Electrolyte two-way temperature control system

By designing a bidirectional temperature control system for electrolytes, the main controller and water pump are used to automatically adjust the electrolyte temperature, the problem of increasing impurities caused by temperature increase during electrolytic purification is solved, and the purity and quality of the product are improved.

CN222961572UActive Publication Date: 2025-06-10SUZHOU FIELD TECHNOLOGY GROUP CO LTD
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Patent Information

Application Number
CN202421894723.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-07
Publication Date
2025-06-10
Estimated Expiration
2034-08-07

AI Technical Summary

Technical Problem

During the electrolytic purification process, the increase in the temperature of the electrolyte leads to an increase in ionic activity and the increase in impurities on the electrolytic product, affecting the purity of the finished product and the quality of the product.

Method used

A two-way temperature control system for electrolyte is designed to control the start of the heating and cooling water pump through the main controller of the device. The heating control valve and cooling control valve in the heating circulation pipe and the cooling circulation pipe are used to automatically adjust the temperature of the electrolyte to ensure electrolysis within the appropriate temperature range.

Benefits of technology

Two-way temperature control of the electrolyte is achieved, ensuring the stable temperature of the electrolyte during the electrolysis process, reducing the generation of impurities, and improving the purity and product quality of the electrolytic product.

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Abstract

The utility model discloses an electrolyte two-way temperature control system, which relates to the technical field of electrolyte two-way temperature control and comprises an electrolysis tank, a device master controller is fixedly mounted at the top end of the front side of the electrolysis tank, an electrolyzer is fixedly mounted at the bottom end of one side of the electrolysis tank, and a heating water pump is fixedly mounted at the bottom end of the outer wall of one side of the electrolysis tank. And one side of the heating water pump communicates with a heating circulating pipe, a heating control valve is arranged on the side, close to the heating water pump, of the heating circulating pipe, and a control block is fixedly installed at the top end of one side of the heating control valve. A device main controller is arranged to control starting of a heating water pump, electrolyte is pumped into a heating circulating pipe, when the electrolyte needs to be heated, temperature rising is controlled through a heating controller on a heating box, the electrolyte is guided into an electrolysis box again after heating is completed, and a heating control valve is arranged at the bottom end of the heating circulating pipe; starting of the control block is controlled through the device master controller, so that direct opening of the heating control valve is controlled.
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Description

Technical Field

[0001] The utility model relates to the technical field of two-way temperature control of electrolytes, and particularly relates to a two-way temperature control system for electrolytes. Background Art

[0002] Electrolytic purification uses metal ions to be purified as the electrolyte, a low-purity metal as the anode connected to the positive electrode, an inert pure metal as the cathode connected to the negative electrode, and the power supply is a DC power supply. With the electrolyte as the carrier, the metal on the anode plate is electrolyzed into metal ions and enters the electrolyte. The metal ions in the electrolyte will move towards the cathode and crystallize and grow on the cathode, and high-purity metal will be attached to the cathode. During the electrolysis process, if the temperature of the electrolyte rises, the ions in the electrolyte will become more active, and the impurities on the electrolytic products will also increase accordingly, affecting the purity of the finished product and reducing the product quality. Therefore, we redesigned a two-way temperature control system for electrolytes. Summary of the Utility Model

[0003] The purpose of the utility model is to provide a two-way temperature control system for electrolytes.

[0004] To solve the above technical problems, the utility model provides the following technical solutions: A two-way temperature control system for electrolytes, including an electrolysis tank, a device main controller is fixedly installed at the top of the front of the electrolysis tank, an electrolyzer is fixedly installed at the bottom of one side of the electrolysis tank, a heating water pump is fixedly installed at the bottom of the outer wall of one side of the electrolysis tank, a heating circulation pipe is connected to one side of the heating water pump, a heating control valve is arranged on the side of the heating circulation pipe close to the heating water pump, a control block is fixedly installed at the top of one side of the heating control valve, a heating tank is fixedly installed in the middle of one side of the heating circulation pipe, a heating controller is fixedly installed on the front of one side of the heating tank, a data display is fixedly installed at the top of the front of the device main controller, and a main control setting panel is arranged at the bottom of the front of the heating controller.

[0005] Preferably, the heating circulation pipe penetrates through the inside of the heating tank, the top ends of both sides of the heating circulation pipe are communicated with the electrolysis tank, a power control connection line is connected between the control block and the electrolysis tank, and the connection relationship between the control block and the electrolysis tank is power control connection.

