A wire core sheath stripping device for data line production

By designing a wire core stripping device for data cable production, which automatically removes the insulation from both ends of the data cable using a lifting frame and stripping mechanism, the problems of low efficiency and inconsistent length in the existing technology are solved, thereby improving production efficiency and automation.

CN117039585BActive Publication Date: 2026-06-19JINING AVOVE ELECTRONICS TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-09-20
Publication Date
2026-06-19

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Abstract

This invention relates to the field of data cable processing technology, and discloses a device for stripping the outer sheath of data cable cores. The device includes a support base, an electric slide rail, a mounting frame, a lifting frame, a sliding clamping frame, and a return spring. The support base and the mounting frame are fixedly connected, and an electric slide rail is fixedly connected between them. The lifting frame slides on the electric slide rail, and the sliding clamping frame slides inside the lifting frame. A return spring is provided between the sliding clamping frame and the lifting frame. This device can clamp the data cable from the middle, and then use the power generated by the descent of the lifting frame to drive the stripping mechanism, causing the stripping mechanism to remove the insulation from both ends of the data cable, thus achieving the function of automatically stripping the insulation from both ends of the data cable.
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Description

Technical Field

[0001] This invention relates to the field of data cable processing technology, and in particular to a device for stripping the outer sheath of the wire core for data cable production. Background Technology

[0002] A data cable is used to connect mobile devices and computers to achieve data transfer or communication. In simple terms, it is a communication tool that connects computers and mobile devices to transfer files such as videos, ringtones, and pictures.

[0003] During the production of data cables, the insulation covering both ends needs to be removed to install connectors. In existing technology, the insulation removal at the ends of data cables is generally done by workers in conjunction with stripping equipment. During stripping, the worker holds the data cable and places it into the stripping equipment, which then strips the insulation from one end of the data cable. The other end of the data cable is then stripped using the same equipment. The length of the data cable placed manually may vary each time, making it impossible to ensure that the length of insulation removed is the same each time. This has a certain impact on the subsequent connector installation. Moreover, the stripping equipment cannot process both ends of the data cable at the same time, resulting in slow stripping efficiency. After stripping, the removed insulation also needs to be manually cleaned, further affecting production efficiency. Summary of the Invention

[0004] To address the aforementioned issues, this invention presents a wire core sheath stripping device for data cable production, capable of simultaneously stripping the sheaths from both ends of the data cable.

[0005] A data cable core sheath stripping device for production includes a support base, an electric slide rail, a mounting frame, a lifting frame, a sliding clamping frame, a return spring, a locking component, and a stripping mechanism. The support base is fixedly connected to the mounting frame, and an electric slide rail is fixedly connected between the support base and the mounting frame. The lifting frame is slidably mounted on the electric slide rail, and the sliding clamping frame is slidably mounted inside the lifting frame. A return spring is provided between the sliding clamping frame and the lifting frame, with its two ends fixed to the sliding clamping frame and the lifting frame, respectively. The locking component is installed inside the lifting frame and is used to restrict the movement of the sliding clamping frame. The stripping mechanism is installed on the support base and is used to strip the insulation sheath from both ends of the data cable.

[0006] Optionally, the locking assembly includes a limiting block, a sliding block, and a locking spring. The limiting block is fixedly connected to the sliding clamp, and the sliding block is slidably connected to the lifting frame. A locking spring is connected between the sliding block and the lifting frame, and the two ends of the locking spring are fixed to the sliding block and the lifting frame, respectively.

[0007] Optionally, the peeling mechanism includes a sliding plate, a support frame, a waste recycling frame, an arc-shaped support plate, a wedge block, a sliding peeling frame, a connecting spring, and a peeling ring. The sliding plate is slidably mounted on the support base, the support frame is fixedly connected to the support base, the waste recycling frame is fixedly connected to the support frame, the arc-shaped support plate is fixedly connected to the waste recycling frame, the wedge block is fixedly connected to the lifting frame, the sliding peeling frame is slidably mounted on the sliding plate, a connecting spring is provided between the sliding peeling frame and the sliding plate, the two ends of the connecting spring are respectively fixed to the sliding peeling frame and the sliding plate, and a peeling ring is fixedly connected to the sliding peeling frame.

