Copper-aluminum busbar anti-bulge bending machine with AI auxiliary function
Through the AI-assisted copper-aluminum row anti-panel bending machine, the limiting component and anti-pressure film design are used to solve the problem of anti-pressure film wear, and the copper-aluminum row surface protection and bending quality are improved.
Patent Information
- Application Number
- CN202510726800.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-03
- Publication Date
- 2025-07-04
AI Technical Summary
During the bending process of copper-aluminum row, the friction between the anti-pressure film and the copper-aluminum row causes the anti-pressure film to wear out, losing the protective effect on the copper-aluminum row.
The copper-aluminum row anti-panel bending machine with AI auxiliary functions ensures that the anti-pressure film moves with the copper-aluminum row under the friction of the copper-aluminum row, and optimizes the extrusion pressure with the AI controller to avoid frictional damage, and maintains the fit of the anti-pressure film during the bending process.
The protective effect of the anti-pressure film on copper and aluminum rows is improved, the surface quality of the copper and aluminum rows is ensured, and the bending quality and efficiency are improved.
Smart Images

Figure CN120243697A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of copper-aluminum bars, and particularly to a copper-aluminum bar anti-bulging bending machine with AI assistance function. Background Art
[0002] During the bending process of copper-aluminum bars, the copper-aluminum bars are placed in a bending die, and then the copper-aluminum bars are extruded by a hydraulic press to be bent into a predetermined shape. In order to avoid direct contact between the copper-aluminum bars and the bending die during the bending process, which may cause many indentations on the surface of the copper-aluminum bars and thus reduce the surface quality of the copper-aluminum bars, an anti-pressure film is usually placed on the bending die to protect the surface of the copper-aluminum bars. However, when the copper-aluminum bars are bent in the bending die, a large frictional force will be generated between the copper-aluminum bars and the anti-pressure film, resulting in the anti-pressure film being worn out under the action of the frictional force and losing the protection effect on the copper-aluminum bars. Summary of the Invention
[0003] In order to overcome the drawback that when the copper-aluminum bars are bent in the bending die, a large frictional force will be generated between the copper-aluminum bars and the anti-pressure film, resulting in the anti-pressure film being worn out under the action of the frictional force and losing the protection effect on the copper-aluminum bars, the present invention provides a copper-aluminum bar anti-bulging bending machine with AI assistance function.
[0004] Technical Solution: A copper-aluminum bar anti-bulging bending machine with AI assistance function includes an installation frame, a hydraulic cylinder, a connecting block, a bending head, and a drilling machine; the installation frame is fixedly connected with the hydraulic cylinder; the telescopic end of the hydraulic cylinder is fixedly connected with the connecting block; the connecting block is fixedly connected with the bending head; the installation frame is fixedly connected with the drilling machine; it further includes a fixed frame, a die I, a die II, a rotating rod, an anti-pressure film, a motor, a round rod, and a limiting component; an AI controller is arranged in the connecting block; the installation frame is fixedly connected with the fixed frame; the fixed frame is fixedly connected with the die I; the installation frame is connected with the die II, and the die II is connected with the die I, and the die II and the die I together form a V shape; one of the die I is rotatably connected with a rotating rod, and the other die II is rotatably connected with another rotating rod; an arc-shaped groove is opened in the die I, and another arc-shaped groove is opened in the die II, and the two arc-shaped grooves together form a complete circular groove; the die I is fixedly connected with a round rod, and the round rod is located in the circular groove; an anti-pressure film is wound around one of the rotating rods, and the anti-pressure film sequentially bypasses the die I, the round rod, and the die II and then is wound around the other rotating rod; the die I is fixedly connected with a motor, and the output shaft of the motor is fixedly connected with the corresponding rotating rod; the die I is connected with a limiting component for limiting the limiting component, and the limiting component is connected with the die II and the connecting block.
