Steel-cored aluminum stranded wire separation automatic recovery equipment

CN122531897APending Publication Date: 2026-08-07CHONGQING JIAHUI SUPPLY CHAIN CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
CHONGQING JIAHUI SUPPLY CHAIN CO LTD
Filing Date
2026-05-09
Publication Date
2026-08-07

AI Technical Summary

Technical Problem

[0004]目前行业内针对钢芯铝绞线的分离处理,主要存在两类技术方案:一类是纯人工拆解方式,依靠人工敲打、手工逐段剥离铝层,该方式不仅劳动强度极大、单吨物料处理效率极低,且剥离过程中极易造成钢芯弯折、表面划伤,破坏钢芯的结构完整性,大幅降低其二次利用价值;另一类是常规机械剥线设备,多采用固定刀具切削剥离的结构,无法适配钢芯铝绞线的螺旋绞合结构特性,易出现切削过度损伤钢芯、切削不足导致分离不彻底的问题,同时无法灵活适配不同规格型号的绞线,自动化程度低,无法实现连续化的上料、分离、回收全流程作业,且设备运行过程中缺乏有效的安全防护结构,存在剥离的铝线飞溅、钢芯旋转甩脱的安全隐患,无法满足规模化、安全化的回收作业需求

Benefits of technology

本发明通过动力电机驱动滚筒做与钢芯铝绞线外层铝线绞合方向相反的旋转运动,采用反向反绞的无切削剥离工艺,模拟钢芯铝绞线螺旋绞合成型的逆过程,可将外层铝绞线从钢芯上完整、快速剥离,彻底解决了传统人工拆解劳动强度大、单吨物料处理效率低,以及常规切削式剥线设备无法适配绞线螺旋绞合结构、分离不彻底的问题,大幅提升了钢芯铝绞线的分离处理效率。

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Abstract

The application provides a steel-cored aluminum stranded wire separation automatic recovery equipment, and relates to the technical field of waste cable recovery, which comprises an equipment host, the upper front of the equipment host is of an open structure, and a roller is rotatably arranged at the lower left inside of the equipment host; an inner support pressing mechanism is mounted on the inner surface of the roller; the inner support pressing mechanism comprises a connecting plate, a floating joint, a mounting piece A, a pressing block, a mounting piece B, a cylinder mounting seat, a control cylinder, a guide groove mounting piece and a linear slide rail; the cylinder mounting seat is fixed to the inner surface of the roller, and the control cylinder is fixed outside the cylinder mounting seat; the power motor drives the roller to make a rotary motion in the opposite direction of the twisting direction of the outer aluminum wire of the steel-cored aluminum stranded wire, a reverse reverse-twisting non-cutting stripping process is adopted, the reverse process of the spiral twisting and forming of the steel-cored aluminum stranded wire is simulated, the outer aluminum wire can be completely and quickly stripped from the steel core, and the problems of high labor intensity and low single-ton material processing efficiency in traditional manual disassembly are solved.
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Description

Technical Field

[0001] This invention relates to the field of waste cable recycling technology, and in particular to an automated recycling device for separating and recycling steel-cored aluminum stranded wire. Background Technology

[0002] Steel-cored aluminum stranded wire is made by spiral stranding, with an inner high-strength steel core as the load-bearing layer and an outer high-conductivity aluminum stranded wire as the conductive layer. It is a core material used in high-voltage and ultra-high-voltage transmission lines.

[0003] With the upgrading and renovation of power grid systems and the decommissioning and replacement of old lines, a large amount of waste steel-cored aluminum stranded wire is generated every year. The economic value of aluminum in this type of waste is far higher than that of steel core. At the same time, in scenarios such as the resource recycling of waste lines and the secondary production of binding wires at construction sites, it is necessary to completely and undamagedly separate the outer aluminum stranded wire from the inner steel core.

