A copper strip two-in-one cutting device with positioning and guiding functions

By employing an efficient conveying mechanism and a positioning and guiding mechanism, the problems of slackness and deviation during the conveying process of the copper strip cutting device are solved, achieving efficient and precise conveying and positioning of the copper strip and ensuring cutting accuracy.

CN224587111UActive Publication Date: 2026-08-04ZHUHAI BOJI PHOTOELECTRIC TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZHUHAI BOJI PHOTOELECTRIC TECH CO LTD
Filing Date
2025-08-20
Publication Date
2026-08-04

AI Technical Summary

Technical Problem

Existing copper strip cutting devices suffer from slack or deviation during the conveying process, resulting in low conveying efficiency and poor positioning and guiding effects, leading to inaccurate cutting.

Method used

It adopts a high-efficiency conveying mechanism and a positioning and guiding mechanism. The active and driven needle wheels are driven by a servo motor, combined with the pressure roller and the limiting groove, to achieve efficient and precise conveying and positioning and guiding of copper strip.

Benefits of technology

It achieves efficient and precise conveying and positioning of copper strip, avoids skewing during the conveying process, and ensures cutting accuracy.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model relates to the field of copper strip processing technology, specifically a copper strip bisecting cutting device with positioning and guiding functions. It includes a device conveying track, a first conveying channel mounted on the surface of the second conveying channel, and limiting grooves formed on the surfaces of both the first and second conveying channels. A copper strip body is disposed inside the limiting grooves. A high-efficiency conveying mechanism is provided on the surface of the device conveying track, and positioning and guiding mechanisms are provided on the inner walls of both the first and second fixing plates. This utility model not only enables efficient and precise conveying of the copper strip body during use, ensuring accuracy in cutting the copper strip body, but also effectively positions the copper strip body during use, preventing skewing during conveying, and guiding the copper strip body.
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Description

Technical Field

[0001] This utility model relates to the field of copper strip processing technology, specifically a copper strip splitting device with positioning and guiding function. Background Technology

[0002] Copper strip, due to its special metallic properties and high conductivity and strong corrosion resistance, is widely used in the fields of power, electronics, new energy, design of conductive components, chemical equipment and other products. When processing copper strip, a cutting device is required. However, the existing cutting devices have some shortcomings, which makes them unable to meet the needs of use. Now, there is a need for a copper strip splitting device with positioning and guiding function.

[0003] Existing cutting devices, due to dynamic changes during the halving process of copper strips, can cause the copper strips to become loose or deviate during transport. Furthermore, the current cutting devices are not efficient enough in transporting the copper strip itself, preventing them from providing efficient and precise delivery and ensuring accurate cutting. In addition, the existing cutting devices are not effective in positioning and guiding the copper strip, making it difficult to position and guide it during transport, which can lead to skewing. Utility Model Content

[0004] The purpose of this utility model is to provide a copper strip splitting device with positioning and guiding function, so as to solve the problems mentioned in the background art that the conveying efficiency of the copper strip body is not high enough and the positioning and guiding effect of the copper strip body is not good enough.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a copper strip splitting device with positioning and guiding function, comprising a device conveying track, a protective sheet metal mounted on the surface of the device conveying track by screws, a controller mounted on the surface of the top position of the protective sheet metal, a first fixing plate mounted on the surface of the device conveying track, a fixing frame mounted on the surface of the device conveying track, a second fixing plate mounted on the surface of the fixing frame, a second conveying channel provided on one side of the device conveying track, a first conveying channel mounted on the surface of the second conveying channel, limiting grooves formed on the surfaces of both the first and second conveying channels, a copper strip body disposed inside the limiting grooves, a high-efficiency conveying mechanism disposed on the surface of the device conveying track, and positioning and guiding mechanisms disposed on the inner walls of both the first and second fixing plates.