[0005] In addition, it is particularly preferred that the limiting component includes a spring rod I, a limiting rod and a limiting block; several spring rods I are fixedly connected to the mold I, and several other spring rods I are fixedly connected to the mold II; the telescopic ends of all the spring rods I on the mold I are commonly fixedly connected to a limiting rod, and the telescopic ends of all the spring rods I on the mold II are commonly fixedly connected to another limiting rod, and the limiting rod contacts the anti-pressure film; several wedge-shaped limiting blocks are fixedly connected to the connecting block, and the limiting blocks squeeze the limiting rod.
[0006] In addition, it is particularly preferred that the limiting rod is smooth.
[0007] In addition, it is particularly preferred that a limiting strip is further included; a limiting strip is fixedly connected to the mold I, and another limiting strip is fixedly connected to the mold II.
[0008] In addition, it is particularly preferred that a baffle and a hollow tube are further included; a baffle is fixedly connected to the mold I, and the baffle is located in the arc-shaped groove and contacts the mold II; the baffle is fixedly connected to the hollow tube.
[0009] In addition, it is particularly preferred that a rotating shaft and a cylinder are further included; a rotating shaft is fixedly connected to the mold II, and the rotating shaft is rotatably connected to the mold I; several cylinders are movably connected to the mounting frame, and the telescopic ends of the cylinders are commonly movably connected to the mold II.
[0010] In addition, it is particularly preferred that a spring rod II and a pressing block are further included; several spring rods II are fixedly connected to the mold I, and the telescopic ends of the spring rods II are fixedly connected to the round rod; several pressing blocks are fixedly connected to the connecting block, and the pressing blocks squeeze the round rod.
[0011] In addition, it is particularly preferred that a spring rod III and a rectangular block are included; a spring rod III is fixedly connected to the connecting block; the telescopic end of the spring rod III is fixedly connected to the rectangular block.
[0012] In addition, it is particularly preferred that an electric push rod and a pressing plate are further included; an electric push rod is fixedly connected to the connecting block; the telescopic end of the electric push rod is fixedly connected to the pressing plate.
[0013] In addition, it is particularly preferred that a hollow box, a connecting pipe and a cover plate are further included; a hollow box is fixedly connected to the mounting frame, and the copper-aluminum row body passes through the hollow box; the hollow box is detachably connected to the cover plate; the hollow box is fixedly connected to the connecting pipe.
[0014] Beneficial effect: The present invention drives the limit block to move downward during the downward movement of the connecting block, so that the wedge-shaped surface of the limit block squeezes the two limit rods, causing the limit rods to move to the side close to the middle of mold I and mold II, thereby temporarily releasing the limit on the anti-pressure film by the limit rods, so that after the anti-pressure film is relaxed, during the bending process of the copper-aluminum bar body, the anti-pressure film can be driven by the friction force of the copper-aluminum bar body and move along with the copper-aluminum bar body, thereby ensuring that the anti-pressure film is always in contact with the copper-aluminum bar body and is not worn by the copper-aluminum bar body, thereby improving the protection effect of the anti-pressure film on the copper-aluminum bar body.
[0015] When the bending head moves downward, the pressing block is driven to move downward, so that the pressing block squeezes the round rod downward, and the round rod compresses the spring rod III, and then the round rod straightens the anti-pressure film at the bottom of the V-shape formed by the mold I and the mold II, eliminating the wrinkles, so that the anti-pressure film always remains in a straightened state, and the bending quality is improved.
[0016] After one end of the copper-aluminum bar body contacts mold I, the electric push rod is controlled to drive the pressing plate to move downward, so that the pressing plate can support the other end of the copper-aluminum bar body that contacts mold I, thereby preventing the copper-aluminum bar body from tilting up during the bending process, and thus keeping the other end of the copper-aluminum bar body that contacts mold I in a horizontal state at all times, thereby improving the bending quality of the copper-aluminum bar body. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 This is a schematic diagram of the first structure disclosed by the copper-aluminum bar anti-bulging bending machine with AI auxiliary function of the present invention; Figure 2 This is a second structural schematic diagram of the copper-aluminum bar anti-bulging bending machine with AI auxiliary function disclosed by the present invention; Figure 3 It is a schematic diagram of the combined partial structure of the mounting frame, connecting block, bending head, fixing frame, mold I and mold II disclosed in the copper-aluminum bar anti-bulging bending machine with AI auxiliary function of the present invention; Figure 4 It is a schematic diagram of the combined partial structure of the mold I, mold II, rotating rod, anti-pressure film, motor, spring rod I, and limit rod disclosed by the copper-aluminum bar anti-bulging bending machine with AI auxiliary function of the present invention; Figure 5 It is a schematic diagram of the combined partial structure of the mold I, mold II, anti-pressure film, rotating shaft, baffle plate and hollow tube disclosed by the copper-aluminum bar anti-bulging bending machine with AI auxiliary function of the present invention; Figure 6 This is a schematic diagram of the use status of the copper-aluminum bar anti-bulging bending machine with AI auxiliary function disclosed in the present invention.
