Induction wire stripping machine
Through automated driving components and transmission systems, the induction wire stripping machine solves the problem of low manual wire stripping efficiency, achieves efficient wire stripping, and improves production efficiency and equipment reliability.
Patent Information
- Application Number
- CN202510801700.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-16
- Publication Date
- 2025-07-25
AI Technical Summary
In existing cable processing, manual stripping efficiency is low, making it difficult to meet the needs of large-scale production.
The induction wire stripper is used to drive the transmission assembly through the drive assembly, so that the fixing member fixes the cable, cut the cut into and strip the insulator, and automatic operation is achieved using the pneumatic system and the transmission assembly.
Improves the stripping speed, reduces manual operation, improves production efficiency, reduces labor costs, ensures the quality of stripping, reduces equipment wear, and improves equipment versatility and consistency.
Smart Images

Figure CN120377136A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of wire stripping equipment, and particularly to an induction wire stripper. Background Art
[0002] In the existing wire processing technology, stripping the insulator on the wire is a very important step. The existing wire stripping methods are usually manual wire stripping, usually using wire stripping pliers or scissors to manually cut and strip the insulator of the wire. However, the working efficiency of manual wire stripping is low and it is difficult to meet the requirements of large-scale production. Summary of the Invention
[0003] Based on this, the purpose of the present invention is to provide an induction wire stripper with high wire stripping efficiency.
[0004] The present invention adopts the following technical solutions:
[0005] An induction wire stripper for stripping the insulator on the wire; the induction wire stripper includes a frame, a fixing component installed on the frame, and a wire stripping component installed on the frame; the fixing component includes a rotating rod rotatably installed on the frame and a fixing piece installed at one end of the rotating rod; the wire stripping component includes a movable sleeve sleeved on the rotating rod and a cutting piece installed on the movable sleeve; the induction wire stripper further includes a first transmission component installed on the rotating rod, a second transmission component installed on the movable sleeve, a driving component installed on the frame for driving the first transmission component and the second transmission component to move, and a buffer component installed on the frame; by driving the first transmission component and the second transmission component by the driving component to drive the rotating rod and the movable sleeve to move, the fixing piece fixes the wire, and the cutting piece cuts into the insulator of the wire and strips the insulator on the wire; there are two rotating rods, and the two rotating rods are arranged side by side on the frame.
[0006] Further, there are also two movable sleeves, and the two movable sleeves are respectively sleeved on the two rotating rods.
[0007] Further, the driving component includes an induction piece installed on the frame, a push rod installed on the frame, a first push cone installed on the push rod, a second push cone installed on the push rod, a wire retreating tube installed on the push rod, and a connecting plate installed on the wire retreating tube; the moving direction of the wire retreating tube is set to be opposite to the moving direction of the push rod.
[0008] Further, the movable sleeve is rotatably installed on the connecting plate; the driving component further includes a first air pipe; the push rod and the wire retreating tube are connected through the first air pipe; the induction piece is arranged to be inductively connected with the push rod.
[0009] Further, the sensing member includes a sensing tube installed on the connecting plate, and a second air tube respectively connected to the sensing tube and the push rod; the sensing tube is arranged to communicate with the push rod through the second air tube; the free end of the sensing tube is arranged at the same level as the fixing member and the cutting member.
[0010] Further, the buffer assembly includes a positioning rod installed on the frame, a limiting plate installed on the positioning rod, a limiting chute arranged on the limiting plate, and a buffer block slidably arranged on the limiting chute; the buffer block is installed on the driving assembly.
[0011] Further, the induction wire stripping machine further includes a power source assembly; the power source assembly includes an air inflator arranged on the frame, a third air tube, a sensing hole arranged on the air inflator, and a stopper block arranged on the driving assembly; the air inflator and the driving assembly are connected through the third air tube.
[0012] Further, the first transmission assembly includes a first swing arm, a second swing arm installed on the rotating rod, a first connecting spring installed between the first swing arm and the second swing arm, a first pushing ring installed on the first swing arm, and a second pushing ring installed on the second swing arm.
[0013] Further, the second transmission assembly includes a fixed bracket installed on the frame, a first swing plate, a second swing plate rotatably installed on the fixed bracket, a second connecting spring installed between the first swing plate and the second swing plate, a first swing ring installed on the first swing plate, a second swing ring installed on the second swing plate, a third swing arm, a fourth swing arm installed on the movable sleeve, a third connecting spring installed between the third swing arm and the fourth swing arm, a third pushing ring installed on the third swing arm, and a fourth pushing ring installed on the fourth swing arm.