[0006] Preferably, an etching machine assembly is provided above the conveying track of the device, the surface of the second conveying channel is fastened to the surface of the protective sheet metal by screws, the diameter of the copper strip body is smaller than the diameter of the limiting groove, a mounting bracket is installed on the surface of the top position of the first conveying channel by screws, a through-beam optical fiber is installed on the surface of the mounting bracket, the output end of the through-beam optical fiber is electrically connected to the input end of the controller, and pressure strip sheet metal is installed on the top positions of both the first and second conveying channels by screws.

[0007] Preferably, the high-efficiency conveying mechanism comprises a servo motor, a reducer, a driven pinwheel, a second pulley, a belt body, a driving pinwheel, a first connecting shaft, a first pulley, a second connecting shaft, and a pin body. A servo motor is mounted on the surface of the first fixed plate. The input end of the servo motor is electrically connected to the output end of the controller. A rotating shaft is mounted on the output end of the servo motor via a coupling. A reducer is mounted on the surface of the servo motor. The reducer has an input shaft, and the servo motor has an output shaft. The other end of the rotating shaft is connected to the input shaft of the reducer. The output end of the reducer passes through the first fixed plate and extends to the inner side of the first fixed plate. A driving pinwheel is disposed on the inner side of the first fixed plate. The surface of the driving pinwheel is connected to the output end of the reducer. A first connecting shaft is mounted on the surface at the center of the driving pinwheel. A first pulley is fitted onto the surface of the first connecting shaft.

[0008] Preferably, a driven pinwheel is provided on the inner side of the second fixed plate. The driven pinwheel rotates and engages with the inner wall of the second fixed plate. A second connecting shaft is fitted on the surface of the center position of the driven pinwheel. A second pulley is fitted on the surface of the second connecting shaft. A belt body is installed on the surface of the second pulley and the first pulley. The second pulley and the first pulley extend into the interior of the protective sheet metal and rotate and engage with the inner wall of the protective sheet metal. The surfaces of both the driven pinwheel and the driving pinwheel are equipped with equally spaced pins for positioning the copper strip body. The pins engage with the surface of the copper strip body.

[0009] Preferably, the positioning and guiding mechanism consists of a pressure frame, mounting studs, pressure rods, a wheel body, and a pressure roller. The inner walls of both the first and second fixed plates are provided with pressure frames. The surface of the pressure frame is threaded with mounting studs. One end of the mounting studs passes through the pressure frame and is threadedly fastened to the inner walls of the first and second fixed plates respectively. The inner walls of both the first and second fixed plates are provided with pressure rods.

[0010] Preferably, a wheel is fitted onto the surface of the pressure rod, and the wheel rotates in relation to the surface of the pressure rod. The surface of the pressure frame is provided with a pressure roller for pressing the copper strip body, and the surface of the pressure roller is in contact with the surface of the wheel and the surface of the copper strip body.

[0011] Compared with the prior art, the beneficial effects of this utility model are: the copper strip splitting device with positioning and guiding function not only enables the cutting device to efficiently and accurately transport the copper strip body during use, ensuring the accuracy of cutting the copper strip body, but also enables the cutting device to effectively position the copper strip body during use, avoiding the phenomenon of the copper strip body being skewed during transport, and at the same time, it can guide the copper strip body.

[0012] 1. By setting up a high-efficiency conveying mechanism and controlling the servo motor to work, the active needle wheel is driven to rotate on the inner wall of the first fixed plate with the help of the reducer. When the active needle wheel rotates, it drives the first connecting shaft to rotate, thereby driving the first pulley to rotate on the inner wall of the protective sheet metal. The first pulley drives the belt body to move, thereby driving the second pulley to rotate on the inner wall of the protective sheet metal. The second pulley can drive the second connecting shaft to rotate. When the second connecting shaft rotates, it can drive the driven needle wheel to rotate on the inner wall of the second fixed plate. When the active needle wheel rotates, the driven needle wheel can rotate synchronously. The copper strip body is conveyed to the surface of the first conveying channel and the second conveying channel through the active needle wheel, realizing the function of efficient conveying of the copper strip body by the cutting device. This enables the cutting device to efficiently and accurately convey the copper strip body during use, ensuring the accuracy of cutting the copper strip body.

