Wire rod skin stripping device
By using multiple wire stripping tools in the mounting slots of the moving and fixed seats and clamping them with sliding blocks, the problem of frequent tool disassembly and assembly in existing equipment is solved, achieving efficient and precise cable sheath stripping, and improving production efficiency and equipment lifespan.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 江西金凯自动化设备有限公司
- Filing Date
- 2025-11-11
- Publication Date
- 2026-04-14
AI Technical Summary
Existing wire stripping equipment requires frequent disassembly and assembly of blades when dealing with wires of different diameters or types, resulting in low production efficiency, inaccurate precision, and severe equipment wear, making it difficult to meet diverse and high-precision cable stripping needs.
A wire sheath stripping device was designed, which uses multiple stripping blades in the mounting slots of the moving seat and the fixed seat to cooperate. Automatic adjustment is achieved through transmission components and drive cylinders to avoid frequent disassembly and assembly of the blades. Combined with sliding blocks and pressure rods to clamp the cable, it ensures accurate stripping. A roller brush is set in the wire inlet area to clean the surface of the cable.
It improves the efficiency and accuracy of cable sheath stripping, reduces tool change time, avoids positioning errors, extends equipment life, and enhances production continuity and product quality stability.
Smart Images

Figure CN224123797U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a wire sheath peeling device, and more particularly to a wire sheath peeling device. Background Technology
[0002] In fields such as wire and cable processing and electrical equipment assembly, cable sheath stripping is a crucial process to ensure reliable connection between cables and terminals and to guarantee circuit conductivity. The efficiency and precision of this stripping directly impact subsequent assembly quality and production schedule. Currently, the industry commonly uses wire stripping equipment to perform cable sheath stripping. Existing wire stripping equipment typically includes a conveying mechanism, cutting blades, and drive components. During operation, the conveying mechanism transports the cable to the cutting area, and the stripping blades clamp the cable, using traction or a stripping structure to separate the sheath from the wire core.
[0003] However, existing wire stripping equipment has significant shortcomings in addressing the needs of different stripping sections: Since most existing equipment uses a single or two sets of fixed blades, when stripping the sheath of cables of different diameters or types requires manual disassembly and reassembly of the blades to adjust their positions or replace them with blades suitable for different sections, the disassembly and reassembly process necessitates repeated calibration of the blade positioning. This not only consumes a significant amount of time, leading to interruptions in stripping operations and a decrease in overall production efficiency, but also easily causes blade positioning deviations due to manual calibration errors, resulting in inaccurate stripping lengths, wire core scratches, or sheath residue. Furthermore, frequent blade disassembly and reassembly exacerbates wear on the blades and the equipment's mounting structure, shortens equipment lifespan, increases maintenance costs, and makes it difficult to meet diverse and high-precision cable stripping requirements, adversely affecting production continuity and product quality stability. Utility Model Content
[0004] In order to overcome the shortcomings of the existing technology, the purpose of this utility model is to provide a wire sheath peeling device.
[0005] The technical implementation scheme of this utility model is as follows: A wire sheath stripping device includes a main body, a cover, a control screen, a conveyor, a guide seat, a transmission component, a slide, a linear slide rail pair, a fixed seat, a guide rail, a drive cylinder, a moving seat, a wire cutting tool, and a wire stripping tool. The main body is U-shaped, with a cover on the outside of the main body. A control screen is located on one side of the top of the cover. Conveyor components are located on both the left and right sides of the front of the main body, used to clamp and convey cables. A guide seat is located at the front of the main body, with a slide slidably mounted on it. A transmission component is located on the guide seat, consisting of a drive motor and a lead screw connected to the drive motor. The lead screw of the transmission component is screwed to the slide, driving the slide to slide back and forth along the guide seat. A linear slide rail pair is installed at the lower part of the main body. It consists of a slide rail and a slider that slides back and forth on the slide rail. The upper part of the slider of the linear slide rail pair is provided with a fixed seat. The rear part of the fixed seat and the bottom of the slide rail are fixed and vertically provided with a guide rail. The upper part of the guide rail is provided with a movable seat. The movable seat and the fixed seat are arranged symmetrically from top to bottom. The front part of the main body of the equipment has a notch. The notch is located in the central area between the two conveying parts. The front parts of both the movable seat and the fixed seat extend forward from the notch. A drive cylinder is vertically installed at the rear of the slide rail. The drive rod of the drive cylinder is connected to the rear of the movable seat. The extension and retraction of the drive rod drives the movable seat to move up and down along the guide rail. The front parts of both the movable seat and the fixed seat have mounting grooves in the front and back direction. Each of the mounting grooves of the movable seat and the fixed seat is provided with a wire cutting tool and multiple wire stripping tools. The cutting head of the wire cutting tool and the wire stripping tool on the fixed seat and the movable seat are arranged in a one-to-one correspondence.