[0006] Preferably, a cooling water pump is fixedly installed at the bottom of the side of the electrolysis tank away from the heating water pump, a cooling circulation pipe is connected to one side of the cooling water pump, a cooling control valve is arranged on the side of the cooling circulation pipe close to the cooling water pump, a control box is fixedly installed at the top of one side of the cooling control valve, a heat conduction cooler is fixedly installed on the surface of one side of the cooling circulation pipe, and a heat conduction cooling plate is fixedly installed on the surface of one side of the heat conduction cooler.

[0007] Preferably, a power control connection line is connected between the cooling circulation pipe and the electrolysis tank. The connection relationship between the cooling circulation pipe and the electrolysis tank is a power control connection. The cooling circulation pipe penetrates through the inside of the heat conduction cooler. The number of the heat conduction cooling plates is several, and several of the heat conduction cooling plates are distributed in a circular pattern on one surface of the heat conduction cooler.

[0008] Preferably, a liquid adding pipe is communicated with the top end of the back surface on one side of the electrolysis tank. A liquid adding control valve is arranged at the top end of one side of the liquid adding pipe. A liquid discharging and replacing pipe is communicated with the bottom end of the back surface on one side of the electrolysis tank. A liquid discharging control valve is arranged at the top end of one side of the liquid discharging and replacing pipe.

[0009] Preferably, an electrode connection disc is fixedly connected to the top end of one side of the electrolyzer. An electrode rod is fixedly connected to the top end of one side of the electrode connection disc, and the electrode rod extends into the inside of the electrolysis tank.

[0010] Compared with the related art, the electrolyte two-way temperature control system provided by the present utility model has the following beneficial effects:

[0011] 1. The present utility model provides an electrolyte two-way temperature control system. By setting the device main controller to control the opening of the heating water pump, the electrolyte is pumped into the inside of the heating circulation pipe. When it is necessary to heat the electrolyte, the temperature is increased through the heating controller on the heating tank. After the heating is completed, it is introduced into the electrolysis tank again. A heating control valve is arranged at the bottom end of the heating circulation pipe. By setting the device main controller to control the start of the control block, the direct opening of the heating control valve can be controlled. The temperature can also be directly set. After the temperature is lower than a certain value, the start of the heating water pump and the control block will be automatically controlled, and the heating control valve will be opened to automatically heat the electrolyte.

[0012] 2. The present utility model provides an electrolyte two-way temperature control system. By setting the device main controller to control the start of the cooling water pump and controlling the opening of the cooling control valve through the start of the control box. When it is necessary to cool the electrolyte, the cooling water pump is used to pump the electrolyte into the inside of the cooling circulation pipe. The heat conduction cooler on the surface of the cooling circulation pipe is used to conduct heat, and the heat is conducted to the surface of the heat conduction cooling plate and then dissipated by the environment, so as to realize the cooling operation of the electrolyte. The temperature can also be directly set. After the temperature is higher than a certain value, the start of the cooling water pump and the control box will be automatically controlled, and the cooling control valve will be opened to automatically cool the electrolyte. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] Figure 1 is a three-dimensional structural schematic diagram of the present utility model;

[0014] Figure 2 is a schematic side view structural diagram of the whole device of the present utility model;

[0015] Figure 3 This is a schematic side view structure diagram of the back of the electrolysis tank of the present utility model;

[0016] Figure 4 This is a schematic bottom view structure diagram of the main body of the electrolyzer of the present utility model.

[0017] Reference numerals in the figure: 1. Electrolysis tank; 2. Device main controller; 3. Electrolyzer; 4. Heating water pump; 5. Heating circulation pipe; 6. Heating control valve; 7. Control block; 8. Heating tank; 9. Heating controller; 10. Data display; 11. Main control setting panel; 12. Cooling water pump; 13. Cooling circulation pipe; 14. Cooling control valve; 15. Control box; 16. Heat conduction cooler; 17. Heat conduction cooling plate; 18. Liquid adding pipe; 19. Liquid adding control valve; 20. Drainage replacement pipe; 21. Drainage control valve; 22. Electrode connection plate; 23. Electrode rod. Specific embodiments

[0018] Embodiment 1:

