Anti-deviation square battery pole piece hydraulic cutting platform

CN224808741UActive Publication Date: 2026-09-29TIANJIN COWIN TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202522375836.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-11-10
Publication Date
2026-09-29
Estimated Expiration
2035-11-10

AI Technical Summary

Technical Problem

[0004]为了弥补以上不足,本实用新型提供了一种防偏移的方形电池极片液压裁切平台,旨在改善现有技术中需定期为滚珠丝杠加注专用润滑脂、为导向滑块加注润滑油,频繁的维护不仅增加人工成本,还会导致平台停机时间延长,影响生产效率的问题

Benefits of technology

[0021]1、本实用新型中,启动第一驱动电机,其输出端带动蜗杆转动,使蜗轮带动中部的转轴在第一安装架的内壁顶部转动,进而使转轴外壁焊接的轮齿随之旋转,通过轮齿与前后侧齿条相互啮合,使齿条沿内部的支撑架外壁滑动,从而使齿条带动外壁焊接的纠偏架同步移动,通过调整两侧纠偏架的间距,实现对不同尺寸的电池极片进行夹持摆正及纠偏,降低人工成本,提高生产效率。

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224808741U_ABST
    Figure CN224808741U_ABST
Patent Text Reader

Abstract

The utility model relates to battery manufacturing technical field discloses a square battery pole piece hydraulic cutting platform of preventing deviation, including machine body, the outer wall top of machine body is equipped with the deviation rectifying mechanism, the deviation rectifying mechanism is used for rectifying deviation to different size battery pole piece, the outer wall bottom of deviation rectifying mechanism is fixedly connected with rotating mechanism, and the rotating mechanism is used for rotating battery pole piece, the deviation rectifying mechanism includes first mounting bracket, first mounting bracket installs in the outer wall top of machine body, and the outer wall top of first mounting bracket is all set up with the limit slot before and after side. In the utility model, through the intermeshing of wheel teeth and before and after side rack, make rack slide along the support frame outer wall inside, thereby make rack drive the synchronous movement of the deviation rectifying frame welded to the outer wall, realize the clamping alignment and deviation rectification to the battery pole piece of different size through the interval adjustment of both sides deviation rectifying frame, reduce the artificial cost, improve production efficiency.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of battery manufacturing technology, and in particular to a hydraulic cutting platform for square battery electrode sheets that prevents misalignment. Background Technology

[0002] The anti-deviation square battery electrode hydraulic cutting platform is an advanced piece of equipment specifically designed for the cutting needs of square battery electrodes. This platform features a high-precision limiting and guiding structure. Through components such as a limiting plate, adjustable limiting clamps, and limiting guide rods with buffer springs, it effectively limits the electrodes during transport. Combined with a positioning shaft equipped with a limiting roller sleeve, it prevents electrode deviation during transport, greatly improving the stability of electrode transport. During cutting, a positioning rod movable on the pressure plate surface and a positioning disc connected to its bottom, along with a positioning spring, presses and positions the electrode before the die contacts it, effectively reducing the possibility of die-cutting deviation and ensuring the accuracy of electrode die-cutting. This guarantees the cutting quality of the electrodes and provides a reliable guarantee for high-quality cutting of square battery electrodes.

[0003] Existing hydraulic cutting platforms have fine vacuum adsorption holes on the cutting reference surface. The negative pressure adsorption firmly fixes the electrode sheets to the reference surface, eliminating the problem of floating or shifting caused by insufficient flatness or vibration during transport. However, the electrode cutting process generates trace amounts of dust, which can clog the fine adsorption holes on the reference surface. This not only reduces the adsorption force and decreases the anti-shifting effect, but also requires periodic disassembly of the platform to clean the adsorption holes, increasing equipment downtime and labor costs. Current technology uses ball screw drives on the cutting platform, with linear guide sliders on the outside of the screws. The ball screw drives offer high precision, and the linear constraint of the guide sliders enables precise positioning of square batteries. However, to ensure transmission accuracy and lifespan, special grease needs to be added to the ball screws and lubricating oil to the guide sliders periodically. Frequent maintenance not only increases labor costs but also extends platform downtime, affecting production efficiency. Utility Model Content

[0004] To overcome the above shortcomings, this utility model provides a hydraulic cutting platform for square battery electrode sheets that prevents misalignment. It aims to improve the existing technology that requires regular application of special grease to the ball screw and lubricating oil to the guide slider. Frequent maintenance not only increases labor costs but also leads to prolonged platform downtime and affects production efficiency.