[0004] Currently, there are two main technical solutions for separating and processing steel-cored aluminum stranded wire in the industry: one is a purely manual dismantling method, which relies on manual hammering and peeling off the aluminum layer segment by segment. This method is not only extremely labor-intensive and has very low efficiency in processing one ton of material, but also easily causes bending and surface scratches on the steel core during the peeling process, damaging the structural integrity of the steel core and significantly reducing its secondary utilization value. The other is conventional mechanical wire stripping equipment, which mostly uses a fixed blade cutting and peeling structure. This structure cannot be adapted to the spiral stranding structure of steel-cored aluminum stranded wire, and is prone to problems such as over-cutting and damaging the steel core, and under-cutting and incomplete separation. At the same time, it cannot flexibly adapt to different specifications and models of stranded wire, has a low degree of automation, and cannot achieve continuous feeding, separation, and recycling of the entire process. In addition, the equipment lacks an effective safety protection structure during operation, posing safety hazards such as aluminum wire splashing and steel core rotation and detachment, and cannot meet the needs of large-scale and safe recycling operations. Summary of the Invention

[0005] In view of the above, the present invention addresses the shortcomings of the prior art by providing an automated recycling device for steel-cored aluminum stranded wire separation.

[0006] This invention provides an automated recycling device for separating and recycling steel-cored aluminum stranded wire, specifically comprising: a main unit, the upper front of which has an open structure, and a roller rotatably mounted inside the lower left of the main unit; an inner support and clamping mechanism is installed on the inner surface of the roller; the inner support and clamping mechanism includes a connecting plate, a floating joint, mounting component A, a pressure block, mounting component B, a cylinder mounting seat, a control cylinder, a guide groove mounting component, and a linear slide rail; the cylinder mounting seat is fixed to the inner surface of the roller, and the control cylinder is fixed outside the cylinder mounting seat; the extended end of the control cylinder is connected to the floating joint, and the floating... The connector is fixedly connected to the connecting plate; the linear slide rail is fixed to the inner wall of the roller, and the guide groove mounting component is slidably installed outside the linear slide rail, and the guide groove mounting component is fixedly connected to the connecting plate; mounting component A and mounting component B are fixedly fixed to the inner wall of the roller, and the pressure block is slidably installed between mounting component A and mounting component B, and the pressure block and the guide groove mounting component are driven by a cam structure; a wire clamping groove is opened at the end of the roller, and the wire clamping groove corresponds to the pressing position of the pressure block; a wire groove, and two sets of bases are fixedly installed below the two sections of the wire groove, one set of bases being fixed at the lower front left position of the main unit of the equipment.

[0007] Optionally, a fixed protective cover is fixedly installed on the front right side of the main unit of the equipment; a movable base is fixedly installed on the upper part of the inside of the main unit of the equipment, and a movable cover is slidably installed on the upper part of the movable base. The movable cover has the same shape as the fixed protective cover and can move to the inside of the fixed protective cover; a pulley is rotatably installed at the bottom of the movable cover; and a strong electromagnet for fixing the movable cover is installed on the upper part of the movable base.

[0008] Optionally, five sets of pads are fixedly installed inside the wire groove, and each pad has a V-shaped groove in the middle of its top.

[0009] Optionally, a wire cover is hinged to the top of the wire channel, and the hinged joint of the wire cover is located on the rear side of the wire cover and the wire channel. Movable buckles are provided on the front side of the wire channel and the wire cover.

[0010] Optionally, a pressure seat is fixedly provided at the top center of each base; two sets of optical axes are fixedly provided at the top of each base; a cylinder mounting plate is fixedly provided at the top of each optical axis; a pressing cylinder is fixedly provided at the top center of each cylinder mounting plate, and a control connector is fixedly provided at the telescopic end of the pressing cylinder through the cylinder mounting plate; a sliding plate is fixedly provided at the bottom of each control connector, and linear steel sleeves are fixedly provided on both sides of the sliding plate, and the linear steel sleeves slide outside the optical axis.

[0011] Optionally, a power motor is fixedly installed inside the main unit of the equipment; the output end of the power motor is connected to the roller shaft by a belt drive, which effectively improves the reliability of the equipment. When the equipment exceeds the maximum torque for drawing the steel wire, the belt slips, effectively protecting the power motor from damage; reducing the maintenance cost of the equipment; the power motor drives the roller to rotate in the opposite direction to the twisting direction of the outer aluminum wire of the steel core aluminum stranded wire.

[0012] Optionally, the pressing surfaces of the pressure block and the pressure seat are both machined with raised friction stripes.

[0013] Optionally, a touch screen is installed above the fixed protective cover door. The touch screen is connected to the control cylinder, the pressing cylinder, and the power motor inside the equipment. The touch screen realizes the start and stop control of the equipment and the adjustment of the action parameters.

