A stripping device for power cables

CN224774486UActive Publication Date: 2026-09-18武汉市深联通信技术有限公司
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Patent Information

Application Number
CN202522227142.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-22
Publication Date
2026-09-18
Estimated Expiration
2035-10-22

AI Technical Summary

Technical Problem

[0004]针对现有技术的不足,本实用新型提供一种电力电缆用剥皮装置,解决了现有技术中一些工具虽能满足切割需求,但后续剥皮操作不便的问题

Benefits of technology

本实用新型通过采用驱动电机、伸缩件一、伸缩件二和伸缩件三等动力部件,实现了电缆的夹持、切割和剥皮等多个操作环节的自动化,相比传统人工剥皮方式,大大减少了人力投入和操作时间,提高了工作效率,例如,伸缩件一带动滑块实现电缆的快速夹持与松开,伸缩件二控制夹持臂的开合进行切割,伸缩件三调整固定架位置以适应不同电缆,各部件协同工作,使剥皮过程流畅高效;

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Abstract

The utility model relates to cable stripping technical field, specifically disclose the stripping device for power cable, including the support platform for supporting, be provided with stripping assembly on the support platform, are used for stripping processing to target object, the stripping assembly includes the fixing frame for, the fixing frame is set up "L" shape, the horizontal support arm department of support platform is provided with drive motor, the utility model discloses a drive motor, telescopic piece no.
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Description

Technical Field

[0001] This utility model relates to the field of cable stripping technology, specifically a stripping device for power cables. Background Technology

[0002] Cable stripping is the process of removing the outer insulation layer and sheath of a cable to expose the internal conductor. It is generally done manually. First, determine the length of insulation to be stripped, then place the cable into the appropriate blade of the stripping pliers, aligning the blade with the desired stripping position. Then, gently grip the handle of the stripping pliers, allowing the blade to cut into the cable insulation layer, but not too deeply to avoid damaging the internal conductor. Finally, peel the insulation layer off the conductor.

[0003] However, the insulation layer of power cables is relatively thick, and ordinary utility knives and other tools are not convenient to cut manually. In addition, some power cables have relatively large diameters, making manual operation even more inconvenient and resulting in uneven cuts. While some tools can meet the cutting needs, they can usually only perform the cutting process, and subsequent stripping is not convenient. Based on this, this application provides a stripping device for power cables. Utility Model Content

[0004] To address the shortcomings of existing technologies, this utility model provides a stripping device for power cables, which solves the problem that while some existing tools can meet the cutting requirements, the subsequent stripping operation is inconvenient.

[0005] The present invention relates to a stripping device for power cables, comprising a support platform for support, wherein a stripping component is provided on the support platform for stripping the target object. The peeling assembly includes a fixing frame, which is arranged in an "L" shape. A drive motor is provided at the horizontal support arm of the support platform, and a telescopic component is provided above the drive motor. A drive gear set is provided on one side of the vertical support arm of the support platform. Two clamping arms are provided on one side of the drive gear set in a symmetrical arrangement. A cutting head is provided at one end of the clamping arm, and a cutting blade is provided at the bottom of the cutting head for peeling the surface of the target object. One end of the piston rod of the telescopic component 2 passes through the middle of the drive gear set and is connected to a toothed rod. The outer side of the toothed rod is provided with tooth grooves for fitting one end of the clamping arm. The clamping arm is equipped with a linkage mechanism at one end away from the cutting head. A toothed shank is provided at one end of the linkage mechanism. The toothed shank is adapted to the tooth groove of the toothed bar. The telescopic component 2 drives the toothed bar to perform reciprocating linear motion, which drives the linkage mechanism to move, thereby clamping the target object.

[0006] As a further improvement of this utility model, the drive gear set includes a driven gear and a driving gear. The middle part of the driving gear is adapted to the output rod of the drive motor, and the middle part of the driven gear is connected to the rack. The drive motor drives the driving gear to rotate, which in turn drives the rack and the clamping arm to rotate along the cutting area of ​​the target object, thereby achieving the surface cutting treatment of the target object.

