Crude foil engine anode tank correcting device

By designing an automatic monitoring and correction device for the anode tank of the foil production machine, the copper foil quality problem caused by the position deviation of the anode tank was solved, and efficient automatic correction without manual correction was achieved, thereby improving production efficiency and copper foil quality.

CN223430744UActive Publication Date: 2025-10-14SHANGHAI ZHAOSHENG ELECTROMECHANICAL EQUIP CO LTD
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Patent Information

Application Number
CN202422971686.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-02
Publication Date
2025-10-14
Estimated Expiration
2034-12-02

AI Technical Summary

Technical Problem

After the foil machine has been used for a period of time, the position of the anode tank will shift, resulting in a decrease in the uniformity and quality of the copper foil. The existing technology requires manual correction, which is inefficient and increases the burden on staff.

Method used

A anode tank correction device for a foil production machine was designed. The correction structure includes a displacement sensor, vertical and horizontal correction plates, push-pull rods, shift blocks and a motor-driven double-axis screw. It can automatically monitor and correct the position of the anode tank to achieve manual correction.

Benefits of technology

It realizes automatic monitoring and correction of the anode tank position, improves work efficiency, reduces the workload of staff, and ensures the quality of copper foil.

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Abstract

The utility model relates to a crude foil engine anode tank correction device, and belongs to the technical field of anode tank correction, the crude foil engine anode tank correction device comprises two vertical plates, transverse plates are fixed to the upper ends and the lower ends of the opposite walls of the two vertical plates, mounting plates are fixed to the opposite walls of the two vertical plates, and correction cavities are formed in the walls, opposite to the two transverse plates, of the two vertical plates; correction structures are arranged between the two vertical plates and the two transverse plates; the correcting structure comprises four sets of displacement sensors, two vertical correcting plates, two transverse correcting plates and rubber pads, wherein the rubber pads are fixedly installed on the opposite sides of the two vertical correcting plates and the two transverse correcting plates. According to the straightening device for the anode tank of the crude foil engine, by arranging the straightening structure, the position of the anode tank can be monitored, and meanwhile, the anode tank can be pushed to the original position, so that the position of the anode tank can be straightened, a worker does not need to straighten the anode tank, and the working effect can be effectively improved; and the workload of workers is reduced.
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Description

TECHNICAL FIELD

[0001] The application relates to the technical field of anode slot correction, in particular to an anode slot correction device of a green foil machine. BACKGROUND

[0002] The green foil machine is a key equipment in copper foil production, and the position accuracy of the anode slot has a vital influence on the quality of the copper foil. At present, after the green foil machine is used for a period of time, the position of the anode slot is often deviated due to various factors, thereby affecting the uniformity and quality of the copper foil.

[0003] A special automatic detection device for an anode slot titanium base is disclosed in a Chinese patent (publication number: CN209802314U) to accurately monitor the position of the anode slot. However, when the position of the anode slot is deviated, the staff still needs to correct and adjust the anode slot, which leads to low efficiency and increases the workload of the staff. Therefore, the anode slot correction device of the green foil machine is proposed to solve the above problems. CONTENT OF THE UTILITY MODEL

[0004] In view of the defects in the prior art, the application provides an anode slot correction device of a green foil machine, which has the advantages of convenient correction and solves the problem of inconvenient correction.

[0005] To achieve the above-mentioned purpose, the application provides the following technical scheme: an anode slot correction device of a green foil machine, comprising two vertical plates, a horizontal plate fixed to the upper and lower ends of the opposite wall of the two vertical plates, an installation plate fixed to the opposite wall of the two vertical plates, a correction cavity provided on the opposite wall of the two vertical plates and the two horizontal plates, and a correction structure provided between the two vertical plates and the two horizontal plates.

[0006] The correction structure comprises four groups of displacement sensors, two vertical correction plates, two horizontal correction plates, a rubber pad fixedly installed on the opposite side of the two vertical correction plates and the two horizontal correction plates, two push-pull rods hingedly fixedly installed on the opposite side of the two vertical correction plates and the two horizontal correction plates, a displacement block fixedly installed at the other end of the push-pull rod, and a moving structure fixedly installed on the inner side of the four displacement blocks.

[0007] The above-mentioned technical scheme can monitor the position of the anode slot, push the anode slot to the original position, correct the position of the anode slot, and does not need staff to correct it, which can effectively improve the work effect and reduce the workload of the staff.

[0008] Further, the rear ends of the left and right groups of displacement sensors are fixedly installed on the front wall of the two vertical plates, and the rear ends of the upper and lower groups of displacement sensors are fixedly installed on the front wall of the two horizontal plates.

[0009] The four displacement sensors are fixed on the two vertical plates and the two horizontal plates, so that the four displacement sensors can monitor the four sides of the anode slot in the correction cavity.