[0006] Optionally, the conveying component includes a synchronous belt, synchronous pulleys, gears, a motor, and counting wheels. Four synchronous pulleys in a rectangular configuration are provided on both the left and right sides of the front of the main body of the equipment. A synchronous belt is wound between two synchronous pulleys at the same height on the same side. A transmission channel is formed between the two synchronous belts of the same conveying component. Two counting wheels are provided on both the left and right sides of the front of the main body of the equipment. Each counting wheel is located within the area surrounded by a synchronous belt on its corresponding side and rolls in contact with the inner surface of the synchronous belt. Within the same conveying component, gears are provided at the rear of two synchronous pulleys wound with different synchronous belts. The gears are located inside the main body of the equipment, and two adjacent gears mesh with each other. A motor is provided on both the left and right sides of the front of the main body of the equipment, and each motor is connected to a gear on its corresponding side.
[0007] Optionally, it also includes mounting bases and lead wire molds. Mounting bases are provided on the front left side of the main body of the equipment and on both sides of the notch. Lead wire molds are installed in the mounting bases. The lead wire molds have tapered holes that are larger on the left and smaller on the right. The lead wire molds are all on the same left and right line as the wire transmission channel of the conveying component.
[0008] Optionally, it also includes a sliding block, a spring, and a pressure rod. Sliding blocks are slidably provided on the upper part of the fixed seat and the lower part of the moving seat. A spring is provided on each sliding block. Two parallel pressure rods are provided between the sliding blocks on the same side. A gap is provided between the two pressure rods at the same height to allow the wire cutting tool and the wire stripping tool to pass through from the inside. The pressure rods are located at the end positions of the corresponding wire cutting tool and the wire stripping tool.
[0009] Optionally, it also includes a mounting plate, a second motor, a rotating ring, a roller brush, a friction ring, and a friction wheel. The mounting plate is fixedly installed on the front left side of the main body of the equipment. A circular hole is opened on the mounting plate, and the circular hole is aligned with the lead wire mold on the same left and right line. A rotating ring is rotatably installed at the circular hole of the mounting plate. A friction ring is installed on the outside of the rotating ring, and a cylindrical roller brush is installed inside the rotating ring. A second motor is installed on one side of the lower part of the mounting plate. A friction wheel is installed on the output shaft of the second motor, and the friction wheel makes rolling contact with the friction ring.
[0010] Optionally, it also includes a funnel, which is provided laterally at the lower front part of the main body of the equipment.
[0011] The present invention has the following advantages: 1. The present invention, through the cooperation of multiple stripping tools and other components in the mounting slots of the moving seat and the fixed seat, allows for quick adjustment to adapt to different stripping requirements by setting multiple stripping tools to correspond to different sections of the cable sheath during processing, without the need for frequent disassembly and assembly of tools. This effectively reduces tool replacement time, improves the efficiency of cable sheath stripping operations, and avoids positioning errors caused by frequent disassembly and assembly of tools, thus ensuring stripping accuracy.
[0012] 2. This utility model uses a pressure bar between sliding blocks. When cutting or stripping wire, the pressure bar first contacts the cable and clamps the cable under the action of spring force, preventing the cable from shifting during the cutting or stripping process. This ensures that the cutting and stripping tools can accurately act on the preset position on the cable sheath, guaranteeing the stability and accuracy of the cutting and stripping operations.