[0005] To achieve the above objectives, the present invention adopts the following technical solution: a hydraulic cutting platform for anti-deviation square battery electrode sheets, comprising a machine body, a correction mechanism installed on the top of the outer wall of the machine body, the correction mechanism being used to correct the deviation of battery electrode sheets of different sizes, a rotating mechanism fixedly connected to the bottom of the outer wall of the correction mechanism, the rotating mechanism being used to rotate the battery electrode sheets; the correction mechanism includes a first mounting frame, the first mounting frame being installed on the top of the outer wall of the machine body, the top and rear sides of the top of the outer wall of the first mounting frame having limit grooves, a plurality of correction frames being slidably connected to the top of the top of the top of the top of the plurality of correction frames having sliders fixedly connected to the top of the inner walls of the plurality of correction frames, the outer walls of the sliders being slidably connected to the inside of the limit grooves, and a drive assembly being fixedly connected to the inside of the first mounting frame.

[0006] As a further description of the above technical solution:

[0007] The drive assembly includes a first drive motor, which is fixedly connected inside a first mounting bracket. A worm gear is fixedly connected to the output end of the first drive motor. A worm wheel is mounted on the right side of the outer wall of the worm gear, and the right side of the outer wall of the worm gear meshes with the left side of the outer wall of the worm wheel. A rotating shaft is fixedly connected to the middle of the worm wheel, and the top of the outer wall of the rotating shaft is rotatably connected to the top of the inner wall of the first mounting bracket. A gear tooth is fixedly connected to the middle of the outer wall of the rotating shaft, and racks are mounted on both the front and rear sides of the outer wall of the gear tooth. The adjacent sides of the outer walls of multiple racks mesh with the outer walls of the gear teeth. The outer walls of the racks are fixedly connected to the bottom of the outer wall of the correction frame. A support frame is slidably connected inside the racks, and the top of the outer wall of the support frame is fixedly connected to the top of the inner wall of the first mounting bracket.

[0008] As a further description of the above technical solution:

[0009] The rotating mechanism includes a rotating disk, which is fixedly connected to the bottom of the outer wall of the correction mechanism. The top of the outer wall of the rotating disk is fixedly connected to the bottom of the outer wall of the first mounting bracket. An auxiliary ring is fixedly connected to the bottom of the outer wall of the rotating disk. A second mounting bracket is installed at the bottom of the rotating disk. The bottom of the outer wall of the second mounting bracket is fixedly connected to the top of the outer wall of the machine body. An auxiliary groove is provided at the top of the second mounting bracket. The outer wall of the auxiliary ring is rotatably connected to the inside of the auxiliary groove. An installation groove is provided in the middle of the top of the second mounting bracket. A power component is installed at the bottom of the rotating disk.

[0010] As a further description of the above technical solution:

[0011] The power assembly includes a second drive motor mounted on the bottom of the rotating disk. A first helical gear is fixedly connected to the output end of the second drive motor. The outer wall of the first helical gear is rotatably connected to the interior of the mounting groove. A second helical gear is mounted on the right side of the outer wall of the first helical gear, meshing with the left side of the outer wall of the second helical gear. The outer wall of the second helical gear is rotatably connected to the interior of the mounting groove. A fixed shaft is fixedly connected to the interior of the mounting groove. A bearing is fixedly connected to the outer wall of the fixed shaft. The outer wall of the bearing is fixedly connected to the inner wall of the second helical gear. Multiple support plates are fixedly connected to the top of the outer wall of the second helical gear. The top of the outer wall of each support plate is fixedly connected to the top of the inner wall of the rotating disk.