[0014] Optionally, a calculator is fixedly installed inside the upper left of the main unit of the device. The main body of the calculator is L-shaped. Two sets of spring rods are fixedly installed on the top of the calculator. An upper rotating seat is slidably installed on the outside of the two sets of spring rods. The spring rods pass through the upper rotating seat, are fitted with springs, and are fixedly installed with baffles. A handle is fixedly installed on the top of the upper rotating seat. A lower support roller is rotatably installed on one side of the calculator, and an upper roller is rotatably installed on one side of the upper rotating seat. The lower support roller and the upper roller are in contact. A counting sensor is fixedly installed above the calculator. Equally spaced flanges are integrally installed on the outer side of the lower support roller. The counting sensor can detect the passage of the flanges and perform calculations. A wedge block is fixedly installed on one side of the upper rotating seat, and an infrared rangefinder is fixedly installed on one side of the calculator. The infrared rangefinder is aligned with the wedge block.

[0015] The beneficial effects are as follows: This invention uses a motor to drive a drum to rotate in the opposite direction to the stranding of the outer aluminum wire of the steel-cored aluminum stranded wire. It employs a reverse stranding non-cutting stripping process, simulating the reverse process of spiral stranding of steel-cored aluminum stranded wire. This process can completely and quickly strip the outer aluminum wire from the steel core, thoroughly solving the problems of high labor intensity and low single-ton material processing efficiency in traditional manual dismantling, as well as the inability of conventional cutting-type wire stripping equipment to adapt to the spiral stranding structure and incomplete separation. This significantly improves the separation and processing efficiency of steel-cored aluminum stranded wire.

[0016] This invention forms a dual-stage stable clamping structure through the internal support clamping mechanism inside the drum and the feeding clamping mechanism at the wire groove. Combined with the raised friction stripes on the working surface of the clamping block and the clamping seat, as well as the pad with a V-groove inside the wire groove, it can achieve precise positioning and firm clamping of steel-cored aluminum stranded wires of different specifications. There is no cutting action during the entire stripping process, which effectively avoids the problems of steel core bending and surface scratches, ensures the structural integrity of the steel core, and greatly improves the secondary recycling value of the steel core. By fixing and clamping the stranded wire with the clamping block, no manual operation is required when the drum rotates, which greatly reduces safety hazards and ensures that the stranded wire will not fall suddenly.

[0017] This invention forms a fully enclosed safety protection structure through a fixed protective cover, a sliding and retractable movable cover, and a wire cover on top of the wire trough. Combined with the wire-clamping groove and limiting structure at the end of the roller, it effectively avoids safety hazards such as aluminum wire splashing and steel core rotation during the stripping process. Simultaneously, the touchscreen on the fixed protective cover, along with the control cylinder, pressing cylinder, and power motor, forms an electronic control linkage, achieving fully automated continuous operation of the equipment's loading, pressing, separation, and shutdown. This solves the problems of low automation, insufficient safety protection, and inability to achieve continuous operation in traditional equipment, reducing manual operation costs and improving equipment safety and ease of operation. The output end of the power motor is connected to the roller via a belt drive, effectively improving equipment reliability.

[0018] This invention, through the cooperation of a calculator, a counting sensor and an infrared rangefinder, can monitor and automatically measure the length of the stranded wire in real time, and at the same time detect the thickness and continuity of the stranded wire. It can automatically stop the machine when there is no material or an abnormality, thereby improving the automation level and operational safety of the equipment and avoiding idling and ineffective operation. Attached Figure Description

[0019] Figure 1 A three-dimensional structural schematic diagram of an embodiment of the present invention is shown; Figure 2 A schematic diagram of the axial structure of an embodiment of the present invention is shown; Figure 3 A schematic diagram of the internal structure of an embodiment of the present invention is shown; Figure 4 A front view structural diagram of the device host in an embodiment of the present invention is shown; Figure 5 A front view schematic diagram of the roller structure in an embodiment of the present invention is shown; Figure 6 A schematic diagram of the assembly structure of the wire groove in an embodiment of the present invention is shown; Figure 7 This diagram illustrates the assembly structure of the base in an embodiment of the present invention. Figure 8A schematic diagram of the assembly structure of the calculator in an embodiment of the present invention is shown.

