Cooling water cooling device for electrode shell equipment

By introducing cooling flow components and heat dissipation fin structures into the electrode shell equipment, the flow time is extended and the contact area is increased. Combined with fan cooling, the problem of low cooling water efficiency in the electrode shell equipment is solved, achieving a highly efficient and energy-saving cooling effect.

CN223837593UActive Publication Date: 2026-01-27SHAANXI COAL & CHEM IND GRP SHENMU ENERGY DEVELOPME
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Patent Information

Application Number
CN202520706096.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-15
Publication Date
2026-01-27
Estimated Expiration
2035-04-15

AI Technical Summary

Technical Problem

The existing electrode shell equipment has low cooling water efficiency and is not energy-saving or environmentally friendly. Traditional cooling systems have the problem of low cooling efficiency.

Method used

By employing cooling flow components and heat dissipation fins, secondary heat dissipation is achieved through increasing flow time and contact area, combined with fan cooling, thereby improving cooling efficiency.

Benefits of technology

It improves the heat dissipation efficiency of cooling water, reduces energy consumption, and achieves an environmentally friendly and energy-saving cooling effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of electrode shell equipment cooling, in particular to an electrode shell equipment cooling water cooling device which comprises a cooling bin. Two partition plates are fixedly connected to the left end and the right end of the inner wall of the cooling bin, steel plates are fixedly connected to the ends, close to each other, of the two partition plates, and first groove bodies are formed in the upper ends and the lower ends of the steel plates in a penetrating mode. When cooling water flows into the steel plate, heat of the cooling water is transmitted to the heat dissipation fins through the heat conduction strips on the steel plate, and then the heat dissipation fins are subjected to heat dissipation work through starting of the fans on the heat dissipation fins, so that the cooling water is primarily subjected to heat dissipation work; and then the flowing time of the cooling water is prolonged and the contact area during flowing is increased in the cooling water flowing process through the subsequent cooling flowing assembly, so that the work of secondary heat dissipation is achieved, and the problems that the cooling water of the motor shell equipment is low in cooling water efficiency, energy-saving and environment-friendly are solved.
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Description

Technical Field

[0001] This utility model pertains to electrode shell equipment cooling technology, specifically relating to an electrode shell equipment cooling water cooling device. Background Technology

[0002] Electrode housings are a key component used in electrolytic metallurgy or electrochemical industries. They are mainly used to support and protect electrodes (such as anodes or cathodes) and provide stable current conduction and mechanical support during electrolysis.

[0003] Electrode housing equipment generates a lot of heat during operation, requiring a cooling system to maintain normal operation. Traditional cooling systems typically use water cooling, but this has problems such as low cooling efficiency and high energy consumption.

[0004] Therefore, a cooling water cooling device for electrode housing equipment is proposed, which has a cooling flow component and a preliminary heat dissipation structure. It improves the heat dissipation efficiency of cooling water through secondary heat dissipation. During the heat dissipation process, the heat dissipation fins are shared and the structure provides the contact area and flow time for liquid flow. This solves the problems of low cooling water efficiency and lack of energy saving and environmental protection in existing motor housing equipment cooling water. Utility Model Content

[0005] In order to overcome the problems of low cooling water efficiency and lack of energy conservation and environmental protection in existing motor housing equipment cooling water, a cooling water cooling device for electrode housing equipment is proposed.

[0006] The technical solution of this utility model is as follows: a cooling water cooling device for an electrode shell device, including a cooling chamber; it also includes a cooling flow component and heat dissipation fins. Two partition plates are fixed to the left and right ends of the inner wall of the cooling chamber. A steel plate is fixed to the end of the two partition plates that are close to each other. First grooves are opened through the upper and lower ends of the steel plate. Heat dissipation fins are fixed to the ends of the two partition plates that are far from each other. Two sets of heat-conducting strips are fixed to the lower end of the steel plate. Each set of heat-conducting strips passes through the partition plate and is fixed to the corresponding heat dissipation fin. Three second grooves are opened through the upper and lower ends of the heat dissipation fins. Fans are installed on the second grooves. The outer walls of the front and rear ends of the cooling chamber are provided with evenly distributed heat dissipation grooves. A cooling flow component is provided on the cooling chamber.