[0014] Further, the first swing ring and the second swing ring are arranged to abut against the driving assembly; the third pushing ring and the fourth pushing ring are arranged to abut against the free ends of the first swing plate and the second swing plate.
[0015] The beneficial effects of the present invention are as follows:
[0016] An induction wire stripping machine according to the present invention drives the first transmission assembly and the second transmission assembly to move through the driving assembly, so that the fixing assembly fixes the cable, and the insulating body is stripped from the cable through the wire stripping assembly, which can effectively improve the wire stripping speed, reduce manual operation, and thus improve production efficiency. Description of the Drawings
[0017] Figure 1 Schematic three-dimensional view of an induction wire stripping machine according to an embodiment of the present invention;
[0018] Figure 2 is Figure 1 Schematic three-dimensional view of the induction wire stripping machine after removing the frame;
[0019] Figure 3 is Figure 1 Schematic three-dimensional view of another state of the induction wire stripping machine after removing the frame;
[0020] Figure 4 is Figure 3 Exploded view of the induction wire stripping machine;
[0021] Figure 5 is Figure 4 Exploded view of the drive assembly;
[0022] Figure 6 is Figure 3 Schematic three-dimensional view of the fixing assembly, wire stripping assembly and buffer assembly;
[0023] 10. Frame; 20. Fixing assembly; 30. Wire stripping assembly; 21. Rotating rod; 22. Fixing piece; 31. Movable sleeve; 32. Cutting piece; 40. Drive assembly; 42. Pushing rod; 43. First pushing cone; 44. Second pushing cone; 410. Induction tube; 50. First transmission assembly; 51. First swing arm; 52. Second swing arm; 53. First pushing ring; 54. Second pushing ring; 79. Fixed bracket; 70. Second transmission assembly; 71. First swing plate; 72. Second swing plate; 73. First swing ring; 74. Second swing ring; 75. Third swing arm; 76. Fourth swing arm; 77. Third pushing ring; 78. Fourth pushing ring; 45. Wire retreating tube; 46. Connecting plate; 80. Power source assembly; 81. Inflator; 82. Induction hole; 83. Stopper block; 60. Buffer assembly; 61. Positioning rod; 62. Limiting plate; 63. Limiting chute; 64. Buffer block. Detailed implementation manners
[0024] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0025] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "vertical direction", "upper", "lower", "horizontal", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation to the present invention. In addition, "first", "second", "third", "fourth" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance.
[0026] In the description of the present invention, it should also be noted that unless otherwise clearly specified and limited, the terms "set", "install", "connect", "couple" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection. It can be a mechanical connection or an electrical connection. It can be a direct connection or a connection through an intermediate medium. It can be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.
[0027] Please refer to Figures 1 to 6 , an induction wire stripping machine according to an embodiment of the present invention, which is used to strip the insulator from a cable; the induction wire stripping machine includes a frame 10, a fixing component 20 installed on the frame 10, and a wire stripping component 30 installed on the frame 10; the fixing component 20 includes a rotating rod 21 rotatably installed on the frame 10 and a fixing member 22 installed at one end of the rotating rod 21; the wire stripping component 30 includes a movable sleeve 31 sleeved on the rotating rod 21 and a cutting member 32 installed on the movable sleeve 31; the induction wire stripping machine further includes a first transmission component 50 installed on the rotating rod 21, a second transmission component 70 installed on the movable sleeve 31, and a driving component 40 installed on the frame 10 for driving the first transmission component 50 and the second transmission component 70 to move; by driving the first transmission component 50 and the second transmission component 70 by the driving component 40 to drive the rotating rod 21 and the movable sleeve 31 to move, the fixing member 22 fixes the cable, and the cutting member 32 cuts into the insulator of the cable and strips the insulator from the cable.
[0028] The working principle of the induction wire stripping machine of the present invention is as follows: By placing the cable into the fixing member 22, the driving component 40 drives the first transmission component 50 and the second transmission component 70 to rotate the rotating rod 21 and the movable sleeve 31 respectively, driving the fixing member 22 to clamp the cable, the cutting member 32 to cut into the insulator of the cable, and the movable sleeve 31 to slide along the rotating rod 21 to gradually strip the insulator; after the wire stripping is completed, the driving component 40 drives the first transmission component 50 and the second transmission component 70 to move, so that the fixing member 22 and the cutting member 32 are reset to realize the separation of the insulator from the cable.