[0012] As a further description of the above technical solution:

[0013] Each of the four corners of the bottom of the outer wall of the machine body is fixedly connected to a load-bearing column, and each of the load-bearing columns is fixedly connected to a foot pad at the bottom of its outer wall.

[0014] As a further description of the above technical solution:

[0015] A load-bearing frame is fixedly connected to the top rear end of the outer wall of the machine body, and a cutting gun is installed in the middle of the load-bearing frame.

[0016] As a further description of the above technical solution:

[0017] A control box is fixedly connected to the right side of the outer wall of the load-bearing frame, and a switch is installed at the front end of the control box.

[0018] As a further description of the above technical solution:

[0019] The control box has a door installed on its right end, and a push-button handle is installed on the front end of the door.

[0020] This utility model has the following beneficial effects:

[0021] 1. In this utility model, starting the first drive motor causes the output end to drive the worm gear to rotate, which in turn causes the worm wheel to drive the central rotating shaft to rotate on the top of the inner wall of the first mounting frame. This causes the gear teeth welded to the outer wall of the rotating shaft to rotate accordingly. Through the meshing of the gear teeth with the front and rear racks, the racks slide along the outer wall of the inner support frame, thereby causing the racks to drive the correction frame welded to the outer wall to move synchronously. By adjusting the distance between the two correction frames, the battery electrode sheets of different sizes can be clamped, aligned, and corrected, reducing labor costs and improving production efficiency.

[0022] 2. In this utility model, when the second drive motor is started, its output end drives the first helical gear to rotate inside the mounting slot. The first helical gear meshes with the second helical gear on the right side, causing the second helical gear to rotate along the outside of the fixed shaft inside the mounting slot. This causes the second helical gear to drive the rotating disk to rotate synchronously through multiple support plates mounted on the top. The auxiliary ring at the bottom of the rotating disk can rotate in the auxiliary slot at the top of the second mounting frame, further ensuring rotational stability. This causes the rotating disk to drive the first mounting frame fixed on the top to rotate, realizing the rotation of the battery electrode sheet after correction, and meeting the hydraulic cutting requirements at different angles. Attached Figure Description

[0023] Figure 1 This is a front view of a hydraulic cutting platform for preventing offset of square battery electrode sheets proposed in this utility model;

[0024] Figure 2 This is a perspective view of a hydraulic cutting platform for anti-displacement square battery electrode sheets proposed in this utility model;

[0025] Figure 3 This is a side view of a square battery electrode hydraulic cutting platform for preventing offset proposed in this utility model;

[0026] Figure 4 This is a schematic diagram of the correction mechanism of a hydraulic cutting platform for anti-deviation square battery electrode sheets proposed in this utility model;

[0027] Figure 5 for Figure 4 Enlarged view at point A;

[0028] Figure 6 This is a diagram illustrating the rotating mechanism of a hydraulic cutting platform for anti-displacement square battery electrode sheets proposed in this utility model.

[0029] Figure 7 This is a partial structural exploded view of the rotating mechanism of a hydraulic cutting platform for anti-displacement square battery electrode sheets proposed in this utility model.

[0030] Legend:

[0031] 1. Body; 2. Correction mechanism; 201. First mounting bracket; 202. Limiting groove; 203. Drive assembly; 2031. First drive motor; 2032. Worm gear; 2033. Worm wheel; 2034. Rotating shaft; 2035. Gear tooth; 2036. Rack; 2037. Support frame; 204. Correction frame; 205. Slider; 3. Rotation mechanism; 301. Rotary disk; 302. Auxiliary ring; 30 3. Second mounting bracket; 304. Auxiliary slot; 305. Power assembly; 3051. Second drive motor; 3052. First helical gear; 3053. Second helical gear; 3054. Fixed shaft; 3055. Bearing; 3056. Support plate; 306. Mounting slot; 4. Load-bearing column; 5. Foot pad; 6. Load-bearing frame; 7. Cutting gun; 8. Control box; 9. Switch; 10. Box door; 11. Push-button handle. Detailed Implementation