[0013] 3. This utility model is equipped with a rotatable roller brush in the wire inlet area to clean the surface of the cable passing through it, remove dust, impurities and other contaminants from the cable surface, prevent impurities from affecting the quality of subsequent wire cutting and stripping operations, and at the same time reduce the wear of impurities on the blades and extend the service life of the blades. Attached Figure Description
[0014] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0015] Figure 2 This is a three-dimensional structural diagram of the present invention with the cover and control screen removed.
[0016] Figure 3 This is a three-dimensional structural diagram of the conveying component of this utility model.
[0017] Figure 4 This is a three-dimensional structural diagram of the wire stripping structure of this utility model.
[0018] Figure 5 This is a three-dimensional structural diagram of the mounting base and lead wire mold of this utility model.
[0019] Figure 6 This is a three-dimensional structural diagram of the cleaning component of this utility model.
[0020] The meanings of the reference numerals in the figure are as follows: 1: Main body of the equipment, 2: Cover, 21: Control screen, 3: Synchronous belt, 301: Synchronous pulley, 31: Gear, 32: Motor 1, 4: Guide seat, 401: Transmission component, 41: Slide, 42: Linear slide rail pair, 43: Fixed seat, 44: Guide rail, 45: Drive cylinder, 46: Moving seat, 47: Wire cutting tool, 48: Wire stripping tool, 5: Sliding block, 51: Spring, 52: Pressure rod, 6: Mounting seat, 61: Lead wire mold, 7: Mounting plate, 71: Motor 2, 72: Rotating ring, 73: Roller brush, 74: Friction ring, 75: Friction wheel, 8: Funnel. Detailed Implementation
[0021] To make the objectives, technical solutions, and advantages of this utility model clearer, the following will describe this utility model in further detail with reference to the accompanying drawings. It is hereby declared that the terms "up," "down," "left," "right," "front," "back," "inner," and "outer," etc., appearing or about to appear in this document, are based solely on the accompanying drawings and are not intended to specifically limit this utility model.
[0022] Example 1
[0023] A wire sheath stripping device, such as Figure 1-5As shown, the device includes a main body 1, a casing 2, a control screen 21, a conveyor, a guide seat 4, a transmission component 401, a slide 41, a linear guide pair 42, a fixed seat 43, a guide rail 44, a drive cylinder 45, a moving seat 46, a wire cutting tool 47, and a wire stripping tool 48. The main body 1 is U-shaped and welded from high-strength steel, providing a stable support foundation for the entire device. The casing 2 is bolted to the outside of the main body 1. The casing 2 is made of sheet metal and can enclose the transmission component 401, drive cylinder 45, and other components inside the main body 1, preventing external dust and impurities from entering the device and affecting the operation of the components. To prevent operators from accidentally touching moving parts and causing safety hazards, a control screen 21 is fixed to one side of the top of the cover 2 with screws. The control screen 21 is electrically connected to the control module inside the equipment. Operators can input parameters such as cable specifications and stripping wire diameter through the control screen 21. At the same time, the control screen 21 can display the equipment operating status in real time (such as conveying speed, tool position, fault prompts, etc.) to realize human-machine interactive control. Conveying components are provided on the left and right sides of the front of the main body 1. The conveying components are used to clamp and stably convey the cable along the preset wire transmission channel to ensure that the cable does not deviate or shake during the stripping process.