[0020] List of reference numerals in the attached diagram: 1. Main unit of equipment; 101. Fixed protective cover door; 102. Movable seat; 103. Movable cover door; 104. Pulley; 2. Roller; 201. Connecting plate; 202. Floating joint; 204. Mounting component A; 205. Pressure block; 206. Mounting component B; 207. Cylinder mounting base; 208. Control cylinder; 209. Guide groove mounting component; 210. Linear slide rail; 211. Cable tray; 3. Wire tray; 301. Pad 302. Plate; 4. Wire cover; 5. Base; 401. Pressure seat; 402. Optical axis; 403. Cylinder mounting plate; 404. Lower pressure cylinder; 405. Control connector; 406. Sliding plate; 407. Straight steel sleeve; 5. Calculator; 501. Spring rod; 502. Upper rotary seat; 503. Handle; 504. Lower support roller; 505. Upper roller; 506. Counting sensor; 507. Wedge block; 508. Infrared rangefinder. Detailed Implementation

[0021] To make the objectives, solutions, and advantages of the technical solutions of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings of specific embodiments of the present invention.

[0022] Example 1: Please refer to the accompanying drawings in the instruction manual, such as... Figures 1 to 8 As shown: This invention proposes an automated recycling device for separating and recycling steel-cored aluminum stranded wire, comprising: a main unit 1, the upper front of which is open, and a roller 2 rotatably mounted inside the lower left of the main unit 1; an inner support pressing mechanism is installed on the inner surface of the roller 2; the inner support pressing mechanism includes a connecting plate 201, a floating joint 202, a mounting component A204, a pressure block 205, a mounting component B206, a cylinder mounting seat 207, a control cylinder 208, a guide groove mounting component 209, and a linear slide rail 210; the cylinder mounting seat 207 is fixed to the inner surface of the roller 2, and the control cylinder 208 is fixed to the outside of the cylinder mounting seat 207; the extended end of the control cylinder 208 is connected to the floating joint 202, and the floating joint 202 is connected to the connecting plate 201, the roller 202, and the control cylinder 208 is connected to the roller 202. The connecting plate 201 is fixedly connected; the linear slide rail 210 is fixed to the inner wall of the roller 2, and the guide groove mounting part 209 is slidably installed outside the linear slide rail 210. The guide groove mounting part 209 is fixedly connected to the connecting plate 201; the mounting part A204 and the mounting part B206 are fixedly fixed to the inner wall of the roller 2, and the pressure block 205 is slidably installed between the mounting part A204 and the mounting part B206. The pressure block 205 and the guide groove mounting part 209 are driven by a cam structure; the end of the roller 2 is provided with a wire clamping groove 211, which corresponds to the pressing position of the pressure block 205; the wire groove 3 has two sets of bases 4 fixedly installed below the two sections of the wire groove 3, and one set of bases 4 is fixed at the lower front left side of the main unit 1.

[0023] The device host 1 has a fixed protective door 101 fixedly installed on the front right side; a movable seat 102 is fixedly installed on the upper part of the device host 1, and a movable door 103 is slidably installed on the upper part of the movable seat 102. The movable door 103 has the same shape as the fixed protective door 101 and can move to the inside of the fixed protective door 101; a pulley 104 is rotatably installed at the bottom of the movable door 103; a strong electromagnet is installed on the upper part of the movable seat 102 to fix the movable door 103. The door is pre-locked by the strong electromagnet. When the device is powered on, the strong electromagnet is magnetized to completely lock the door, so that the safety door cannot be opened manually during the operation of the device.

[0024] Among them, five sets of pads 301 are fixedly installed inside the wire groove 3, and a V-shaped groove is opened in the middle of the top of each pad 301.

[0025] The wire guide 3 is hinged to the top of the wire guide 3 and a wire cover 302 is provided. The hinge joint of the wire cover 302 is provided on the rear side of the wire cover 302 and the wire guide 3. The wire guide 3 and the wire cover 302 are provided with movable buckles on the front side.