[0007] As a further improvement of this utility model, the bottom of the fixed frame is provided with two symmetrically arranged slide rails at the top of the support platform. The slide rails are adapted to the fixed frame. A telescopic member three is provided on one side of the horizontal support arm of the fixed frame. The telescopic member three drives the fixed frame to reciprocate linearly along the slide rails.

[0008] As a further improvement of this utility model, a workbench is provided on the top of the support platform, and two sets of four support blocks arranged symmetrically and mirror-like are provided on the top of the workbench. A guide wheel is provided between the two support blocks, and the middle part of the guide wheel is adapted to the target object.

[0009] As a further improvement of this utility model, a set of two symmetrically arranged sliders are provided between the two guide wheels, and a clamping area is formed between the two sliders, which is adapted to the outside of the target object.

[0010] As a further improvement of this utility model, the bottom of the two sliders is provided with a slot, a rack is installed in the slot, and a fixed gear is provided between the two racks at the top of the worktable. The fixed gear is adapted to the two racks, and the two racks are symmetrically staggered.

[0011] As a further improvement of this utility model, one end of one of the sliders is provided with a telescopic member, and one end of the piston rod of the telescopic member drives the slider to reciprocate linearly along the meshing direction of the rack and the fixed gear.

[0012] As a further improvement of this utility model, the top of the support platform is provided with a hollow area below the target object and the cutting head, which is used to receive the cut-off skin of the target object.

[0013] Compared with the prior art, the beneficial effects of this utility model are as follows: This utility model automates multiple operations such as cable clamping, cutting, and stripping by using power components such as a drive motor, telescopic component one, telescopic component two, and telescopic component three. Compared with the traditional manual stripping method, it greatly reduces manpower input and operation time, and improves work efficiency. For example, telescopic component one drives the slider to quickly clamp and release the cable, telescopic component two controls the opening and closing of the clamping arm for cutting, and telescopic component three adjusts the position of the fixing frame to adapt to different cables. All components work together to make the stripping process smooth and efficient. Moreover, the drive gear set allows for precise control of the clamping arm's movement. Driven by the drive gear set, the cutting blade rotates neatly along the cable cutting area, effectively avoiding the problem of uneven cuts caused by uneven force or unstable technique during manual operation. This ensures the quality of the cable cut and provides a good foundation for subsequent cable use and connection. Attached Figure Description

[0014] The accompanying drawings, which are included to provide a further understanding of this application and form part of this application, illustrate exemplary embodiments and are used to explain this application, but do not constitute an undue limitation of this application. In the drawings: Figure 1 This is a three-dimensional structural diagram of the combination of the support platform and the peeling component of this utility model; Figure 2 This is a three-dimensional structural diagram of the combination of the support platform and the peeling component of this utility model from another angle; Figure 3 This is a top view of the combined support platform and peeling component of this utility model. Figure 4 This utility model Figure 3 Schematic diagram of the cross-sectional structure of the middle AA section; Figure 5 This is a side view of the combined support platform and peeling assembly of this utility model. Figure 6 This is a three-dimensional structural diagram of the combination of the support platform and the peeling component of this utility model from another angle.

[0015] In the diagram: 1. Support platform; 2. Peeling assembly; 21. Fixed frame; 22. Rack; 23. Slider; 24. Support block; 25. Target object; 26. Worktable; 27. Telescopic component one; 28. Guide wheel; 29. ​​Clamping arm; 210. Drive gear set; 211. Telescopic component two; 212. Telescopic component three; 213. Drive motor; 214. Cutting head; 215. Cutting blade; 216. Rack; 217. Hollowed-out area; 218. Linkage mechanism; 219. Fixed gear; 2110. Slide rail; 2111. Gear shank. Detailed Implementation

[0016] The following illustrations will reveal several embodiments of the present invention. For clarity, many physical details will be described in the following description. However, it should be understood that these physical details should not be used to limit the present invention. That is, in some embodiments of the present invention, these physical details are not essential. Furthermore, for the sake of simplicity, some conventional structures and components will be shown in a simple schematic manner in the illustrations.

