved, the utility model can also drive the power screw to rotate through the lifting motor in the lifting module, and the power screw drives the lifting block to move downward, thereby driving the support plate to move downward, and the support plate drives multiple liquid inlet diversion pipes and multiple liquid discharge diversion pipes to move downward, so that the multiple telescopic cooling pipes are stretched downward, and the liquid transportation distance is extended by the multiple telescopic cooling pipes, thereby improving the cooling time. The telescopic cooling pipes are cooled by air through the blowing module, which can greatly improve the cooling effect. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 It is a structural diagram of the present utility model.

[0018] Figure 2 It is a top view structural diagram of the support plate, liquid inlet diverter pipe, liquid discharge diverter pipe, diverter cooling pipe, and uniform adjustment mechanism of the utility model.

[0019] Figure 3 For this utility model Figure 2 A schematic diagram of the partially enlarged structure on one side.

[0020] Figure 4 For this utility model Figure 1 A magnified schematic diagram of the structure on one side.

[0021] Figure 5 For this utility model Figure 4 Structural diagram of the middle support plate moving downward and driving the telescopic cooling pipe to stretch and extend downward. DETAILED DESCRIPTION

[0022] The present invention will be described in further detail below with reference to the accompanying drawings.

[0023] like Figures 1 to 5As shown, a rotary heat-conducting spray cooling structure includes a cooling box 1, a spray plate 2, a liquid-passing assembly 3, and a uniform adjustment mechanism 4; a spray plate 2 is provided on the upper part of the cooling box 1; the liquid-passing assembly 3 is installed below the spray plate 2; the liquid-passing assembly 3 includes a liquid inlet pipe 31, a liquid inlet shunt pipe 32, a rotary joint 33, a shunt cooling pipe 34, a liquid discharge shunt pipe 35, and a liquid discharge pipe 36; a liquid inlet pipe 31 is installed on one side of the cooling box 1, the inner end of the liquid inlet pipe 31 extends to the interior of the cooling box 1, the lower side of the inner end of the liquid inlet pipe 31 is connected to the liquid inlet shunt pipe 32, and a plurality of rotary joints are evenly installed on the inner side of the liquid inlet shunt pipe 32. 33; a drain pipe 36 is installed on the other side of the cooling box 1, the inner end of the drain pipe 36 extends to the inside of the cooling box 1, the lower side of the inner end of the drain pipe 36 is connected to the drain diverter pipe 35, and a plurality of rotating joints 33 are evenly installed on the inner side of the drain diverter pipe 35; the multiple rotating joints 33 on the inner side of the liquid inlet diverter pipe 32 and the drain diverter pipe 35 correspond to each other one by one, and the diverter cooling pipe 34 is rotatably installed between the corresponding rotating joints 33, and the multiple diverter cooling pipes 34 are located directly below the spray plate 2; the uniform adjustment mechanism 4 is installed inside the cooling box 1; the uniform adjustment mechanism 4 drives the multiple diverter cooling pipes 34 to rotate.

[0024] like Figures 1 to 5 As shown, in order to facilitate the installation of the uniform adjustment mechanism 4 , a support plate 5 is further included; the support plate 5 is installed inside the cooling box 1 ; and the uniform adjustment mechanism 4 is installed on the support plate 5 .

[0025] like Figures 1 to 5 As shown, to facilitate the rotation of the shunt cooling tube 34, the uniform adjustment mechanism 4 further includes an adjustment motor 41, a power shaft 42, a drive rod 43, a drive sleeve 44, and a driven sleeve 45. The adjustment motor 41 is mounted on the rear side of the support plate 5. The front side of the adjustment motor 41 is connected to the power shaft 42, the outer end of the power shaft 42 is connected to the drive rod 43, and multiple drive sleeves 44 are uniformly mounted on the drive rod 43. A driven sleeve 45 is mounted on each of the shunt cooling tubes 34. The upper side of the drive sleeve 44 is threadedly engaged with the lower side of the driven sleeve 45. Furthermore, the drive sleeve 44 and the driven sleeve 45 are connected in a worm gear engagement structure.