[0029] Compared with the prior art, for the induction wire stripping machine of the present invention, the driving assembly 40 drives the first transmission assembly 50 and the second transmission assembly 70 to move, so that the fixing assembly 20 fixes the wire and the wire stripping assembly 30 strips the insulator from the wire, which can effectively improve the wire stripping speed, reduce manual operation, and thus improve production efficiency; the induction wire stripping machine can reduce the dependence on operators, lower labor costs, and at the same time reduce human errors; mechanical operation can more precisely control the depth and position of the cutting member 32 cutting into the wire insulator, reduce damage to the internal conductor of the wire, and ensure the wire stripping quality; the operator does not need to directly contact the sharp cutting member 32, which can effectively reduce work-related injury accidents; by adjusting the sizes of the fixing member 22 and the cutting member 32, the induction wire stripping machine can adapt to wires of different diameters and types, improving the versatility of the equipment; the modular structure makes it more convenient to maintain and replace components, reducing the equipment downtime; the automated equipment can ensure the consistency of each wire stripping operation, avoiding product quality problems caused by manual operation differences.
[0030] Please refer to Figure 6 , there are two rotating rods 21, and the two rotating rods 21 are arranged side by side on the frame 10; there are also two movable sleeves 31, and the two movable sleeves 31 are respectively sleeved on the two rotating rods 21. By using two rotating rods 21 and two movable sleeves 31, better stability can be provided; two support points can ensure the structural stability more effectively than one support point; for example, in the application of a robotic arm or the like, this structure can reduce shaking and improve operation accuracy; the two rotating rods 21 can better disperse the load transmitted by the movable components (such as the movable sleeve 31); this means that the pressure borne by a single component will be reduced, which may extend the service life of the parts and reduce wear; in some structures, the configuration of the double rotating rods 21 can provide more flexibility, enabling the mechanical equipment to move smoothly within a wider range.
[0031] Please refer to Figures 2 to 4, the driving assembly 40 includes a sensing member installed on the frame 10, a push rod 42 installed on the frame 10, a first push cone 43 installed on the push rod 42, a second push cone 44 installed on the push rod 42, a wire retreating tube 45 installed on the push rod 42, and a connecting plate 46 installed on the wire retreating tube 45; the moving direction of the wire retreating tube 45 is set to be opposite to the moving direction of the push rod 42. Specifically, when the sensing member senses that the cable extends to a proper position, the push rod 42 pushes towards the cable direction, driving the first push cone 43 and the second push cone 44 to move forward, causing the first transmission assembly 50 and the second transmission assembly 70 to rotate, respectively driving the fixing assembly 20 on the rotating rod 21 to fix the cable and the cutting member 32 on the movable sleeve 31 to cut into the insulating body of the cable; when the push rod 42 pushes towards the cable direction, the wire retreating rod pushes in the direction opposite to the push rod 42, causing the connecting plate 46 to drive the sensing member and the movable sleeve 31 to move away from the cable, so as to realize peeling the insulating body from the cable. After the sensing member senses that the cable extends to a proper position, it automatically triggers the action of the push rod 42, reducing manual operation, improving production efficiency and automation level; the sensing member can accurately detect the position of the cable, ensuring that components such as the push rod 42, the first push cone 43, and the second push cone 44 can perform actions at the correct time point, improving processing accuracy; the first transmission assembly 50 and the second transmission assembly 70 drive the fixing assembly 20 and the cutting member 32 to act respectively. Through precise transmission ratios and control logics, it is possible to effectively avoid improper force application to the cable and reduce the probability of cable damage; when the push rod 42 pushes towards the cable direction, the wire retreating rod moves in the opposite direction, driving the sensing member and the movable sleeve 31 away from the cable through the connecting plate 46 to realize the peeling of the insulating body. This design of reverse movement not only saves time, but also improves operation efficiency and reduces the waiting time between actions.
[0032] The movable sleeve 31 is rotatably installed on the connecting plate 46; the driving assembly 40 further includes a first air pipe (not shown in the figure), and the push rod 42 and the wire retreating tube 45 are connected and communicated through the first air pipe; the sensing member is arranged to be inductively connected to the push rod 42. This enables the movable sleeve 31 to freely rotate on the connecting plate 46, adapting to different working angles and postures, improving the flexibility and adaptability of the device, and ensuring normal operation under different working conditions; by connecting the push rod 42 and the wire retreating tube 45 through an air pipe, the reverse movement is realized by means of pneumatic drive; this method not only has a simple structure, but also has a fast response speed and high control precision; at the same time, the pneumatic system is relatively lighter and has lower maintenance costs compared to the mechanical transmission system; the inductive connection between the sensing member and the push rod 42 can achieve non-contact control, reducing mechanical wear and failure rate, and improving the reliability and lifespan of the system. At the same time, the non-contact sensing method has a fast response speed, can detect and feedback the position information of the cable in real time, and ensures the accuracy and timeliness of actions.