[0010] Further, the opposite wall of the two vertical correction plates and the two horizontal correction plates is provided with a long hole for the push-pull rod to penetrate and slide in the hole.

[0011] The push-pull rod penetrates into the vertical plate or the horizontal plate through the long hole, so that the push-pull rod can be connected with the displacement block, and when the two displacement blocks in the same group move towards or away from each other, the two displacement blocks in the same group can push the vertical correction plate or the horizontal correction plate to move through the two push-pull rods, so that the horizontal correction plate or the vertical correction plate pushes the anode slot to move, so that the position of the anode slot can be corrected.

[0012] Further, the two vertical correction plates and the two horizontal correction plates are located inside the correction cavity.

[0013] The two vertical correction plates and the two horizontal correction plates can correct the four sides of the anode slot in the correction cavity.

[0014] Further, the moving structure comprises a double-shaft screw threadedly connected with the inside of the four displacement blocks, the outer surface of the double-shaft screw is fixed with a worm gear, the rear end of the worm gear is engaged with a worm, and the moving structure further comprises a motor fixed to the wall opposite to the inner cavities of the two vertical correction plates and the two horizontal correction plates.

[0015] The above technical scheme can drive the two displacement blocks in the same group to move towards or away from each other, so that the two displacement blocks in the same group can move the vertical correction plate or the horizontal correction plate in the correction cavity through the two push-pull rods.

[0016] Further, the opposite end of the four worms is respectively fixed to the output end of the four motors, and the other end of the four worms is respectively rotatably connected to the wall opposite to the inner cavities of the two vertical plates and the two horizontal plates through bearings.

[0017] The above technical scheme can drive the four motors to stably rotate in the two vertical plates and the two horizontal plates, so that the worm can stably engage with the worm gear, and the worm can stably drive the double-shaft screw to rotate in the horizontal plate or the vertical plate through the worm gear.

[0018] Further, the opposite wall of the two displacement blocks in the same group is provided with a threaded hole for the double-shaft screw to penetrate into the inside of the threaded hole, and the double-shaft screw is threadedly connected in the inside of the threaded hole.

[0019] The double-shaft screw is connected with the threaded hole through thread connection, so that the double-shaft screw can drive the two moving blocks in the same group to move relatively or oppositely in the horizontal plate or the vertical plate through the threaded hole.

[0020] Further, the upper and lower ends of the left and right double-shaft screws are rotatably connected to the upper and lower walls of the inner cavities of the two vertical plates through bearings, and the left and right ends of the upper and lower double-shaft screws are rotatably connected to the left and right walls of the inner cavities of the two horizontal plates through bearings.

[0021] The above technical solution enables the four double-shaft screws to stably rotate in the two vertical plates and the two horizontal plates, so that the four double-shaft screws can stably drive the four groups of moving blocks to move relatively or oppositely, thereby enabling the four groups of moving blocks to stably drive the push-pull rod to move.

[0022] Compared with the prior art, the technical solution of the present application has the following beneficial effects:

[0023] The anode slot correcting device of the foil machine can monitor the position of the anode slot and push the anode slot to the original position, so as to correct the position of the anode slot without the need for staff to correct it, thereby effectively improving the work effect and reducing the workload of the staff. BRIEF DESCRIPTION OF DRAWINGS

[0024] Figure 1 The structure of the present application is shown in the figure;

[0025] Figure 2 The structure of the present application is shown in the figure;

[0026] Figure 3 The structure of the present application is shown in the figure.

[0027] In the figure: 1, vertical plate; 2, horizontal plate; 3, mounting plate; 4, correction cavity; 41, displacement sensor; 42, vertical correction plate; 43, horizontal correction plate; 44, rubber pad; 45, push-pull rod; 46, moving block; 47, double-shaft screw; 48, worm gear; 49, worm; 410, motor. DETAILED DESCRIPTION

[0028] The technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.

[0029] Please refer to Figure 1The anode slot correcting device of the foil production machine in the embodiment comprises two vertical plates 1, the upper and lower ends of the two vertical plates 1 are fixed with horizontal plates 2 on the opposite wall, the opposite wall of the two vertical plates 1 is fixed with mounting plates 3, the opposite wall of the two vertical plates 1 and the two horizontal plates 2 is provided with a correcting cavity 4, and the correcting structure is arranged between the two vertical plates 1 and the two horizontal plates 2.

[0030] In addition, a plurality of mounting holes are formed in the front end of the two mounting plates 3, and a screw rod is threadedly connected in the mounting hole, so that the frame composed of the two horizontal plates 2 and the vertical plates 1 can be mounted on the outside of the anode slot, so that the anode slot can be located in the correcting cavity 4, so that the correcting structure can correct the anode slot.

