Production equipment for simulating electrolytic copper foil through small experiment

By designing a small experimental simulated electrolytic copper foil production equipment, using the structure of the counterweight base and the electrolytic cell, combined with the connection method of threads and limit blocks, the problem of cumbersome assembly of the existing equipment bracket structure is solved, and the installation efficiency and the firmness of the equipment are improved.

CN222948494UActive Publication Date: 2025-06-06HUBEI NORD COPPER FOIL NEW MATERIAL CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422021583.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-20
Publication Date
2025-06-06
Estimated Expiration
2034-08-20

AI Technical Summary

Technical Problem

The existing experimental simulation of the assembly process of the bracket structure of the electrolytic copper foil production equipment is complicated and there are many accessories, resulting in low installation efficiency.

Method used

A small experimental simulation of electrolytic copper foil production equipment is designed, using the structure of a counterweight base and an electrolytic tank. Through the connection of thread grooves and thread columns, the connection between the limit blocks and limit slots is combined to avoid wire removal, and the firmness of the columns and screws is enhanced through the top block, positioning block, strong magnets, positioning slots and locking pins.

Benefits of technology

It improves the installation efficiency of the equipment, enhances the firmness of the columns and screws, and solves the problem of cumbersome assembly of the bracket structure.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN222948494U_ABST
    Figure CN222948494U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of electrolytic copper foil production equipment, in particular to small experiment simulation electrolytic copper foil production equipment which comprises a balance weight base and an electrolytic bath, a positioning block inserted into a positioning groove is fixedly mounted on the lower surface of a top block, and a strong magnet is fixedly mounted on the outer side of a stand column. A lock pin communicated with the positioning groove is inserted into the powerful magnet, and one end of the lock pin is inserted into the positioning block. The lower end of the stand column and the balance weight base are in threaded connection through the threaded groove and the threaded column and clamped through the limiting block and the limiting groove, so that the phenomenon of unscrewing is avoided, the upper end of the stand column and the lead screw are connected through the ejector block, the positioning block, the powerful magnet, the positioning groove and the lock pin, the firmness of the stand column and the lead screw is enhanced conveniently, and the service life of the stand column is prolonged. The technical problems that production equipment for experimental simulation of electrolytic copper foil is usually provided with a support structure, but the assembly process of the support structure is tedious, the number of accessories is large, and the installation efficiency is reduced are solved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of electrolytic copper foil production equipment, in particular to a small-scale experimental simulation electrolytic copper foil production equipment. Background Art

[0002] Electrolytic copper foil is an important material for copper-clad laminates, printed circuit boards, and lithium-ion batteries. In today's rapidly developing electronic information industry, electrolytic copper foil is called the "neural network" for electronic product signal and power transmission and communication. Some electrolytic copper foil manufacturers use a single experimental system to simulate the production process of electrolytic copper foil and verify various additives before production.

[0003] With respect to the above-mentioned related technologies, the inventor believes that there are the following defects:

[0004] For the production equipment of experimental simulation electrolytic copper foil, it is usually equipped with a bracket structure, but the assembly process of the bracket structure is cumbersome and there are many accessories, which reduces the installation efficiency. Therefore, it is necessary to provide a small-scale experimental simulation electrolytic copper foil production equipment to solve the above technical problems. Utility Model Content

[0005] The technical problem to be solved by the utility model is that for the production equipment of experimental simulation electrolytic copper foil, it is usually equipped with a bracket structure, but the assembly process of the bracket structure is cumbersome, and there are many accessories, which reduces the installation efficiency. In view of the above-mentioned defects of the prior art, a small-scale experimental simulation electrolytic copper foil production equipment is provided, including a counterweight base and an electrolytic cell, a positioning block plugged into the positioning groove is fixedly installed on the lower surface of the top block, a strong magnet is fixedly installed on the outer side of the column, and a locking pin connected to the positioning groove is plugged into the inside of the strong magnet, and one end of the locking pin is plugged into the positioning block. In the utility model, the lower end of the column and the counterweight base are screwed by a threaded groove and a threaded column, and the limit block and the limit groove are used to clamp, so as to avoid the phenomenon of wire withdrawal, and the upper end of the column and the screw rod are connected by a top block, a positioning block, a strong magnet, a positioning groove and a locking pin, which is convenient for enhancing the firmness of the column and the screw rod, and solves the technical problem that the production equipment of experimental simulation electrolytic copper foil is usually equipped with a bracket structure, but the assembly process of the bracket structure is cumbersome, and there are many accessories, which reduces the installation efficiency.