[0008] Optionally, the peeling mechanism also includes a wedge plate and a side push plate. The wedge plate is fixedly connected to the outside of the sliding plate, and the side push plate is fixedly connected to the lifting frame. A spring is also provided between the sliding plate and the supporting base frame.

[0009] Optionally, it also includes a storage frame, a tension spring, a vibrating motor, a vibrating shaft, and vibrating blocks. The storage frame is slidably connected to the mounting frame, and a tension spring is provided between the storage frame and the mounting frame. The two ends of the tension spring are fixed to the storage frame and the mounting frame, respectively. The vibrating motor is fixedly installed on the mounting frame, and the vibrating shaft is rotatably connected to the mounting frame. The output shaft of the vibrating motor is connected to the vibrating shaft, and vibrating blocks are fixedly connected to both ends of the vibrating shaft. When the vibrating shaft rotates, the vibrating blocks can contact the storage frame.

[0010] Optionally, it also includes a fixed push rod, a fixed inner push rod, a rotating feeding shaft, a feeding torsion spring, and a lever. A fixed push rod is fixedly connected to the lifting frame, and a fixed inner push rod is fixedly connected to the storage frame. A rotating feeding shaft is rotatably connected inside the storage frame. A feeding slot is provided on the rotating feeding shaft. A feeding torsion spring is provided between the rotating feeding shaft and the storage frame. The two ends of the feeding torsion spring are fixed to the storage frame and the rotating feeding shaft, respectively. A lever is fixedly connected to the rotating feeding shaft.

[0011] Optionally, it also includes a connecting plate, an unlocking frame, and a supporting spring. The connecting plate is fixedly connected to the sliding block, and the unlocking frame is slidably connected to the supporting base. A supporting spring is provided between the unlocking frame and the supporting base, and the two ends of the supporting spring are fixed to the unlocking frame and the supporting base, respectively.

[0012] Optionally, it also includes a straight push rod, a discharge shaft, a fixed push block, a discharge torsion spring, a swing plate, a sliding connecting rod, a moving frame, an electric push rod, and a clamping bar. The straight push rod is fixedly connected to the lifting frame, and the discharge shaft is rotatably connected to the support base. The fixed push block is fixedly connected to the discharge shaft. A discharge torsion spring is provided between the discharge shaft and the support base. The two ends of the discharge torsion spring are fixed to the discharge shaft and the support base, respectively. A swing plate is fixedly connected to the discharge shaft. A slotted hole is opened on the swing plate. A sliding connecting rod is slidably connected to the support base. A moving frame is fixedly connected to the sliding connecting rod. The moving frame is slidably connected in the slotted hole on the swing plate. An electric push rod is installed in the moving frame. The telescopic rod of the electric push rod passes through the moving frame and is fixedly connected to a clamping bar.

[0013] Optionally, the clamping strip is rigid, and the side of the clamping strip that contacts the data cable is relatively rough, so that the clamping strip can clamp the data cable.

[0014] Compared with the prior art, the present invention has the following advantages: 1. The device can clamp the data cable from the middle, and then use the power generated by the descent of the lifting frame to drive the stripping mechanism to run, so that the stripping mechanism can remove the insulation from both ends of the data cable, thus realizing the function of automatically stripping the insulation from both ends of the data cable.

[0015] 2. When the sliding clamp clamps the data cable, the sliding block can limit the position of the sliding clamp through the limiting block. When the lifting frame moves on the electric slide rail, the two sliding clamps always clamp the data cable, preventing the data cable from being pulled out by external force during stripping, thus realizing the function of limiting the position of the sliding clamp.