[0033] The sensing member includes a sensing tube 410 mounted on the connecting plate 46 and a second air pipe (not shown in the figure) respectively connected to the sensing tube 410 and the push rod 42; the sensing tube 410 is arranged to be connected to the push rod 42 through the second air pipe; the free end of the sensing tube 410 is arranged at the same level as the fixing member 22 and the cutting member 32. It ensures that the movement of the push rod 42 can be transmitted to the sensing tube 410 in real time, realizing the synchronous movement of the sensing member and the push rod 42. In this way, the position and movement of the sensing member can be controlled more precisely, ensuring that subsequent mechanical actions are triggered at the appropriate time point; the pneumatic system has a fast response speed and can quickly transmit the movement of the push rod 42 to the sensing tube 410, enabling the sensing member to quickly detect the position change of the cable and make a timely response; the sensing tube 410 is connected to the push rod 42 through an air pipe, adopting a non-contact sensing method, reducing mechanical wear and failure rate. The non-contact sensing member can maintain high sensitivity and reliability for a long time, extending the service life of the equipment.
[0034] Please refer to Figure 4 and Figure 6 As shown in the figure, the induction wire stripping machine further includes a buffer assembly 60 mounted on the frame 10; the buffer assembly 60 includes a positioning rod 61 mounted on the frame 10, a limiting plate 62 mounted on the positioning rod 61, a limiting chute 63 arranged on the limiting plate 62, and a buffer block 64 slidably arranged on the limiting chute 63; the buffer block 64 is mounted on the driving assembly 40; specifically, the buffer block 64 is mounted on the connecting plate 46. During the movement of components such as the push rod 42 and the wire retreating tube 45, the buffer block 64 can absorb and reduce the impact force, reducing the hard impact between mechanical components. This helps to reduce the vibration of the equipment and improve the running stability of the equipment; by the buffer block 64 absorbing the impact force, the wear between mechanical components is reduced, extending the service life of the driving assembly 40 and the entire wire stripping machine. This is very important for reducing maintenance costs and improving the reliability of the equipment; the limiting chute 63 ensures the movement track of the buffer block 64, enabling it to move smoothly within a predetermined range. This precise movement control helps to improve the action accuracy of the driving assembly 40, ensuring that the processing of the cable by the fixing member 22 and the cutting member 32 is more accurate.
[0035] Please refer to Figures 2 to 4, the induction wire stripping machine further includes a power source assembly 80; the power source assembly 80 includes an air inflator 81 disposed on the frame 10, a third air pipe (not shown in the figure), an induction hole 82 disposed on the air inflator 81, and a stopper 83 disposed on the driving assembly 40; the air inflator 81 and the driving assembly 40 are connected and communicated through the third air pipe. Specifically, the air inflator 81 and the push rod 42 are connected and communicated through the third air pipe. Specifically, the stopper 83 is installed on the connecting plate 46. The air inflator 81 serves as a power source and provides stable air pressure to the push rod 42 through the third air pipe, ensuring the reliable and controllable movement of the push rod 42; this pneumatic drive method has a fast response speed and high control accuracy, and can achieve precise motion control; the characteristic of the pneumatic system is a fast response speed. The air inflator 81 can quickly provide high-pressure gas, and the push rod 42 can quickly respond and execute the predetermined mechanical action in a timely manner, improving the response speed and dynamic performance of the system; the air inflator 81 provides power through the air pipe, ensuring non-contact drive between components such as the push rod 42 and the wire withdrawing pipe 45. This method reduces the direct contact between mechanical components, reduces wear, and extends the service life of the equipment.
