A cable stripping device with core wire damage early warning function
By introducing a synchronous drive and current detection mechanism into the cable stripping device, real-time early warning of core wire damage is achieved, solving the problem that existing technologies cannot detect damage in real time, improving stripping efficiency and reducing production costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- INNER MONGOLIA JINGCHENG CABLE CO LTD
- Filing Date
- 2026-03-06
- Publication Date
- 2026-06-02
AI Technical Summary
Existing cable stripping devices lack effective core wire damage detection and early warning mechanisms, which means that operators can only conduct manual visual inspections after stripping, resulting in low efficiency and an inability to detect damage in real time. This can easily lead to batches of cables needing to be reworked, increasing production costs.
A cable stripping device with core wire damage early warning function was designed. Real-time detection is achieved through a synchronous drive mechanism and a current detection mechanism. The current detection mechanism issues an early warning signal when the core wire is damaged, and the operator can stop the machine and adjust the equipment in time.
It enables real-time early warning of core wire damage, reduces cable rework, lowers production losses, and improves the efficiency and consistency of the wire stripping process.
Smart Images

Figure CN122136733A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of cable processing equipment technology, and more specifically, to a cable stripping device with a core wire damage early warning function. Background Technology
[0002] Cable stripping is a fundamental and crucial process in cable production, maintenance, and subsequent processing. Its purpose is to remove the outer insulation layer, exposing the internal core wires for subsequent connection and testing. Currently, most cable stripping devices on the market use mechanical cutting methods, cutting and stripping the cable insulation layer with a cutting blade. However, in actual operation, due to factors such as differences in cable specifications, improper cutting blade position adjustment, and equipment operation deviations, the cutting blade can easily over-cut, damaging the internal core wires. Once the core wires are damaged, it not only affects the cable's conductivity and mechanical strength but may also lead to short circuits, open circuits, and other faults during subsequent use, and in severe cases, even pose safety hazards.
[0003] Existing wire stripping devices generally lack effective core wire damage detection and early warning mechanisms. Operators can only check whether the core wire is damaged by visual inspection after stripping. This method is inefficient, subjective, and cannot detect damage in real time during the stripping process. This can easily lead to batches of cables needing to be reworked, increasing production costs.
[0004] Therefore, providing a cable stripping device with a core wire damage early warning function that can detect core wire damage in a timely manner is a problem that this invention urgently needs to solve. Summary of the Invention
[0005] To address the aforementioned technical problems, the purpose of this invention is to overcome the common lack of effective core wire damage detection and early warning mechanisms in existing wire stripping devices. Operators can only visually inspect the core wires for damage after stripping, which is inefficient, subjective, and unable to detect damage in real time during the stripping process. This often results in batches of cables needing to be reworked, increasing production costs. Therefore, this invention provides a cable stripping device with a core wire damage early warning function that can promptly detect core wire damage.
[0006] To achieve the above objectives, the present invention provides a cable stripping device with a core wire damage early warning function, comprising: a workbench, wherein a plurality of cable clamping mechanisms are spaced apart on the workbench, and a stripping mechanism is respectively provided on one side of each cable clamping mechanism; a synchronous drive mechanism, wherein the synchronous drive mechanism is disposed below the workbench for driving each stripping mechanism to move synchronously; and a current detection mechanism, wherein a current detection mechanism is respectively provided on one side of each stripping mechanism for detecting whether the cable core wire has been damaged by the stripping mechanism.
[0007] Preferably, the wire stripping mechanism includes: a mounting plate, with a mounting plate corresponding to one side of each cable clamping mechanism; a first driving assembly and a first sliding table, the first sliding table being slidably mounted on the mounting plate in a horizontal direction via the first driving assembly; a first connecting rod, with first connecting rods rotatably mounted on opposite sides of the first sliding table, each first connecting rod having a cutting blade mounted on one end near the cable clamping mechanism; a second sliding table, the second sliding table being slidably mounted on the first sliding table in a horizontal direction via a synchronous driving mechanism; and a second connecting rod, with second connecting rods rotatably mounted on opposite sides of the second sliding table, each second connecting rod having one end hinged to the second sliding table and the other end hinged to the end of the first connecting rod away from the cutting blade.