[0017] Furthermore, the technical solutions of the various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. When the combination of technical solutions is contradictory or cannot be implemented, it should be considered that such combination of technical solutions does not exist and is not within the scope of protection claimed by this utility model.

[0018] Please see Figure 1 , Figure 2 , Figure 3 Traditional cable stripping is generally done manually, using tools such as stripping pliers. The stripping length is first determined, the blade is aligned with the cutting edge to cut into the insulation layer, and then the insulation is peeled off. However, this method presents several problems when processing power cables: the insulation layer is thick, making it difficult to cut manually with ordinary utility knives; some power cables have large diameters, making manual operation even more difficult and resulting in uneven cuts; while some existing tools can meet the cutting requirements, the subsequent stripping operation is inconvenient. Therefore, this application provides a cable stripping device, including a support platform 1 for support, and a stripping component 2 mounted on the support platform 1 for stripping the target cable 25. The peeling assembly 2 includes a fixing frame 21, which is arranged in an "L" shape. A drive motor 213 is provided at the horizontal support arm of the support platform 1, and a telescopic member 211 is provided above the drive motor 213. A drive gear set 210 is provided on one side of the vertical support arm of the support platform 1. Two clamping arms 29 are provided on one side of the drive gear set 210 in a symmetrical arrangement. A cutting head 214 is provided at one end of the clamping arm 29. A cutting blade 215 is provided at the bottom of the cutting head 214 for peeling the surface of the target object 25. One end of the piston rod of the telescopic component 211 passes through the middle of the drive gear set 210 and is connected to the toothed rod 216. The toothed rod 216 has a toothed groove on its outer side for fitting with one end of the clamping arm 29. A linkage mechanism 218 is provided at one end of the clamping arm 29 away from the cutting head 214. A toothed shank 2111 is provided at one end of the linkage mechanism 218. The toothed shank 2111 is adapted to the tooth groove of the toothed bar 216. The toothed bar 216 is driven to reciprocate linearly through the telescopic member 211, which is used to drive the linkage mechanism 218 to move, thereby clamping the target object 25.

[0019] The support platform 1 provides a stable installation platform for the peeling components 2, etc., ensuring the stability of the device during operation.

[0020] The mounting bracket 21 is L-shaped, with its horizontal and vertical arms serving different functions. The horizontal arms are used to mount the drive motor 213 and the telescopic component 211, providing support and fixation for these power components. The vertical arms are used to mount components such as the drive gear set 210. The drive motor 213 is mounted on the horizontal support arm of the support platform 1. The telescopic component 211 is positioned above the drive motor 213, with one end of its piston rod passing through the middle of the drive gear set 210 and connected to a rack 216. The telescopic component 211 can be an electric push rod, hydraulic push rod, or other component capable of linear telescopic movement. The telescopic movement of the telescopic component 211 drives the rack 216 to perform reciprocating linear motion, thereby driving subsequent components.

[0021] The drive gear set 210 is located on one side of the vertical support arm of the support platform 1, and it plays the role of transmitting power and changing the direction of movement.

[0022] Two symmetrically arranged clamping arms 29 are provided on one side of the drive gear set 210. A cutting head 214 is provided at one end of the clamping arm 29, and a cutting blade 215 is provided at the bottom of the cutting head 214. When it is necessary to strip the power cable, the two clamping arms 29 move in coordination and use the cutting blade 215 to cut the surface of the cable to achieve the stripping process.

[0023] The cutting head 214 is mounted on one end of the clamping arm 29, and the cutting blade 215 at its bottom can be made of sharp alloy steel to ensure that it can effectively cut the insulation of the cable.

[0024] The piston rod of the telescopic component 211 is connected to a toothed rod 216 with a toothed groove on the outside. The toothed groove is used to fit one end of the clamping arm 29 and the toothed handle 2111. When the telescopic component 211 drives the toothed rod 216 to perform reciprocating linear motion, the toothed groove of the toothed rod 216 interacts with the clamping arm 29 and the toothed handle 2111 to realize the transmission of power and the movement of the components.