[0024] A guide seat 4 is bolted to the front of the main body 1. The top of the guide seat 4 has a sliding groove extending forward and backward. A slide block 41 is slidably mounted within the groove on the guide seat 4, allowing it to slide smoothly along the groove. A transmission component 401 is fixed to the guide seat 4 via a bracket. The transmission component 401 consists of a drive motor and a lead screw connected to the output end of the drive motor via a coupling. The lead screw of the transmission component 401 is screwed onto a nut block welded to the bottom of the slide block 41. The drive motor is electrically connected to a control module connected to the control screen 21. The control module can output forward and reverse rotation commands to the drive motor, causing the lead screw to rotate forward or backward. The threaded engagement between the lead screw and the nut block generates the forward and backward directional movement. The driving force drives the slide 41 to slide back and forth along the guide seat 4, thereby achieving precise adjustment of the position of the slide 41. A linear slide rail pair 42 is installed in the lower part of the main body 1 by bolts. The linear slide rail pair 42 consists of a slide rail and a slider that slides back and forth on the slide rail. The slide rail is fixed to the main body 1 by bolts, and the slider can slide smoothly along the slide rail. A fixed seat 43 is fixed on the upper part of the slider of the linear slide rail pair 42 by bolts. The slider can drive the fixed seat 43 to move back and forth synchronously along the slide rail, thereby achieving linkage position adjustment between the fixed seat 43 and the slide 41 and ensuring that their movement trajectories are consistent. A guide rail 44 is vertically provided between the rear of the fixed seat 43 and the bottom of the slide 41 by welding. 4 is a cylindrical or rectangular rod-shaped structure. A movable seat 46 is slidably mounted on the upper part of the guide rail 44. The movable seat 46 has a through hole in the middle that matches the guide rail 44, allowing it to slide up and down along the guide rail 44. The movable seat 46 and the fixed seat 43 are symmetrically arranged vertically, with identical relative surface structures to ensure precise alignment between the movable seat 46 and the fixed seat 43 during vertical movement, preventing misalignment. The front of the main body 1 has a notch located in the central area between the two conveying components. The front of both the movable seat 46 and the fixed seat 43 extends forward from the notch, allowing the cutters mounted on the front of the movable seat 46 and the fixed seat 43 to directly correspond to the cable conveying path, facilitating the cutting and stripping of the cable sheath. The rear of the guide rail is supported by a bracket. A vertically mounted drive cylinder 45, which can be a hydraulic cylinder or a pneumatic cylinder, is electrically connected to a control module. The control module can control the extension and retraction of the drive rod of the drive cylinder 45. The top of the drive rod of the drive cylinder 45 is connected to the rear of the moving seat 46 via a pin. By extending or retracting the drive rod of the drive cylinder 45, the moving seat 46 is driven to move up and down along the guide rail 44, realizing the opening and closing of the moving seat 46 and the fixed seat 43. When the drive rod extends, the moving seat 46 moves upward, and the fixed seat 43 moves away from the moving seat 46, making it easier for cables of different diameters to enter between them. When the drive rod retracts, the moving seat 46 moves downward, and the fixed seat 43 moves closer to the moving seat 46, allowing the cutter to adapt to the cable diameter and contact the sheath.Both the moving base 46 and the fixed base 43 have mounting grooves along the front-to-back direction. These grooves are rectangular. A wire cutting tool 47 and multiple wire stripping tools 48 are fixed to each groove with bolts. The wire cutting tool 47 cuts the cable sheath or the entire cable. The multiple wire stripping tools 48 correspond to different wire diameters, and the blade spacing is adapted to the corresponding wire diameter, allowing for the stripping of various wire diameters without tool replacement. Furthermore, the wire cutting tools 47 and wire stripping tools 48 on the fixed base 43 and moving base 46 are positioned opposite each other, ensuring that when the moving base 46 moves downward, the corresponding tools simultaneously contact the upper and lower surfaces of cables of different diameters, working together to complete the sheath cutting and stripping. This avoids the problem of over-cutting of smaller diameter cables and incomplete stripping of larger diameter cables due to poor tool compatibility.