[0006] To achieve the above-mentioned purpose, the technical scheme of the utility model is: a small-scale experimental simulation of electrolytic copper foil production equipment, including a counterweight base and an electrolytic cell, the upper surface of the counterweight base is respectively provided with a limit groove and a thread groove, the inner part of the thread groove is screwed with a threaded column, the upper end of the threaded column is fixedly connected with a column, the upper end of the column is provided with a positioning groove, and the outer side of the column is respectively provided with a limit block and a slide groove, the limit block is slidably connected with the slide groove, and the bottom of the limit block is engaged with the limit groove, the outer side of the column is fixedly installed with a fixed seat, the bottom of the fixed seat is fixedly installed with a first motor, the output shaft of the first motor passes through the fixed seat and is fixedly connected with a screw rod, the upper end of the screw rod is sleeved with a top block, and the lower surface of the top block is fixedly installed with a positioning block plugged with the positioning groove, the outer side of the column is fixedly installed with a strong magnet, the inner part of the strong magnet is plugged with a lock pin connected with the positioning groove, and one end of the lock pin is plugged with the positioning block.

[0007] It is further provided that the locking pin is made of an iron material, the strong magnet is in a ring structure, and one side of the strong magnet is in contact with the locking pin.

[0008] It is further arranged that the counterweight base is located outside the electrolytic cell, and a plurality of phosphorus-containing anode copper sheets are evenly arranged on the top of the electrolytic cell.

[0009] It is further configured that a movable plate is screwed on the outer side of the screw rod, the movable plate is located on the outer side of the column, and a second motor is fixedly installed on the upper surface of the movable plate, the output shaft of the second motor passes through the movable plate and is fixedly connected to a connecting shell, a connecting block is inserted into the inside of the connecting shell, the lower end of the connecting block is fixedly connected to a rotating shaft, and the lower end of the rotating shaft is fixedly connected to a cathode roller body.

[0010] It is further provided that a tension spring is fixedly installed on the front surface of the connecting shell, one end of the tension spring is fixedly connected to a pin fixture penetrating the connecting shell, and one end of the pin fixture is plugged into the connecting block.

[0011] It is further arranged that the pin fixture is in a T-shaped structure, and the pin fixture is located inside the tension spring.

[0012] It is further provided that the connecting shell and the connecting block are both rectangular structures, and the connecting block and the rotating shaft are an integrally formed structure.

[0013] Compared with the related art, the small-scale experimental simulation electrolytic copper foil production equipment provided by the utility model has the following beneficial effects:

[0014] The utility model provides a small-scale experimental simulation electrolytic copper foil production equipment, wherein the lower end of a column and a counterweight base are screwed by adopting a threaded groove and a threaded column, and are clamped by a limit block and a limit groove, so as to avoid the phenomenon of wire withdrawal, and the upper end of the column and the screw rod are connected by adopting a top block, a positioning block, a strong magnet, a positioning groove and a locking pin, so as to enhance the firmness of the column and the screw rod, and solve the technical problem that the experimental simulation electrolytic copper foil production equipment is usually equipped with a bracket structure, but the assembly process of the bracket structure is cumbersome, the accessories are more, and the installation efficiency is reduced.

[0015] The utility model provides a small-scale experimental simulation production equipment for electrolytic copper foil. A cathode roller body and an output shaft of a second motor are connected by a rotating shaft, a connecting block and a connecting shell. By pulling a pin fixture, a tension spring is stretched so that one end of the pin fixture is separated from the interior of the connecting block, thereby facilitating the connection block to be drawn out from the interior of the connecting shell and facilitating the disassembly of the cathode roller body for maintenance or replacement. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 A structural schematic diagram of a preferred embodiment of a small-scale experimental simulation electrolytic copper foil production equipment provided by the utility model;

[0017] Figure 2 It is a left view of the utility model;

[0018] Figure 3 It is a left-side structural schematic diagram of the connection between the screw rod, the top block and the column of the utility model;

[0019] Figure 4 It is a left-side structural schematic diagram of the connection between the rotating shaft and the connecting shell of the utility model;

[0020] Figure 5 It is a schematic diagram of the three-dimensional structure of the connection between the column and the counterweight base of the utility model.

[0021] Numbers in the figure: 1. counterweight base; 2. limit block; 3. connecting shell; 4. first motor; 5. fixed seat; 6. screw rod; 7. top block; 8. column; 9. movable plate; 10. second motor; 11. rotating shaft; 12. cathode roller body; 13. phosphorus-containing anode copper sheet; 14. electrolytic cell; 15. pinning fixture; 16. locking pin; 17. positioning block; 18. strong magnet; 19. positioning groove; 20. connecting block; 21. tension spring; 22. slide groove; 23. threaded column; 24. limit groove; 25. threaded groove. DETAILED DESCRIPTION

[0022] In order to facilitate the understanding of the present invention, the present invention will be described more comprehensively with reference to the accompanying drawings. The accompanying drawings show typical embodiments of the present invention.

