Lead sleeve pipe soldering back glue cutting and rolling integrated copper foil processing equipment
Patent Information
- Application Number
- CN202611004227.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-07-07
- Publication Date
- 2026-08-18
AI Technical Summary
[0002]铜箔作为电子元器件和精密电路以及新能源组件等领域的核心基础材料,其引线套穿和焊锡固定以及背胶贴合是深加工过程中的关键成套工序,加工精度与自动化水平直接决定铜箔成品的装配适配性和使用稳定性及产品良品率,随着精密电子设备向小型化和精细化以及高集成化方向快速发展,市场对铜箔引线焊接的位置精度和焊点均匀度以及加工一致性要求大幅提升,传统铜箔加工设备及加工工艺的弊端日益凸显,已无法满足高端铜箔制品的规模化精密加工需求
[0019]1.通过液压缸和铰接杆以及支撑板的相互配合,构成竖向升降调节机构,可稳定驱动安装板整体上下升降,实现焊接机竖向高度的精准调节,同时通过安装板上相互垂直布置的横板一和横板二以及两组独立气缸的配合,可分别驱动连接柱带动焊接机完成左右和前后水平方向的独立平移,各维度运动相互独立、互不干涉,同时配合容置槽内部的限位盘与蝶形弹簧,对连接柱的滑动行程进行限位缓冲,有效规避焊接震动导致的焊点偏移问题,该结构解决了传统焊锡设备仅能单一维度调节和多方向位移存在运动干涉,无法适配铜箔引脚线顶部和边缘等多位置差异化点焊的缺陷,可精准完成引脚线全方位焊接作业,杜绝虚焊和漏焊以及脱焊等质量问题,大幅提升焊接精度与焊接牢固度。
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Figure CN122583671A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of copper foil processing technology, specifically an integrated copper foil processing equipment for lead wire sleeve insertion, soldering, adhesive backing, cutting, and winding. Background Technology
[0002] Copper foil is a core basic material in electronic components, precision circuits, and new energy components. The lead wire insertion, soldering, and adhesive bonding are key processes in the deep processing of copper foil. The processing accuracy and automation level directly determine the assembly compatibility, usage stability, and product yield of the finished copper foil. With the rapid development of precision electronic equipment towards miniaturization, refinement, and high integration, the market has significantly increased its requirements for the positional accuracy, solder joint uniformity, and processing consistency of copper foil lead wire welding. The shortcomings of traditional copper foil processing equipment and processes are becoming increasingly apparent, and they can no longer meet the needs of large-scale precision processing of high-end copper foil products.
[0003] Currently, most conventional copper foil processing equipment on the market has a split structure, with lead wire insertion, soldering, and adhesive application processes set up independently. However, in actual production operations, the soldering requirements for copper foil leads are quite complex. Not only is it necessary to perform flat spot welding on the top of the leads, but also to perform precise sealing and reinforcement welding on the edges of the leads to ensure the strong connection between the leads and the copper foil body and avoid failures such as desoldering, cold solder joints, and loosening or falling off of leads during subsequent use. However, existing welding equipment is limited by structural design defects, and multi-dimensional movement suffers from problems such as motion interference, low displacement accuracy, and limited adjustment range. It cannot achieve free movement in multiple directions without interference, and it is difficult to adapt to the differentiated spot welding requirements of different positions such as the top and edges of the leads. It is very easy to have quality defects such as solder joint misalignment, insufficient welding coverage, and local missing solder joints. Therefore, this invention provides an integrated copper foil processing equipment for lead wire insertion, soldering, adhesive application, cutting, and winding. Summary of the Invention
[0004] In order to overcome the shortcomings of the prior art, at least one technical problem raised in the background art is solved.
[0005] The technical solution adopted by the present invention to solve its technical problem is: the integrated copper foil processing equipment for lead wire sleeve insertion, soldering, backing adhesive cutting and winding of the present invention includes a processing table and a conveyor for processing copper foil. The top of the processing table is fixedly installed with a conveyor for conveying copper foil. A welding machine for soldering copper foil and lead wire is provided directly above the processing table. An adjusting component for adjusting the welding position of the welding machine is provided directly above the processing table.