[0025] Among them, such as Figure 1 , Figure 2 and Figure 3 As shown, the conveying components include a synchronous belt 3, synchronous pulleys 301, gears 31, a motor 32, and counting wheels. Four synchronous pulleys 301, arranged in a rectangular pattern, are rotatably mounted on the left and right sides of the front of the main body 1 via bearing seats. The four synchronous pulleys 301 are located at the four vertices of the rectangle. A synchronous belt 3 is wound between two synchronous pulleys 301 at the same height on the same side. The synchronous belt 3 is made of rubber and has anti-slip textures on its surface. A cable transmission channel is formed between the upper and lower synchronous belts 3. The channel spacing can accommodate cables of different diameters. When the cable passes through the transmission channel, the upper and lower synchronous belts 3 can tightly clamp the cable to prevent slippage during cable transport. Two counting wheels are rotatably mounted on the left and right sides of the front of the main body 1 via brackets. Each counting wheel is located within the area surrounded by a synchronous belt 3 on its corresponding side. The outer circumference of the counting wheel makes rolling contact with the inner surface of the synchronous belt 3. When the synchronous belt 3 rotates, it drives the counting wheel to rotate synchronously. The counting wheel is electrically connected to the control module, which can convert the number of rotations into an electrical signal and transmit it to the control module. The control module calculates the cable conveying length based on the number of rotations of the counting wheel and the circumference of the synchronous belt 3, thereby achieving accurate measurement of the cable conveying length. In the same conveying component, the rear of the two synchronous wheels 301, which are wound with different synchronous belts 3 (i.e., the upper and lower synchronous belts 3), are fixed with gears 31 by a flat key. The gears 31 are located inside the main body 1 of the equipment, and the upper and lower gears 31 mesh with each other to ensure that when one synchronous wheel 301 rotates, it can drive the other synchronous wheel 301 to rotate in the opposite direction, thereby driving the upper and lower synchronous belts 3 to rotate synchronously in the opposite direction, forming a stable clamping and conveying force for cables of different diameters.
[0026] Motor 32 is fixedly mounted on both the left and right sides of the front part of the main body 1 by brackets. The output shaft of motor 32 is connected to a gear 31 on the same side via a coupling. Motor 32 is electrically connected to the control module, which can control the start, stop and speed of motor 32. When motor 32 starts, it drives gear 31 to rotate, which in turn drives synchronous pulley 301 and synchronous belt 3 to rotate, providing stable power for the conveying of cables of different diameters. Initially, the drive rod of drive cylinder 45 is in the extended state, the fixed seat 43 and the moving seat 46 are far apart, and the wire cutting tool 47 is located on the upper and lower sides of the wire conveying path and does not contact the cable. After the external cable is continuously unwound, it is introduced into the left conveyor through the external lead wire component. The synchronous belt 3 of the left conveyor clamps the cable and transmits it to the right. The cable passes through the left conveyor and the corresponding lead wire mold 61 in sequence and continues to be transmitted to the right side. Inside the conveyor, under the metering action of the counting wheel, when the cable is conveyed to the preset length, the control module controls motor 32 to stop. At this time, the cable is located between the cutting blades 47. The control module controls the drive rod of the drive cylinder 45 to retract, driving the moving seat 46 to move down. The cutting blade 47 cuts the cable. After cutting, the drive rod of the drive cylinder 45 extends again. Then, the motors 32 of the two conveyors start synchronously and reverse, conveying the cable inside to the left a certain distance. The cable on the left retracts to make room for stripping, and the cable on the right extends to the fixed seat 43 to the preset stripping length. Then, the control module controls the transmission component 401 to work according to the cable diameter, driving the slide 41 and the fixed seat 43 to move back and forth, moving the stripping blade 48 adapted to the cable diameter to the position to be stripped. The drive cylinder 45 drives the moving seat 46 to move down, and the stripping blade 48 precisely strips the cable sheath.
[0027] like Figure 1 and Figure 5 As shown, it also includes a mounting base 6 and a lead wire mold 61. The mounting base 6 is fixed to the left front side of the main body 1 and the left and right sides of the notch by bolts. The mounting base 6 is a cylindrical or rectangular block structure with a mounting hole in the middle. The mounting holes in the mounting base 6 are all fixed to the lead wire mold 61 by interference fit or bolts. The lead wire mold 61 is made of wear-resistant ceramic or metal material. The lead wire mold 61 has a tapered hole with a larger diameter on the left and a smaller diameter on the right. The smaller diameter end of the tapered hole can be adapted to various commonly used cable diameters, and the larger diameter end faces the direction of cable entry, which facilitates the smooth passage and alignment of cables of different diameters. In addition, the lead wire mold 61 is on the same left and right line as the wire transmission channel of the conveying component, which ensures that the cable can pass smoothly through the lead wire mold 61 along the wire transmission channel and avoids the subsequent mismatch between the cutter and the wire diameter due to cable deviation, further ensuring the accuracy of stripping cables of different diameters.