[0008] Preferably, the first drive component is a linear drive cylinder.
[0009] Preferably, a positioning clamping block with a "V"-shaped opening is also provided on one side of the cutting blade.
[0010] Preferably, the cable clamping mechanism is a pneumatic clamping mechanism.
[0011] Preferably, the synchronous drive mechanism includes: a transmission rod, which is horizontally arranged on one side of the second sliding table, and a snap-fit bearing is provided at the end of the transmission rod away from the second sliding table; a third connecting rod, which is rotatably arranged on the side of the worktable away from the cable clamping mechanism, corresponding to each snap-fit bearing, and each third connecting rod has a strip-shaped slot at its upper end corresponding to each snap-fit bearing; and a second drive assembly, which is provided on one side of each third connecting rod to drive its rotation.
[0012] Preferably, the second driving assembly includes: a third sliding table, wherein a third sliding table is provided on one side of the lower end of each third link, which is reciprocally movable in the horizontal direction, and the lower end of the third link is hinged to the third sliding table; a rotating shaft and a rotary driver, wherein the rotating shaft is rotatably disposed on one side of the third sliding table via the rotary driver; and driving cams, wherein a plurality of driving cams corresponding one-to-one with each third sliding table are provided on the rotating shaft, each driving cam having a groove recessed along its edge, and each third sliding table having a locking post adapted to the groove on the side near the driving cam.
[0013] Preferably, the current detection mechanism includes: an ammeter, with an ammeter provided on one side of each wire stripping mechanism, and an electrode post provided on one side of each cutting blade, with each electrode post connected to the positive and negative terminals of the ammeter via a wire.
[0014] Preferably, each wire stripping mechanism is provided with a corresponding waste discharge chute below it.
[0015] According to the above technical solution, the beneficial effects of this invention compared with the prior art are as follows: This application uses a robotic arm, manual labor, or other means to place the cable one by one on each cable clamping mechanism, then controls each cable clamping mechanism to fix the cable, and sets the end of the cable to be stripped at the stripping mechanism. Then, the synchronous drive mechanism is started to drive each stripping mechanism to strip the cable. At the same time, the current detection mechanism detects whether the cable core wire is damaged by the stripping mechanism. Once damage to the cable core wire is detected, the industrial control computer immediately controls the warning light of the corresponding workstation to light up, and at the same time, the buzzer sounds to issue a warning signal. After receiving the warning, the operator stops the machine in time, adjusts the stripping mechanism, and then restarts the equipment to continue the stripping operation. By providing real-time warning of core wire damage, precise loss prevention is achieved, reducing losses and preventing the rework of batch cables.
[0016] Other features and advantages of the present invention will be described in detail in the following detailed description section; and all parts not covered in the present invention are the same as or can be implemented using the prior art. Attached Figure Description
[0017] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used together with the following detailed description to explain the invention, but do not constitute a limitation thereof. In the drawings: Figure 1 This is a perspective view of a cable stripping device with core wire damage early warning function provided in a preferred embodiment of the present invention; Figure 2 This is a partial cutting three-dimensional cable stripping device with core wire damage early warning function provided in a preferred embodiment of the present invention. Figure 1 ; Figure 3 This is a partial cutting three-dimensional cable stripping device with core wire damage early warning function provided in a preferred embodiment of the present invention. Figure 2 ; Figure 4 yes Figure 3 Enlarged view of point A in the middle; Figure 5 This is a partial cutting three-dimensional cable stripping device with core wire damage early warning function provided in a preferred embodiment of the present invention. Figure 3 ; Figure 6 This is a partial cutting three-dimensional cable stripping device with core wire damage early warning function provided in a preferred embodiment of the present invention. Figure 4 .