[0006] The adjusting components include:
[0007] The mounting plate is slidably installed directly above the conveyor, and a receiving hole is opened at the end of the mounting plate near the conveyor. A connecting column is slidably installed in the inner cavity of the receiving hole. One end of the welding machine is detachably connected to the bottom of the connecting column. A receiving groove is opened inside the mounting plate and communicates with the inner cavity of the receiving hole. A limiting plate is slidably installed in the inner cavity of the receiving groove, and the bottom of the limiting plate is fixedly connected to the top of the connecting column.
[0008] The diameter of the limiting plate is larger than the diameter of the connecting column, and the central axis of the limiting plate and the central axis of the connecting column coincide with each other. Multiple butterfly springs are fixedly installed in a ring on the outer wall of the limiting plate, and one end of each butterfly spring is fixedly connected to the inner wall of the receiving groove.
[0009] The mounting plate is designed as a rectangular structure, and lifting plates are fixedly installed at the four corners of the mounting plate. Horizontal plate one and horizontal plate two are fixedly installed on the adjacent sides of the mounting plate. The two ends of horizontal plate one and horizontal plate two are fixedly connected to the outer wall of the lifting plate, and horizontal plate one and horizontal plate two form a 90° angle. Cylinders are slidably installed on the top of horizontal plate one and horizontal plate two. Translation grooves that communicate with the inner cavity of the receiving hole are opened on the adjacent sides of the mounting plate. The power output ends of the two cylinders pass through the translation grooves and are fixedly connected to the outer wall of the connecting column.
[0010] Both the top of the first and second horizontal plates are provided with sliding grooves, and translation blocks are fixedly installed on the outer walls of the two cylinders. The two translation blocks are slidably installed in the inner cavities of the two sliding grooves respectively.
[0011] A hydraulic cylinder is fixedly installed on the top of the processing table. A hinge rod is rotatably installed on the power output end of the hydraulic cylinder. The end of the hinge rod away from the hydraulic cylinder is rotatably connected to the top of the mounting plate through a rotating shaft. A support plate is fixedly installed on the top of the processing table. The top of the support plate is rotatably connected to the middle of the hinge rod through a rotating shaft.
[0012] Multiple lifting plates are designed with an L-shaped structure, and the ends of the multiple lifting plates away from the mounting plate extend towards the top of the processing table. The outer sides of the ends of the multiple lifting plates away from the mounting plate are slidably fitted with positioning slide tubes, and the bottoms of the multiple positioning slide tubes are fixedly connected to the top of the processing table.
[0013] Each of the inner cavities of the multiple positioning slide tubes is fixedly equipped with a return spring, and the top of the return spring is fixedly connected to the bottom of the lifting plate.
[0014] A support plate extending away from itself is fixedly installed on the top of the processing table. A vertical plate perpendicular to itself is fixedly installed at one end of the support plate extending outside the processing table. An unwinding roller for unwinding copper foil is rotatably installed on one side of the vertical plate.
[0015] The top of the processing table is equipped with a feeding machine for feeding lead wires and a sleeve-connecting device for external sleeves of lead wires. The top of the conveyor is equipped with a transmission machine for feeding solder wires.
[0016] The side of the upright plate closest to the unwinding roller is detachably fitted with an adhesive backing roll, and two conveyor rollers for conveying copper foil and adhesive backing are rotatably mounted on one side of the support plate.
[0017] A bracket is fixedly installed on the top of the processing table. The bracket is located between the conveyor and the bearing plate. Inside the bracket, two extrusion rollers are rotatably installed to extrude copper foil and adhesive.
[0018] The beneficial effects of this invention are as follows:
[0019] 1. A vertical lifting and adjusting mechanism is formed by the cooperation of hydraulic cylinders, hinge rods, and support plates. This mechanism can stably drive the entire mounting plate to move up and down, achieving precise adjustment of the welding machine's vertical height. Simultaneously, through the cooperation of two horizontal plates arranged perpendicularly to each other on the mounting plate and two sets of independent cylinders, the connecting column can be driven to move the welding machine independently in the left-right and front-back horizontal directions. The movements in each dimension are independent and do not interfere with each other. In addition, the limiting plate and disc spring inside the receiving slot limit and buffer the sliding stroke of the connecting column, effectively avoiding the problem of solder joint displacement caused by welding vibration. This structure solves the defects of traditional soldering equipment that can only adjust in one dimension and has motion interference in multiple directions, making it unable to adapt to the differentiated spot welding of copper foil leads at various positions such as the top and edge. It can accurately complete the all-round welding operation of the leads, eliminating quality problems such as cold solder joints, missing solder joints, and detachment, and significantly improving welding accuracy and weld strength.