[0016] 3. When the lifting frame moves the sliding clamp and data cable through the middle of the two support frames, the two ends of the data cable are lifted upward by the arc-shaped support plate. At this time, the data cable is arc-shaped and its two ends extend beyond the arc-shaped support plate and tilt upward. Then, as the lifting frame continues to descend, it will push the sliding stripping frame to move through the wedge block. The stripping ring will move to the top of the arc-shaped support plate and cut off the insulation at both ends of the data cable. Then, as the lifting frame continues to descend, it will pull the data cable down from the arc-shaped support plate. The insulation at both ends of the data cable will remain on the stripping ring, realizing the function of automatically stripping the insulation at both ends of the data cable.

[0017] 4. As the lifting frame continues to descend, it will push the wedge plate and sliding plate to move via the side push plate. At this time, the sliding stripping frame and stripping ring will move with the stripped insulation. When the wedge block and the sliding stripping frame are no longer in contact, the sliding stripping frame will move away from each other, and the insulation on the stripping ring will fall into the waste recycling box, thus automatically sending the stripped insulation into the waste recycling box.

[0018] 5. Data cables stacked in the storage box may block the discharge position. When placing the data cables, you can start the shaking motor. The shaking motor will drive the shaking shaft and shaking block to rotate. With the help of the tension spring, the storage box can shake up and down to prevent the data cables from blocking the storage box.

[0019] 6. When the lifting frame rises, it can push the actuating rod and the rotating feeding shaft to rotate through the fixed push rod. When the rotating feeding shaft rotates, it will send out a data cable from the storage box through the feeding slot. Then, under the push of the fixed inner push rod, the two sliding clamping frames will clamp the data cable, realizing the function of automatically feeding and clamping the data cable.

[0020] 7. After the insulation at both ends of the data cable is stripped, the lifting frame continues to descend, and the unlocking frame will contact the connecting plate. The connecting plate will then push the sliding block to rise, thus releasing the data cable from the sliding clamp and allowing the data cable in the sliding clamp to be released automatically.

[0021] 8. During the descent of the lifting frame, the fixed push block and the discharge shaft can be rotated by the straight push rod. When the discharge shaft rotates, it can drive the moving frame to move closer to the lifting frame through the swing plate. During this process, the electric push rod can clamp the data cable through the clamping bar. Then, when the straight push rod disengages from the fixed push block, the discharge shaft can quickly push the moving frame back to its original position through the swing plate under the elastic force of the discharge torsion spring. During the resetting process, the electric push rod drives the clamping bar to disengage from the data cable. At this time, the data cable will fly out quickly due to inertia, realizing the function of automatically pulling out the processed data cable. Attached Figure Description

[0022] Figure 1 This is a schematic diagram of the overall structure of the present invention.

[0023] Figure 2 This is a schematic diagram of the lifting frame of the present invention.

[0024] Figure 3 This is an enlarged schematic diagram of the structure at point A in this invention.

[0025] Figure 4 This is a schematic diagram of the sliding clamping frame of the present invention.

[0026] Figure 5 This is a schematic diagram of the peeling mechanism of the present invention.

[0027] Figure 6 This is a schematic diagram of the sliding peeling frame of the present invention.

[0028] Figure 7 This is a schematic diagram of the structure of the storage frame in this invention.

[0029] Figure 8 This is a schematic diagram of the structure of the vibration motor in this invention.

[0030] Figure 9 This is a schematic diagram of the structure of the rotating feed shaft of the present invention.

[0031] Figure 10 This is a schematic diagram of the feeding slot of the present invention.

[0032] Figure 11 This is a schematic diagram of the unlocking mechanism of the present invention.

[0033] Figure 12 This is a schematic diagram of the structure of the discharge shaft of the present invention.

[0034] Figure 13 This is a schematic diagram of the structure of the mobile frame of the present invention.