[0018] Explanation of reference numerals in the attached drawings: 1. Workbench; 11. Waste discharge chute; 2. Cable clamping mechanism; 3. Wire stripping mechanism; 31. Mounting plate; 32. First drive assembly; 33. First sliding table; 34. First connecting rod; 341. Cutting blade; 342. Positioning clamping block; 35. Second sliding table; 36. Second connecting rod; 4. Synchronous drive mechanism; 41. Transmission rod; 42. Snap-fit bearing; 43. Third connecting rod; 431. Strip-shaped slot; 44. Second drive assembly; 441. Third sliding table; 4411. Snap-fit post; 442. Rotating shaft; 443. Rotary driver; 444. Drive cam; 4441. Slot; 5. Current detection mechanism; 51. Ammeter; 52. Electrode post. Detailed Implementation
[0019] The specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are for illustration and explanation only and are not intended to limit the present invention.
[0020] In the description of the embodiments of this invention, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," indicating orientation or positional relationships, are based on the orientation or positional relationships shown in the accompanying drawings, or the orientation or positional relationships commonly used when the product is in use. These are merely for the convenience of describing the invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the invention. Furthermore, the terms "first," "second," and "third," etc., are only used for distinguishing descriptions and should not be construed as indicating or implying relative importance. Additionally, the terms "horizontal," "vertical," and "suspended," etc., do not indicate that the component is required to be absolutely horizontal or suspended, but can be slightly tilted. For example, "horizontal" simply means that its direction is more horizontal than "vertical," and does not mean that the structure must be completely horizontal, but can be slightly tilted.
[0021] In the description of the embodiments of the present invention, it should also be noted that, unless otherwise explicitly specified and limited, the terms "set," "install," "connect," and "link" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in the present invention according to the specific circumstances.
[0022] To further understand the features, technical means, and specific objectives and functions achieved by the present invention, the present invention will be described in further detail below with reference to the accompanying drawings and specific embodiments.
[0023] Reference Figure 1 A cable stripping device with a core wire damage early warning function includes: a workbench 1, on which a plurality of cable clamping mechanisms 2 are arranged at intervals, and a stripping mechanism 3 is arranged on one side of each cable clamping mechanism 2; a synchronous drive mechanism 4, which is arranged below the workbench 1 to drive each stripping mechanism 3 to move synchronously; and a current detection mechanism 5, on one side of each stripping mechanism 3, which is used to detect whether the cable core wire is damaged by the stripping mechanism 3.
[0024] This application uses a robotic arm, manual labor, or other methods to place the cables one by one onto each cable clamping mechanism 2. Then, each cable clamping mechanism 2 is controlled to fix the cable, with the end of the cable to be stripped positioned at the stripping mechanism 3. A synchronous drive mechanism 4 is then activated to drive each stripping mechanism 3 to strip the cable. Simultaneously, a current detection mechanism 5 detects whether the cable core wires have been damaged by the stripping mechanism 3. Once damage to the cable core wires is detected, the industrial control computer immediately controls the warning light at the corresponding workstation to illuminate, and a buzzer sounds, issuing a warning signal. Upon receiving the warning, the operator promptly stops the machine, adjusts the stripping mechanism 3, and then restarts the equipment to continue the stripping operation. By providing real-time warnings of core wire damage, precise loss prevention is achieved, reducing losses and preventing the need for rework of batches of cables.
[0025] Reference Figures 2-4 The wire stripping mechanism 3 includes: a mounting plate 31, with a mounting plate 31 corresponding to one side of each cable clamping mechanism 2; a first driving assembly 32 and a first sliding table 33, the first sliding table 33 being slidably mounted on the mounting plate 31 in the horizontal direction via the first driving assembly 32; a first connecting rod 34, the first sliding table 33 being rotatably mounted on opposite sides of the first connecting rod 34, each first connecting rod 34 having a cutting blade 341 mounted on one end near the cable clamping mechanism 2; a second sliding table 35, the second sliding table 35 being slidably mounted on the first sliding table 33 in the horizontal direction via a synchronous driving mechanism 4; and a second connecting rod 36, the second sliding table 35 being rotatably mounted on opposite sides of the second connecting rod 35, each second connecting rod 36 having one end hinged to the second sliding table and the other end hinged to the end of the first connecting rod 34 away from the cutting blade 341.