[0020] 2. By integrating the unwinding roller, adhesive backing roll, conveying roller, and integrated welding adjustment mechanism on the processing table, the traditional separate processes of copper foil unwinding, lead wire threading, and welding wire conveying are integrated into a continuous processing flow. The conveying roller enables synchronous alignment and conveying of the copper foil and adhesive backing. The extrusion roller on the support completes the tight bonding and shaping of the adhesive backing. Then, the conveyor uniformly conveys the workpiece to the welding station for precise spot welding. The coordinated operation of various functional components and the close connection of processes effectively solve the technical problems of independent process settings, cumbersome material transfer, inconsistent work rhythm, and easy occurrence of copper foil deformation, misalignment, and bonding wrinkles in traditional equipment. It eliminates the need for manual transfer and alignment calibration, significantly improves the automation level and production efficiency of copper foil deep processing, reduces material loss and labor costs, and greatly improves the product yield. Attached Figure Description
[0021] The invention will now be further described with reference to the accompanying drawings.
[0022] Figure 1 This is a schematic diagram of the main structure of the present invention;
[0023] Figure 2 This is an assembly diagram of the adhesive backing roll and conveyor of the present invention;
[0024] Figure 3 This is an assembly diagram of the mounting plate and positioning slide tube of the present invention;
[0025] Figure 4 This is an assembly drawing of the mounting plate and the limiting plate of the present invention;
[0026] Figure 5 This is the present invention. Figure 1 Enlarged view of the structure at point A in the middle;
[0027] Figure 6 This is the present invention. Figure 4 Enlarged view of the structure at point B.
[0028] In the picture:
[0029] 1. Processing table; 2. Conveyor roller; 3. Bearing plate; 4. Support; 5. Extrusion roller; 6. Hydraulic cylinder; 7. Mounting plate; 8. Positioning slide tube; 9. Conveyor; 10. Unwinding roller; 11. Backing roll; 12. Cylinder; 13. Sliding groove; 14. Translation block; 15. Translation groove; 16. Welding machine; 17. Limiting plate; 18. Horizontal plate two; 19. Receiving groove; 20. Butterfly spring; 21. Connecting column; 22. Support plate; 23. Hinge rod; 24. Horizontal plate one; 25. Lifting plate; 26. Return spring. Detailed Implementation
[0030] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments.
[0031] like Figures 1-6 As shown, the integrated copper foil processing equipment for lead wire sleeve insertion, soldering, adhesive backing, cutting, and winding in this embodiment of the invention includes a processing table 1 for overall processing and support of copper foil and a conveyor 9 for precise copper foil transport. The processing table 1 serves as the base for the entire machine, providing a stable installation reference for each functional component. The conveyor 9 is fixedly installed on the top of the processing table 1. As the core transport component, the conveyor 9 is responsible for the uniform and fixed-point transport of the copper foil to be processed, ensuring the alignment accuracy of each process.
[0032] To enable precise spot welding of copper foil and lead wires at multiple locations, a welding machine 16 is installed directly above the processing table 1. The welding machine 16 is used to complete the spot welding and fixing of copper foil and lead wires, and can reinforce the top and edge of the lead wires by welding, eliminating problems such as incomplete welding, missing welding, and detachment. At the same time, an adjustment component is installed directly above the processing table 1. This adjustment component is the core adjustment structure of the whole machine and is used to adaptively adjust the welding position of the welding machine 16 in all directions, so as to achieve free three-dimensional movement of the welding machine 16 in the up, down, left, right, and front and back without interference, so as to meet the processing needs of different welding points.