[0025] A linkage mechanism 218 is provided at the end of the clamping arm 29 away from the cutting head 214. A toothed shank 2111 is provided at one end of the linkage mechanism 218. The toothed shank 2111 is adapted to the tooth groove of the toothed bar 216. The telescopic component 211 drives the toothed bar 216 to perform reciprocating linear motion. The tooth groove of the toothed bar 216 and the toothed shank 2111 cooperate with each other, driving the linkage mechanism 218 to move. The movement of the linkage mechanism 218, in turn, causes the two clamping arms 29 to open and close, thereby clamping and releasing the power cable.

[0026] When stripping power cables, the cable is first placed in a suitable position between the two clamping arms 29. Then, the telescopic component 211 is activated, and its piston rod drives the rack 216 in a linear motion. The teeth on the rack 216 interact with the toothed shank 2111, causing the linkage mechanism 218 to move, which in turn moves the two clamping arms 29 towards the center, allowing the cutting blade 215 at the bottom of the cutting head 214 to cut the cable surface. After cutting, the reverse movement of the telescopic component 211 causes the clamping arms 29 to release the cable, completing one stripping operation. The entire process is powered by the drive motor 213, and the telescopic component 211 controls the movement of the rack 216, achieving efficient and neat stripping of power cables.

[0027] Please see Figure 1 , Figure 2 The drive gear set 210 includes a driven gear and a driving gear. The middle part of the driving gear is adapted to the output rod of the drive motor 213, and the middle part of the driven gear is connected to the rack 216. The drive motor 213 drives the driving gear to rotate, which in turn drives the rack 216 and the clamping arm 29 to rotate along the cutting area of ​​the target object 25, thereby achieving the surface cutting treatment of the target object 25.

[0028] The drive gear is the component in the drive gear set 210 that is directly connected to the drive motor 213. The middle part of the drive gear is adapted to the output rod of the drive motor 213, for example, through common mechanical connection methods such as key connection or spline connection, to ensure that the output power of the drive motor 213 can be stably and efficiently transmitted to the drive gear. When the drive motor 213 starts, its output rod drives the drive gear to start rotating.

[0029] The driven gear meshes with the driving gear. The middle part of the driven gear is connected to the rack 216, which ensures that the rotational motion of the driven gear can be transmitted to the rack 216. When the driving gear rotates under the drive of the drive motor 213, the driving gear will drive the driven gear to rotate synchronously due to the meshing relationship between the driving gear and the driven gear.

[0030] When it is necessary to strip the power cable, the drive motor 213 is started. The drive motor 213 starts running, and its output rod drives the connected drive gear to start rotating.

[0031] After the driving gear rotates, due to its meshing relationship with the driven gear, the teeth of the driving gear interact with the teeth of the driven gear, thereby driving the driven gear to start rotating. The middle part of the driven gear is connected to the rack 216. As the driven gear rotates, the rack 216 will also rotate with the driven gear. The rotation of the rack 216 provides the power basis for the subsequent movement of the clamping arm 29.

[0032] When the rack 216 rotates, the rotational motion of the rack 216 is transmitted to the clamping arm 29 through the interaction between the tooth groove on the outer side of the rack 216 and one end of the clamping arm 29 and the tooth shank 2111. This causes the clamping arm 29 to rotate around the cutting area of ​​the cable, and the cutting blade 215 at the bottom of the cutting head 214 at one end of the clamping arm 29 also rotates along the cutting area of ​​the cable.

[0033] As the clamping arm 29 drives the cutting blade 215 to rotate along the cable cutting area, the cutting blade 215 cuts the cable sheath. Because the rotation of the clamping arm 29 is precisely controlled by the drive gear set 210, the cutting blade 215 can cut the cable sheath more neatly, avoiding the problem of uneven cuts caused by manual operation. Through the coordinated movement of related components driven by the drive gear set 210, effective cutting of the power cable sheath is achieved, improving the quality and efficiency of stripping.