[0018] Names of the reference numerals in the figure: 1 - mounting bracket, 2 - hydraulic cylinder, 3 - connecting block, 4 - bent elbow, 5 - copper-aluminum busbar body, 6 - drilling machine, 101 - fixing bracket, 102 - die I, 103 - die II, 104 - rotating rod, 105 - anti-pressure film, 106 - motor, 107 - round rod, 108 - spring rod I, 109 - limiting rod, 1010 - limiting block, 1011 - limiting strip, 1012 - baffle plate, 1013 - hollow tube, 201 - rotating shaft, 202 - air cylinder, 203 - spring rod II, 204 - pressing block, 205 - spring rod III, 206 - rectangular block, 207 - electric push rod, 208 - pressing plate, 301 - hollow box, 302 - connecting pipe, 303 - cleaning roller, 304 - cover plate, 1021 - arc groove. Detailed implementation manners
[0019] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention. Embodiment
[0020] A copper-aluminum busbar anti-bulging bending machine with AI assistance function, as Figures 1 - 6 shown, includes a mounting bracket 1, a hydraulic cylinder 2, a connecting block 3, a bent elbow 4 and a drilling machine 6; the mounting bracket 1 is bolted with the hydraulic cylinder 2; the telescopic end of the hydraulic cylinder 2 is fixedly connected with the connecting block 3; the connecting block 3 is fixedly connected with the bent elbow 4; the mounting bracket 1 is fixedly connected with the drilling machine 6; It also includes a fixing frame 101, a die I 102, a die II 103, a rotating rod 104, a pressure-proof film 105, a motor 106, a round rod 107 and a limiting component; an AI controller is arranged inside the connecting block 3; the mounting frame 1 is fixedly connected with the fixing frame 101; the fixing frame 101 is fixedly connected with the die I 102; the mounting frame 1 is connected with the die II 103, and the die II 103 is connected with the die I 102, and the die II 103 and the die I 102 jointly form a V shape; the die I 102 is rotatably connected with a rotating rod 104, and the die II 103 is rotatably connected with another rotating rod 104; the die I 102 is provided with an arc-shaped groove 1021, and the die II 103 is provided with another arc-shaped groove 1021, and the two arc-shaped grooves 1021 jointly form a complete circular groove; the die I 102 is fixedly connected with the round rod 107, and the round rod 107 is located inside the circular groove; one of the rotating rods 104 is wound with the pressure-proof film 105, and the pressure-proof film 105 sequentially bypasses the die I 102, the round rod 107 and the die II 103 and then is wound with the other rotating rod 104; the die I 102 is bolted with the motor 106, and the output shaft of the motor 106 is fixedly connected with the corresponding rotating rod 104; the die I 102 is connected with the limiting component, and the limiting component is connected with the die II 103, and the limiting component is connected with the connecting block 3.
[0021] The limiting component includes a spring rod I 108, a limiting rod 109 and a limiting block 1010; the die I 102 is fixedly connected with a plurality of spring rods I 108, and the die II 103 is fixedly connected with another plurality of spring rods I 108; the telescopic ends of all the spring rods I 108 located on the die I 102 are jointly fixedly connected with a limiting rod 109, and the telescopic ends of all the spring rods I 108 located on the die II 103 are jointly fixedly connected with another limiting rod 109, and the limiting rod 109 is in contact with the pressure-proof film 105; the connecting block 3 is fixedly connected with four wedge-shaped limiting blocks 1010, and the limiting blocks 1010 extrude the limiting rod 109.