[0019] Please refer to Figures 1-4 , the present utility model provides a technical solution: a two-way temperature control system for electrolytic solution, including an electrolysis tank 1, a device main controller 2 is fixedly installed at the front top end of the electrolysis tank 1, an electrolyzer 3 is fixedly installed at the bottom end of one side of the electrolysis tank 1, a heating water pump 4 is fixedly installed at the bottom end of the outer wall of one side of the electrolysis tank 1, a heating circulation pipe 5 is communicated with one side of the heating water pump 4, a heating control valve 6 is arranged on the side of the heating circulation pipe 5 close to the heating water pump 4, a control block 7 is fixedly installed at the top end of one side of the heating control valve 6, a heating tank 8 is fixedly installed in the middle of one side of the heating circulation pipe 5, a heating controller 9 is fixedly installed on the front side of one side of the heating tank 8, a data display 10 is fixedly installed at the top end of the front side of the device main controller 2, a main control setting panel 11 is arranged at the bottom end of the front side of the heating controller 9, the heating circulation pipe 5 penetrates through the inside of the heating tank 8, the top ends of both sides of the heating circulation pipe 5 are communicated with the electrolysis tank 1, a power control connection line is connected between the control block 7 and the electrolysis tank 1, the connection relationship between the control block 7 and the electrolysis tank 1 is power control connection, a liquid adding pipe 18 is communicated with the top end of the back side of one side of the electrolysis tank 1, a liquid adding control valve 19 is arranged at the top end of one side of the liquid adding pipe 18, a drainage replacement pipe 20 is communicated with the bottom end of the back side of one side of the electrolysis tank 1, a drainage control valve 21 is arranged at the top end of one side of the drainage replacement pipe 20, an electrode connection plate 22 is fixedly connected to the top end of one side of the electrolyzer 3, an electrode rod 23 is fixedly connected to the top end of one side of the electrode connection plate 22, and the electrode rod 23 extends into the inside of the electrolysis tank 1.

[0020] In an embodiment, the device main controller 2 is set to control the start of the heating water pump 4, and the electrolyte is pumped into the interior of the heating circulation pipe 5. When it is necessary to heat the electrolyte, the heating controller 9 on the heating box 8 is used to control the temperature increase. After the heating is completed, it is imported into the interior of the electrolysis box 1 again. A heating control valve 6 is provided at the bottom end of the heating circulation pipe 5. The start of the control block 7 is controlled by the device main controller 2, so as to directly control the opening of the heating control valve 6. The temperature can also be directly set. When the temperature is lower than a certain value, the start of the heating water pump 4 and the start of the control block 7 will be automatically controlled, the heating control valve 6 will be opened, and the electrolyte will be automatically heated.

[0021] Embodiment 2:

[0022] Please refer to Figures 1-4 , the present utility model provides a technical solution: a two-way temperature control system for electrolyte, including a cooling water pump 12 fixedly installed at the bottom end of the side of the electrolysis box 1 away from the heating water pump 4. One side of the cooling water pump 12 is communicated with a cooling circulation pipe 13. A cooling control valve 14 is provided on the side of the cooling circulation pipe 13 close to the cooling water pump 12. A control box 15 is fixedly installed at the top end of one side of the cooling control valve 14. A heat conduction cooling device 16 is fixedly installed on the surface of one side of the cooling circulation pipe 13. A heat conduction cooling plate 17 is fixedly installed on the surface of one side of the heat conduction cooling device 16. A power control connection line is connected between the cooling circulation pipe 13 and the electrolysis box 1. The connection relationship between the cooling circulation pipe 13 and the electrolysis box 1 is power control connection. The cooling circulation pipe 13 penetrates through the interior of the heat conduction cooling device 16. The number of the heat conduction cooling plates 17 is several, and several heat conduction cooling plates 17 are distributed in a circular pattern on the surface of one side of the heat conduction cooling device 16.

[0023] In an embodiment, the start of the cooling water pump 12 is controlled by setting the device main controller 2, and the opening of the cooling control valve 14 is controlled by the start of the control box 15. When it is necessary to cool the electrolyte at this time, the cooling water pump 12 is used to pump the electrolyte into the interior of the cooling circulation pipe 13. The heat conduction of the heat conduction cooling device 16 on the surface of the cooling circulation pipe 13 is utilized, and the heat is conducted to the surface of the heat conduction cooling plate 17 and then the environment is used to dissipate the heat, so as to realize the cooling operation of the electrolyte. The temperature can also be directly set. When the temperature is higher than a certain value, the start of the cooling water pump 12 and the start of the control box 15 will be automatically controlled, the cooling control valve 14 will be opened, and the electrolyte will be automatically cooled.