[0013] 2. With the positioning and guiding mechanism, the user installs the pressure frame on the inner walls of the first and second fixed plates respectively using mounting studs. When the active needle wheel rotates, it conveys the copper strip body. At this time, the wheel rotates on the surface of the pressure rod, and the copper strip body drives the pressure wheel to rotate on the inner wall of the pressure frame. The pressure wheel tightly presses the copper strip body, making the copper strip body closely fit the surfaces of the active and driven needle wheels respectively. This allows the needles on the surfaces of the active and driven needle wheels to accurately engage with the positioning holes on the surface of the copper strip body, reducing the risk of the copper strip body running out of the surfaces of the active and driven needle wheels during conveying. This achieves the positioning and guiding function of the cutting device for the copper strip body, thus enabling the cutting device to effectively position the copper strip body during use, avoiding the phenomenon of the copper strip body being skewed during conveying, and at the same time, guiding the copper strip body. Attached Figure Description

[0014] Figure 1This is a three-dimensional structural diagram of the present invention;

[0015] Figure 2 This is a three-dimensional cross-sectional structural diagram of the present invention;

[0016] Figure 3 This is a three-dimensional exploded structural diagram of the present invention;

[0017] Figure 4 This is a three-dimensional structural diagram of the present utility model;

[0018] Figure 5 This is a top view enlarged structural diagram of the present invention;

[0019] Figure 6 This is a partially enlarged three-dimensional cross-sectional structural diagram of the present invention;

[0020] Figure 7 For the present utility model Figure 4 Enlarged structural diagram of the positioning and guiding mechanism.

[0021] In the diagram: 1. Device conveying track; 11. Controller; 12. Etching machine assembly; 101. First fixing plate; 102. Second fixing plate; 103. Protective sheet metal; 104. First conveying channel; 105. Second conveying channel; 106. Fixing frame; 107. Optical fiber; 108. Mounting frame; 109. Copper strip body; 110. Limiting groove; 111. Pressing sheet metal; 2. High-efficiency conveying mechanism; 21. Servo motor; 22. Reducer; 23. Driven pin wheel; 24. Second pulley; 25. Belt body; 26. Driven pin wheel; 27. First connecting shaft; 28. First pulley; 29. ​​Second connecting shaft; 210. Needle body; 3. Positioning guide mechanism; 31. Pressing frame; 32. Mounting stud; 33. Pressing rod; 34. Wheel body; 35. Pressing roller. Detailed Implementation

[0022] 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, not all embodiments. In addition, the terms "first", "second", "third", "upper", "lower", "left", "right", etc. are used for descriptive purposes only and should not be construed as indicating or implying relative importance. At the same time, in the description of the present utility model, unless otherwise explicitly specified and limited, the terms "connected" and "linked" should be interpreted broadly. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present utility model.

[0023] The present invention provides a copper strip bi-cutting device with positioning and guiding function, the structure of which is as follows: Figures 1 to 5 As shown, the device includes a conveyor track 1. A protective sheet metal 103 is mounted on the surface of the conveyor track 1 with screws. A controller 11 (of which the controller 11 can be an LA series model) is mounted on the top surface of the protective sheet metal 103. A first fixing plate 101 is mounted on the surface of the conveyor track 1. A fixing frame 106 is mounted on the surface of the conveyor track 1. A second fixing plate 102 is mounted on the surface of the fixing frame 106. An etching machine assembly 12 is arranged above the conveyor track 1. A second conveying channel 105 is arranged on one side of the conveyor track 1. The surface of the second conveying channel 105 is fastened to the surface of the protective sheet metal 103 with screws. The first conveying channel 104 is provided. Both the surface of the first conveying channel 104 and the second conveying channel 105 are provided with limiting grooves 110. A copper strip body 109 is provided inside the limiting groove 110. The diameter of the copper strip body 109 is smaller than the diameter of the limiting groove 110. A mounting bracket 108 is installed on the surface of the top position of the first conveying channel 104 by screws. A through-beam optical fiber 107 is installed on the surface of the mounting bracket 108. The through-beam optical fiber 107 can be of the AX series. The output end of the through-beam optical fiber 107 is electrically connected to the input end of the controller 11. A pressure strip sheet metal 111 is installed on the surface of the top position of the first conveying channel 104 and the second conveying channel 105 by screws.