[0028] The operator first inputs parameters such as the wire diameter and conveying length of the cable to be processed through the control screen 21. In the initial state, the drive rod of the drive cylinder 45 is in the extended state, the fixed seat 43 and the moving seat 46 are far apart, and the wire cutting tool 47 is located on both sides of the wire transmission path of the conveyor and does not contact the cable. After the external cable is continuously unwound, it is introduced into the wire guide mold 61 in the mounting seat 6 on the front left side of the main body 1 through the external wire guide component. After being straightened by the wire guide mold 61, it enters the wire transmission channel of the left conveyor. The motor 32 of the left conveyor starts, driving the gear 31 to rotate. The gear 31 drives... The synchronous pulley 301 and synchronous belt 3 rotate, and the synchronous belt 3 clamps the cable and transmits it to the right. At the same time, the counting wheel rolls with the synchronous belt 3 and transmits the rotation signal to the control module to measure the cable transmission length in real time. The cable continues to be transmitted to the right, passing through the lead wire mold 61 in the mounting base 6 on the left side of the notch and the notch area in sequence, and then enters the transmission channel of the right-side conveyor. When the cable transmission length measured by the counting wheel reaches the preset value, the control module controls the motors 32 on both sides to stop. At this time, the cable is located between the cutting blades 47. Then, the control module controls the drive rod of the drive cylinder 45 to retract, driving the moving base. 46 moves down along guide rail 44, the fixed seat 43 and the moving seat 46 approach each other, and the wire cutting tool 47 cuts the cable; after cutting, the drive rod of the drive cylinder 45 extends again, the moving seat 46 moves up and resets, the two motors 32 start synchronously and reverse, driving the synchronous belt 3 to rotate in the opposite direction, conveying the cable in the two conveyor components to the left a certain distance, the left cable retracts to make room for stripping, and the right cable extends to the fixed seat 43 to a preset stripping length; then the control module controls the drive motor of the transmission component 401 to start according to the preset stripping wire diameter, driving the lead screw to rotate, and the lead screw drives the slide. 41 slides back and forth along the guide seat 4. The slide seat 41 drives the fixed seat 43 to move synchronously along the slide rail of the linear slide rail pair 42 through the guide rail 44, moving the wire stripping tool 48 adapted to the wire diameter to the position of the cable to be stripped; finally, the control module controls the drive rod of the drive cylinder 45 to retract again, the moving seat 46 moves down, and the wire stripping tool 48 on the fixed seat 43 and the moving seat 46 cooperate to strip the cable sheath. After the stripping is completed, the drive cylinder 45 drives the moving seat 46 to move up, and the motor 32 runs again to transport the processed cable to the next process, and at the same time, the next round of cable sheath stripping operation begins.
[0029] Example 2
[0030] Based on Example 1, such as Figure 1 and Figure 4As shown, it also includes a sliding block 5, a spring 51, and a pressure rod 52. Horizontal grooves are provided on the upper part of the fixed seat 43 and the lower part of the moving seat 46. The sliding block 5 slides within the grooves and can move flexibly along the grooves to adapt to cables of different diameters. A spring 51 is provided on the side of the sliding block 5 away from the cable. One end of the spring 51 is welded to the sliding block 5, and the other end is welded to the side wall of the groove on the upper part of the fixed seat 43 and the lower part of the moving seat 46. The spring 51 is always in a slightly compressed state and can push the sliding block 5 towards the cable through its own elastic force. Two parallel pressure rods 52 are bolted between the upper and lower sliding blocks 5 on the same side. The pressure rods 52 are made of wear-resistant metal. The surface is smooth to avoid scratching the cable sheath. There is a gap between the two pressure bars 52 at the same height to allow the cutting tool 47 and the stripping tool 48 to pass through from the inside, ensuring that the tools can work normally without interference. The pressure bars 52 are located at the end of the corresponding cutting tool 47 and stripping tool 48. That is, along the cable conveying direction, the pressure bars 52 are in front of the tools. During processing, the cable first contacts the pressure bars 52. Under the action of the spring force of the spring 51, the pressure bars 52 are tightly attached to the cable surface, forming a clamping limit on the cable, preventing the cable from shifting or shaking during the cutting or stripping process, and ensuring that the cutting tool 47 and the stripping tool 48 can accurately act on the preset position of the cable, ensuring the cutting and stripping accuracy.