[0007] Preferably, a partition is placed on the upper end of the two partitions, and a sealing ring is fixed to the lower end of the partition. The outer wall of the sealing ring is in contact with the inner wall of the two partitions at their close ends and the inner wall of the cooling chamber on the partition. Four drip sprayers are fixedly connected to the lower end of the partition inside the sealing ring.

[0008] Preferably, the cooling flow assembly includes a flow guide plate, a first heat-conducting plate, and a second heat-conducting plate; two sets of flow guide plates are fixedly connected to one end of the two partition plates that are close to each other, and the two sets of flow guide plates are respectively arranged in a centrally symmetrical and inclined manner. The lower end of the flow guide plate is fixedly connected to a second heat-conducting plate, and the second heat-conducting plate at the lower end of each set of flow guide plates passes through the partition plate and is fixedly connected to the first heat-conducting plate in its corresponding direction.

[0009] Preferably, there are two diversion plates at the front end of the cooling chamber and three diversion plates at the rear end of the cooling chamber.

[0010] Preferably, the upper end of the first heat-conducting sheet is fixedly connected to the heat dissipation fins in the corresponding direction.

[0011] Preferably, a fixed frame is fixed to the upper end of the cooling chamber, and a sealing plate is fixed to the upper end of the inner wall of the fixed frame. The lower end of the sealing plate and the upper end of the partition form a cooling water storage chamber.

[0012] Preferably, an injection pipe is fixedly connected to the upper end of the sealing plate, and a drain pipe is fixedly connected to the left end of the outer wall of the cooling chamber.

[0013] The beneficial effects of this utility model are as follows: When cooling water flows into the steel plate, its heat is transferred to the heat dissipation fins through the heat conduction strips on the steel plate. Then, the fan on the heat dissipation fins is turned on to dissipate heat, thus initially dissipating heat from the cooling water. Subsequently, the cooling flow components increase the flow time and contact area of ​​the cooling water during its flow, thereby achieving secondary heat dissipation. This solves the problems of low cooling efficiency and lack of energy saving and environmental protection in motor housing equipment. Attached Figure Description

[0014] Figure 1 The diagram shown is a three-dimensional structural schematic of a cooling water cooling device for an electrode shell according to this utility model.

[0015] Figure 2 The diagram shows a three-dimensional disassembled view of the cooling water storage chamber of an electrode shell equipment cooling water cooling device according to this utility model.

[0016] Figure 3 The diagram shown is a three-dimensional structural schematic of the preliminary heat dissipation structure of a cooling water cooling device for an electrode shell according to this utility model.

[0017] Figure 4 The diagram shows a three-dimensional structural schematic of the cooling chamber of an electrode shell equipment cooling water cooling device according to this utility model.

[0018] Figure 5 The diagram shown is a three-dimensional cross-sectional view of the cooling flow component of the cooling water cooling device for an electrode shell equipment according to this utility model.

[0019] The labels in the attached diagram are as follows: 1. Cooling chamber; 101. Drain plate; 102. First heat-conducting fin; 103. Second heat-conducting fin; 2. Fixing frame; 3. Sealing plate; 4. Injection pipe; 5. Partition plate; 6. Sealing ring; 7. Drip sprinkler; 8. Partition plate; 9. Steel plate; 10. First tank; 11. Heat dissipation fins; 12. Heat-conducting strip; 13. Second tank; 14. Fan; 15. Heat dissipation groove; 16. Drain pipe. Detailed Implementation