[0033] Furthermore, such as Figures 1-4 As shown, the adjusting component specifically includes a mounting plate 7, which is slidably mounted above the conveyor 9 and serves as the core mounting base for supporting the welding adjusting assembly. A vertical receiving hole is provided at one end of the mounting plate 7 near the conveyor 9. A connecting column 21 is vertically slidably mounted within the inner cavity of the receiving hole. The connecting column 21 is a connecting transmission component for the welding machine 16. The top of the welding machine 16 and the bottom of the connecting column 21 are detachably fixedly connected, facilitating future inspection, replacement, and maintenance of the welding machine 16. Simultaneously, a receiving groove 19, communicating with the inner cavity of the receiving hole, is provided inside the mounting plate 7. A limiting plate 17 is horizontally slidably mounted within the inner cavity of the receiving groove 19. The bottom of the limiting plate 17 is fixedly connected to the top of the connecting column 21. Through the cooperation of the limiting plate 17 and the receiving groove 19, the vertical sliding stroke of the connecting column 21 can be limited and guided, preventing the connecting column 21 from shifting or falling off during vertical movement and ensuring the stability of the welding machine 16's vertical movement.
[0034] Specifically, such as Figures 3-6 As shown, to improve the buffering stability and reset accuracy of the welding operation, the diameter of the limiting plate 17 is set to be larger than the diameter of the connecting column 21, and the central axis of the limiting plate 17 and the connecting column 21 are completely coincident, ensuring uniform force and precise coaxiality of movement; multiple butterfly springs 20 are fixedly installed in a ring evenly distributed manner on the outer wall of the limiting plate 17, and one end of each butterfly spring 20 is fixedly connected to the inner wall of the receiving groove 19. When the connecting column 21 moves and adjusts the limiting plate 17 within the receiving groove 19, the butterfly springs 20 can play the role of elastic buffering and shock absorption and noise reduction, effectively offsetting the vibration generated by the welding operation and preventing weld point displacement; at the same time, during adjustment and reset, the elastic reset force of the butterfly springs 20 can drive the limiting plate 17, the connecting column 21 and the welding machine 16 to accurately reset, ensuring the consistency of position in multiple welding operations.
[0035] To achieve horizontal adjustment of the welding machine 16 in both left-right and front-back directions, the mounting plate 7 adopts a rectangular structure design, which is regular in structure and uniform in force distribution, ensuring the stability of the installation of each adjustment component. Lifting plates 25 are fixedly installed at the four corners of the mounting plate 7 to cooperate in the vertical lifting and guiding of the mounting plate 7 and the entire welding equipment. Horizontal plates 1 and 2 are fixedly installed on the adjacent sides of the mounting plate 7, respectively. Both ends of horizontal plates 1 and 2 are fixedly connected to the outer wall of the lifting plate 25, and the two are arranged at a 90° vertical angle, corresponding to the front-back and left-right horizontal adjustment dimensions of the equipment, respectively, to achieve bidirectional independent adjustment and no interference between them. Cylinders 12 are slidably installed on the top of horizontal plates 1 and 2 and 2, serving as the power source for horizontal adjustment and providing power for the welding machine 16 to move left-right and front-back. At the same time, translation slots 15 are opened on the adjacent sides of the mounting plate 7, which are interconnected with the inner cavity of the receiving hole. The power output ends of the two cylinders 12 pass through the corresponding translation slots 15 and are fixedly connected to the outer wall of the connecting column 21.
[0036] In actual operation, the two vertically arranged cylinders 12 can be started and stopped independently. One cylinder 12 pushes the connecting column 21 to move in the front-back direction, driving the welding machine 16 to complete the front-back position adjustment to meet the welding requirements of the front and rear edges of the lead wire; the other cylinder 12 pushes the connecting column 21 to move in the left-right direction, driving the welding machine 16 to complete the left-right position adjustment to meet the welding requirements of the left and right sides of the lead wire. The two sets of translation movements are independent of each other and have no movement interference, which can accurately locate any horizontal welding point. In order to ensure the smoothness and stability of the sliding adjustment of the cylinder 12, the top of the horizontal plate 1 24 and the horizontal plate 2 18 are both provided with sliding grooves 13. The outer walls of the two cylinders 12 are fixedly installed with translation blocks 14, which are slidably installed in the inner cavity of the sliding grooves 13. The sliding grooves 13 limit and guide the translation blocks 14 to avoid the cylinder 12 from deviating and shaking during operation, thus ensuring the horizontal adjustment accuracy.