[0023] Embodiment 1:

[0024] like Figure 1-5 As shown, a small-scale experimental simulation production equipment of electrolytic copper foil of the utility model comprises a counterweight base 1 and an electrolytic cell 14, the upper surface of the counterweight base 1 is respectively provided with a limit groove 24 and a thread groove 25, the inner part of the thread groove 25 is screwed with a thread column 23, the upper end of the thread column 23 is fixedly connected with a column 8, the upper end of the column 8 is provided with a positioning groove 19, and the outer side of the column 8 is respectively provided with a limit block 2 and a slide groove 22, the limit block 2 is slidably connected with the slide groove 22, and the bottom of the limit block 2 is in contact with the limit groove 24 are engaged with each other, a fixing seat 5 is fixedly installed on the outer side of the column 8, a first motor 4 is fixedly installed on the bottom of the fixing seat 5, an output shaft of the first motor 4 passes through the fixing seat 5 and is fixedly connected with a screw rod 6, a top block 7 is sleeved on the upper end of the screw rod 6, a positioning block 17 plugged into the positioning groove 19 is fixedly installed on the lower surface of the top block 7, a strong magnet 18 is fixedly installed on the outer side of the column 8, a locking pin 16 connected to the positioning groove 19 is plugged into the inside of the strong magnet 18, and one end of the locking pin 16 is plugged into the positioning block 17.

[0025] Furthermore, the lock pin 16 is made of an iron material, the strong magnet 18 is in a ring-shaped structure, and one side of the strong magnet 18 is in contact with the lock pin 16 .

[0026] During implementation, the lower end of the column 8 is screwed to the counterweight base 1 by means of a threaded groove 25 and a threaded column 23, and is clamped by means of a limit block 2 and a limit groove 24 to avoid wire withdrawal. In addition, the upper end of the column 8 is connected to the screw rod 6 by means of a top block 7, a positioning block 17, a strong magnet 18, a positioning groove 19 and a locking pin 16, so as to enhance the firmness of the column 8 and the screw rod 6, thereby solving the technical problem that the production equipment for experimental simulation of electrolytic copper foil is usually equipped with a bracket structure, but the assembly process of the bracket structure is cumbersome, there are many accessories, and the installation efficiency is reduced.

[0027] Embodiment 2:

[0028] like Figure 1-5As shown, on the basis of the first embodiment, the utility model provides a technical solution: the counterweight base 1 is located on the outside of the electrolytic cell 14, and a plurality of phosphorus-containing anode copper sheets 13 are evenly arranged on the top of the electrolytic cell 14. A movable plate 9 is screwed on the outside of the screw rod 6, and the movable plate 9 is located on the outside of the column 8. A second motor 10 is fixedly installed on the upper surface of the movable plate 9, and the output shaft of the second motor 10 passes through the movable plate 9 and is fixedly connected to a connecting shell 3. A connecting block 20 is inserted into the inside of the connecting shell 3, and a rotating shaft 11 is fixedly connected to the lower end of the connecting block 20. A cathode roller body 12 is fixedly connected to the lower end of the rotating shaft 11, and a tension spring 21 is fixedly installed on the front surface of the connecting shell 3. One end of the tension spring 21 is fixedly connected to a pin 15 passing through the connecting shell 3, and one end of the pin 15 is inserted between the connecting block 20. The pin 15 has a T-shaped structure, and the pin 15 is located inside the tension spring 21. The connecting shell 3 and the connecting block 20 are both rectangular structures, and the connecting block 20 and the rotating shaft 11 are an integrally formed structure.

[0029] During implementation, the cathode roller body 12 and the output shaft of the second motor 10 are connected by a rotating shaft 11, a connecting block 20 and a connecting shell 3. By pulling the pin fixture 15, the tension spring 21 is stretched, so that one end of the pin fixture 15 is separated from the interior of the connecting block 20, thereby facilitating the connection block 20 to be pulled out from the interior of the connecting shell 3, and facilitating the disassembly of the cathode roller body 12 for maintenance or replacement.