[0024] Working principle:

[0025] By setting the device master controller 2 to control the start of the heating water pump 4, the electrolyte is pumped into the interior of the heating circulation pipe 5. When it is necessary to heat the electrolyte, the temperature increase is controlled by the heating controller 9 on the heating box 8. After the heating is completed, it is imported into the interior of the electrolysis box 1 again. A heating control valve 6 is provided at the bottom end of the heating circulation pipe 5. By setting the device master controller 2 to control the start of the control block 7, the direct opening of the heating control valve 6 can be controlled. The temperature can also be directly set. After the temperature is lower than a certain value, the start of the heating water pump 4 and the control block 7 will be automatically controlled, the heating control valve 6 will be opened, and the electrolyte will be automatically heated;

[0026] By setting the device master controller 2 to control the start of the cooling water pump 12, the opening of the cooling control valve 14 is controlled by the start of the control box 15. When it is necessary to cool the electrolyte at this time, the electrolyte is pumped into the interior of the cooling circulation pipe 13 by the cooling water pump 12. The heat is conducted by the heat conduction cooler 16 on the surface of the cooling circulation pipe 13 and then dissipated by the environment on the surface of the heat conduction cooling plate 17, so as to realize the cooling operation of the electrolyte. The temperature can also be directly set. After the temperature is higher than a certain value, the start of the cooling water pump 12 and the control box 15 will be automatically controlled, the cooling control valve 14 will be opened, and the electrolyte will be automatically cooled;

[0027] The liquid adding control valve 19 controls the opening of the liquid adding pipe 18 to add electrolyte into the interior of the electrolysis box 1. At the same time, the electrolyte can be discharged through the liquid discharging and replacing pipe 20 to replace the electrolyte in the interior of the electrolysis box 1. The device master controller 2 directly controls the start of the electrolyzer 3, and controls the electrode rod 23 at the top end of the electrode connection plate 22 to realize the electrolysis operation of the electrolyte.

Claims

1. An electrolyte bidirectional temperature control system, comprising an electrolytic box (1), wherein a device main controller (2) is fixedly mounted on the top of the front of the electrolytic box (1), characterized in that: An electrolyzer (3) is fixedly mounted on the bottom end of one side of the electrolysis box (1), a heating water pump (4) is fixedly mounted on the bottom end of one side of the outer wall of the electrolysis box (1), one side of the heating water pump (4) is connected to a heating circulation pipe (5), a heating control valve (6) is arranged on the side of the heating circulation pipe (5) close to the heating water pump (4), a control block (7) is fixedly mounted on the top end of one side of the heating control valve (6), a heating box (8) is fixedly mounted in the middle of one side of the heating circulation pipe (5), a heating controller (9) is fixedly mounted on the front of one side of the heating box (8), a data display (10) is fixedly mounted on the top end of the front of the main controller (2) of the device, and a main control setting panel (11) is arranged on the bottom end of the front of the heating controller (9).

2. The electrolyte bidirectional temperature control system according to claim 1, characterized in that: The heating circulation pipe (5) passes through the interior of the heating box (8), and the top ends of both sides of the heating circulation pipe (5) are connected to the electrolytic box (1). An electric power control connection line is connected between the control block (7) and the electrolytic box (1), and the connection relationship between the control block (7) and the electrolytic box (1) is an electric power control connection.

3. The electrolyte bidirectional temperature control system according to claim 1, characterized in that: A cooling water pump (12) is fixedly installed at the bottom end of the side of the electrolytic box (1) away from the heating water pump (4); a cooling circulation pipe (13) is connected to one side of the cooling water pump (12); a cooling control valve (14) is arranged on the side of the cooling circulation pipe (13) close to the cooling water pump (12); a control box (15) is fixedly installed at the top end of one side of the cooling control valve (14); a heat conduction cooler (16) is fixedly installed on the surface of one side of the cooling circulation pipe (13); and a heat conduction cooling plate (17) is fixedly installed on the surface of one side of the heat conduction cooler (16).

4. The electrolyte bidirectional temperature control system according to claim 3, characterized in that: An electric control connection line is connected between the cooling circulation pipe (13) and the electrolytic box (1); the connection relationship between the cooling circulation pipe (13) and the electrolytic box (1) is an electric control connection; the cooling circulation pipe (13) runs through the interior of the thermal conductive cooler (16); the number of the thermal conductive cooling plates (17) is several, and the several thermal conductive cooling plates (17) are distributed in a circle on one side surface of the thermal conductive cooler (16).

5. The electrolyte bidirectional temperature control system according to claim 1, characterized in that: The top end of the back side of the electrolytic box (1) is connected to a liquid adding pipe (18), and the top end of one side of the liquid adding pipe (18) is provided with a liquid adding control valve (19). The bottom end of the back side of the electrolytic box (1) is connected to a liquid drain replacement pipe (20), and the top end of one side of the liquid drain replacement pipe (20) is provided with a liquid drain control valve (21).

6. The electrolyte bidirectional temperature control system according to claim 1, characterized in that: An electrode connection plate (22) is fixedly connected to the top of one side of the electrolyzer (3), and an electrode rod (23) is fixedly connected to the top of one side of the electrode connection plate (22), and the electrode rod (23) extends into the interior of the electrolysis box (1).