[0022] The limiting rod 109 is smoothly arranged to reduce the resistance when the pressure-proof film 105 moves on the limiting rod 109 and avoid damage to the pressure-proof film 105 under the friction force between the pressure-proof film 105 and the limiting rod 109.
[0023] It also includes a limiting strip 1011; the die I 102 is fixedly connected with a limiting strip 1011, and the die II 103 is fixedly connected with another limiting strip 1011. During the bending process of the copper-aluminum row body 5 on the die I 102 and the die II 103, the pressure-proof film 105 will be displaced, resulting in the pressure-proof film 105 not being able to fit closely with the copper-aluminum row body 5 and reducing the protection effect on the copper-aluminum row body 5. Therefore, by arranging the limiting strips 1011 on both sides of the pressure-proof film 105, the pressure-proof film 105 is limited.
[0024] It also includes a baffle 1012 and a hollow tube 1013; the die I 102 is fixedly connected with the baffle 1012, and the baffle 1012 is located in the arc-shaped groove 1021 and contacts the die II 103; the baffle 1012 is fixedly connected with the hollow tube 1013.
[0025] During use, connect an external pump to the hollow tube 1013. Then, use an external conveyor to convey multiple copper-aluminum row bodies 5 to be bent forward one by one. When the copper-aluminum row body 5 passes through the drilling machine 6, the drilling machine 6 first drills holes in the copper-aluminum row body 5 to drill installation holes at the predetermined positions of the copper-aluminum row body 5. Then, the copper-aluminum row body 5 continues to be conveyed forward until the front end of the copper-aluminum row body 5 contacts the anti-pressure film 105 on the die I 102 and the die II 103. In the initial state, the anti-pressure film 105 is in a straightened state under the limiting action of the two limiting rods 109.
[0026] Next, control the hydraulic cylinder 2 to drive the connecting block 3 to drive the bending head 4 to move downward, so that the bending head 4 squeezes the copper-aluminum row body 5. The copper-aluminum row body 5 is bent into a predetermined shape under the limiting action of the die I 102 and the die II 103. During the bending process, the surface of the copper-aluminum row body 5 is protected by the anti-pressure film 105 to prevent the copper-aluminum row body 5 from directly contacting the die I 102 and the die II 103, resulting in many indentations on the surface of the copper-aluminum row body 5 and affecting the surface quality. And when the connecting block 3 moves downward, it drives the limiting block 1010 to move downward, so that the wedge-shaped surface of the limiting block 1010 squeezes the two limiting rods 109, causing the limiting rods 109 to move toward the middle of the die I 102 and the die II 103, thereby temporarily releasing the limit on the anti-pressure film 105 by the limiting rods 109. After the anti-pressure film 105 is relaxed, during the bending process of the copper-aluminum row body 5, the anti-pressure film 105 can be driven by the frictional force of the copper-aluminum row body 5 to move along with the copper-aluminum row body 5, so as to ensure that the anti-pressure film 105 always fits the copper-aluminum row body 5 and is not worn out by the copper-aluminum row body 5, improving the protection effect of the anti-pressure film 105 on the copper-aluminum row body 5. At the same time, the AI controller on the connecting block 3 analyzes and controls the extrusion force of the bending head 4, so that the bending head 4 applies a matching extrusion force according to the copper-aluminum row body 5 with different thicknesses.
[0027] After bending is completed, control the hydraulic cylinder 2 to drive the connecting block 3 to drive the bending head 4 to move upward to the initial position. Manually take out the copper-aluminum row body 5 from the die I 102 and the die II 103. Then, control the motor 106 to start, and drive the corresponding round rod 107 to rotate through the motor 106, so that one round rod 107 winds up the anti-pressure film 105, and the other round rod 107 unwinds the anti-pressure film 105, thereby timely replacing the anti-pressure film 105 on the die I 102 and the die II 103, facilitating the bending of the next copper-aluminum row body 5.