[0020] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0021] Please see Figures 1-5 This utility model provides an embodiment: a cooling water cooling device for an electrode shell device, including a cooling chamber 1; it also includes a cooling flow component and heat dissipation fins 11. Two partition plates 8 are fixed to the left and right ends of the inner wall of the cooling chamber 1. A steel plate 9 is fixed to the end of the two partition plates 8 that is close to each other. First grooves 10 are opened through the upper and lower ends of the steel plate 9. Heat dissipation fins 11 are fixed to the ends of the two partition plates 8 that are far from each other. Two sets of heat-conducting strips 12 are fixed to the lower end of the steel plate 9. Each set of heat-conducting strips 12 passes through the partition plate 8 and is fixed to the corresponding heat dissipation fin 11. Three second grooves 13 are opened through the upper and lower ends of the heat dissipation fins 11. A fan 14 is installed, and the outer walls of the front and rear ends of the cooling chamber 1 are provided with evenly distributed heat dissipation grooves 15. A cooling flow component is installed on the cooling chamber 1. When the cooling water flows into the steel plate 9, its heat is transferred to the heat dissipation fins 11 through the heat conduction strips 12 on the steel plate 9. Then, the fan 14 on the heat dissipation fins 11 is turned on to dissipate heat, thus initially dissipating heat from the cooling water. Then, the subsequent cooling flow component increases the flow time and contact area of ​​the cooling water during the flow process, thus achieving secondary heat dissipation. This solves the problem of low cooling efficiency and lack of energy saving and environmental protection of the cooling water in the motor housing equipment.

[0022] Please see Figures 1-3In this embodiment, a partition 5 is placed on the upper end of the two partition plates 8. A sealing ring 6 is fixedly connected to the lower end of the partition plate 5. The outer wall of the sealing ring 6 is in contact with the inner wall of the two partition plates 8 that are close to each other and the inner wall of the cooling chamber 1 on the partition plate 8. Four drip sprayers 7 are fixedly connected through the lower end of the partition plate 5 inside the sealing ring 6. The cooling water on the partition plate 5 flows into the subsequent steel plate 9 through the drip sprayers 7. The sealing structure of the sealing ring 6 can prevent liquid from flowing into the heat dissipation fins 11 and causing damage to the fan 14. A fixing frame 2 is fixedly connected to the upper end of the cooling chamber 1. A sealing plate 3 is fixedly connected to the upper end of the inner wall of the fixing frame 2. The lower end of the sealing plate 3 and the upper end of the partition plate 5 form a cooling water storage chamber. An injection pipe 4 is fixedly connected through the upper end of the sealing plate 3. A drain pipe 16 is fixedly connected through the left end of the outer wall of the cooling chamber 1. The cooling water falling into the bottom of the cooling chamber 1 is circulated and cooled by a water pump through the drain pipe 16.

[0023] Please see Figures 4-5 In this embodiment, the cooling flow assembly includes a flow guide plate 101, a first heat-conducting plate 102, and a second heat-conducting plate 103. Two sets of flow guide plates 101 are fixedly connected to one end of the two partition plates 8 that are close to each other. The two sets of flow guide plates 101 are respectively arranged in a centrally symmetrical and inclined manner. The lower end of the flow guide plate 101 is fixedly connected to the second heat-conducting plate 103. The second heat-conducting plate 103 at the lower end of each set of flow guide plates 101 passes through the partition plate 8 and is fixedly connected to the first heat-conducting plate 102 in its corresponding direction. There are two flow guide plates 101 located at the front end of the cooling chamber 1 and two flow guide plates 101 located at the rear end of the cooling chamber 1. There are three heat-conducting plates. The upper end of the first heat-conducting plate 102 is fixed to the heat dissipation fins 11 in the corresponding direction. Two sets of centrally symmetrical and mutually inclined guide plates 101 are distributed on the cooling chamber 1 to extend the flow time and contact area of ​​the cooling water in the cooling chamber 1. During the flow, the heat of the cooling water on the guide plate 101 is transferred to the first heat-conducting plate 102 through the second heat-conducting plate 103. Then the first heat-conducting plate 102 continues to transfer the heat to the heat dissipation fins 11. With the flow of cooling water and heat adsorption, secondary cooling is performed, thereby improving the overall cooling efficiency.