[0037] Furthermore, such as Figure 5 As shown, to achieve vertical lifting and lowering adjustment of the welding machine 16, a hydraulic cylinder 6 is fixedly installed on the top of the processing table 1. The hydraulic cylinder 6 is the core power component for vertical lifting and lowering. A hinge rod 23 is rotatably installed at the power output end. The end of the hinge rod 23 away from the hydraulic cylinder 6 is rotatably connected to the top of the mounting plate 7 through a rotating shaft. At the same time, a support plate 22 is fixedly installed on the top of the processing table 1. The top of the support plate 22 is rotatably connected to the middle of the hinge rod 23 through a rotating shaft, forming a stable lever hinge transmission structure. During operation, the hydraulic cylinder 6 extends and retracts to drive the hinge rod 23 to rotate around the top rotating shaft of the support plate 22 as the fulcrum, thereby driving the mounting plate 7 to lift and lower as a whole, and simultaneously driving the welding machine 16 at the bottom to complete the vertical height adjustment. The welding spacing can be precisely adjusted according to the copper foil thickness and lead wire height to adapt to the welding requirements of different product specifications. The hinge transmission structure has stable force and controllable lifting stroke, effectively improving the stability of vertical adjustment.
[0038] To further improve the guiding accuracy and structural stability of the vertical lifting of the mounting plate 7, multiple lifting plates 25 adopt an L-shaped structure design, which has high structural strength and load-bearing capacity. The ends of the multiple lifting plates 25 away from the mounting plate 7 extend towards the top of the processing table 1, and each end is slidably fitted with a positioning slide tube 8. The bottom of all positioning slide tubes 8 is fixedly connected to the top of the processing table 1. Through the sliding cooperation between the lifting plates 25 and the positioning slide tubes 8, the vertical lifting of the mounting plate 7 can be guided and limited in all directions, eliminating tilting, offset, and jamming problems during the lifting process, and ensuring the overall stability of the welding equipment.
[0039] Meanwhile, a return spring 26 is fixedly installed at the bottom of the inner cavity of multiple positioning slide tubes 8. The top of the return spring 26 is fixedly connected to the bottom of the lifting plate 25. When the hydraulic cylinder 6 drives the mounting plate 7 to descend for welding, the lifting plate 25 compresses the return spring 26. The return spring 26 can play a buffering and shock-absorbing role to avoid excessive welding pressure from damaging the copper foil and lead wire. When the hydraulic cylinder 6 retracts and resets, the elastic reset force of the return spring 26 can assist the lifting plate 25 to reset quickly and accurately, improving the efficiency of equipment cycle operation and reset accuracy.
[0040] To achieve integrated processing, this invention includes an auxiliary structure for unwinding, adhesive backing, lead wire conveying, and extrusion molding. A support plate 3 extending outwards is fixedly installed on the top of the processing table 1. A vertically arranged upright plate is fixedly installed at one end of the support plate 3 extending outside the processing table 1. An unwinding roller 10 is rotatably installed on one side of the upright plate. The unwinding roller 10 is used to automatically unwind and convey copper foil raw materials, ensuring a continuous supply of raw materials. Simultaneously, a dedicated lead wire conveying device and a tube-insertion device are provided on the top of the processing table 1, which can automatically complete lead wire conveying and lead wire external tube-insertion operations. A conveyor 9 is installed on the top for conveying solder wire, realizing automatic quantitative conveying of solder wire. The entire lead wire pretreatment and solder wire supply process is completed automatically without manual intervention.
[0041] A backing adhesive roll 11 is detachably installed on the side of the upright plate near the unwinding roller 10. The detachable installation structure facilitates the replacement, filling and maintenance of the backing adhesive roll 11. Two conveying rollers 2 are rotatably installed on one side of the bearing plate 3, which are arranged vertically and vertically. The two conveying rollers 2 cooperate with each other to synchronously clamp and convey the copper foil after unwinding and the backing adhesive output from the backing adhesive roll 11, ensuring the alignment accuracy of the copper foil and the backing adhesive before bonding, and avoiding bonding misalignment or wrinkles.