[0035] The markings in the attached diagram are as follows: 1. Support base frame; 101. Sliding plate; 1011. Wedge plate; 102. Support frame; 1021. Waste recycling box; 1022. Arc-shaped support plate; 103. Electric slide rail; 104. Mounting frame; 2. Lifting frame; 2001. Side push plate; 201. Wedge block; 202. Fixed push rod; 203. Straight push rod; 204. Sliding clamping frame; 2041. Limiting block; 205. Return spring; 206. Sliding locking block; 207. Locking spring; 208. Connecting plate; 3. Sliding peeling frame; 30 1. Connecting spring; 302. Peeling ring; 4. Storage frame; 401. Tensioning spring; 402. Vibration motor; 403. Vibration shaft; 404. Vibration block; 405. Fixed inner push rod; 5. Rotating feed shaft; 5001. Feeding slot; 501. Feeding torsion spring; 502. Actuating rod; 6. Unlocking frame; 601. Supporting spring; 7. Discharge shaft; 701. Fixed push block; 702. Discharge torsion spring; 703. Swing plate; 704. Sliding connecting rod; 705. Moving frame; 706. Electric push rod; 707. Clamping bar. Implementation

[0036] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0037] Example 1: A wire core sheath stripping device for data cable production, such as... Figures 1-13As shown, the device includes a support base 1, an electric slide rail 103, a mounting bracket 104, a lifting frame 2, a sliding clamping frame 204, a return spring 205, a locking assembly, and a peeling mechanism. The support base 1 is fixedly connected to the mounting bracket 104, and the electric slide rail 103 is fixedly connected between the support base 1 and the mounting bracket 104. The lifting frame 2 is slidably mounted on the electric slide rail 103, and the electric slide rail 103 can control the up and down sliding of the lifting frame 2. Two sliding clamping frames 204 are slidably mounted inside the lifting frame 2. When the sliding clamp 204 contacts, a cylindrical hole can be formed in the middle. A return spring 205 is provided between the sliding clamp 204 and the lifting frame 2. The two ends of the return spring 205 are fixed on the sliding clamp 204 and the lifting frame 2 respectively. The return spring 205 is used to pull the sliding clamp 205 to move and reset. The locking component is installed in the lifting frame 2. The locking component is used to restrict the movement of the sliding clamp 204. The stripping mechanism is installed on the support base 1. The stripping mechanism is used to strip the insulation sheath at both ends of the data cable.

[0038] The data cable processed in this application is rigid yet has a certain degree of elasticity. During processing, the data cable can return to its original shape after being curved. Since it has been cut into equal lengths, both ends are straight when the data cable is clamped in the middle. During processing, the worker can manually place the data cable between two sliding clamps 204, then push the two sliding clamps 204 to clamp the data cable and stretch the return spring 205. At this time, the locking component automatically locks the two sliding clamps 204. Then, the electric slide rail 103 controls the lifting frame 2 to descend, and the data cable descends accordingly. During the descent, the lifting frame 2 contacts the stripping mechanism and pushes it to move. When the data cable reaches the stripping mechanism, the stripping mechanism can strip the insulation from both ends. The lifting frame 2 then continues to descend. When the lifting frame 2 reaches its lowest point, the locking component can be manually released and the data cable removed. Then, the electric slide rail 103 controls the lifting frame 2 to rise and reset, thus achieving the function of automatically stripping the insulation from both ends of the data cable.

[0039] Example 2: Based on Example 1, such as Figure 3 As shown, the locking assembly includes a limiting block 2041, a sliding block 206, and a locking spring 207. Two limiting blocks 2041 are symmetrically fixed to each sliding clamp 204. The limiting blocks 2041 have inclined surfaces. Two sliding blocks 206 are symmetrically slidably connected to the lifting frame 2. The sliding blocks 206 are U-shaped, and the space in the middle of the sliding blocks 206 is just enough to accommodate the two limiting blocks 2041. A locking spring 207 is connected between the sliding blocks 206 and the lifting frame 2. The two ends of the locking spring 207 are fixed to the sliding blocks 206 and the lifting frame 2, respectively. The locking spring 207 provides a downward elastic force to the sliding blocks 206.

