Heating device for copper electrolyte

By designing a copper electrolyte heating device including a main box, a heating part and an inner liquid shell, the problem of changes in the concentration of copper electrolyte solution caused by traditional heating devices is solved, and the stable heating and efficient electrolyte process of the electrolyte are realized.

CN222935538UActive Publication Date: 2025-06-03HOFMANN (BEIJING) ENG TECH CO LTD
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Patent Information

Application Number
CN202421565057.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-03
Publication Date
2025-06-03
Estimated Expiration
2034-07-03

AI Technical Summary

Technical Problem

The traditional copper electrolyte heating device causes changes in the concentration of the copper electrolytic solution during the heating process, affecting the quality stability of the electrolytic treatment.

Method used

A heating device including a main box, a heating part and an inner liquid shell is designed. The main box is equipped with a liquid inlet and an outflow hole. The inner liquid shell communicates with the external liquid source through the liquid-through hole. The heating part adopts a heating method of air-distance heat radiation. The electric heating rod can adjust the temperature to avoid rapid heating.

Benefits of technology

It effectively avoids the gas-liquid conversion of copper electrolyte during heating, maintains the stable concentration of the electrolyte solution, avoids the occurrence of precipitated substances, and ensures the efficiency of the electrolytic process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of copper electrolysis auxiliary equipment, and provides a heating device for copper electrolyte. The device comprises a main box body, wherein the main box body comprises an outer box shell and an inner liquid shell; the inner liquid shell is installed in the outer box shell and located at the top of the inner wall of the outer box shell. The outer box shell is provided with a liquid inlet and a heating port, and the liquid inlet is used for allowing copper electrolyte to flow in; the inner liquid shell is provided with a liquid through hole, and the inner liquid shell is communicated with an external liquid source through the liquid through hole; the heating part is arranged on the main box body, is positioned at the heating opening and extends into the outer box shell; the heating part comprises a heating inner cylinder and an electric heating rod; the heating inner cylinder is mounted at the heating opening and is in sealed connection with the heating opening; and the electrical bar is mounted in the heating inner cylinder and is electrically connected with an external power supply. The heating device for the copper electrolyte can effectively solve the concentration problem of the electrolytic solution.
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Description

Technical Field

[0001] The utility model relates to the technical field of copper electrolysis auxiliary equipment, and particularly relates to a heating device for copper electrolyte solution. Background Art

[0002] During the copper electrolysis process, copper electrolyte solution at a certain temperature has a higher electrolysis efficiency compared to unheated copper electrolyte solution; however, in the heating process of traditional heating devices for copper electrolysis solution, due to phenomena such as evaporation and precipitation, the concentration of the copper electrolysis solution changes, resulting in unstable quality of the electrolysis treatment.

[0003] Therefore, we propose a heating device for copper electrolyte solution, which can effectively solve the concentration problem of the electrolysis solution. Summary of the Utility Model

[0004] Aiming at the defects in the prior art, the utility model provides a heating device for copper electrolyte solution, which can effectively solve the concentration problem of the electrolysis solution.

[0005] A heating device for copper electrolyte solution provided by the utility model includes: a main box body, which includes an outer box shell and an inner liquid shell; the inner liquid shell is installed inside the outer box shell and is located at the top position of the inner wall of the outer box shell; the outer box shell is provided with a liquid inlet and a heating port, and the liquid inlet is used for flowing in copper electrolyte solution; the inner liquid shell has a liquid through hole, and the inner liquid shell communicates with an external liquid source through the liquid through hole; and a heating part, which is arranged on the main box body and is located at the heating port and extends into the outer box shell; the heating part includes a heating inner cylinder and an electric heating rod; the heating inner cylinder is installed at the heating port and is hermetically connected to the heating port; the electric heating rod is installed inside the heating inner cylinder, and the electric heating rod is electrically connected to an external power source.