[0032] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0033] Reference Figure 2 , Figure 4 and Figure 5 An embodiment of this utility model is provided: a square battery electrode hydraulic cutting platform for preventing deviation, including a body 1, a correction mechanism 2 installed on the top of the outer wall of the body 1, the correction mechanism 2 is used to correct the deviation of battery electrodes of different sizes, and a rotating mechanism 3 is fixedly connected to the bottom of the outer wall of the correction mechanism 2, the rotating mechanism 3 is used to rotate the battery electrodes.

[0034] The correction mechanism 2 includes a first mounting frame 201, which is mounted on the top of the outer wall of the body 1. Limiting grooves 202 are provided on the front and rear sides of the top of the outer wall of the first mounting frame 201. Multiple correction frames 204 are slidably connected to the top of the first mounting frame 201. Slider 205 is fixedly connected to the top of the inner wall of each of the multiple correction frames 204. The outer wall of the slider 205 is slidably connected to the inside of the limiting groove 202. A drive assembly 203 is fixedly connected to the inside of the first mounting frame 201.

[0035] The drive assembly 203 includes a first drive motor 2031, model 130ST-M15015. Its internal driver receives external commands (such as position pulses and speed signals) and simultaneously acquires the actual rotor state through an encoder. If there is a deviation between the actual state and the command, the driver adjusts the stator current, changing the rotational speed or direction of the rotating magnetic field until the deviation is eliminated, achieving high-precision control. The first drive motor 2031 is fixedly connected inside the first mounting bracket 201. A worm gear 2032 is fixedly connected to the output end of the first drive motor 2031. A worm wheel 2033 is installed on the right side of the outer wall of the worm gear 2032. The outer wall of the worm gear 2033 is meshed with the left side of the outer wall. The middle of the worm gear 2033 is fixedly connected to the rotating shaft 2034. The top of the outer wall of the rotating shaft 2034 is rotatably connected to the top of the inner wall of the first mounting frame 201. The middle of the outer wall of the rotating shaft 2034 is fixedly connected to the gear tooth 2035. The front and rear sides of the outer wall of the gear tooth 2035 are both equipped with racks 2036. The adjacent sides of the outer walls of multiple racks 2036 are meshed with the outer walls of the gear tooth 2035. The outer walls of the racks 2036 are fixedly connected to the bottom of the outer wall of the correction frame 204. The inside of the racks 2036 is slidably connected to the support frame 2037. The top of the outer wall of the support frame 2037 is fixedly connected to the top of the inner wall of the first mounting frame 201.

[0036] Specifically, starting the first drive motor 2031 causes the output end to drive the worm gear 2032 to rotate. Through the meshing of the worm gear 2032 and the right worm wheel 2033, the worm wheel 2033 drives the central rotating shaft 2034 to rotate on the top of the inner wall of the first mounting bracket 201. This causes the gear teeth 2035 welded to the outer wall of the rotating shaft 2034 to rotate accordingly. Through the meshing of the gear teeth 2035 and the front and rear racks 2036, the racks 2036 slide along the outer wall of the inner support frame 2037. This causes the racks 2036 to drive the correction frame 204 welded to the outer wall to move synchronously. The slider 205 connected to the inner wall of the correction frame 204 can slide along the limiting groove 202, providing stable support for the movement of the correction frame 204. By adjusting the distance between the two correction frames 204, the battery electrode sheets of different sizes can be clamped, aligned, and corrected, reducing labor costs and improving production efficiency.