[0026] like Figures 1 to 5As shown, in order to further improve the cooling effect when needed, it further includes a lifting module 6 and a blowing module 7; the inner end of the liquid inlet pipe 31 is connected to the liquid inlet guide pipe 311, and the lower side of the liquid inlet guide pipe 311 is connected to the liquid inlet diversion pipe 32 through a plurality of telescopic cooling pipes 8, and the lower side of the liquid inlet diversion pipe 32 is installed on the support plate 5; the inner end of the drain pipe 36 is connected to the drain guide pipe 361, and the lower side of the drain guide pipe 361 is connected to the drain diversion pipe 35 through a plurality of telescopic cooling pipes 8, and the lower side of the drain diversion pipe 35 is installed on the support plate 5; a plurality of blowing modules 7 are respectively installed on both sides of the middle part of the cooling box 1; the lifting module 6 is installed on the cooling box 1 and drives the support plate 5 to move downward, and the support plate 5 moves downward and drives the plurality of telescopic cooling pipes 8 to stretch downward, and the telescopic cooling pipes 8 face the blowing module 7 after stretching.

[0027] like Figures 1 to 5 As shown, further, the lifting module 6 includes a lifting block 61, a lifting motor 62, and a power screw 63; the lifting blocks 61 are respectively installed on both sides of the support plate 5, and the lifting blocks 61 are installed on the inner wall of the cooling box 1 for sliding up and down. The lifting motor 62 is installed on one side of the cooling box 1, and the lifting motor 62 drives the power screw 63, which is threadedly connected to a lifting block 61.

[0028] like Figures 1 to 5 As shown, the blowing module 7 further includes a blowing motor 71, a rotating shaft 72, and blowing blades 73. Multiple blowing motors 71 are installed on both sides of the middle of the cooling box 1, front and back. The inner side of the blowing motor 71 is connected to the rotating shaft 72. The inner end of the rotating shaft 72 extends to the inside of the cooling box 1. Multiple blowing blades 73 are evenly connected around the inner end of the rotating shaft 72. Furthermore, the diverter cooling pipe 34 is made of a thermally conductive material. Furthermore, the lower end of the cooling box 1 is provided with a conical drainage cover 11 that is larger at the top and smaller at the bottom.

[0029] The present invention performs diversion through multiple diversion cooling pipes 34, so that the liquid is diverted through multiple thin branch pipes to achieve the purpose of rapid cooling. The key is that the regulating motor 41 of the present invention can drive the driving rod 43 to rotate through the power shaft 42, and the driving rod 43 drives the multiple driving sleeves 44 thereon to rotate, so that the driving sleeve 44 engages with the driven sleeve 45 to rotate continuously, so that the driven sleeve 45 drives the respective diversion cooling pipes 34 to rotate. In this way, when the spray plate 2 sprays cooling water downward, the diversion cooling pipe 34 is constantly rotating, so that the lower side and the front and rear sides of the diversion cooling pipe 34 can be rotated to the upper part to fully contact the cooling water, so that the diversion cooling pipe 34 can dissipate heat evenly and effectively all around, so that the liquid inside the diversion cooling pipe 34 is evenly cooled.

[0030] When the cooling effect needs to be improved, the utility model can also drive the power screw 63 to rotate through the lifting motor 62 in the lifting module 6, and the power screw drives the lifting block to move downward, thereby driving the support plate 5 to move downward, and the support plate 5 drives multiple liquid inlet diversion pipes 32 and multiple liquid discharge diversion pipes 35 to move downward, so that the multiple telescopic cooling pipes 8 are stretched downward, and the liquid transportation distance is extended by the multiple telescopic cooling pipes 8, thereby improving the cooling time. The telescopic cooling pipes 8 are cooled by air through the blowing module 7, which can greatly improve the cooling effect.