[0031] Please refer to Figures 1 to 3 The correcting structure in the embodiment comprises four groups of displacement sensors 41, two vertical correcting plates 42, two horizontal correcting plates 43, rubber pads 44 mounted and fixed on the opposite side of the two vertical correcting plates 42 and the two horizontal correcting plates 43, two push-pull rods 45 hingedly mounted and fixed on the opposite side of the two vertical correcting plates 42 and the two horizontal correcting plates 43, displacement blocks 46 fixedly mounted on the other end of the push-pull rods 45, and a moving structure fixedly mounted on the inner side of the four groups of displacement blocks 46.

[0032] Among them, the rear end of the left and right two groups of displacement sensors 41 is fixed on the front wall of the two vertical plates 1, and the rear end of the upper and lower two groups of displacement sensors 41 is fixed on the front wall of the two horizontal plates 2, so that the four groups of displacement sensors 41 are mounted and fixed on the two vertical plates 1 and the two horizontal plates 2, and the four groups of displacement sensors 41 can monitor the position of the four sides of the anode slot.

[0033] In addition, the two vertical correcting plates 42 and the two horizontal correcting plates 43 are located on the inner side of the correcting cavity 4, so that the two vertical correcting plates 42 and the two horizontal correcting plates 43 can correct the four sides of the anode slot located in the correcting cavity 4.

[0034] In addition, the opposite wall of the two vertical correcting plates 42 and the two horizontal correcting plates 43 is provided with a long hole for the push-pull rod 45 to penetrate and slide in the inside, so that the push-pull rod 45 can penetrate into the vertical plate 1 or the horizontal plate 2 through the long hole, so that it can be connected with the displacement block 46, so that when the two displacement blocks 46 in the same group move towards or away from each other, the two displacement blocks 46 in the same group can drive the vertical correcting plate 42 or the horizontal correcting plate 43 to move through the two push-pull rods 45, so that the horizontal correcting plate 43 or the vertical correcting plate 42 can drive the anode slot to move, so as to correct the position of the anode slot.

[0035] Please refer to Figures 2 to 3The moving structure in the embodiment comprises a double-shaft screw 47 connected with the internal thread of the four moving blocks 46, the outer surface of the double-shaft screw 47 is fixed with a worm wheel 48, the rear end of the worm wheel 48 is engaged with a worm 49, and the moving structure further comprises a motor 410 fixed with a wall opposite to the internal cavities of the two vertical correction plates 42 and the two horizontal correction plates 43.

[0036] Secondly, one end of the four worms 49 is respectively fixed to the output end of the four motors 410, the other end of the four worms 49 is respectively rotatably connected to a wall opposite to the internal cavities of the two vertical plates 1 and the two horizontal plates 2 through bearings, so that the four motors 410 can drive the four worms 49 to stably rotate in the two vertical plates 1 and the two horizontal plates 2, so that the worm 49 can stably engage with the worm wheel 48.

[0037] In addition, the wall opposite to the two moving blocks 46 in the same group is provided with a threaded hole for the double-shaft screw 47 to pass through the internal thread of the threaded hole, the double-shaft screw 47 is threadedly connected in the internal thread of the threaded hole, and the double-shaft screw 47 is threadedly connected with the moving block 46 through the threaded connection, so that the double-shaft screw 47 can drive the two moving blocks 46 in the same group to move relatively or oppositely in the horizontal plate 2 or the vertical plate 1 through the threaded hole.

[0038] Meanwhile, the upper and lower ends of the left and right double-shaft screws 47 are rotatably connected to the upper and lower walls of the internal cavities of the two vertical plates 1 through bearings, and the left and right ends of the upper and lower double-shaft screws 47 are rotatably connected to the left and right walls of the internal cavities of the two horizontal plates 2 through bearings, so that the four double-shaft screws 47 can stably rotate in the two vertical plates 1 and the two horizontal plates 2, so that the four double-shaft screws 47 can stably drive the four moving blocks 46 to move relatively or oppositely, so that the four moving blocks 46 can stably drive the push-pull rod 45 to move.

[0039] It should be noted that the displacement sensor 41 and the electronic components appearing in the text are all well known to the public in the prior art, and the control method of the present embodiment is controlled by a controller, the electrical components appearing in the text are connected with the controller and the power supply, the control circuit of the controller can be realized by simple programming of those skilled in the art, and the power supply is also commonly known in the art, so the control method and the circuit connection of the present embodiment will not be explained in detail.