[0028] During the bending process, debris adhering to the copper-aluminum row body 5 will fall into the V-shaped bottom formed by the die I 102 and the die II 103, causing the debris to adhere to the anti-pressure film 105 and thus polluting the anti-pressure film 105. Therefore, during the bending process, the external pump is controlled to start, and air is blown through the hollow tube 1013 into the V-shaped bottom formed by the die I 102 and the die II 103 to blow out the debris that has fallen into the V-shaped bottom formed by the die I 102 and the die II 103, preventing the debris from remaining on the anti-pressure film 105. Embodiment
[0029] Based on Embodiment 1, as Figure 1 and Figures 3 - 6 shown, it further includes a rotating shaft 201 and a cylinder 202; the die II 103 is fixedly connected with the rotating shaft 201, and the rotating shaft 201 is rotatably connected with the die I 102; two cylinders 202 are hinged to the mounting frame 1, and the telescopic ends of the cylinders 202 are jointly hinged to the die II 103.
[0030] It further includes a spring rod II 203 and a pressing block 204; two spring rods II 203 are fixedly connected to the die I 102, and the telescopic ends of the spring rods II 203 are fixedly connected to the round rod 107; two pressing blocks 204 are fixedly connected to the connecting block 3, and the pressing blocks 204 press on the round rod 107.
[0031] A spring rod III 205 and a rectangular block 206; the connecting block 3 is fixedly connected with the spring rod III 205; the telescopic end of the spring rod III 205 is fixedly connected with the rectangular block 206.
[0032] It further includes an electric push rod 207 and a pressing plate 208; the connecting block 3 is bolted with the electric push rod 207; the telescopic end of the electric push rod 207 is fixedly connected with the pressing plate 208.
[0033] When the copper-aluminum row body 5 needs to be bent at different angles, the cylinder 202 is controlled to shorten, so that the die II 103 rotates around the rotating shaft 201, changing the angle between the die I 102 and the die II 103, as Figure 6 shown, enabling the copper-aluminum row body 5 to be bent at different angles and improving adaptability.
[0034] When the copper-aluminum bar body 5 contacts the mold Ⅰ102 and the mold Ⅱ103 at the same time to perform V-shaped bending, due to the large bending angle, the bending head 4 needs to bend the copper-aluminum bar body 5 multiple times. During the bending process, the copper-aluminum bar body 5 will drive the anti-pressure film 105 to slide close to the bottom of the V-shape formed by the mold Ⅰ102 and the mold Ⅱ103 under the action of friction, so that the anti-pressure film 105 at the bottom of the V-shape formed by the mold Ⅰ102 and the mold Ⅱ103 is wrinkled, so that the anti-pressure film 105 cannot be tightly The fitting of mold I 102 and mold II 103 affects the protective effect of the anti-pressure film 105 on the copper-aluminum bar body 5. Therefore, when the bending head 4 moves downward, the pressure block 204 is driven to move downward, so that the pressure block 204 squeezes the round rod 107 downward, and the round rod 107 compresses the spring rod III 205. Then the round rod 107 straightens the anti-pressure film 105 at the bottom of the V-shape formed by mold I 102 and mold II 103, eliminates the generated wrinkles, keeps the anti-pressure film 105 in a straightened state at all times, and improves the bending quality.
[0035] Since part of the copper-aluminum bar body 5 needs to be bent multiple times before it can be bent into a predetermined shape, in order to avoid cracks and bulging caused by bending at too large an angle at one time, and at the same time to avoid the rebound of the end of the copper-aluminum bar body 5 during the bending process, which causes the bending size to change, therefore, when the bending head 4 moves down to bend the copper-aluminum bar body 5, the end of the copper-aluminum bar body 5 is supported by the rectangular block 206 under the elastic force of the spring rod III 205, so that the part of the copper-aluminum bar body 5 that has been bent once remains in the bent state, avoiding the rebound of the part of the copper-aluminum bar body 5 that has been bent once.