[0034] The drive gear set 210 works in coordination with other components in the device. The telescopic component 211 drives the rack 216 to perform reciprocating linear motion, thereby clamping and releasing the cable. Meanwhile, the drive gear set 210 drives the rack 216 to rotate, thereby cutting the cable sheath. The two work together to enable the entire power cable stripping device to complete the cable stripping operation efficiently and stably.

[0035] Please see Figure 1 , Figure 2 , Figure 3 The bottom of the fixed frame 21 is located at the top of the support platform 1 and is provided with two symmetrically arranged slide rails 2110. The slide rails 2110 are adapted to the fixed frame 21. A telescopic component 212 is provided on one side of the horizontal support arm of the fixed frame 21. The telescopic component 212 drives the fixed frame 21 to reciprocate linearly along the slide rails 2110.

[0036] The fixed frame 21 is located at the bottom and the top of the support platform 1. The drive motor 213, the telescopic component 211, the drive gear set 210 and other components are installed on it. Two symmetrically arranged slide rails 2110 are set at the bottom of the fixed frame 21 and at the top of the support platform 1. The slide rails 2110 are adapted to the fixed frame 21 to provide stable guidance and support for the movement of the fixed frame 21, so as to meet different stripping operation requirements and solve the problem of inconvenience in stripping cables of different diameters mentioned in the background art.

[0037] Two slide rails 2110 are symmetrically arranged on the top of the support platform 1. Their length and width are designed according to the overall size of the device and the range of motion of the fixed frame 21. The surface of the slide rails 2110 is smoothed to reduce the frictional resistance between them and the fixed frame 21, ensuring that the fixed frame 21 can move smoothly on the slide rails 2110. The slide rails 2110 can be made of materials such as stainless steel or aluminum alloy, and can withstand the weight of the fixed frame 21 and its components, as well as the forces exerted during movement.

[0038] A telescopic component 212 is provided on one side of the horizontal support arm of the fixed frame 21. The telescopic component 212 can be an electric push rod, hydraulic push rod or other component that can realize linear telescopic movement. One end of the telescopic component 212 is fixed on the support platform 1, and the other end is connected to the horizontal support arm of the fixed frame 21. When the telescopic component 212 is activated, it can generate a pushing force or a pulling force, which drives the fixed frame 21 to reciprocate linearly along the slide rail 2110. When the position of the fixed frame 21 needs to be adjusted, the telescopic component 212 is activated. If the telescopic component 212 extends, it will give the fixed frame 21 a forward thrust. Since the fixed frame 21 is adapted to the slide rail 2110, the fixed frame 21 will be guided by the slide rail 2110 and move forward in a straight line along the slide rail 2110. During the movement, the peeling components 2 installed on the fixed frame 21, such as the drive motor 213, the telescopic component 211, the drive gear set 210, the clamping arm 29, etc., will also move together.

[0039] Conversely, if the telescopic component 212 shortens, it exerts a backward pulling force on the fixed frame 21, causing the fixed frame 21 to move backward in a straight line along the slide rail 2110. By controlling the extension length and speed of the telescopic component 212, the moving distance and speed of the fixed frame 21 can be precisely controlled, thereby adjusting the position of the stripping assembly 2 relative to the power cable. This makes the device more adaptable to power cables of different diameters or with different stripping positions. For example, for cables with larger diameters, the telescopic component 212 moves the fixed frame 21 backward, increasing the initial distance between the clamping arm 29 and the cable, making it easier to place the cable in a suitable stripping position. For situations where stripping is required at different positions on the cable, the telescopic component 212 can precisely adjust the position of the fixed frame 21, ensuring that the cutting blade 215 is accurately aligned with the area to be stripped, improving the accuracy and efficiency of stripping. This further solves the problems of inconvenient manual operation and uneven cuts in the prior art, enhancing the practicality and functionality of the entire power cable stripping device.