[0006] Furthermore, the outer box shell is also provided with an outflow hole, and the outflow hole communicates with an external copper electrolysis device. In actual use, the purpose of this design is to facilitate the outflow of the electrolyte solution, so that the hot copper electrolysis solution can be continuously supplied to ensure the electrolysis work.

[0007] Furthermore, the heating part further includes an installation bottom cover; the installation bottom cover is detachably installed on the heating inner cylinder and is hermetically connected to the heating inner cylinder. In actual use, the purpose of this design is to facilitate installation and achieve effective sealing between the heating inner cylinder and the outer box shell.

[0008] Furthermore, the heating inner cylinder is conical and extends toward the inner liquid shell. In actual use, the purpose of this design is to increase the conduction area of ​​the heat source, so that the copper electrolytic solution in the outer shell can be effectively heated and heated, which is convenient for subsequent processing.

[0009] Furthermore, the heating unit further comprises a lifting cylinder and a fixing plate, one end of the lifting cylinder is fixedly mounted on the mounting bottom cover, and the other end of the lifting cylinder is connected to the fixing plate. In actual use, the lifting cylinder is an electric cylinder.

[0010] Furthermore, the electric heating rod is fixedly mounted on the fixed plate. In actual use, the purpose of this design is to adjust the temperature, so that the stability of the electric heating rod can be effectively guaranteed. At the same time, the electric heating rod can be driven by the lifting cylinder to approach the inner top surface of the heating inner cylinder, so that the liquid surface of the copper electrolyte can be heated.

[0011] Furthermore, the heating ports are provided at multiple locations and are evenly distributed along the axial direction of the outer box shell. In actual design, the purpose of this design is to improve the heating efficiency.

[0012] Furthermore, it also includes a liquid pump, one end of which is connected to an external liquid source, and the other end of which is connected to the inner liquid shell, and injects external liquid into the inner liquid shell. In actual use, the purpose of this design is to ensure that the liquid can continuously and controllably enter the inner liquid shell, so that the handover can be achieved, wherein the liquid pump is a gear pump, which can achieve two functions of pumping, so that heat exchange can be facilitated.

[0013] It can be seen from the above technical solution that the beneficial effects of the heating device for copper electrolyte provided by the utility model are:

[0014] (1) In actual use, the inner liquid shell in the main box can be injected with liquid. In fact, the liquid is water. This design can greatly solve the gas-liquid conversion of the copper electrolyte during the heating process, thereby avoiding the concentration change of the copper electrolyte solution. In this way, it can ensure that the copper electrolyte maintains its concentration after heating, which is convenient for subsequent electrolytic treatment;

[0015] (2) On the other hand, the heating part in this design is arranged in the outer box shell, and adopts a heat radiation heating method in the air, so that the temperature rise process of the copper electrolytic solution is slow, not rapid, so that the precipitation of substances can be avoided during such a temperature rise process;

[0016] (3) Finally, the copper electrolytic solution after heating is able to efficiently carry out the electrolysis process; therefore, the device is suitable for industry promotion. Brief Description of the Drawings

[0017] In order to more clearly illustrate the specific embodiments of the present utility model, the drawings required for the specific embodiments or the description of the prior art will be briefly introduced below. In all the drawings, the components or parts are not necessarily drawn to actual scale.

[0018] Figure 1 FIG. 1 is a front structural schematic diagram of a heating device for copper electrolyte solution provided by an embodiment of the present utility model;

[0019] Figure 2 FIG. 2 is a front structural schematic diagram of a heating part in a heating device for copper electrolyte solution provided by an embodiment of the present utility model;

[0020] Reference Numerals:

[0021] Main box body 1, outer box shell 11, inner liquid shell 12, liquid inlet 101, heating port 102, liquid through hole 121, heating part 2, heating inner cylinder 21, electric heating rod 22, outflow hole 103, installation bottom cover 23, lifting cylinder 24, fixing plate 25, liquid pump 3. Specific Embodiments

[0022] The embodiments of the technical solution of the present utility model will be described in detail below with reference to the drawings. The following embodiments are only used to more clearly illustrate the technical solution of the present utility model, so they are only examples and cannot be used to limit the protection scope of the present utility model.