[0024] Furthermore, such as Figure 3 , Figure 5 and Figure 6As shown, a high-efficiency conveying mechanism 2 is provided on the surface of the conveying track 1. The high-efficiency conveying mechanism 2 consists of a servo motor 21, a reducer 22, a driven pin wheel 23, a second pulley 24, a belt body 25, a driving pin wheel 26, a first connecting shaft 27, a first pulley 28, a second connecting shaft 29, and a pin body 210. The servo motor 21 is mounted on the surface of the first fixed plate 101. The servo motor 21 can be of the HF series. The input end of the servo motor 21 is electrically connected to the output end of the controller 11. The output end of the servo motor 21 is mounted with a rotating shaft via a coupling. The reducer 22 is mounted on the surface of the servo motor 21. The reducer 22 has an input shaft, and the servo motor 21 has an output shaft. The other end of the rotating shaft is connected to the input shaft of the reducer 22. The output end of the reducer 22 passes through the first fixed plate 101 and extends to the inner side of the first fixed plate 101. A driving pin wheel is provided on the inner side of the first fixed plate 101. 26. The surface of the driving pin wheel 26 is connected to the output end of the reducer 22. A first connecting shaft 27 is installed on the surface of the center position of the driving pin wheel 26. A first pulley 28 is fitted on the surface of the first connecting shaft 27. A driven pin wheel 23 is provided on the inner side of the second fixed plate 102. The driven pin wheel 23 rotates and engages with the inner wall of the second fixed plate 102. A second connecting shaft 29 is fitted on the surface of the center position of the driven pin wheel 23. A second pulley 24 is fitted on the surface of the second connecting shaft 29. A belt body 25 is installed on the surface of the second pulley 24 and the first pulley 28. The second pulley 24 and the first pulley 28 extend into the interior of the protective sheet metal 103 and rotate and engage with the inner wall of the protective sheet metal 103. Both the driven pin wheel 23 and the driving pin wheel 26 are equipped with equally spaced pins 210 for positioning the copper strip body 109. The pins 210 engage with the surface of the copper strip body 109.

[0025] During implementation, the servo motor 21 is controlled to work, and with the cooperation of the reducer 22, the active pin wheel 26 is driven to rotate on the inner wall of the first fixed plate 101. Since there are equally spaced pins 210 on the active pin wheel 26, it can effectively position the copper strip body 109, ensuring that when the servo motor 21 rotates at a certain angle, the active pin wheel 26 can drive the copper strip body 109 to travel a constant distance. When the copper strip body 109 is transported to the designated position below the first conveying channel 104, the surface of the copper strip body 109 is cut open under the action of the etching machine assembly 12, dividing the copper strip body 109 into two parts. When the active pinwheel 26 rotates, it drives the first connecting shaft 27 to rotate, which in turn drives the first pulley 28 to rotate on the inner wall of the protective sheet metal 103. The first pulley 28 drives the belt body 25 to move, which in turn drives the second pulley 24 to rotate on the inner wall of the protective sheet metal 103. When the second pulley 24 rotates, it can drive the second connecting shaft 29 to rotate. When the second connecting shaft 29 rotates, it can drive the driven pinwheel 23 to rotate on the inner wall of the second fixed plate 102. When the active pinwheel 26 rotates, the driven pinwheel 23 can rotate synchronously. The copper strip body 109 is conveyed to the surface of the first conveying channel 104 and the second conveying channel 105 through the active pinwheel 26. Under the action of the protective sheet metal 103, the belt conveying assembly of the high-efficiency conveying mechanism 2 can be covered, reducing the risk of machine injury, so as to realize the function of efficient conveying of the copper strip body 109 by the cutting device.