[0031] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A rotating heat-conducting spray cooling structure, characterized in that: The cooling unit comprises a cooling box, a spray plate, a liquid flow assembly, and a uniform adjustment mechanism; a spray plate is provided on the upper part of the cooling box; the liquid flow assembly is installed under the spray plate; the liquid flow assembly comprises a liquid inlet pipe, a liquid inlet shunt pipe, a rotary joint, a shunt cooling pipe, a liquid discharge shunt pipe, and a liquid discharge pipe; a liquid inlet pipe is installed on one side of the cooling box, the inner end of the liquid inlet pipe extends to the inside of the cooling box, the lower side of the inner end of the liquid inlet pipe is connected to the liquid inlet shunt pipe, and a plurality of rotary joints are evenly installed on the inner side of the liquid inlet shunt pipe; a liquid discharge pipe is installed on the other side of the cooling box, the inner end of the discharge pipe extends to the inside of the cooling box, and the lower side of the inner end of the discharge pipe is connected to the liquid discharge shunt pipe. A plurality of rotating joints are evenly installed on the inner sides of the flow pipe and the discharge diversion pipe; the multiple rotating joints on the inner sides of the liquid inlet diversion pipe and the discharge diversion pipe correspond to each other one by one, and the diversion cooling pipes are rotatably installed between the corresponding rotating joints, and the multiple diversion cooling pipes are located directly below the spray plate; the uniform adjustment mechanism is installed inside the cooling box; the uniform adjustment mechanism drives the multiple diversion cooling pipes to rotate; it also includes a support plate; the support plate is installed inside the cooling box; the uniform adjustment mechanism is installed on the support plate; the diversion cooling pipe is made of heat-conductive material; the lower end of the cooling box is provided with a conical drainage cover that is larger at the top and smaller at the bottom.

2. The rotary heat-conducting spray cooling structure according to claim 1, characterized in that: The uniform adjustment mechanism includes an adjustment motor, a power shaft, a driving rod, a driving sleeve, and a driven sleeve; the adjustment motor is installed on the rear side of the support plate; the front side of the adjustment motor is connected to the power shaft, the outer end of the power shaft is connected to the driving rod, and multiple driving sleeves are evenly sleeved and installed on the driving rod; a driven sleeve is respectively sleeved and installed on the diversion cooling pipe; the upper side of the driving sleeve is threadedly engaged with the lower side of the driven sleeve.

3. The rotary heat-conducting spray cooling structure according to claim 2, characterized in that: The driving sleeve and the driven sleeve are an engaging connection structure of a worm gear.

4. The rotary heat-conducting spray cooling structure according to claim 1, characterized in that: It also includes a lifting module and a blowing module; the inner end of the liquid inlet pipe is connected to the liquid inlet guide pipe, the lower side of the liquid inlet guide pipe is connected to the liquid inlet diversion pipe through a plurality of telescopic cooling pipes, and the lower side of the liquid inlet diversion pipe is installed on the support plate; the inner end of the drain pipe is connected to the drain guide pipe, the lower side of the drain guide pipe is connected to the drain diversion pipe through a plurality of telescopic cooling pipes, and the lower side of the drain diversion pipe is installed on the support plate; a plurality of blowing modules are respectively installed on both sides of the middle of the cooling box; the lifting module is installed on the cooling box and drives the support plate to move downward, and the support plate moves downward and drives the plurality of telescopic cooling pipes to stretch downward, and the telescopic cooling pipes face the blowing module after stretching.

5. The rotary heat-conducting spray cooling structure according to claim 4, characterized in that: The lifting module includes a lifting block, a lifting motor, and a power screw; the lifting blocks are installed on both sides of the support plate, and the lifting blocks are installed on the inner wall of the cooling box for sliding up and down. The lifting motor is installed on one side of the cooling box. The lifting motor drives the power screw, and the power screw is screwed to a lifting block.

6. The rotary heat-conducting spray cooling structure according to claim 4, characterized in that: The blowing module includes a blowing motor, a rotating shaft, and blowing blades; multiple blowing motors are installed on both sides of the middle of the cooling box, the rotating shaft is connected to the inner side of the blowing motor, the inner end of the rotating shaft extends to the side of the inside of the cooling box, and multiple blowing blades are evenly connected around the inner end of the rotating shaft.