[0023] The embodiment is basically as shown in the attached Figures 1 to 2 figure:

[0024] As Figures 1-2 shown, a heating device for copper electrolyte solution provided by this embodiment can effectively solve the concentration problem of the electrolytic solution.

[0025] A heating device for copper electrolyte provided by the utility model comprises: a main box body 1, the main box body 1 includes an outer box shell 11 and an inner liquid shell 12; the inner liquid shell 12 is installed inside the outer box shell 11 and is located at the top position of the inner wall of the outer box shell 11; the outer box shell 11 is provided with a liquid inlet 101 and a heating port 102, the liquid inlet 101 is used for flowing in copper electrolyte; the inner liquid shell 12 has a liquid through hole 121, and the inner liquid shell 12 communicates with an external liquid source through the liquid through hole 121; and a heating part 2, the heating part 2 is arranged on the main box body 1 and is located at the heating port 102 and extends into the outer box shell 11; the heating part 2 includes a heating inner cylinder 21 and an electric heating rod 22; the heating inner cylinder 21 is installed at the heating port 102 and is hermetically connected with the heating port 102; the electric heating rod 22 is installed inside the heating inner cylinder 21, and the electric heating rod 22 is electrically connected with an external power supply. In actual use, the inner liquid shell 12 in the main box body 1 can be filled with a liquid, actually, the liquid is water. With such a design, the gas-liquid conversion during the heating of copper electrolyte can be greatly solved, thus avoiding the change in the concentration of copper electrolytic solution. In this way, it can be ensured that after heating, the copper electrolyte maintains its concentration, which is convenient for subsequent electrolysis treatment; and on the other hand, the heating part 2 in this design is arranged inside the outer box shell 11 and adopts an air-spaced heat radiation heating method. In this way, it is ensured that during the temperature rise of the copper electrolytic solution, the temperature rise is slow and not rapid, so that during such a temperature rise process, phenomena such as precipitation substances can be avoided; finally, the copper electrolytic solution after the temperature rise can efficiently carry out the electrolysis process; therefore, this device is suitable for industry promotion.

[0026] In this embodiment, the outer box shell 11 is further provided with an outflow hole 103, and the outflow hole 103 communicates with an external copper electrolysis device. In actual use, the purpose of this design is to facilitate the outflow of the electrolyte, so that the hot copper electrolysis solution can be continuously supplied to ensure the electrolysis work.

[0027] In this embodiment, the outer box shell 11 is further provided with an outflow hole 103, and the outflow hole 103 communicates with an external copper electrolysis device. In actual use, the heating part 2 further includes an installation bottom cover 23; the installation bottom cover 23 is detachably installed on the heating inner cylinder 21 and is hermetically connected with the heating inner cylinder 21. In actual use, the purpose of this design is to facilitate installation and achieve effective sealing between the heating inner cylinder 21 and the outer box shell 11.

[0028] In this embodiment, the outer box shell 11 is further provided with an outflow hole 103, and the outflow hole 103 communicates with an external copper electrolysis device. In actual use, the heating inner cylinder 21 is conical and extends towards the inner liquid shell 12. In actual use, the purpose of this design is to increase the heat source conduction area, so that the copper electrolysis solution in the outer box shell 11 can be effectively heated and warmed up, facilitating subsequent processing.

[0029] In this embodiment, the outer box shell 11 is further provided with an outflow hole 103, and the outflow hole 103 communicates with an external copper electrolysis device. In actual use, the heating part 2 further includes a lifting cylinder 24 and a fixing plate 25. One end of the lifting cylinder 24 is fixedly installed on the installation bottom cover 23, and the other end of the lifting cylinder 24 is connected to the fixing plate 25. In actual use, the lifting cylinder 24 is an electric cylinder.