[0040] When the two sliding clamps 204 move towards each other to clamp the data cable, the limiting block 2041 on the sliding clamp 204 will also move accordingly. During the movement, the limiting block 2041 will first push the sliding block 206 upward and compress the locking spring 207. When the sliding block 206 and the limiting block 2041 are no longer in contact, the two limiting blocks 2041 have moved to the inside of the sliding block 206. At this time, under the elastic force of the locking spring 207, the sliding block 206 slides down along the lifting frame 2 and blocks the limiting block 2041. The two sliding clamps 204 are simultaneously restricted and cannot move, thus realizing the function of locking the position of the sliding clamps 204.

[0041] like Figure 5 and Figure 6 As shown, the stripping mechanism includes a sliding plate 101, a support frame 102, a waste recycling frame 1021, an arc-shaped support plate 1022, a wedge block 201, a sliding stripping frame 3, a connecting spring 301, and a stripping ring 302. The sliding plate 101 is slidably mounted on the support base 1, with four sliding plates 101 located at the four corners of the support base 1. Support frames 102 are symmetrically fixed to the support base 1, and a waste recycling frame 1021 is fixed to each support frame 102. The waste recycling frame 1021 is used to hold the stripped insulation. An arc-shaped support plate 1022 is fixed to each waste recycling frame 1021. The inner surface of the plate 1022 is in contact with the outer wall of the data cable. A wedge block 201 is fixed on the lifting frame 2. There are 4 wedge blocks 201. A sliding stripping frame 3 is slidably installed on each sliding plate 101. The middle of the side of the sliding stripping frame 3 is provided with an inclined surface. The wedge block 201 can push the sliding stripping frame 3 to move when it contacts the inclined surface in the middle. A connecting spring 301 is provided between the sliding stripping frame 3 and the sliding plate 101. The two ends of the connecting spring 301 are fixed on the sliding stripping frame 3 and the sliding plate 101 respectively. A stripping ring 302 is fixed on the sliding stripping frame 3. When the two stripping rings 302 come into contact, they can cut off the insulation at the end of the data cable.

[0042] As the lifting frame 2 descends, the two sliding clamping brackets 204 clamp the data cable and descend accordingly. During the descent, both ends of the data cable will contact the corresponding arc-shaped support plate 1022. As the lifting frame 2 continues to descend, both ends of the data cable will be lifted upwards under the action of the arc-shaped support plate 1022. The wedge-shaped block 201 on the lifting frame 2 will contact the sliding stripping frame 3 during the descent and push it to slide along the sliding plate 101, while stretching the connecting spring 301. After being pushed, the sliding stripping frames 3 will move closer to each other, and the stripping rings 302 will move closer to each other accordingly. When the two ends of the data cable are tilted upwards under the support of the two arc-shaped support plates 1022, the stripping ring 302 can clamp the data cable near the end and cut off its outer insulation. At this time, the lifting frame 2 continues to descend, and the lifting frame 2 will pull the data cable down through the two arc-shaped support plates 1022. During the descent of the data cable, the stripping ring 302 will strip the insulation from both ends of the data cable. When the data cable is no longer in contact with the arc-shaped support plates 1022, the data cable will return to a straight state, thus realizing the function of stripping the insulation from both ends of the data cable.

[0043] like Figure 2 and Figure 5 As shown, the peeling mechanism also includes a wedge plate 1011 and a side push plate 2001. Each sliding plate 101 is fixedly connected to a wedge plate 1011. Four side push plates 2001 are symmetrically fixed to the lifting frame 2. When the lifting frame 2 descends, the wedge plate 1011 can be moved by the side push plate 2001. A spring is also provided between the sliding plate 101 and the supporting base frame 1.