[0036] The first transmission assembly 50 includes a first swing arm 51, a second swing arm 52 mounted on the rotating rod 21, a first connecting spring (not shown in the figure) mounted between the first swing arm 51 and the second swing arm 52, a first pushing ring 53 mounted on the first swing arm 51, and a second pushing ring 54 mounted on the second swing arm 52. Specifically, when the pushing rod 42 drives the first pushing cone 43 to push towards the cable, the first pushing cone 43 pushes the first swing arm 51 and the second swing arm 52 to swing towards both sides, driving the two rotating rods 21 to rotate in opposite directions, so that the fixing member 22 clamps and fixes the cable; the first transmission assembly 50 further includes a first pushing ring 53 mounted on the first swing arm 51 and a second pushing ring 54 mounted on the second swing arm 52; both the first pushing ring 53 and the second pushing ring 54 are arranged on the side close to the pushing rod 42. When the pushing rod 42 drives the first pushing cone 43 to push towards the cable, the first pushing cone 43 will push the first swing arm 51 and the second swing arm 52 to swing towards both sides. This design ensures that the two rotating rods 21 rotate in opposite directions, so as to realize the precise clamping and fixing of the cable by the fixing member 22; through the opposite movement of the two swing arms, it is ensured that the cable is subjected to uniform force during clamping, avoiding cable damage or sliding that may be caused by unilateral clamping; these two pushing rings are arranged on the side close to the pushing rod 42, which can quickly respond to the movement of the pushing rod 42, ensuring the immediate swing of the first swing arm 51 and the second swing arm 52. This quick response improves the dynamic performance of the system, enabling the fixing member 22 to clamp the cable quickly and accurately; the first connecting spring mounted between the first swing arm 51 and the second swing arm 52 can absorb and buffer the impact force during the movement of the swing arm, reducing the direct contact and wear between mechanical components. This extends the service life of the transmission assembly.
[0037] The second transmission assembly 70 includes a fixed bracket 79 mounted on the frame 10, a first swing plate 71 rotatably mounted on the fixed bracket 79, a second swing plate 72, a second connecting spring (not shown in the figure) mounted between the first swing plate 71 and the second swing plate 72, a first swing ring 73 mounted on the first swing plate 71, a second swing ring 74 mounted on the second swing plate 72, a third swing arm 75 and a fourth swing arm 76 mounted on the movable sleeve 31, a third connecting spring (not shown in the figure) mounted between the third swing arm 75 and the fourth swing arm 76, a third pushing ring 77 mounted on the third swing arm 75, and a fourth pushing ring 78 mounted on the fourth swing arm 76. Specifically, when the push rod 42 drives the second push cone 44 to push towards the cable, the first swing plate 71 and the second swing plate 72 swing towards both sides, driving the third swing arm 75 and the fourth swing arm 76 to swing, causing the two movable sleeves 31 to rotate in opposite directions, so as to cut the cutting piece 32 into the insulation of the cable. When the push rod 42 drives the second push cone 44 to push towards the cable, the first swing plate 71 and the second swing plate 72 swing towards both sides, driving the third swing arm 75 and the fourth swing arm 76 to swing, causing the two movable sleeves 31 to rotate in opposite directions. This complex linkage mechanism ensures that the cutting piece 32 can be accurately cut into the insulation of the cable, improving the accuracy and consistency of cutting; through the multi-point linkage design of the fixed bracket 79, swing plates, swing arms and connecting springs, the transmission assembly can adapt to cables of different sizes and types. Different swinging and rotating angles can be flexibly adjusted to ensure accurate cutting under various working conditions; the use of the second connecting spring and the third connecting spring can absorb part of the impact force, reduce the hard impact between mechanical components, and extend the service life of each component. At the same time, the elasticity and flexibility of the spring also improve the stability and reliability of the system.
[0038] Please refer to Figure 4 and Figure 5, the first swing ring 73 and the second swing ring 74 are arranged to abut against the driving assembly; the first swing ring 73 and the second swing ring 74 are arranged to abut against the second pushing cone 44; the third pushing ring 77 and the fourth pushing ring 78 are arranged to abut against the free ends of the first swing plate 71 and the second swing plate 72. The first swing ring 73 and the second swing ring 74 are arranged to abut against the second pushing cone 44, ensuring that the swing ring can accurately swing under the push of the pushing cone. This precise positioning helps to improve the motion accuracy and stability of the entire mechanical system; the third pushing ring 77 and the fourth pushing ring 78 are arranged to abut against the free ends of the first swing plate 71 and the second swing plate 72, ensuring that the swing plates can move synchronously and coordinately when acted upon by the pushing rings. This helps to ensure the consistency and coordination of mechanical actions and improve the processing accuracy; through the point contact or line contact between the swing ring and the pushing cone and the swing plate, the contact area is reduced, thereby reducing the wear between mechanical components. This not only extends the service life of the components but also reduces the maintenance cost; the close fit between the swing ring and the pushing cone and the swing plate ensures that the pressure can be stably and evenly transmitted. This design reduces mechanical failures caused by uneven pressure and improves the reliability of the system; through the close fit between the swing ring and the pushing cone and the swing plate, the gaps between mechanical components are reduced, avoiding inaccurate and unstable movements caused by excessive gaps.