[0026] Furthermore, such as Figure 4 and Figure 7 As shown, both the inner walls of the first fixed plate 101 and the second fixed plate 102 are provided with positioning and guiding mechanisms 3. The positioning and guiding mechanism 3 consists of a pressure frame 31, mounting studs 32, a pressure rod 33, a wheel 34, and a pressure roller 35. The inner walls of both the first fixed plate 101 and the second fixed plate 102 are provided with pressure frames 31. Mounting studs 32 are threaded onto the surface of the pressure frame 31. One end of the mounting stud 32 passes through the pressure frame 31 and is respectively connected to the first fixed plate 101 and the second fixed plate 102. The inner walls of the two fixing plates 102 are threaded and fastened. The inner walls of the first fixing plate 101 and the second fixing plate 102 are both equipped with pressure rods 33. The surface of the pressure rod 33 is fitted with a wheel body 34. The wheel body 34 and the surface of the pressure rod 33 rotate and cooperate with each other. The surface of the pressure frame 31 is provided with a pressure roller 35 for pressing the copper strip body 109. The surface of the pressure roller 35 is in contact with the surface of the wheel body 34 and the surface of the pressure roller 35 is in contact with the surface of the copper strip body 109.

[0027] In practice, the user installs the pressure frame 31 on the inner walls of the first fixed plate 101 and the second fixed plate 102 respectively using the mounting studs 32. When the active needle wheel 26 rotates, it conveys the copper strip body 109. At this time, the wheel 34 rotates on the surface of the pressure rod 33, and the copper strip body 109 drives the pressure wheel 35 to rotate on the inner wall of the pressure frame 31. The pressure wheel 35 presses the copper strip body 109 tightly, so that the copper strip body 109 is in close contact with the surfaces of the active needle wheel 26 and the driven needle wheel 23 respectively. This allows the needles 210 on the surfaces of the active needle wheel 26 and the driven needle wheel 23 to be accurately engaged in the positioning holes on the surface of the copper strip body 109, reducing the risk of the copper strip body 109 running out of the surfaces of the active needle wheel 26 and the driven needle wheel 23 during conveying, thereby realizing the function of positioning and guiding the copper strip body 109 by the cutting device.

[0028] Working principle: In use, the device first places the conveying track 1 at the designated position. The external tension wheel assembly conveys the copper strip body 109 to the surface of the active needle wheel 26 on the inner wall of the first fixed plate 101. The user operates the controller 11, which controls the servo motor 21 to work. With the cooperation of the reducer 22, the active needle wheel 26 rotates on the inner wall of the first fixed plate 101. Since there are equally spaced needles 210 on the active needle wheel 26, it can effectively position the copper strip body 109, ensuring that when the servo motor 21 rotates at a certain angle, the active needle wheel 26 can drive the copper strip body 109 to travel a constant distance. When the copper strip body 109 is conveyed to the designated position below the first conveying channel 104, the surface of the copper strip body 109 is cut open under the action of the etching machine assembly 12, dividing the copper strip body 109 into two parts. When the driving pinwheel 26 rotates, it drives the first connecting shaft 27 to rotate, which in turn drives the first pulley 28 to rotate on the inner wall of the protective sheet metal 103. The first pulley 28 drives the belt body 25 to move, which in turn drives the second pulley 24 to rotate on the inner wall of the protective sheet metal 103. When the second pulley 24 rotates, it drives the second connecting shaft 29 to rotate. When the second connecting shaft 29 rotates, it drives the driven pinwheel 23 to rotate on the inner wall of the second fixed plate 102. This rotation is synchronized with the rotation of the driving pinwheel 26. The driven pinwheel 23 rotates together, and the copper strip body 109 is conveyed to the surface of the first conveying channel 104 and the second conveying channel 105 through the active pinwheel 26. Under the action of the protective sheet metal 103, the belt conveying assembly of the high-efficiency conveying mechanism 2 can be covered, reducing the risk of machine injury, so as to realize the function of efficient conveying of the copper strip body 109 by the cutting device. This enables the cutting device to efficiently and accurately convey the copper strip body 109 when in use, and ensures the accuracy of cutting the copper strip body 109.