[0031] like Figure 1 and Figure 6 As shown, the device also includes a mounting plate 7, a second motor 71, a rotating ring 72, a roller brush 73, a friction ring 74, and a friction wheel 75. The mounting plate 7 is bolted to the front left side of the main body 1. The mounting plate 7 is perpendicular to the cable conveying direction. A circular hole is formed on the mounting plate 7, and this hole is aligned with the lead wire mold 61 to ensure the cable can pass smoothly through it. A rotating ring 72 is rotatably mounted at the circular hole of the mounting plate 7 via a bearing. The rotating ring 72 can rotate flexibly around the axis of the circular hole. A friction ring 74 is mounted on the outer side of the rotating ring 72 with an interference fit. The friction ring 74 is made of rubber to increase friction. A cylindrical roller brush 73 is mounted inside the rotating ring 72 with screws. The bristles of the roller brush 73 face the center of the circular hole, allowing it to interact with the cable passing through the hole. On the surface of the mounting plate 7, a second motor 71 is fixedly mounted on one side of the lower part by a bracket. The second motor 71 is electrically connected to the control module, which can control the start and stop of the second motor 71. A friction wheel 75 is fixed on the output shaft of the second motor 71 by a flat key. The friction wheel 75 makes rolling contact with the friction ring 74. When the second motor 71 starts, it drives the friction wheel 75 to rotate. The friction wheel 75 drives the friction ring 74 and the rotating ring 72 to rotate synchronously through friction. The rotating ring 72 drives the roller brush 73 to rotate. The roller brush 73 can clean the surface of the cable it passes through, removing dust, oil and other impurities from the surface of the cable, so as to avoid impurities affecting the quality of subsequent wire cutting and stripping operations. At the same time, it prevents impurities from adhering to the surface of the tool, which will cause the tool to wear more rapidly and extend the tool's service life.
[0032] In addition, such as Figure 1 and Figure 2 As shown, it also includes a funnel 8. The funnel 8 is horizontally provided on the lower front part of the main body 1 via a bracket. The opening of the funnel 8 faces upward and covers the cutting tool area in front of the moving seat 46 and the fixed seat 43. The wire sheath produced during the wire stripping process will fall off naturally. By placing the waste container under the funnel 8, the stripped wire sheath can be collected in a concentrated manner, preventing the wire sheath from scattering near the main body 1, reducing the subsequent cleaning workload, keeping the working environment clean, and facilitating the unified recycling and disposal of the wire sheath, thus improving the convenience of operation.
[0033] Although the present invention has been described in detail with reference to the above embodiments, it will be apparent to those skilled in the art that various changes or modifications can be made to the present invention without departing from the principles and spirit of the present invention as defined by the claims. Therefore, the detailed description of the embodiments in this disclosure is for explanation only and not for limiting the present invention, but rather the scope of protection is defined by the content of the claims.
Claims
1. A wire sheath stripping device, comprising a device body (1), a cover (2) and a control screen (21), wherein the device body (1) is U-shaped, the cover (2) is provided on the outside of the device body (1), and the control screen (21) is provided on one side of the top of the cover (2). Its characteristics are: It also includes a conveyor, a guide seat (4), a transmission component (401), a slide (41), a linear guide pair (42), a fixed seat (43), a guide rail (44), a drive cylinder (45), a moving seat (46), a wire cutting tool (47), and a wire stripping tool (48). The main body of the equipment (1) has conveyor components on both the left and right sides at the front. The conveyor components are used to clamp and convey cables. The main body of the equipment (1) has a guide seat (4) at the front. A slide (41) is slidably mounted on the guide seat (4). 4) A transmission component (401) is provided on the upper part. The transmission component (401) consists of a drive motor and a lead screw connected to the drive motor. The lead screw of the transmission component (401) is screwed to the slide (41). The transmission component (401) drives the slide (41) to slide back and forth along the guide seat (4). A linear slide rail pair (42) is installed in the lower part of the main body (1). The linear slide rail pair (42) consists of a slide rail and a slider that slides back and forth on the slide rail. The slider of the linear slide rail pair (42) The upper part is provided with a fixed seat (43), and a guide rail (44) is fixed and vertically provided between the rear of the fixed seat (43) and the bottom of the slide (41). A movable seat (46) is slidably provided on the upper part of the guide rail (44). The movable seat (46) and the fixed seat (43) are arranged symmetrically from top to bottom. The front part of the main body (1) of the equipment has a notch, which is located in the middle area between the two conveying parts. The front parts of the movable seat (46) and the fixed seat (43) both extend forward from the notch. A drive cylinder (45) is vertically installed at the rear of the slide rail. The drive rod of the drive rod is connected to the rear of the moving seat (46). The extension and retraction of the drive rod drives the moving seat (46) to move up and down along the guide rail (44). The moving seat (46) and the fixed seat (43) both have mounting grooves in the front and back directions. The mounting grooves of the moving seat (46) and the fixed seat (43) each have a wire cutting tool (47) and multiple wire stripping tools (48). The cutting tool (47) on the fixed seat (43) and the wire stripping tool (48) are arranged in a one-to-one correspondence with the cutting head side of the wire cutting tool (47) on the moving seat (46) and the wire stripping tool (48).