[0026] This application controls the synchronous drive mechanism 4 to move the second sliding table 35 toward the cable clamping mechanism 2, and then drives the first link 34 to rotate through the second link 36, thereby causing the cutting blades 341 of each first link 34 to move closer to each other, thus achieving the cutting of the outer layer of the cable. Then the first drive assembly 32 drives the first sliding table 33 away from the cable clamping mechanism 2, thereby peeling the cut outer layer of the cable from the cable core wire, thus realizing the wire stripping operation. The wire stripping process adopts a step-by-step design of "cut first, then strip", with clear operation logic and high efficiency.
[0027] Reference Figure 2 The first drive component 32 is specifically a linear drive cylinder.
[0028] All linear drive cylinders in this application are uniformly controlled by the same air supply system, which can ensure that the first drive components 32 of each station operate synchronously. That is, the first sliding tables 33 of all wire stripping mechanisms 3 move away from or towards the cable clamping mechanism 2 synchronously, realizing synchronous stripping of the insulation layer at multiple stations. This works in conjunction with the synchronous cutting action of the second sliding table 35 to ensure that all stations "cut synchronously and strip synchronously", avoiding delayed or incomplete stripping at some stations, further improving the consistency of wire stripping at multiple stations, and adapting to large-scale mass production.
[0029] Reference Figure 4 The cutting blade 341 is also provided with a positioning clamping block 342 with an opening in the shape of a "V" on one side.
[0030] The positioning clamping block 342 of this application adopts a "V"-shaped opening design. Its opening angle can fit the shape of cables with different diameters. Regardless of the cable diameter, the V-shaped surface can guide the cable to achieve precise positioning, ensuring that the cutting blade 341 is aligned with the part of the cable to be stripped, avoiding cutting misalignment and core wire damage caused by cable deviation. Specifically, before the cutting blade 341 approaches the cable for cutting, the V-shaped clamping block will first perform auxiliary clamping and positioning of the cable, forming a "double fixation" with the cable clamping mechanism 2, effectively preventing the cable from shaking, rotating or axially displacing during the stripping process. The cutting blade 341 can adjust its position according to the thickness of the cable's outer layer and is detachably set on one side of the positioning clamping block 342. Specifically, the extension length of the cutting blade 341 is adjusted to adapt to the thickness of the cable's outer layer.
[0031] Reference Figure 5 The cable clamping mechanism 2 is specifically a pneumatic clamping mechanism.
[0032] All pneumatic clamping mechanisms in this application are supplied with air and controlled by the same air supply system, ensuring that the clamping actions at each station start and complete synchronously. Specifically, compressed air is supplied to the pneumatic cylinders at all stations through the same air supply system. The cylinder piston rod is in the initial extended state, and the clamping arms are in the open position to facilitate cable insertion. Once the cable is in place, the control system switches the air supply path, the cylinder piston rod retracts, and the linkage transmission mechanism moves. The linkage drives the clamping arms on both sides to rotate towards the cable through the rotation of the hinge point, gradually closing and fitting against the cable surface, thereby achieving cable clamping. This pneumatic clamping mechanism is existing technology and can also be replaced by other existing cable clamping mechanisms 2, which will not be described in detail here.
[0033] Reference Figure 2 and Figure 3 The synchronous drive mechanism 4 includes: a transmission rod 41, which is horizontally arranged on one side of the second sliding table 35, and a snap-fit bearing 42 is provided at the end of the transmission rod 41 away from the second sliding table 35; a third connecting rod 43, which is rotatably arranged on the side of the worktable 1 away from the cable clamping mechanism 2, corresponding to each snap-fit bearing 42, and a strip-shaped slot 431 corresponding to each snap-fit bearing 42 is provided at the upper end of each third connecting rod 43; and a second drive assembly 44, which is provided on one side of each third connecting rod 43 to drive its rotation.