[0030] When assembling the present technical solution, firstly, the threaded column 23 connected to the column 8 is screwed to the threaded groove 25, so that the column 8 is connected and fixed to the counterweight base 1, and at the same time, the limit block 2 is inserted into the inside of the limit groove 24, and then the movable plate 9 is screwed to the outside of the screw rod 6, and the movable plate 9 is movably connected to the column 8, and then the positioning block 17 connected to the top block 7 is inserted into the inside of the positioning groove 19, and finally the locking pin 16 is inserted into the inside of the strong magnet 18 and the positioning block 17, so that the connection between the column 8 and the screw rod 6 is firm. When in use, the phosphorus-containing anode copper sheet 13 is first hung on the electrolytic cell 14, and then the copper sulfate solution and the additive to be tested required for the reaction are added to the electrolytic cell 14, and then the first motor 4 and the second motor 10 are started, and the second motor 10 drives the connection shell 3 connected to its output shaft to drive the cathode roller body 12 to rotate slowly, and at the same time, the first motor 4 drives the screw rod 6 connected to its output shaft to rotate, and drives the outer movable plate 9 to drive the cathode roller body 12 to move up and down. When the up and down movement moves downward into the electrolytic cell 14, the cathode roller body 12 reacts with the electrolyte of the phosphorus-containing anode copper sheet 13, which can simulate the production of copper foil. When the cathode roller body 12 needs to be disassembled, the pin 15 is first pulled to stretch the tension spring 21, so that one end of the pin 15 is separated from the inside of the connection block 20, and then the cathode roller body 12 is moved downward to pull the connection block 20 out of the inside of the connection shell 3.

[0031] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A small-scale experimental simulated electrolytic copper foil production device, comprising a weighted base (1) and an electrolytic cell (14), characterized in that: The upper surface of the counterweight base (1) is provided with a limit groove (24) and a thread groove (25), the interior of the thread groove (25) is screwed with a thread column (23), the upper end of the thread column (23) is fixedly connected with a column (8), the upper end of the column (8) is provided with a positioning groove (19), and the outer side of the column (8) is provided with a limit block (2) and a slide groove (22), the limit block (2) is slidably connected with the slide groove (22), and the bottom of the limit block (2) is engaged with the limit groove (24), and the outer side of the column (8) is fixedly installed with a fixed seat (5), a first motor (4) is fixedly mounted on the bottom of the fixing seat (5), an output shaft of the first motor (4) passes through the fixing seat (5) and is fixedly connected to a screw rod (6), a top block (7) is sleeved on the upper end of the screw rod (6), a positioning block (17) plugged into a positioning groove (19) is fixedly mounted on the lower surface of the top block (7), a strong magnet (18) is fixedly mounted on the outer side of the column (8), a locking pin (16) connected to the positioning groove (19) is plugged into the inside of the strong magnet (18), and one end of the locking pin (16) is plugged into the positioning block (17).

2. The small-scale experimental simulation electrolytic copper foil production equipment according to claim 1 is characterized in that: The lock pin (16) is made of an iron material, the strong magnet (18) is in a ring-shaped structure, and one side of the strong magnet (18) is in contact with the lock pin (16).

3. The small-scale experimental simulation electrolytic copper foil production equipment according to claim 1 is characterized in that: The counterweight base (1) is located outside the electrolytic cell (14), and a plurality of phosphorus-containing anode copper sheets (13) are evenly arranged on the top of the electrolytic cell (14).

4. The small-scale experimental simulation electrolytic copper foil production equipment according to claim 1 is characterized in that: A movable plate (9) is screwed onto the outer side of the screw rod (6), the movable plate (9) is located on the outer side of the column (8), and a second motor (10) is fixedly mounted on the upper surface of the movable plate (9), the output shaft of the second motor (10) passes through the movable plate (9) and is fixedly connected to a connecting shell (3), a connecting block (20) is inserted into the interior of the connecting shell (3), the lower end of the connecting block (20) is fixedly connected to a rotating shaft (11), and the lower end of the rotating shaft (11) is fixedly connected to a cathode roller body (12).

5. The small-scale experimental simulation electrolytic copper foil production equipment according to claim 4 is characterized in that: A tension spring (21) is fixedly mounted on the front surface of the connecting shell (3); one end of the tension spring (21) is fixedly connected to a pin fixture (15) that passes through the connecting shell (3); one end of the pin fixture (15) is plugged into a connecting block (20).

6. The small-scale experimental simulation electrolytic copper foil production equipment according to claim 5, characterized in that: The pin member (15) is in a T-shaped structure, and the pin member (15) is located inside the tension spring (21).

7. The small-scale experimental simulation electrolytic copper foil production equipment according to claim 4 is characterized in that: The connecting shell (3) and the connecting block (20) are both rectangular structures, and the connecting block (20) and the rotating shaft (11) are an integrally formed structure.