[0039] Specifically, the fixing member 22 includes a first fixing clamp sleeve and a second fixing clamp sleeve mounted on the rotating rod 21. Specifically, the cutting member 32 includes a first blade and a second blade mounted on the movable sleeve 31.
[0040] The above only expresses the preferred technical solutions of the present invention, and its description is relatively specific and detailed, but it should not be construed as a limitation on the scope of the invention patent. It should be noted that for those of ordinary skill in the art, without departing from the concept of the present invention, several modifications and improvements can still be made, and the present invention also intends to include these changes and modifications.
Claims
1. An induction wire stripping machine for stripping the insulator from a cable; characterized in that, The induction wire stripping machine includes a frame, a fixing component installed on the frame, and a wire stripping component installed on the frame; the fixing component includes a rotating rod rotatably installed on the frame and a fixing piece installed at one end of the rotating rod; the wire stripping component includes a movable sleeve sleeved on the rotating rod and a cutting piece installed on the movable sleeve; the induction wire stripping machine further includes a first transmission component installed on the rotating rod, a second transmission component installed on the movable sleeve, a driving component installed on the frame for driving the first transmission component and the second transmission component to move, and a buffer component installed on the frame; the driving component drives the first transmission component and the second transmission component to drive the rotating rod and the movable sleeve to move, so that the fixing piece fixes the cable, and the cutting piece cuts into the insulator of the cable and strips the insulator on the cable; there are two rotating rods, and the two rotating rods are arranged side by side on the frame.
2. The induction wire stripping machine according to claim 1, characterized in that, There are also two movable sleeves, and the two movable sleeves are respectively sleeved on the two rotating rods.
3. The induction wire stripping machine according to claim 2, wherein The driving component includes an induction piece installed on the frame, a push rod installed on the frame, a first push cone installed on the push rod, a second push cone installed on the push rod, a wire retreating tube installed on the push rod, and a connecting plate installed on the wire retreating tube; the moving direction of the wire retreating tube is set to be opposite to the moving direction of the push rod.
4. The induction wire stripping machine according to claim 3, wherein, The movable sleeve is rotatably installed on the connecting plate; the driving component further includes a first air pipe; the push rod and the wire retreating tube are connected through the first air pipe; the induction piece is arranged to be inductively connected to the push rod.
5. The induction wire stripping machine according to claim 3, characterized in that, The induction piece includes an induction tube installed on the connecting plate and a second air pipe respectively connected to the induction tube and the push rod; the induction tube is arranged to be connected to the push rod through the second air pipe; the free end of the induction tube is arranged at the same level as the fixing piece and the cutting piece.
6. The induction wire stripping machine according to claim 1, wherein, The buffer component includes a positioning rod installed on the frame, a limiting plate installed on the positioning rod, a limiting chute arranged on the limiting plate, and a buffer block slidably arranged on the limiting chute; the buffer block is installed on the driving component.
7. The induction wire stripping machine according to claim 1, wherein, The induction wire stripping machine further includes a power source component; the power source component includes an air inflator arranged on the frame, a third air pipe, an induction hole arranged on the air inflator, and a stopper block arranged on the driving component; the air inflator and the driving component are connected through the third air pipe.
8. The induction wire stripping machine according to claim 1, wherein, The first transmission component includes a first swing arm, a second swing arm installed on the rotating rod, a first connecting spring installed between the first swing arm and the second swing arm, a first push ring installed on the first swing arm, and a second push ring installed on the second swing arm.
9. The induction wire stripping machine according to claim 1, characterized in that, The second transmission assembly includes a fixed bracket mounted on the frame, a first swing plate rotatably mounted on the fixed bracket, a second swing plate, a second connecting spring mounted between the first swing plate and the second swing plate, a first swing ring mounted on the first swing plate, a second swing ring mounted on the second swing plate, a third swing arm and a fourth swing arm mounted on the movable sleeve, a third connecting spring mounted between the third swing arm and the fourth swing arm, a third pushing ring mounted on the third swing arm, and a fourth pushing ring mounted on the fourth swing arm.
10. The induction wire stripping machine according to claim 9, characterized in that, The first swing ring and the second swing ring are arranged to abut against the drive assembly; the third pushing ring and the fourth pushing ring are arranged to abut against the free ends of the first swing plate and the second swing plate.