[0034] Reference Figure 3 , Figure 5 and Figure 6 The second drive assembly 44 includes: a third sliding table 441, on one side of the lower end of each third link 43, a third sliding table 441 is provided that can reciprocate horizontally, and the lower end of the third link 43 is hinged to the third sliding table 441; a rotating shaft 442 and a rotary driver 443, the rotating shaft 442 is rotatably disposed on one side of the third sliding table 441 through the rotary driver 443; and a drive cam 444, on the rotating shaft 442, a plurality of drive cams 444 corresponding one-to-one with each third sliding table 441 are provided at intervals, each drive cam 444 is provided with a groove 4441 recessed along its edge, and each third sliding table 441 is provided with a locking post 4411 adapted to the groove 4441 on the side near the drive cam 444.
[0035] This application controls the rotary driver 443 to drive the rotating shaft 442 to rotate. Due to the cooperation between the slot 4441 and the locking post 4411, each drive cam 444 drives each third sliding table 441 to slide back and forth during rotation, thereby driving the third connecting rod 43 to rotate. Due to the cooperation between the strip slot 431 and the locking bearing 42, each third connecting rod 43, while rotating, also drives the second sliding table 35 to slide back and forth through the transmission rod 41. Then, through the cooperation of the second connecting rod 36 and the first connecting rod 34, the positioning clamping block 342 and the cutting blade 341 are brought closer to each other to achieve the positioning of the outer layer of the cable. Cutting; Drive cams 444, each corresponding to a station, are spaced apart on the rotating shaft 442. When the rotating driver 443 drives the rotating shaft 442, all drive cams 444 rotate synchronously. Through the cooperation of the slot 4441 and the locking post 4411, the third sliding table 441, the third connecting rod 43, and the second sliding table 35 of each station move synchronously. This design ensures that the cutting blades 341 and the positioning clamping blocks 342 of all stations open and close synchronously and cut synchronously, completely avoiding the problem of "overcutting in some stations and undercutting in some stations" that occurs when stripping wires in multiple stations, and greatly improving the consistency and quality of batch stripping.
[0036] Reference Figure 3 and Figure 4 The current detection mechanism 5 includes: an ammeter 51, an ammeter 51 is provided on one side of each wire stripping mechanism 3, and an electrode post 52 is provided on one side of each cutting blade 341. Each electrode post 52 is connected to the positive and negative terminals of the ammeter 51 through a wire.
[0037] This application allows for the installation of a retractable cable organizer to organize the conductors, preventing them from interfering with the normal operation of the wire stripper. The ammeter 51 has a built-in warning light and buzzer, connected to an industrial control computer, providing timely alerts to operators. The electrode posts 52 are directly mounted on the cutting blade 341. When the cutting blade 341 excessively cuts into the cable core, the two electrode posts 52 form a complete current loop through the conductive core, causing the ammeter 51 to immediately generate a reading and trigger an alarm. This detection process is delay-free and completely eliminates the drawbacks of traditional wire stripping devices that rely on manual post-processing inspections. It issues an alarm the instant the core is touched, preventing the cutting blade 341 from continuously damaging the core and minimizing cable rework and production losses. The retractable cable organizer has a built-in coil spring that automatically retracts and expands with the wire stripping mechanism 3, preventing conductor tangling.
[0038] Reference Figure 1 Each wire stripping mechanism 3 has a corresponding waste discharge chute 11 below it.
[0039] The waste discharge chute 11 of this application is typically designed with an inclination, which allows the insulation waste generated during wire stripping to slide automatically out of the working area using gravity, without the need for additional power or manual intervention, thus preventing waste from accumulating on the workbench 1 and affecting the normal operation of the wire stripping mechanism 3.