[0044] After the insulation at both ends of the data cable is stripped by the stripping ring 302, the insulation will remain on the top of the stripping ring 302. As the lifting frame 2 continues to descend, it will push the wedge plate 1011 through the side push plate 2001, causing the sliding plate 101 to slide outward along the support base 1. At the same time, it will move the sliding stripping frame 3 and the stripping ring 302. The spring between the sliding plate 101 and the support base 1 will be stretched. When the stripping ring 302 moves to the top of the waste recycling box 1021, the wedge block 201 will disengage from the sliding stripping frame 3. At this time, under the elastic force of the connecting spring 301, the sliding stripping frame 3 will slide back to its original position along the sliding plate 101, and the stripping rings 302 will also move away from each other. At this time, the insulation on the stripping ring 302 will fall into the waste recycling box 1021. When the lifting frame 2 rises to its original position, under the action of the spring, the sliding plate 101 and its device will slide back to their original position along the support base 1, realizing the function of collecting waste.

[0045] Example 3: Based on Example 2, such as Figure 7 and Figure 8As shown, it also includes a storage frame 4, a tension spring 401, a vibration motor 402, a vibration shaft 403, and a vibration block 404. The storage frame 4 is slidably connected to the mounting frame 104. The storage frame 4 is used to store the data cable to be processed. Tension springs 401 are provided between both sides of the storage frame 4 and the mounting frame 104. The two ends of the tension springs 401 are fixed to the storage frame 4 and the mounting frame 104, respectively. The vibration motor 402 is fixedly mounted on the mounting frame 104. A vibrating shaft 403 is rotatably connected to the mounting bracket 104. The output shaft of the vibrating motor 402 is connected to the vibrating shaft 403. Vibrating blocks 404 are fixed to both ends of the vibrating shaft 403. The vibrating motor 402 can drive the vibrating blocks 404 to rotate through the vibrating shaft 403. When the vibrating shaft 403 rotates, the vibrating blocks 404 can contact the storage frame 4. The vibrating blocks 404 cooperate with the tension spring 401 to make the storage frame 4 slide up and down along the mounting bracket 104.

[0046] When the data cable to be stripped is placed into the storage box 4, the data cable will roll along the storage box 4. When conveying the data cable, the vibration motor 402 is started first. The vibration motor 402 drives the vibration shaft 403 and the vibration block 404 to rotate. When the vibration block 404 rotates, it pushes the storage box 4 to slide down along the mounting frame 104 and stretches the tension spring 401. When the vibration block 404 is out of contact with the storage box 4, the storage box 4 will slide up and reset under the elastic force of the tension spring 401. After the vibration motor 402 is started, the storage box 4 will continuously vibrate up and down along the mounting frame 104 to avoid the data cable in the storage box 4 from getting blocked, thus realizing the function of making the storage box 4 vibrate to avoid the data cable from getting blocked.

[0047] like Figure 2 , Figure 9 and Figure 10 As shown, it also includes a fixed push rod 202, a fixed inner push rod 405, a rotating feeding shaft 5, a feeding torsion spring 501, and a toggle rod 502. Two fixed push rods 202 are symmetrically fixed to the lifting frame 2, and two fixed inner push rods 405 are fixed to the storage frame 4. Both fixed inner push rods 405 can cooperate with the sliding clamping frame 204. A rotating feeding shaft 5 is rotatably connected inside the storage frame 4. The rotating feeding shaft 5 can block the outlet of the storage frame 4 to prevent the data cable from sliding down arbitrarily. The rotating feeding shaft 5 has openings... There is a feeding slot 5001, which can store one data cable. When the feeding shaft 5 rotates, the data cable can be fed downward through the feeding slot 5001, and only one cable is fed at a time. Feeding torsion springs 501 are provided on both sides of the rotating feeding shaft 5 and between the storage frame 4. The two ends of the feeding torsion springs 501 are fixed on the storage frame 4 and the rotating feeding shaft 5, respectively. A toggle rod 502 is fixed on the rotating feeding shaft 5. The fixed push rod 202 can push the rotating feeding shaft 5 to rotate through the toggle rod 502.