[0026] Among them, a pressure seat 401 is fixedly installed in the middle of the top of the base 4; two sets of optical axes 402 are fixedly installed in the top of the base 4; a cylinder mounting plate 403 is fixedly installed in the top of the optical axis 402; a pressing cylinder 404 is fixedly installed in the middle of the top of the cylinder mounting plate 403, and a control connector 405 is fixedly installed through the cylinder mounting plate 403 at the telescopic end of the pressing cylinder 404; a sliding plate 406 is fixedly installed at the bottom of the control connector 405, and a straight steel sleeve 407 is fixedly installed on both sides of the sliding plate 406, and the straight steel sleeve 407 slides outside the optical axis 402.

[0027] The main unit 1 is equipped with a fixed power motor. The output end of the power motor is connected to the drum 2 by a belt drive, which effectively improves the reliability of the equipment. When the equipment exceeds the maximum torque for drawing the steel wire, the belt slips, which effectively protects the power motor from damage and reduces the maintenance cost of the equipment. The power motor drives the drum 2 to rotate in the opposite direction to the twisting direction of the outer aluminum wire of the steel core aluminum stranded wire.

[0028] The pressing surfaces of both the pressure block 205 and the pressure seat 401 are machined with raised friction stripes.

[0029] The fixed protective cover door 101 is equipped with a touch screen, which is connected to the control cylinder 208, the pressing cylinder 404 and the power motor in the equipment. The touch screen realizes the start and stop control of the equipment and the adjustment of the action parameters.

[0030] The main unit 1 is equipped with a measuring device 5 fixedly mounted on its upper left side. The measuring device 5 has an L-shaped structure. Two sets of spring rods 501 are fixedly mounted on the top of the measuring device 5. An upper rotating seat 502 is slidably mounted on the two sets of spring rods 501. The spring rods 501 pass through the upper rotating seat 502, are fitted with springs, and are fixedly mounted with baffles. A handle 503 is fixedly mounted on the top of the upper rotating seat 502. A lower support roller 504 is rotatably mounted on one side above the measuring device 5. The upper roller 505 is rotatably mounted, and the lower support roller 504 is attached to the upper roller 505. A counting sensor 506 is fixedly mounted above the calculator 5. The lower support roller 504 has an integrally provided flange with equidistant distribution on its outer side. The counting sensor 506 can detect the passing of the flange and perform calculations. A wedge block 507 is fixedly mounted on one side of the upper rotary seat 502, and an infrared rangefinder 508 is fixedly mounted on one side of the calculator 5. The infrared rangefinder 508 is aligned with the wedge block 507.

[0031] The specific usage and function of this embodiment are as follows: Before the equipment is operated, the movable cover 103 is pushed so that it slides horizontally along the movable seat 102 via the bottom rotating pulley 104 until the movable cover 103 is completely retracted into the inside of the fixed protective cover 101. The operation port at the front top of the main unit 1 is then opened. The movable buckle between the wire groove 3 and the wire cover 302 is released, and the wire cover 302 is flipped up along the rear hinge. A section of aluminum layer is pre-peeled from the end of the waste steel-core aluminum stranded wire to be processed, exposing the inner steel core. The steel-core aluminum stranded wire is then fed forward along the V-shaped groove at the top of the five sets of pads 301 inside the wire groove 3 until the end of the steel core passes through the wire-clamping groove 211 at the end of the roller 2. The end of the steel core is bent and then clamped into the wire-clamping groove 211 opened around the front of the roller 2 to complete the pre-fixation. Then the wire cover 302 is fastened and the movable buckle on the front is locked. The movable cover 103 is pushed to slide back to its original position and the equipment operation port is closed to complete the safety protection.

[0032] The device will automatically operate according to the following process after a start command is issued via the touch screen above the fixed protective cover door 101: In the first step, the internal support clamping mechanism is activated, and the control cylinder 208, which is fixed outside the cylinder mounting seat 207, is started. Its extended end pushes forward and drives the connecting plate 201 to move synchronously through the floating joint 202. This, in turn, drives the guide groove mounting piece 209, which is fixed to the connecting plate 201, to slide outward along the linear slide rail 210. The guide groove mounting piece 209 is driven by the cam structure to push the pressure block 205 to slide downward along the slide between the mounting piece A204 and the mounting piece B206, firmly pressing the end of the steel core against the inner wall of the roller 2. The friction stripes on the working surface of the pressure block 205 can increase the clamping friction and prevent the steel core from slipping and falling off during rotation.