[0042] To achieve tight bonding and shaping between the adhesive and the copper foil, a bracket 4 is fixedly installed on the top of the processing table 1. The bracket 4 is arranged between the conveyor 9 and the bearing plate 3. Two extrusion rollers 5 are rotatably installed inside the bracket 4, which are arranged vertically and vertically. When the copper foil and the adhesive are conveyed to the position of the extrusion rollers 5 by the conveyor rollers 2, the two extrusion rollers 5 extrude bidirectionally to the copper foil and the adhesive, so that the adhesive is tightly bonded to the surface of the copper foil, eliminating defects such as bonding gaps, air bubbles and wrinkles, and improving the bonding quality of the product. After bonding, the copper foil is continued to be conveyed by the conveyor 9 to enter the subsequent welding, cutting and winding processes.
[0043] The overall complete workflow of this invention is as follows:
[0044] After the equipment is started, the unwinding roller 10 automatically unwinds the copper foil raw material, and the adhesive roll 11 outputs the adhesive simultaneously. The copper foil and adhesive are synchronously aligned and conveyed by the upper and lower sets of conveying rollers 2. The copper foil and adhesive enter the squeezing roller 5 inside the bracket 4 and are tightly bonded and shaped by the squeezing action of the squeezing roller 5. The bonded copper foil is conveyed to the top of the conveyor 9 and conveyed at a uniform speed and accurately by the conveyor 9. At the same time, the supporting equipment completes the pre-treatment of lead wire conveying, tube sleeve connection and quantitative conveying of welding wire.
[0045] During welding operations, the adjustment mechanism is activated according to the actual welding point requirements. The hydraulic cylinder 6 drives the mounting plate 7 to rise and fall as a whole through the hinge rod 23, completing the vertical height adjustment of the welding machine 16 to adapt to different workpiece thicknesses. The two sets of cylinders 12 at the top of the first horizontal plate 24 and the second horizontal plate 18 work independently. Through the translation block 14, they slide and guide in the sliding groove 13, pushing the connecting column 21 to move independently left, right and back and forth in the translation groove 15, driving the welding machine 16 to move precisely to the top or edge of the lead wire to be welded. The movements in each dimension do not interfere with each other and the positioning is accurate.
[0046] During the welding process, the limiting plate 17, together with the butterfly spring 20, achieves elastic buffering and precise limiting, offsetting welding vibration and ensuring that the weld points are flat and uniform. The lifting plate 25, together with the positioning slide tube 8 and the reset spring 26, ensures the overall mechanism's lifting stability and precise reset. After the single-point welding is completed, the welding position can be quickly switched through the multi-dimensional adjustment mechanism to complete the all-round welding reinforcement of the lead wire. After the welding is completed, the copper foil continues to be conveyed backward, and precise cutting and neat winding of the finished product are completed in sequence. The entire process realizes the integrated automated processing of lead wire sleeve insertion, soldering, adhesive bonding, cutting, and winding.
[0047] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of the present invention is defined by the appended claims and their equivalents.
Claims
1. A copper foil processing equipment integrating lead wire sleeve insertion, soldering, adhesive backing, cutting, and winding, comprising a processing table (1) for processing copper foil and a conveyor (9), wherein the top of the processing table (1) is fixedly equipped with a conveyor (9) for conveying copper foil, characterized in that: A welding machine (16) for welding copper foil and lead wire is provided directly above the processing table (1), and an adjustment component for adjusting the welding position of the welding machine (16) is provided directly above the processing table (1). The adjusting element includes: Mounting plate (7) is slidably mounted directly above conveyor (9), and a receiving hole is provided at one end of mounting plate (7) near conveyor (9). A connecting column (21) is slidably mounted in the inner cavity of the receiving hole. One end of welding machine (16) is detachably connected to the bottom of connecting column (21). A receiving groove (19) communicating with the inner cavity of the receiving hole is provided inside the mounting plate (7). A limiting plate (17) is slidably mounted in the inner cavity of the receiving groove (19). The bottom of the limiting plate (17) is fixedly connected to the top of connecting column (21).
2. The integrated copper foil processing equipment for lead wire sleeve insertion, soldering, adhesive backing, cutting, and winding according to claim 1, characterized in that: The diameter of the limiting plate (17) is larger than the diameter of the connecting column (21), and the central axis of the limiting plate (17) and the central axis of the connecting column (21) coincide with each other. Multiple butterfly springs (20) are fixedly installed in a ring on the outer wall of the limiting plate (17), and one end of each butterfly spring (20) is fixedly connected to the inner wall of the receiving groove (19).