[0036] When the bending head 4 bends the copper-aluminum bar body 5, due to the elasticity of the copper-aluminum bar body 5 itself, during the bending process, the end of the copper-aluminum bar body 5 in contact with the mold Ⅰ102 will be tilted upward at the other end of the copper-aluminum bar body 5 in contact with the mold Ⅰ102, causing a deviation in the bending size. Therefore, after one end of the copper-aluminum bar body 5 is in contact with the mold Ⅰ102, the electric push rod 207 is controlled to drive the pressing plate 208 to move downward, so that the pressing plate 208 supports the other end of the copper-aluminum bar body 5 in contact with the mold Ⅰ102, thereby avoiding the copper-aluminum bar body 5 from tilting during the bending process, and then the other end of the copper-aluminum bar body 5 in contact with the mold Ⅰ102 is always kept in a horizontal state, thereby improving the bending quality of the copper-aluminum bar body 5. Example
[0037] On the basis of Example 2, Figure 1 and Figure 3 As shown, it also includes a hollow box 301, a connecting pipe 302 and a cover plate 304; the mounting frame 1 is fixedly connected to the hollow box 301, and the copper-aluminum bar body 5 passes through the hollow box 301; the hollow box 301 is detachably connected to the cover plate 304; the hollow box 301 is fixedly connected to the connecting pipe 302.
[0038] It further includes a cleaning roller 303; the hollow box 301 is rotatably connected with the cleaning roller 303, and a sponge is provided on the cleaning roller 303. When the copper-aluminum row body 5 is being conveyed and during the drilling process, there will be a lot of oil stains, impurities, etc. on the surface, so that during the bending process, the copper-aluminum row body 5 will bring the impurities to the anti-pressure film 105, causing the copper-aluminum row body 5 to be damaged due to mutual extrusion with the impurities during the bending process, affecting the bending quality. Therefore, when the copper-aluminum row body 5 passes through the cleaning roller 303, the cleaning roller 303 cleans the surface of the copper-aluminum row body 5 to remove the oil stains and impurities on the surface.
[0039] Since in a low-temperature environment, the copper-aluminum row body 5 will become relatively brittle, making it easier to have cracks during the bending process. Therefore, when performing the bending operation on the copper-aluminum row body 5 in a low-temperature environment, the external air pump is controlled to start, and hot air is conveyed into the hollow box 301 through the connecting pipe 302, and then the copper-aluminum row body 5 entering the hollow box 301 is preheated to heat the copper-aluminum row body 5 to the normal temperature, improving the bending quality.
[0040] The above embodiments are only preferred embodiments of the present invention and are not used to limit the scope of implementation of the present invention. Therefore, all equivalent changes made according to the content described in the claims of the present invention should be included within the scope of the claims of the present invention.
Claims
1. A copper-aluminum row anti-bulging bending machine with AI-assisted function, comprising an installation frame (1), a hydraulic cylinder (2), a connecting block (3), a bending head (4) and a drilling machine (6); the installation frame (1) is fixedly connected with the hydraulic cylinder (2); the telescopic end of the hydraulic cylinder (2) is fixedly connected with the connecting block (3); the connecting block (3) is fixedly connected with the bending head (4); the installation frame (1) is fixedly connected with the drilling machine (6); characterized in that: It also includes a fixing frame (101), a die I (102), a die II (103), a rotating rod (104), an anti-pressure film (105), a motor (106), a round rod (107) and a limiting component; an AI controller is arranged in the connecting block (3); the mounting frame (1) is fixedly connected with the fixing frame (101); the fixing frame (101) is fixedly connected with the die I (102); the mounting frame (1) is connected with the die II (103), and the die II (103) is connected with the die I (102), and the die II (103) and the die I (102) jointly form a V shape; the die I (102) is rotatably connected with a rotating rod (104), and the die II (103) is rotatably connected with another rotating rod (104); the die I (102) is provided with an arc-shaped groove (1021), and the die II (103) is provided with another arc-shaped groove (1021), and the two arc-shaped grooves (1021) jointly form a complete circular groove; the die I (102) is fixedly connected with a round rod (107), and the round rod (107) is located in the circular groove; one of the rotating rods (104) is wound with the anti-pressure film (105), and the anti-pressure film (105) sequentially bypasses the die I (102), the round rod (107) and the die II (103) and then is wound with the other rotating rod (104); the die I (102) is fixedly connected with a motor (106), and the output shaft of the motor (106) is fixedly connected with the corresponding rotating rod (104); the die I (102) is connected with a limiting component for limiting the limiting component, and the limiting component is connected with the die II (103), and the limiting component is connected with the connecting block (3).