2. The wire sheath peeling device according to claim 1, characterized in that: The conveying component includes a synchronous belt (3), a synchronous pulley (301), a gear (31), a motor (32), and a counting wheel. The front left and right sides of the main body of the equipment (1) are provided with four synchronous pulleys (301) in a rectangular shape. The synchronous belt (3) is wound between two synchronous pulleys (301) at the same height on the same side. The two synchronous belts (3) of the same conveying component form a transmission channel. The front left and right sides of the main body of the equipment (1) are provided with two counting wheels. The counting wheels are all located in the area surrounded by a synchronous belt (3) on their corresponding side and roll in contact with the inner surface of the synchronous belt (3). In the same conveying component, the rear of the two synchronous pulleys (301) wound with different synchronous belts (3) is provided with a gear (31). The gear (31) is located inside the main body of the equipment (1), and the two adjacent gears (31) mesh with each other. The front left and right sides of the main body of the equipment (1) are provided with a motor (32). The motor (32) is connected to a gear (31) on the same side.
3. A wire sheath peeling device according to claim 2, characterized in that: It also includes a mounting base (6) and a lead wire mold (61). The front left side of the main body (1) and the left and right sides of the notch are provided with mounting bases (6). Each mounting base (6) is equipped with a lead wire mold (61). The lead wire mold (61) has a tapered hole that is larger on the left and smaller on the right. The lead wire mold (61) is on the same left and right line as the transmission channel of the conveying component.
4. A wire sheath peeling device according to claim 3, characterized in that: It also includes a sliding block (5), a spring (51) and a pressure rod (52). The upper part of the fixed seat (43) and the lower part of the moving seat (46) are both provided with sliding blocks (5). The sliding blocks (5) are provided with springs (51). There are two parallel pressure rods (52) between the sliding blocks (5) on the same side. There is a gap between the two pressure rods (52) at the same height to allow the wire cutting tool (47) and the wire stripping tool (48) to pass through from the inside. The pressure rods (52) are all located at the end positions of the corresponding side wire cutting tool (47) and wire stripping tool (48).
5. A wire sheath peeling device according to claim 4, characterized in that: It also includes a mounting plate (7), a second motor (71), a rotating ring (72), a roller brush (73), a friction ring (74), and a friction wheel (75). The mounting plate (7) is fixedly installed on the front left side of the main body (1). A round hole is opened on the mounting plate (7), and the round hole is on the same line as the lead wire mold (61). A rotating ring (72) is rotatably installed at the round hole of the mounting plate (7). A friction ring (74) is installed on the outside of the rotating ring (72). A cylindrical roller brush (73) is installed inside the rotating ring (72). A second motor (71) is installed on the lower side of the mounting plate (7). A friction wheel (75) is installed on the output shaft of the second motor (71). The friction wheel (75) and the friction ring (74) are in rolling contact.
6. A wire sheath peeling device according to claim 5, characterized in that: It also includes a funnel (8), and the lower front part of the main body of the equipment (1) is provided with a funnel (8).