[0029] Because the surfaces of the first conveying channel 104 and the second conveying channel 105 have limiting grooves 110, the copper strip body 109 can be restricted from shifting left and right. The surfaces of the first conveying channel 104 and the second conveying channel 105 are both fitted with pressing sheet metal 111 by screws. Under the action of the pressing sheet metal 111, the position of the copper strip body 109 can be restricted, so that the copper strip body 109 will not shift upward. When the copper strip body 109 is moved, the through-beam optical fiber 107 on the surface of the mounting bracket 108 can detect the circular hole in the middle of the copper strip body 109 to ensure that the position of the copper strip body 109 does not deviate each time it moves.

[0030] Subsequently, when the copper strip body 109 is conveyed to the surfaces of the driving pin wheel 26 and the driven pin wheel 23, in order for the positioning holes on the surface of the copper strip body 109 to mate with the pins 210 on the surfaces of the driving pin wheel 26 and the driven pin wheel 23, the user installs the pressure frame 31 on the inner walls of the first fixed plate 101 and the second fixed plate 102 respectively using the mounting studs 32. When the driving pin wheel 26 rotates, it conveys the copper strip body 109. At this time, the wheel 34 rotates on the surface of the pressure rod 33, and the copper strip body 109 drives the pressure wheel 35 to rotate on the inner wall of the pressure frame 31. The pressure wheel 35 presses the copper strip body 109 tightly, so that the copper strip body... 109 is tightly fitted to the surfaces of the driving pin wheel 26 and the driven pin wheel 23, respectively, so that the pins 210 on the surfaces of the driving pin wheel 26 and the driven pin wheel 23 can be accurately engaged with the positioning holes on the surface of the copper strip body 109. This reduces the risk of the copper strip body 109 running out of the surfaces of the driving pin wheel 26 and the driven pin wheel 23 during conveying, thereby realizing the positioning and guiding function of the cutting device for the copper strip body 109. This allows the cutting device to effectively position the copper strip body 109 during use, avoiding the phenomenon of the copper strip body 109 being skewed during conveying. At the same time, it can guide the copper strip body 109, ultimately completing the use of the cutting device.

[0031] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of this invention is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of equivalents of the claims be included within this invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

Claims

1. A copper strip splitting device with positioning and guiding function, comprising a device conveying track (1), characterized in that: The surface of the device conveying track (1) is fitted with a protective sheet metal (103) by screws. A controller (11) is mounted on the surface of the top of the protective sheet metal (103). A first fixing plate (101) is mounted on the surface of the device conveying track (1). A fixing frame (106) is mounted on the surface of the device conveying track (1). A second fixing plate (102) is mounted on the surface of the fixing frame (106). A second conveying channel (105) is provided on one side of the device conveying track (1). A first conveying channel (104) is mounted on the surface of the second conveying channel (105). Limiting grooves (110) are provided on the surfaces of both the first conveying channel (104) and the second conveying channel (105). A copper strip body (109) is provided inside the limiting groove (110). A high-efficiency conveying mechanism (2) is provided on the surface of the device conveying track (1). Positioning guide mechanisms (3) are provided on the inner walls of both the first fixing plate (101) and the second fixing plate (102).