[0037] Reference Figure 3 , Figure 6 and Figure 7The rotating mechanism 3 includes a rotating disk 301, which is fixedly connected to the bottom of the outer wall of the correction mechanism 2. The top of the outer wall of the rotating disk 301 is fixedly connected to the bottom of the outer wall of the first mounting bracket 201. An auxiliary ring 302 is fixedly connected to the bottom of the outer wall of the rotating disk 301. A second mounting bracket 303 is installed at the bottom of the rotating disk 301. The bottom of the outer wall of the second mounting bracket 303 is fixedly connected to the top of the outer wall of the machine body 1. An auxiliary groove 304 is opened at the top of the second mounting bracket 303. The outer wall of the auxiliary ring 302 is rotatably connected to the inside of the auxiliary groove 304. An installation groove 306 is opened in the middle of the top of the second mounting bracket 303. A power assembly 305 is installed at the bottom of the rotating disk 301.

[0038] The power assembly 305 includes a second drive motor 3051, model MSME102G1V. Its working principle is that when direct current is applied to the armature winding, the current experiences an Ampere force in the magnetic field, causing the armature winding to rotate the rotor. However, due to the cooperation of the commutator and brushes, the current direction in the winding automatically reverses whenever the rotor completes half a revolution, ensuring the rotor continuously receives torque in the same direction and achieving continuous rotation. The second drive motor 3051 is mounted on the bottom of the rotating disk 301. A first helical gear 3052 is fixedly connected to the output end of the second drive motor 3051. The outer wall of the first helical gear 3052 is flush with the mounting groove 306. The first helical gear 3052 is internally rotatably connected to the second helical gear 3053, which is installed on the right side of the outer wall of the first helical gear 3052. The right side of the outer wall of the first helical gear 3052 is meshed with the left side of the outer wall of the second helical gear 3053. The outer wall of the second helical gear 3053 is rotatably connected to the inside of the mounting groove 306. The mounting groove 306 is fixedly connected to the inside of the mounting groove 306. The outer wall of the fixed shaft 3054 is fixedly connected to the bearing 3055. The outer wall of the bearing 3055 is fixedly connected to the inner wall of the second helical gear 3053. The top of the outer wall of the second helical gear 3053 is fixedly connected to multiple support plates 3056. The top of the outer wall of the support plates 3056 is fixedly connected to the top of the inner wall of the rotating disk 301.

[0039] Specifically, starting the second drive motor 3051 allows the output end to drive the first helical gear 3052 to rotate inside the mounting groove 306. Through the meshing action of the first helical gear 3052 and the second helical gear 3053 on the right, the second helical gear 3053 can rotate along the outside of the fixed shaft 3054 inside the mounting groove 306. The bearing 3055 is fixed between the fixed shaft 3054 and the second helical gear 3053, which makes the rotation of the second helical gear 3053 more stable. In turn, the second helical gear 3053 drives the rotating disk 301 to rotate synchronously through the multiple support plates 3056 installed at the top. The auxiliary ring 302 at the bottom of the rotating disk 301 can rotate in the auxiliary groove 304 at the top of the second mounting frame 303, further ensuring rotational stability. This allows the rotating disk 301 to drive the first mounting frame 201 fixed at the top to rotate, realizing the rotation of the battery electrode after correction, and meeting the hydraulic cutting requirements at different angles.

[0040] Reference Figure 1 , Figure 2 and Figure 3 A load-bearing column 4 is fixedly connected to the four corners of the bottom of the outer wall of the machine body 1. Foot pads 5 are fixedly connected to the bottom of the outer wall of the multiple load-bearing columns 4. A load-bearing frame 6 is fixedly connected to the top rear end of the outer wall of the machine body 1. A cutting gun 7 is installed in the middle of the load-bearing frame 6. A control box 8 is fixedly connected to the right side of the outer wall of the load-bearing frame 6. A switch 9 is installed at the front end of the control box 8. A door 10 is installed at the right end of the control box 8. A push-type handle 11 is installed at the front end of the door 10.