[0048] When the lifting frame 2 rises, the sliding block 206 has released the limiting block 2041, and the two sliding clamping frames 204 have moved away from each other. During the rising process of the lifting frame 2, the fixed push rod 202 will push the rotating feeding shaft 5 to rotate through the toggle rod 502 and cause the feeding torsion spring 501 to deform and store force. During the rotation of the rotating feeding shaft 5, a data cable will be sent downward through the feeding slot 5001. Then the lifting frame 2 continues to rise, and the two sliding clamping frames 204 will contact the corresponding fixed inner push rod 405. The fixed inner push rod 405 will push the sliding clamping frames 204 to move closer together and clamp the data cable in the storage box 4, realizing the function of automatically clamping the data cable from the discharge box.

[0049] like Figure 3 and Figure 11 As shown, it also includes a connecting plate 208, an unlocking bracket 6, and a support spring 601. A connecting plate 208 is fixedly connected to each sliding block 206. Two unlocking brackets 6 are symmetrically slidably connected to the support base 1. Each unlocking bracket 6 can contact the corresponding connecting plate 208. Two support springs 601 are provided between each unlocking bracket 6 and the support base 1. The elastic force of the support spring 601 is greater than the elastic force of the locking spring 207. The two ends of the support spring 601 are fixed to the unlocking bracket 6 and the support base 1, respectively. The support spring 601 pushes the connecting plate 208 and the sliding block 206 to slide upward along the lifting frame 2 through the unlocking bracket 6.

[0050] After the insulation at both ends of the data cable is stripped, the lifting frame 2 continues to descend. When the connecting plate 208 contacts the unlocking frame 6, the connecting plate 208 and the sliding block 206 will be pushed upward along the lifting frame 2 by the unlocking frame 6 because the elastic force of the supporting spring 601 is greater than that of the locking spring 207. When the sliding block 206 disengages from the limiting block 2041, under the elastic force of the reset spring 205, the two sliding clamping frames 204 will drive the corresponding limiting blocks 2041 to slide and reset, and release the data cable, thus realizing the function of automatically releasing the data cable.

[0051] like Figure 2 , Figure 12 and Figure 13As shown, it also includes a straight push rod 203, a discharge shaft 7, a fixed push block 701, a discharge torsion spring 702, a swing plate 703, a sliding connecting rod 704, a moving frame 705, an electric push rod 706, and a clamping bar 707. Two straight push rods 203 are fixedly connected to the lifting frame 2, and a discharge shaft 7 is rotatably connected to the supporting base frame 1. Two fixed push blocks 701 are fixedly connected to the discharge shaft 7. The straight push rods 203 can drive the discharge shaft 7 to rotate through the fixed push blocks 701. Discharge torsion springs 702 are provided on both sides of the discharge shaft 7 and between the discharge shaft 7 and the supporting base frame 1. When the discharge shaft 7 rotates, the discharge torsion springs 702 can store force. The two ends of the discharge torsion springs 702 are fixed to the discharge shaft 7 and the supporting base frame 1, respectively. Two swing plates 703 are fixedly connected to the discharge shaft 7. The swing plates 703 can move with the discharge. The rotating shaft 7 rotates, and each swing plate 703 has a slotted hole. Four sliding rods 704 are slidably connected to the support base 1. Two sliding rods 704 on the same vertical plane are fixed to a moving frame 705. Each moving frame 705 is slidably connected to the slotted hole on the corresponding swing plate 703. The swing plate 703 can drive the sliding rods 704 to slide along the support base 1 through the moving frame 705. Each moving frame 705 is equipped with an electric push rod 706. The telescopic rod of each electric push rod 706 passes through the corresponding moving frame 705 and is fixed to a clamping bar 707. The two electric push rods 706 can push the two clamping bars 707 to clamp the data cable from both sides. Then, when the discharge rotating shaft 7 rotates and resets, the data cable can be pulled out through the clamping bar 707.