3. The integrated copper foil processing equipment for lead wire sleeve insertion, soldering, adhesive backing, cutting, and winding according to claim 2, characterized in that: The mounting plate (7) is set as a rectangular structure, and lifting plates (25) are fixedly installed at the four corners of the mounting plate (7). Horizontal plate one (24) and horizontal plate two (18) are fixedly installed on the adjacent sides of the mounting plate (7). The two ends of horizontal plate one (24) and horizontal plate two (18) are fixedly connected to the outer wall of the lifting plate (25), and horizontal plate one (24) and horizontal plate two (18) form a 90° angle. Cylinders (12) are slidably installed on the top of horizontal plate one (24) and horizontal plate two (18). Translation grooves (15) that communicate with the inner cavity of the receiving hole are opened on the adjacent sides of the mounting plate (7). The power output ends of the two cylinders (12) pass through the translation grooves (15) and are fixedly connected to the outer wall of the connecting column (21).
4. The integrated copper foil processing equipment for lead wire sleeve insertion, soldering, adhesive backing, cutting, and winding according to claim 3, characterized in that: The top of both the first horizontal plate (24) and the second horizontal plate (18) are provided with sliding grooves (13), and the outer walls of the two cylinders (12) are fixedly installed with translation blocks (14). The two translation blocks (14) are slidably installed in the inner cavities of the two sliding grooves (13).
5. The integrated copper foil processing equipment for lead wire sleeve insertion, soldering, adhesive backing, cutting, and winding according to claim 1, characterized in that: A hydraulic cylinder (6) is fixedly installed on the top of the processing table (1). A hinge rod (23) is rotatably installed on the power output end of the hydraulic cylinder (6). The end of the hinge rod (23) away from the hydraulic cylinder (6) is rotatably connected to the top of the mounting plate (7) through a rotating shaft. A support plate (22) is fixedly installed on the top of the processing table (1). The top of the support plate (22) is rotatably connected to the middle of the hinge rod (23) through a rotating shaft.
6. The integrated copper foil processing equipment for lead wire sleeve insertion, soldering, adhesive backing, cutting, and winding according to claim 3, characterized in that: The multiple lifting plates (25) are all configured as L-shaped structures, and the ends of the multiple lifting plates (25) away from the mounting plate (7) extend towards the top of the processing table (1). The ends of the multiple lifting plates (25) away from the mounting plate (7) are all slidably sleeved with positioning slide tubes (8), and the bottoms of the multiple positioning slide tubes (8) are fixedly connected to the top of the processing table (1).
7. The integrated copper foil processing equipment for lead wire sleeve insertion, soldering, adhesive backing, cutting, and winding according to claim 6, characterized in that: Each of the inner cavities of the multiple positioning slide tubes (8) is fixedly equipped with a return spring (26), and the top of the return spring (26) is fixedly connected to the bottom of the lifting plate (25).
8. The integrated copper foil processing equipment for lead wire sleeve insertion, soldering, adhesive backing, cutting, and winding according to claim 2, characterized in that: The top of the processing table (1) is fixedly installed with a support plate (3) extending away from itself. One end of the support plate (3) extending to the outside of the processing table (1) is fixedly installed with a vertical plate perpendicular to itself. A unwinding roller (10) for unwinding copper foil is rotatably installed on one side of the vertical plate. The top of the processing table (1) is provided with a feeding machine for feeding lead wires and a sleeve connection device for external sleeve connection of lead wires. The top of the conveyor (9) is provided with a transmission machine for feeding solder wires.
9. The integrated copper foil processing equipment for lead wire sleeve insertion, soldering, adhesive backing, cutting, and winding according to claim 8, characterized in that: One side of the upright plate is detachably fitted with an adhesive backing roll (11), and the other side of the support plate (3) is rotatably fitted with two conveying rollers (2) for conveying copper foil and adhesive backing.
10. The integrated copper foil processing equipment for lead wire sleeve insertion, soldering, adhesive backing, cutting, and winding according to claim 9, characterized in that: A bracket (4) is fixedly installed on the top of the processing table (1). The bracket (4) is located between the conveyor (9) and the bearing plate (3). Two extrusion rollers (5) for extruding copper foil and adhesive are rotatably installed inside the bracket (4).