[0040] The specific workflow is as follows: 1. Using a robotic arm, manual labor, or other suitable methods, place the cables to be stripped one by one into each cable clamping mechanism 2 on the workbench 1, ensuring that the end of each cable to be stripped extends between the V-shaped positioning clamping block 342 and the cutting blade 341 of the corresponding stripping mechanism 3, and that the cable body is neatly arranged without twisting or offset; at the same time, confirm that the cable placement position meets the stripping requirements, and avoid the end to be stripped being too long or too short. 2. The control system issues a command to control the same air supply system to supply air synchronously to the pneumatic clamping mechanism of all workstations and start the clamping action: the piston rod of the pneumatic cylinder retracts from the initial extended state, driving the linkage transmission mechanism to move. The linkage rotates through the hinge point, driving the clamping arms on both sides to retract towards the cable until the clamping arms are in contact with the surface of the cable, and firmly clamping the cable. 3. The rotary driver 443 of the synchronous drive mechanism 4 drives the rotating shaft 442 to rotate at a constant speed, and all the drive cams 444 on the rotating shaft 442 rotate synchronously. The slots 4441 on the edge of the drive cams 444 cooperate with the locking pins 4411 of the third sliding table 441, driving the third sliding table 441 of each station to slide synchronously back and forth, thereby driving the third connecting rod 43 to rotate around the hinge point of the worktable 1. The strip slot 431 at the upper end of the third connecting rod 43 cooperates with the locking bearing 42 at one end of the transmission rod 41, driving the transmission rod 41 and the second sliding table 35 to move synchronously towards the cable clamping mechanism 2. When the second sliding table 35 moves, the second connecting rods 36 on both sides drive the first connecting rods 34 on both sides of the first sliding table 33 to rotate synchronously, thereby driving the two cutting blades 341 to move closer to each other. The V-shaped positioning clamping block 342 first assists in positioning the cable, and then the cutting blades 341 accurately cut into the outer layer of the cable to complete the synchronous cutting. At this time, the rotary driver 443 stops driving the rotating shaft 442 to rotate. 4. After cutting, the control system controls the same air supply system to drive all the first drive components 32 to move synchronously, driving the first sliding table 33 of each station to slide horizontally along the mounting plate 31 away from the cable clamping mechanism 2. When the first sliding table 33 moves, it drives the cutting blade 341 and the cut outer side of the cable to move synchronously, completely stripping the outer layer of the cable from the cable core wire, completing the stripping operation. At this time, the rotary driver 443 drives the rotating shaft 442 to continue to rotate until the cutting blade 341 and the positioning clamping block 342 release the outer layer of the cable. At this time, the outer layer of the cable falls into the waste discharge slide 11 and is discharged. During the reciprocating movement of the stripping mechanism 3, the coil spring built into the winding cable organizer automatically extends and retracts to organize the wires connecting the electrode post 52 and the ammeter 51, avoiding the wires from getting tangled or pulled, and not interfering with the normal operation of the stripping mechanism 3. 5. Throughout the wire stripping process, the current detection mechanism 5 operates continuously: the electrode posts 52 are directly mounted on the cutting blade 341 and connected to the positive and negative terminals of the ammeter 51 via wires. When the cutting blade 341 overcuts and touches the cable core, the two electrode posts 52 form a complete current loop through the conductive core, and the ammeter 51 immediately generates a reading. The warning light built into the ammeter 51 illuminates, the buzzer sounds, and a warning signal is transmitted to the industrial control computer. The industrial control computer records the warning position, warning time, and other information to promptly remind the operator. Upon receiving the warning signal, the operator immediately stops the machine, accurately locates the faulty position based on the warning information recorded by the industrial control computer, and adjusts the wire stripping mechanism 3 at the faulty position. Specifically, the operator fine-tunes the extension length of the cutting blade 341 to correct the position of the cutting blade 341, preventing the cutting blade 341 from overcutting the core again. The operator then checks the current detection mechanism 5 at that position. After confirming that there are no abnormalities, the equipment is restarted, and the wire stripping operation continues.
[0041] The entire device is coordinated and controlled by an industrial control computer. The air supply system and the winding cable organizer are existing technologies and are not shown in the figure.
[0042] The preferred embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the specific details of the above embodiments. Within the scope of the technical concept of the present invention, various simple modifications can be made to the technical solution of the present invention, and these simple modifications all fall within the protection scope of the present invention.