2. The copper-aluminum row anti-bulging bending machine with AI assistance function according to claim 1, characterized in that, The limiting component includes a spring rod I (108), a limiting rod (109) and a limiting block (1010); the die I (102) is fixedly connected with a plurality of spring rods I (108), and the die II (103) is fixedly connected with a plurality of other spring rods I (108); the telescopic ends of all the spring rods I (108) located on the die I (102) are jointly fixedly connected with a limiting rod (109), and the telescopic ends of all the spring rods I (108) located on the die II (103) are jointly fixedly connected with another limiting rod (109), and the limiting rod (109) is in contact with the anti-pressure film (105); the connecting block (3) is fixedly connected with a plurality of wedge-shaped limiting blocks (1010), and the limiting blocks (1010) squeeze the limiting rod (109).
3. The copper-aluminum row anti-bulging bending machine with AI assistance function according to claim 2, characterized in that, The limiting rod (109) is smooth.
4. The copper-aluminum row anti-bulging bending machine with AI assistance function according to claim 3, characterized in that, It also includes a limiting strip (1011); the die I (102) is fixedly connected with a limiting strip (1011), and the die II (103) is fixedly connected with another limiting strip (1011).
5. The copper-aluminum row anti-bulging bending machine with AI auxiliary function according to claim 4, characterized in that, It also includes a baffle (1012) and a hollow tube (1013); the die I (102) is fixedly connected with the baffle (1012), and the baffle (1012) is located in the arc-shaped groove (1021), and the baffle (1012) is in contact with the die II (103); the baffle (1012) is fixedly connected with the hollow tube (1013).
6. The copper-aluminum row anti-bulging bending machine with AI assistance function according to claim 5, characterized in that, It further includes a rotating shaft (201) and a cylinder (202); the mold II (103) is fixedly connected to the rotating shaft (201), and the rotating shaft (201) is rotatably connected to the mold I (102); the mounting frame (1) is movably connected to a plurality of cylinders (202), and the telescopic ends of the cylinders (202) are jointly movably connected to the mold II (103).
7. The copper-aluminum row anti-bulging bending machine with AI auxiliary function according to claim 6, characterized in that, It further includes a spring rod II (203) and a pressing block (204); the mold I (102) is fixedly connected to a plurality of spring rods II (203), and the telescopic ends of the spring rods II (203) are fixedly connected to the round rod (107); the connecting block (3) is fixedly connected to a plurality of pressing blocks (204), and the pressing blocks (204) squeeze the round rod (107).
8. The copper-aluminum row anti-bulging bending machine with AI auxiliary function according to claim 7, characterized in that, A spring rod III (205) and a rectangular block (206); the connecting block (3) is fixedly connected to the spring rod III (205); the telescopic end of the spring rod III (205) is fixedly connected to the rectangular block (206).
9. The copper-aluminum row anti-bulging bending machine with AI assistance function according to claim 8, characterized in that, It further includes an electric push rod (207) and a pressing plate (208); the connecting block (3) is fixedly connected to the electric push rod (207); the telescopic end of the electric push rod (207) is fixedly connected to the pressing plate (208).
10. A copper-aluminum row anti-bulging bending machine with an AI-assisted function according to claim 9, characterized in that, It further includes a hollow box (301), a connecting pipe (302) and a cover plate (304); the mounting frame (1) is fixedly connected to the hollow box (301), and the copper-aluminum row body (5) passes through the hollow box (301); the hollow box (301) is detachably connected to the cover plate (304); the hollow box (301) is fixedly connected to the connecting pipe (302).