[0040] The working principle of the above embodiment is as follows:

[0041] In use, when the left and right groups of displacement sensors 41 monitor the anode slot deviation, they send signals to the control end, so that the control end controls the left and right two motors 410 to work, so that the output end of the motor 410 drives the worm 49 to rotate, so that the worm 49 meshes with the worm wheel 48, that is, the worm 49 can drive the worm wheel 48 to rotate, so that the worm wheel 48 can drive the double-shaft screw 47 to rotate, and the double-shaft screw 47 is screwed with the screw holes of the two moving blocks 46 in the same group, so that it drives the two moving blocks 46 in the same group to move relatively, and the two moving blocks 46 in the same group pull the distance between the two push-pull rods 45 to reduce, so that the two push-pull rods 45 close together, and the two push-pull rods 45 in the same group can push the vertical correction plate 42 to move in the correction cavity 4 of the frame composed of the two horizontal plates 2 and the vertical plate 1, so that the vertical correction plate 42 can push the anode slot to move in the correction cavity 4 of the frame composed of the two horizontal plates 2 and the vertical plate 1. Through the cooperation of the two vertical correction plates 42, the anode slot can be pushed to the original position. If there is a gap between the two horizontal plates 2, the control end controls the two motors 410 to work, and repeats the above steps, so that the two horizontal correction plates 43 move in the correction cavity 4 of the frame composed of the two horizontal plates 2 and the vertical plate 1, so that the two horizontal correction plates 43 correct the position of the anode slot. Not only can the position of the anode slot be monitored, but also the anode slot can be pushed to the original position, so that the position of the anode slot can be corrected, and the staff does not need to correct it, which can effectively improve the work effect and reduce the workload of the staff.

Claims

1. A foil machine anode tank correction device, comprising two vertical plates (1), characterized in that: A horizontal plate (2) is fixed to the upper and lower ends of a wall opposite to the two vertical plates (1), a mounting plate (3) is fixed to the wall opposite to the two vertical plates (1), a correction cavity (4) is provided on the wall opposite to the two vertical plates (1) and the two horizontal plates (2), and a correction structure is provided between the two vertical plates (1) and the two horizontal plates (2); The correction structure includes four groups of displacement sensors (41), two vertical correction plates (42), two horizontal correction plates (43), rubber pads (44) fixed on opposite sides of the two vertical correction plates (42) and the two horizontal correction plates (43), two push-pull rods (45) fixed on opposite sides of the two vertical correction plates (42) and the two horizontal correction plates (43), a moving block (46) fixed on the other end of the push-pull rod (45), and a moving structure fixed on the inner side of the four groups of moving blocks (46).

2. The anode tank correction device for a foil production machine according to claim 1, characterized in that: The rear ends of the left and right groups of displacement sensors (41) are respectively fixed to the front walls of the two vertical plates (1), and the rear ends of the upper and lower groups of displacement sensors (41) are respectively fixed to the front walls of the two horizontal plates (2).

3. The anode tank correction device for a foil production machine according to claim 1, characterized in that: The opposite walls of the two vertical correction plates (42) and the two horizontal correction plates (43) are each provided with a long hole for the push-pull rod (45) to pass through and slide inside.

4. The anode tank correction device for a foil production machine according to claim 1, characterized in that: The two vertical correction plates (42) and the two horizontal correction plates (43) are both located inside the correction cavity (4).

5. The anode tank correction device for a foil production machine according to claim 1, characterized in that: The moving structure includes a double-axis screw (47) connected to the internal threads of the surrounding moving blocks (46), a worm gear (48) is fixed to the outer surface of the double-axis screw (47), and a worm (49) is engaged with the rear end of the worm gear (48). The moving structure also includes a motor (410) fixed to a wall opposite to the inner cavity of the two vertical correction plates (42) and the two horizontal correction plates (43).

6. The anode tank correction device for a foil production machine according to claim 5, characterized in that: The opposite ends of the four worms (49) are respectively fixed to the output ends of the four motors (410), and the other ends of the four worms (49) are rotatably connected to the opposite walls of the inner cavities of the two vertical plates (1) and the two horizontal plates (2) through bearings.

7. The anode tank correction device for a foil production machine according to claim 5, characterized in that: The opposite walls of the two shifting blocks (46) in the same group are each provided with a threaded hole for allowing the biaxial screw (47) to pass through the inside thereof, and the biaxial screw (47) is threadedly connected to the inside of the threaded hole.

8. The anode tank correction device for a foil production machine according to claim 5, characterized in that: The upper and lower ends of the left and right biaxial screws (47) are rotatably connected to the upper and lower walls of the inner cavity of the two vertical plates (1) through bearings, and the left and right ends of the upper and lower biaxial screws (47) are rotatably connected to the left and right walls of the inner cavity of the two horizontal plates (2) through bearings.

Citation Information

Patent Citations

  • Special automatic detection device for anode tank titanium base

    CN209802314U