[0033] In the second step, the two sets of pressing cylinders 404 on the two bases 4 below the two sections of the wire groove 3 are started simultaneously. The telescopic end of the pressing cylinder 404 fixed on the top of the cylinder mounting plate 403 extends downward, passes through the cylinder mounting plate 403, and drives the sliding plate 406 to move downward through the control connector 405. The sliding plate 406 slides smoothly down along the optical axis 402 through the straight steel sleeves 407 on both sides, pressing the steel core aluminum stranded wire in the wire groove 3 onto the pressure seat 401 in the middle of the top of the base 4. The friction stripes on the pressing surface of the pressure seat 401 can limit the springback and axial movement of the stranded wire, and at the same time prevent the aluminum wire from swinging irregularly during the stripping process.

[0034] Third, the power motor inside the main unit 1 starts, driving the drum 2 to rotate in the opposite direction to the twisting direction of the outer aluminum wire of the steel-cored aluminum stranded wire. During the rotation of the drum 2, the steel core that is pressed and fixed continues to move forward and rotate in the circumferential direction. Through the reverse twisting action of the reverse rotation, the reverse process of the spiral twisting of the steel-cored aluminum stranded wire is simulated, and the outer aluminum stranded wire is completely unscrewed and peeled off from the steel core. The peeled aluminum wire is left in the conductor groove 3, while the steel core is continuously pulled by the drum 2 and wound into a coil on the drum 2. The external mechanical limiting structure at the end of the drum 2 and the circumferential limiting structure cooperate with the wire clamping groove 211 to restrict the radial movement and axial displacement of the steel core throughout the process, preventing the steel core from being thrown off during the rotation process and ensuring the safe operation of the equipment.

[0035] After the separation operation is completed, a stop command is issued via the touch screen, the power motor stops, the control cylinder 208 and the pressing cylinder 404 are reset synchronously, the pressure block 205 and the sliding plate 406 loosen their clamping and fixing of the steel core; push the movable cover door 103 to open the equipment operation port, unfasten the movable buckle of the wire cover 302 and flip it open, loosen the limiting structure at the end of the roller 2, and the complete steel core wound into a coil can be taken out from the roller 2. At the same time, the stripped aluminum wire in the wire groove 3 is cleaned, completing a single recycling operation; The stranded wire also passes between the lower support roller 504 and the upper roller 505. During the movement of the stranded wire, it drives the lower support roller 504 and the upper roller 505 to rotate. The counting sensor 506 can work with the lower support roller 504 to count and continuously calculate the length of the stranded wire. The infrared rangefinder 508 works with the wedge block 507 to measure the thickness of the stranded wire and detect whether the stranded wire is normal. If there is no stranded wire, the equipment can be automatically stopped in accordance with the program.

Claims

1. An automated recycling device for separating and recycling steel-cored aluminum stranded wire, characterized in that, include: The main equipment (1) has an open structure at the top front and a roller (2) is rotatably arranged inside the lower left of the main equipment (1). An inner support pressing mechanism is installed on the inner surface of the roller (2). The inner support pressing mechanism includes a connecting plate (201), a floating joint (202), a mounting part A (204), a pressure block (205), a mounting part B (206), a cylinder mounting seat (207), a control cylinder (208), a guide groove mounting part B (209), and a linear slide rail (210). The cylinder mounting seat (207) is fixed on the inner surface of the roller (2), and the control cylinder (208) is fixed outside the cylinder mounting seat (207). The extended end of the control cylinder (208) is connected to the floating joint (202). 02) Fixed connection with connecting plate (201); linear slide rail (210) is fixed on the inner wall of roller (2), guide groove mounting part B (209) is slidably installed outside linear slide rail (210), guide groove mounting part B (209) is fixedly connected with connecting plate (201); mounting part A (204) and mounting part B (206) are relatively fixed on the inner wall of roller (2), pressure block (205) is slidably installed between mounting part A (204) and mounting part B (206), pressure block (205) and guide groove mounting part B (209) are driven by cam structure; wire groove (3), two sets of bases (4) are fixedly installed below the two sections of the wire groove (3), one set of bases (4) is fixed at the lower front end of the left side of the main unit (1).