[0030] In this embodiment, the outer box shell 11 is further provided with an outflow hole 103, and the outflow hole 103 communicates with an external copper electrolysis device. In actual use, the electric heating rod 22 is fixedly installed on the fixing plate 25. In actual use, the purpose of this design is to adjust the temperature, so that the stability of the electric heating rod 22 can be effectively ensured. At the same time, under the drive of the lifting cylinder 24, the electric heating rod 22 can be moved closer to the inner top surface of the heating inner cylinder 21, so that the liquid surface of the copper electrolyte can be heated.

[0031] In this embodiment, the outer box shell 11 is further provided with an outflow hole 103, and the outflow hole 103 communicates with an external copper electrolysis device. In actual use, there are multiple heating ports 102, and they are evenly distributed along the axial direction of the outer box shell 11. In actual design, the purpose of this design is to improve the heating efficiency.

[0032] In this embodiment, the outer box shell 11 is further provided with an outflow hole 103, and the outflow hole 103 communicates with an external copper electrolysis device. In actual use, it further includes a liquid pump 3. One end of the liquid pump 3 communicates with an external liquid source, and the other end of the liquid pump 3 communicates with the inner liquid shell 12 and injects external liquid into the inner liquid shell 12. In actual use, the purpose of this design is to ensure that the liquid can continuously and controllably enter the inner liquid shell 12, so that handover can be achieved. Among them, the liquid pump 3 is a gear pump and can achieve two functions of suction, so that heat exchange can be facilitated.

[0033] In summary, this heating device for copper electrolyte not only has a reasonable design but also is easy to operate. It can maintain the concentration stability of the electrolysis solution during the heating process of the electrolysis solution. Therefore, this device is suitable for promotion in the industry.

[0034] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that: they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements on some or all of the technical features; and these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention, and they should all be covered within the scope of the claims and the description of the present invention.

Claims

1. A heating device for copper electrolyte, characterized in that: include: A main box body, the main box body comprising an outer box shell and an inner liquid shell; the inner liquid shell is installed in the outer box shell and is located at the top of the inner wall of the outer box shell; The outer box shell is provided with a liquid inlet and a heating port, the liquid inlet is used to flow in the copper electrolyte; the inner liquid shell has a liquid through hole, the inner liquid shell is connected to the external liquid source through the liquid through hole; and The heating part is arranged on the main box body, located at the heating port, and extends into the outer box shell; the heating part includes a heating inner cylinder and an electric heating rod; the heating inner cylinder is installed at the heating port and is sealed with the heating port; the electric heating rod is installed in the heating inner cylinder, and the electric heating rod is electrically connected to an external power supply.

2. A heating device for copper electrolyte according to claim 1, characterized in that: The outer box shell is also provided with an outflow hole, and the outflow hole is communicated with an external copper electrolysis device.

3. A heating device for copper electrolyte according to claim 1, characterized in that: The heating part further comprises a mounting bottom cover; the mounting bottom cover is detachably mounted on the heating inner cylinder and is sealed and connected to the heating inner cylinder.

4. A heating device for copper electrolyte according to claim 1, characterized in that: The heating inner cylinder is conical and extends toward the inner liquid shell.

5. A heating device for copper electrolyte according to claim 3, characterized in that: The heating part further comprises a lifting cylinder and a fixing plate, one end of the lifting cylinder is fixedly mounted on the mounting bottom cover, and the other end of the lifting cylinder is connected to the fixing plate.

6. A heating device for copper electrolyte according to claim 5, characterized in that: The electric heating rod is fixedly mounted on the fixing plate.

7. A heating device for copper electrolyte according to claim 1, characterized in that: The heating ports are arranged in multiple locations and are evenly distributed along the axial direction of the outer box shell.

8. A heating device for copper electrolyte according to claim 1, characterized in that: It also includes a liquid pump, one end of which is communicated with an external liquid source, and the other end of which is communicated with the inner liquid shell, and injects external liquid into the inner liquid shell.