[0040] Please see Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 as well as Figure 6The top of the support platform 1 is provided with a worktable 26, and the top of the worktable 26 is provided with two sets of four support blocks 24 arranged symmetrically and mirrored. A guide wheel 28 is provided between the two support blocks 24, and the middle part of the guide wheel 28 is adapted to the target object 25.

[0041] A set of two symmetrically arranged sliders 23 are provided between the two guide wheels 28, forming a clamping area between the two sliders 23, which is adapted to the outside of the target object 25.

[0042] The bottom of the two sliders 23 has a slot, and a rack 22 is installed in the slot. A fixed gear 219 is set between the two racks 22 at the top of the worktable 26. The fixed gear 219 is adapted to the two racks 22, and the two racks 22 are symmetrically staggered.

[0043] One end of one of the sliders 23 is provided with a telescopic component 27. One end of the piston rod of the telescopic component 27 drives the slider 23 to reciprocate linearly along the meshing direction of the rack 22 and the fixed gear 219.

[0044] The top of the support platform 1 is provided with a hollow area 217 located below the target object 25 and the cutting head 214. The hollow area 217 is used to receive the cut surface of the target object 25.

[0045] The center of the guide wheel 28 is designed to fit the target object 25 (i.e., the power cable), typically in a groove shape, to ensure that the cable can be placed stably in the center of the guide wheel 28. The guide wheel 28 can be made of wear-resistant rubber or plastic with a smooth surface, which reduces friction with the cable and facilitates cable movement within the device. When the cable is placed on the guide wheel 28, the guide wheel 28 supports and guides the cable, allowing it to accurately enter the subsequent stripping operation area and improving stripping accuracy.

[0046] Between the two guide wheels 28, a set of two symmetrically arranged sliders 23 are provided. These two sliders 23 are placed opposite each other, forming a clamping area whose size and shape are adapted to the outer side of the target object 25. When the cable enters the device, it will be located within this clamping area. The sliders 23 can be made of metal, possessing sufficient strength and rigidity to ensure that they do not deform when clamping the cable.

[0047] The bottom of the two sliders 23 is provided with a slot, and a rack 22 is installed in the slot. Between the two racks 22, a fixed gear 219 is provided at the top of the worktable 26. The fixed gear 219 is adapted to the two racks 22, and the two racks 22 are symmetrically staggered, so that when one slider 23 moves, the other slider 23 can be driven to move in the opposite direction through the meshing of the fixed gear 219 and the rack 22.

[0048] One end of one of the sliders 23 is provided with a telescopic component 27, which can be an electric push rod or a hydraulic push rod. One end of the piston rod of the telescopic component 27 is connected to the slider 23. When the telescopic component 27 is activated, its piston rod will drive the slider 23 connected to it to reciprocate linearly along the meshing direction of the rack 22 and the fixed gear 219. For example, when the piston rod of the telescopic component 27 extends, the slider 23 connected to it will move forward. Through the transmission of the fixed gear 219 and the rack 22, the other slider 23 will move backward, thereby reducing the clamping area between the two sliders 23 and realizing the clamping of the cable. Conversely, when the piston rod of the telescopic component 27 retracts, the two sliders 23 will move away from each other, the clamping area will increase, and the cable will be released.

[0049] At the top of the support platform 1, below the target object 25 and the cutting head 214, there is a perforated area 217. After the cutting head 214 cuts the cable sheath, the cut cable sheath will fall into this perforated area 217 due to gravity. A collection container is connected to the bottom for convenient collection and processing of the cut sheath. This avoids the accumulation of cut sheath on the workbench 26, which would affect subsequent stripping operations, maintains a clean working environment, and improves the efficiency of the device.

[0050] The entire device, through the coordinated operation of components such as the worktable 26, guide wheel 28, slider 23, rack 22, fixed gear 219, telescopic component 1 27, and hollow area 217, achieves stable support, accurate clamping, and efficient stripping of power cables. Compared with traditional manual stripping methods and existing tools, the guide wheel 28 ensures that the cable accurately enters the stripping area, the slider 23 and telescopic component 1 27 reliably clamp the cable, the cutting head 214 neatly cuts the cable sheath under the action of the drive gear set 210 and telescopic component 211, and the hollow area 217 facilitates the collection of the cut sheath, thus improving the quality and efficiency of power cable stripping.