2. The automated recycling equipment for separating and recycling steel-cored aluminum stranded wire as described in claim 1, characterized in that, A fixed protective cover (101) is fixedly installed on the front right side of the main unit (1); a movable seat (102) is fixedly installed on the upper inside of the main unit (1), and a movable cover (103) is slidably installed on the upper part of the movable seat (102). The movable cover (103) has the same shape as the fixed protective cover (101), and the movable cover (103) can move to the inside of the fixed protective cover (101); a pulley (104) is rotatably installed at the bottom of the movable cover (103); a strong electromagnet for fixing the movable cover (103) is installed on the upper part of the movable seat (102).

3. The automated recycling equipment for separating and recycling steel-cored aluminum stranded wire as described in claim 1, characterized in that, Five sets of pads (301) are fixedly installed inside the wire groove (3), and a V-shaped groove is opened in the middle of the top of each pad (301).

4. The automated recycling equipment for separating and recycling steel-cored aluminum stranded wire as described in claim 1, characterized in that, The top of the wire channel (3) is hinged with a wire cover (302), and the hinge joint of the wire cover (302) is located on the rear side of the wire cover (302) and the wire channel (3). Movable buckles are provided on the front side of the wire channel (3) and the wire cover (302).

5. The automated recycling equipment for separating and recycling steel-cored aluminum stranded wire as described in claim 1, characterized in that, A pressure seat (401) is fixedly installed at the top center of the base (4); two sets of optical axes (402) are fixedly installed at the top of the base (4); a cylinder mounting plate (403) is fixedly installed at the top of the optical axis (402); a pressing cylinder (404) is fixedly installed at the top center of the cylinder mounting plate (403), and a control connector (405) is fixedly installed at the telescopic end of the pressing cylinder (404) through the cylinder mounting plate (403); a sliding plate (406) is fixedly installed at the bottom of the control connector (405), and a straight steel sleeve (407) is fixedly installed on both sides of the sliding plate (406), and the straight steel sleeve (407) slides outside the optical axis (402).

6. The automated recycling equipment for separating and recycling steel-cored aluminum stranded wire as described in claim 1, characterized in that, The main unit (1) of the equipment is equipped with a power motor; the output end of the power motor is connected to the rotating shaft of the drum (2) by belt drive; the power motor drives the drum (2) to rotate in the opposite direction to the twisting direction of the outer aluminum wire of the steel core aluminum stranded wire.

7. The automated recycling equipment for separating and recycling steel-cored aluminum stranded wire as described in claim 5, characterized in that, The end of the roller (2) is provided with a wire-locking groove (211), which corresponds to the pressing position of the pressure block (205); the pressing working surfaces of the pressure block (205) and the pressure seat (401) are both machined with raised friction stripes.

8. The automated recycling equipment for separating and recycling steel-cored aluminum stranded wire as described in claim 2, characterized in that, A touch screen is installed above the fixed protective cover door (101). The touch screen is connected to the control cylinder (208), the pressing cylinder (404), and the power motor inside the equipment. The touch screen realizes the start and stop control of the equipment and the adjustment of the action parameters.

9. The automated recycling equipment for separating and recycling steel-cored aluminum stranded wire as described in claim 2, characterized in that, A measuring device (5) is fixedly installed inside the upper left of the main unit (1) of the device. The main body of the measuring device (5) is L-shaped. Two sets of spring rods (501) are fixedly installed on the top of the measuring device (5). An upper rotating seat (502) is slidably installed outside the two sets of spring rods (501). The spring rods (501) pass through the upper rotating seat (502), are fitted with springs, and are fixedly installed with baffles. A handle (503) is fixedly installed on the top of the upper rotating seat (502). A lower support roller (504) is rotatably installed on one side above the measuring device (5). One side of the upper rotating seat (502) is... The side rotation is provided with an upper roller (505), and the lower support roller (504) is in contact with the upper roller (505); a counting sensor (506) is fixedly provided above the calculator (5); the side of the lower support roller (504) is integrally provided with equidistant flanges, and the counting sensor (506) can sense the flanges passing by and perform calculations; a wedge block (507) is fixedly provided on one side of the upper rotary seat (502), and an infrared rangefinder (508) is fixedly provided on one side of the calculator (5), with the infrared rangefinder (508) aligned with the wedge block (507).