2. The copper strip splitting device with positioning and guiding function according to claim 1, characterized in that: An etching machine assembly (12) is provided above the conveying track (1) of the device. The surface of the second conveying channel (105) is fastened to the surface of the protective sheet metal (103) by screws. The diameter of the copper strip body (109) is smaller than the diameter of the limiting groove (110). A mounting bracket (108) is installed on the surface of the top position of the first conveying channel (104) by screws. A through-beam optical fiber (107) is installed on the surface of the mounting bracket (108). The output end of the through-beam optical fiber (107) is electrically connected to the input end of the controller (11). The surfaces of the top positions of the first conveying channel (104) and the second conveying channel (105) are both fitted with pressure strip sheet metal (111) by screws.

3. The copper strip splitting device with positioning and guiding function according to claim 1, characterized in that: The high-efficiency conveying mechanism (2) consists of a servo motor (21), a reducer (22), a driven pinwheel (23), a second pulley (24), a belt body (25), a driving pinwheel (26), a first connecting shaft (27), a first pulley (28), a second connecting shaft (29), and a needle body (210). The servo motor (21) is mounted on the surface of the first fixed plate (101). The input end of the servo motor (21) is electrically connected to the output end of the controller (11). The output end of the servo motor (21) is connected to a rotating shaft via a coupling. The reducer (22) is mounted on the surface of the servo motor (21). The reducer (22) has an input shaft, the servo motor (21) has an output shaft, and the other end of the shaft is connected to the input shaft of the reducer (22). The output end of the reducer (22) passes through the first fixed plate (101) and extends to the inner side of the first fixed plate (101). The inner side of the first fixed plate (101) is provided with a drive pinwheel (26). The surface of the drive pinwheel (26) is connected to the output end of the reducer (22). A first connecting shaft (27) is installed on the surface at the center of the drive pinwheel (26). A first pulley (28) is fitted on the surface of the first connecting shaft (27).

4. The copper strip bi-splitting device with positioning and guiding function according to claim 1, characterized in that: A driven pinwheel (23) is provided on the inner side of the second fixed plate (102). The driven pinwheel (23) rotates and engages with the inner wall of the second fixed plate (102). A second connecting shaft (29) is fitted on the surface of the center position of the driven pinwheel (23). A second pulley (24) is fitted on the surface of the second connecting shaft (29). A belt body (25) is installed on the surface of the second pulley (24) and the first pulley (28). The second pulley (24) and the first pulley (28) extend into the interior of the protective sheet metal (103) and rotate and engage with the inner wall of the protective sheet metal (103). The surfaces of the driven pinwheel (23) and the driving pinwheel (26) are each equipped with equally spaced pins (210) for positioning the copper strip body (109). The pins (210) engage with the surface of the copper strip body (109).

5. A copper strip splitting device with positioning and guiding function according to claim 1, characterized in that: The positioning and guiding mechanism (3) consists of a pressure frame (31), a mounting stud (32), a pressure rod (33), a wheel body (34), and a pressure roller (35). The inner walls of the first fixed plate (101) and the second fixed plate (102) are both provided with pressure frames (31). The surface of the pressure frame (31) is threaded with a mounting stud (32). One end of the mounting stud (32) passes through the pressure frame (31) and is threadedly fastened to the inner walls of the first fixed plate (101) and the second fixed plate (102) respectively. The inner walls of the first fixed plate (101) and the second fixed plate (102) are both equipped with pressure rods (33).

6. A copper strip splitting device with positioning and guiding function according to claim 5, characterized in that: The surface of the pressure rod (33) is fitted with a wheel body (34), and the wheel body (34) and the surface of the pressure rod (33) rotate in relation to each other. The surface of the pressure frame (31) is provided with a pressure roller (35) for pressing the copper strip body (109). The surface of the pressure roller (35) is in contact with the surface of the wheel body (34), and the surface of the pressure roller (35) is in contact with the surface of the copper strip body (109).