[0041] Specifically, load-bearing columns 4 are welded around the bottom of the machine body 1, and foot pads 5 are installed on the bottom of each column to improve the stability of the machine body 1 and prevent slippage or shaking. A load-bearing frame 6 is installed on the top of the machine body 1, and a cutting gun 7 is installed in the middle of the load-bearing frame 6. The cutting gun 7 can complete the cutting operation of the battery electrode sheets to meet the processing requirements. A control box 8 is installed on the right side of the load-bearing frame 6. A switch 9 is provided at the front end of the control box 8. The switch 9 can control the start and stop of the control box 8, which allows the operator to quickly adjust the operating status of the equipment. A door 10 is installed on the right end of the control box 8. A push-button handle 11 is provided at the front end of the door 10. The push-button handle 11 makes it easy for the operator to open or close the door 10. All the components work together to ensure the stable placement of the machine body 1 and to achieve precise control of the cutting operation and protection of the internal parts of the equipment.

[0042] Working principle: When the first drive motor 2031 is started, its output end can drive the worm gear 2032 to rotate. Through the meshing of the worm gear 2032 and the right worm wheel 2033, the worm wheel 2033 drives the central rotating shaft 2034 to rotate on the top of the inner wall of the first mounting frame 201. This causes the gear teeth 2035 welded to the outer wall of the rotating shaft 2034 to rotate accordingly. Through the meshing of the gear teeth 2035 and the front and rear racks 2036, the racks 2036 slide along the outer wall of the inner support frame 2037. This causes the racks 2036 to drive the correction frame 204 welded to the outer wall to move synchronously. The slider 205 connected to the inner wall of the correction frame 204 can slide along the limiting groove 202, providing stable support for the movement of the correction frame 204. By adjusting the distance between the two correction frames 204, the battery electrode sheets of different sizes can be clamped, aligned and corrected, reducing labor costs and improving production efficiency.

[0043] The second drive motor 3051 is started, and its output end can drive the first helical gear 3052 to rotate inside the mounting groove 306. Through the meshing of the first helical gear 3052 and the second helical gear 3053 on the right, the second helical gear 3053 can rotate along the outside of the fixed shaft 3054 inside the mounting groove 306. The bearing 3055 is fixed between the fixed shaft 3054 and the second helical gear 3053, which can make the rotation of the second helical gear 3053 more stable. Then, the second helical gear 3053 drives the rotating disk 301 to rotate synchronously through the multiple support plates 3056 installed at the top. The auxiliary ring 302 at the bottom of the rotating disk 301 can rotate in the auxiliary groove 304 at the top of the second mounting frame 303, further ensuring rotational stability. Thus, the rotating disk 301 drives the first mounting frame 201 fixed at the top to rotate, realizing the rotation of the battery electrode after correction, and meeting the hydraulic cutting requirements at different angles.

[0044] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A hydraulic cutting platform for square battery electrode sheets with anti-displacement function, comprising a body (1), characterized in that: The top of the outer wall of the body (1) is equipped with a correction mechanism (2), which is used to correct the deviation of battery electrodes of different sizes. The bottom of the outer wall of the correction mechanism (2) is fixedly connected with a rotating mechanism (3), which is used to rotate the battery electrodes. The correction mechanism (2) includes a first mounting bracket (201), which is mounted on the top of the outer wall of the body (1). Limiting grooves (202) are provided on the front and rear sides of the top of the outer wall of the first mounting bracket (201). Multiple correction brackets (204) are slidably connected to the top of the first mounting bracket (201). A slider (205) is fixedly connected to the top of the inner wall of each of the multiple correction brackets (204). The outer wall of the slider (205) is slidably connected to the inside of the limiting groove (202). A drive assembly (203) is fixedly connected inside the first mounting bracket (201).