[0024] First, cooling water is injected into the cooling water storage chamber by connecting the cooling water pipe and the injection pipe 4 in a through-type manner. Then, the cooling water above the partition 5 flows into the cooling chamber 1 below through the drip sprinkler 7. The cooling water falling from the drip sprinkler 7 first flows onto the steel plate 9, and continues to flow down through the first groove 10 on the steel plate 9 to the guide plate 101. The heat of the cooling water on the steel plate 9 is transferred to the heat conduction strip 12 through the steel plate 9, and then to the heat dissipation fins 11. Then, the heat exchange is carried out by turning on the fan 14, thus performing the first step of cooling the cooling water falling from the drip sprinkler 7. The water temperature is then increased by two sets of centrally symmetrical, mutually inclined diversion plates 101 distributed on the cooling chamber 1, which extend the flow time and contact area of ​​the cooling water in the cooling chamber 1. During the flow, the heat of the cooling water on the diversion plates 101 is transferred to the first heat conduction plate 102 through the second heat conduction plate 103. Then, the first heat conduction plate 102 transfers the heat to the heat dissipation fins 11. With the flow of cooling water and heat adsorption, secondary cooling is performed, thereby improving the overall cooling efficiency. The cooling water flowing to the bottom of the cooling chamber 1 is circulated and cooled by a water pump through the drain pipe 16.

Claims

1. A cooling water cooling device for an electrode shell device, comprising a cooling chamber (1); characterized in that: It also includes a cooling flow assembly and heat dissipation fins (11). Two partition plates (8) are fixed to the left and right ends of the inner wall of the cooling chamber (1). A steel plate (9) is fixed to the end of the two partition plates (8) that are close to each other. A first groove (10) is opened through the upper and lower ends of the steel plate (9). A heat dissipation fin (11) is fixed to the end of the two partition plates (8) that are far from each other. Two sets of heat conduction strips (12) are fixed to the lower end of the steel plate (9). Each set of heat conduction strips (12) passes through the partition plate (8) and is fixed to the corresponding heat dissipation fin (11). Three second grooves (13) are opened through the upper and lower ends of the heat dissipation fin (11). A fan (14) is installed on the second groove (13). A heat dissipation groove (15) is evenly distributed on the outer wall of the front and rear ends of the cooling chamber (1). A cooling flow assembly is provided on the cooling chamber (1).

2. The electrode shell equipment cooling water cooling device according to claim 1, characterized in that: The upper ends of the two partition plates (8) are jointly placed with a partition plate (5), and the lower end of the partition plate (5) is fixed with a sealing ring (6). The outer wall of the sealing ring (6) is in contact with the inner wall of the two partition plates (8) at the end that is close to each other and the inner wall of the cooling chamber (1) on the partition plate (8). The lower end of the partition plate (5) is located inside the sealing ring (6) and is fixed with four drip sprinklers (7).

3. The electrode shell equipment cooling water cooling device according to claim 1, characterized in that: The cooling flow assembly includes a flow guide plate (101), a first heat-conducting plate (102), and a second heat-conducting plate (103). Two sets of flow guide plates (101) are fixed to one end of the two partition plates (8) that are close to each other. The two sets of flow guide plates (101) are respectively arranged in a centrally symmetrical and inclined manner. The lower end of the flow guide plate (101) is fixed to the second heat-conducting plate (103). The second heat-conducting plate (103) at the lower end of each set of flow guide plates (101) passes through the partition plate (8) and is fixed to the first heat-conducting plate (102) in its corresponding direction.

4. The electrode shell equipment cooling water cooling device according to claim 1, characterized in that: There are two diversion plates (101) located at the front end of the cooling chamber (1) and three diversion plates (101) located at the rear end of the cooling chamber (1).

5. The electrode shell equipment cooling water cooling device according to claim 3, characterized in that: The upper end of the first heat-conducting plate (102) is fixedly connected to the heat dissipation fin (11) in the corresponding direction.

6. The electrode shell equipment cooling water cooling device according to claim 1, characterized in that: A fixed frame (2) is fixed to the upper end of the cooling chamber (1), and a sealing plate (3) is fixed to the upper end of the inner wall of the fixed frame (2). The lower end of the sealing plate (3) and the upper end of the partition (5) form a cooling water storage chamber.

7. The electrode shell equipment cooling water cooling device according to claim 6, characterized in that: An injection pipe (4) is fixedly connected to the upper end of the sealing plate (3), and a drain pipe (16) is fixedly connected to the left end of the outer wall of the cooling chamber (1).