[0043] It should also be noted that the various specific technical features described in the above specific embodiments can be combined in any suitable manner without contradiction. In order to avoid unnecessary repetition, the present invention will not describe the various possible combinations separately.
[0044] Furthermore, various different embodiments of the present invention can be combined in any way, as long as they do not violate the spirit of the present invention, they should also be regarded as the content disclosed by the present invention.
Claims
1. A cable stripping device with core wire damage early warning function, characterized in that, include: Workbench (1), on which several cable clamping mechanisms (2) are arranged at intervals, and each cable clamping mechanism (2) is provided with a wire stripping mechanism (3) on one side respectively. A synchronous drive mechanism (4) is provided below the workbench (1) to drive each wire stripping mechanism (3) to move synchronously. A current detection mechanism (5) is provided on one side of each wire stripping mechanism (3). The current detection mechanism (5) is used to detect whether the cable core wire is damaged by the wire stripping mechanism (3).
2. The cable stripping device with core wire damage early warning function according to claim 1, characterized in that, The wire stripping mechanism (3) includes: Mounting plate (31), each cable clamping mechanism (2) is provided with a mounting plate (31) on one side respectively; The first drive assembly (32) and the first sliding stage (33) are mounted on the mounting plate (31) in a horizontal direction via the first drive assembly (32). The first link (34) is rotatably provided on both sides of the first sliding table (33), and a cutting blade (341) is provided on one end of each first link (34) near the cable clamping mechanism (2). The second sliding table (35) is mounted on the first sliding table (33) and can be reciprocated in the horizontal direction by means of the synchronous drive mechanism (4); The second link (36) is rotatably provided on both sides of the second sliding table (35). One end of each second link (36) is hinged to the second sliding table, and the other end is hinged to the end of the first link (34) away from the cutting blade (341).
3. A cable stripping device with core wire damage early warning function according to claim 2, characterized in that, The first drive component (32) is specifically a linear drive cylinder.
4. A cable stripping device with core wire damage early warning function according to claim 2, characterized in that, The cutting blade (341) is also provided with a positioning clamping block (342) with an opening in the shape of a "V".
5. A cable stripping device with core wire damage early warning function according to claim 1, characterized in that, The cable clamping mechanism (2) is specifically a pneumatic clamping mechanism.
6. A cable stripping device with core wire damage early warning function according to claim 2, characterized in that, The synchronous drive mechanism (4) includes: A transmission rod (41) is horizontally arranged on one side of the second sliding table (35), and a snap-fit bearing (42) is provided at the end of the transmission rod (41) away from the second sliding table (35). The third link (43) is provided on the side of the workbench (1) away from the cable clamping mechanism (2) and is rotatably provided with several third links (43) corresponding to each snap-fit bearing (42). Each third link (43) has a strip groove (431) at its upper end that corresponds to each snap-fit bearing (42). The second drive assembly (44) is provided on one side of each third link (43) for driving its rotation.
7. A cable stripping device with core wire damage early warning function according to claim 6, characterized in that, The second driving component (44) includes: The third sliding table (441) is provided on one side of the lower end of each third link (43) in a horizontal direction. The lower end of the third link (43) is hinged to the third sliding table (441). A rotating shaft (442) and a rotary driver (443) are provided, wherein the rotating shaft (442) is rotatably mounted on one side of the third sliding table (441) via the rotary driver (443); The rotating shaft (442) is provided with a number of drive cams (444) that correspond one-to-one with each third sliding table (441). Each drive cam (444) has a groove (4441) recessed along its edge. Each third sliding table (441) has a locking post (4411) adapted to the groove (4441) on the side near the drive cam (444).
8. A cable stripping device with core wire damage early warning function according to claim 2, characterized in that, The current detection mechanism (5) includes: An ammeter (51) is provided on one side of each wire stripping mechanism (3), and an electrode post (52) is provided on one side of each cutting blade (341). Each electrode post (52) is connected to the positive and negative terminals of the ammeter (51) through a wire.
9. A cable stripping device with core wire damage early warning function according to claim 1, characterized in that, Each wire stripping mechanism (3) has a corresponding waste discharge chute (11) below it.