2. The anti-displacement square battery electrode hydraulic cutting platform according to claim 1, characterized in that: The drive assembly (203) includes a first drive motor (2031), which is fixedly connected inside the first mounting bracket (201). A worm gear (2032) is fixedly connected to the output end of the first drive motor (2031). A worm wheel (2033) is mounted on the right side of the outer wall of the worm gear (2032), and the right side of the outer wall of the worm gear (2032) meshes with the left side of the outer wall of the worm wheel (2033). A rotating shaft (2034) is fixedly connected to the middle of the worm wheel (2033), and the top end of the outer wall of the rotating shaft (2034) is connected to the first mounting bracket (201). The inner wall of the shaft (2034) is rotatably connected to the top. A gear tooth (2035) is fixedly connected to the middle of the outer wall of the shaft (2034). A rack (2036) is installed on the front and rear sides of the outer wall of the gear tooth (2035). The outer walls of multiple racks (2036) are meshed with the outer walls of the gear tooth (2035) on adjacent sides. The outer walls of the racks (2036) are fixedly connected to the bottom of the outer wall of the correction frame (204). A support frame (2037) is slidably connected inside the rack (2036). The top of the outer wall of the support frame (2037) is fixedly connected to the top of the inner wall of the first mounting frame (201).

3. The anti-displacement square battery electrode hydraulic cutting platform according to claim 1, characterized in that: The rotating mechanism (3) includes a rotating disk (301), which is fixedly connected to the bottom of the outer wall of the correction mechanism (2). The top of the outer wall of the rotating disk (301) is fixedly connected to the bottom of the outer wall of the first mounting bracket (201). An auxiliary ring (302) is fixedly connected to the bottom of the outer wall of the rotating disk (301). A second mounting bracket (303) is installed at the bottom of the rotating disk (301). The bottom of the outer wall of the second mounting bracket (303) is fixedly connected to the top of the outer wall of the body (1). An auxiliary groove (304) is opened at the top of the second mounting bracket (303). The outer wall of the auxiliary ring (302) is rotatably connected to the inside of the auxiliary groove (304). An installation groove (306) is opened in the middle of the top of the second mounting bracket (303). A power component (305) is installed at the bottom of the rotating disk (301).

4. The anti-displacement square battery electrode hydraulic cutting platform according to claim 3, characterized in that: The power assembly (305) includes a second drive motor (3051), which is mounted on the bottom of the rotating disk (301). A first helical gear (3052) is fixedly connected to the output end of the second drive motor (3051). The outer wall of the first helical gear (3052) is rotatably connected to the interior of the mounting groove (306). A second helical gear (3053) is mounted on the right side of the outer wall of the first helical gear (3052), and the right side of the outer wall of the first helical gear (3052) meshes with the left side of the outer wall of the second helical gear (3053). The outer wall of the second helical gear (3053) is rotatably connected to the interior of the mounting groove (306). A fixed shaft (3054) is fixedly connected to the interior of the mounting groove (306). A bearing (3055) is fixedly connected to the outer wall of the fixed shaft (3054). The outer wall of the bearing (3055) is fixedly connected to the inner wall of the second helical gear (3053). A plurality of support plates (3056) are fixedly connected to the top of the outer wall of the second helical gear (3053). The top of the outer wall of the support plate (3056) is fixedly connected to the top of the inner wall of the rotating disk (301).

5. The anti-displacement square battery electrode hydraulic cutting platform according to claim 1, characterized in that: The outer wall of the body (1) is fixedly connected to four corners of the bottom of the body, and foot pads (5) are fixedly connected to the bottom of the outer wall of the multiple load-bearing columns (4).

6. The anti-displacement square battery electrode hydraulic cutting platform according to claim 1, characterized in that: A load-bearing frame (6) is fixedly connected to the top rear end of the outer wall of the machine body (1), and a cutting gun (7) is installed in the middle of the load-bearing frame (6).

7. The anti-displacement square battery electrode hydraulic cutting platform according to claim 6, characterized in that: A control box (8) is fixedly connected to the right side of the outer wall of the load-bearing frame (6), and a switch (9) is installed at the front end of the control box (8).

8. The anti-displacement square battery electrode hydraulic cutting platform according to claim 7, characterized in that: The control box (8) is equipped with a door (10) on the right end, and a push-button handle (11) is installed at the front end of the door (10).