[0051] The above description is merely an embodiment of this utility model and is not intended to limit the scope of this utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principle of this utility model should be included within the scope of the claims of this utility model.

Claims

1. A stripping device for power cables, comprising a support platform (1) for support, wherein a stripping assembly (2) is provided on the support platform (1) for stripping a target object (25); Its features are: The peeling assembly (2) includes a fixing frame (21) which is L-shaped. A drive motor (213) is provided at the horizontal support arm of the support platform (1), and a telescopic component (211) is provided above the drive motor (213). A drive gear set (210) is provided on one side of the vertical support arm of the support platform (1). Two clamping arms (29) are arranged symmetrically on one side of the drive gear set (210). A cutting head (214) is provided at one end of the clamping arm (29). A cutting blade (215) is provided at the bottom of the cutting head (214) for peeling the surface of the target object (25). One end of the piston rod of the telescopic component 2 (211) passes through the middle of the drive gear set (210) and is connected to a toothed rod (216). The toothed rod (216) has a toothed groove on its outer side for fitting one end of the clamping arm (29). The clamping arm (29) is provided with a linkage mechanism (218) at one end away from the cutting head (214). The linkage mechanism (218) is provided with a toothed shank (2111) at one end. The toothed shank (2111) is adapted to the tooth groove of the toothed bar (216). The toothed bar (216) is driven to reciprocate linearly through the telescopic member (211), which is used to drive the linkage mechanism (218) to move, thereby clamping the target object (25).

2. The stripping device for power cables according to claim 1, characterized in that: The drive gear set (210) includes a driven gear and a driving gear. The middle part of the driving gear is adapted to the output rod of the drive motor (213). The middle part of the driven gear is connected to the rack (216). The drive motor (213) drives the driving gear to rotate the driven gear, which in turn drives the rack (216) and the clamping arm (29) to rotate along the cutting area of ​​the target object (25) to achieve the surface cutting treatment of the target object (25).

3. A power cable stripping apparatus according to claim 1, characterised in that: The bottom of the fixed frame (21) is located at the top of the support platform (1) and is provided with two symmetrically arranged slide rails (2110). The slide rails (2110) are adapted to the fixed frame (21). A telescopic component three (212) is provided on one side of the horizontal support arm of the fixed frame (21). The telescopic component three (212) drives the fixed frame (21) to make reciprocating linear motion along the slide rails (2110).

4. A power cable stripping apparatus according to claim 1, characterised in that: The top of the support platform (1) is provided with a workbench (26), and the top of the workbench (26) is provided with two sets of four support blocks (24) arranged in a symmetrical mirror image. A guide wheel (28) is provided between the two support blocks (24), and the middle part of the guide wheel (28) is adapted to the target object (25).

5. A power cable stripping apparatus according to claim 4, characterised in that: A set of two symmetrically arranged sliders (23) is provided between the two guide wheels (28), and a clamping area is formed between the two sliders (23), which is adapted to the outside of the target object (25).

6. A power cable stripping apparatus according to claim 5, characterised in that: The bottom of the two sliders (23) is provided with a slot, and a rack (22) is installed in the slot. A fixed gear (219) is provided between the two racks (22) at the top of the worktable (26). The fixed gear (219) is adapted to the two racks (22), and the two racks (22) are symmetrically staggered.

7. A power cable stripping apparatus as claimed in claim 5, wherein: One end of one of the sliders (23) is provided with a telescopic member (27), and one end of the piston rod of the telescopic member (27) drives the slider (23) to reciprocate linearly along the meshing direction of the rack (22) and the fixed gear (219).

8. A stripping device for power cables according to claim 1, characterized in that: The top of the support platform (1) is provided with a hollow area (217) located below the target object (25) and the cutting head (214). The hollow area (217) is used to receive the cut-off skin of the target object (25).