[0052] During the descent of the lifting frame 2, the straight push rod 203 actuates the fixed push block 701, causing the discharge shaft 7 to rotate. The rotation of the discharge shaft 7 deforms the discharge torsion spring 702, storing energy. Furthermore, the rotation of the discharge shaft 7 drives the moving frame 705 via the swing plate 703. The sliding connecting rod 704 slides along the supporting base 1. When the straight push rod 203 is about to disengage from the fixed push block 701, the electric push rod 706 pushes the clamping bar 707 to clamp the data cable. At this moment, the sliding clamping frame 204 releases the data cable. When the straight push rod 203 disengages from the fixed push block 701, the discharge shaft 7 will quickly rotate and reset under the action of the discharge torsion spring 702. At the same time, the swing plate 703 drives the moving frame 705 to move and reset quickly. The electric push rod 706 drives the data cable to move through the clamping bar 707. When the moving frame 705 is about to reset, the electric push rod 706 retracts the clamping bar 707. Since the discharge shaft 7 and the swing plate 703 rotate and reset very quickly, the data cable will continue to fly outward due to inertia, realizing the automatic discharge function.

[0053] like Figure 12As shown, the clamping bar 707 is made of rigid material, and the side of the clamping bar 707 that contacts the data cable is relatively rough, so that the clamping bar 707 can clamp the data cable. When the electric push rod 706 pushes the clamping bar 707 to contact the data cable, the relatively rough side of the clamping bar 707 that contacts the data cable can increase the friction between the clamping bar 707 and the data cable, prevent the data cable from falling downwards, and realize the function of using the clamping bar 707 to hold the data cable.

[0054] The present application has been described in detail above. Specific examples have been used to illustrate the principles and implementation methods of the present application. The description of the above embodiments is only for the purpose of helping to understand the method and core ideas of the present application. At the same time, for those skilled in the art, there will be changes in the specific implementation methods and application scope based on the ideas of the present application. Therefore, the content of this specification should not be construed as a limitation of the present application.

Claims

1. A wire core sheath stripping device for data cable production, comprising a support base (1), an electric slide rail (103), and a mounting frame (104), wherein the support base (1) and the mounting frame (104) are fixedly connected, and an electric slide rail (103) is fixedly connected between the support base (1) and the mounting frame (104), characterized in that, It also includes a lifting frame (2), a sliding clamp (204), a return spring (205), a locking component and a stripping mechanism. The lifting frame (2) is slidably mounted on the electric slide rail (103). The sliding clamp (204) is slidably mounted inside the lifting frame (2). A return spring (205) is provided between the sliding clamp (204) and the lifting frame (2). The locking component is installed inside the lifting frame (2) and is used to restrict the movement of the sliding clamp (204). The stripping mechanism is installed on the support base (1) and is used to strip the insulation sheath at both ends of the data cable. The peeling mechanism includes a sliding plate (101), a support frame (102), a waste recycling frame (1021), an arc-shaped support plate (1022), a wedge block (201), a sliding peeling frame (3), a connecting spring (301), and a peeling ring (302). The sliding plate (101) is slidably mounted on the support base frame (1), the support frame (102) is fixedly connected to the support base frame (1), the waste recycling frame (1021) is fixedly connected to the support frame (1021), the arc-shaped support plate (1022) is fixedly connected to the waste recycling frame (1021), and a wedge block (201) is fixedly connected to the lifting frame (2). A sliding peeling frame (3) is slidably mounted on a sliding plate (101) and a connecting spring (301) is provided between the sliding peeling frame (3) and the sliding plate (101). A peeling ring (302) is fixedly connected to the sliding peeling frame (3). A wedge block (201) is fixedly connected to the lifting frame (2). There are 4 wedge blocks (201). A sliding peeling frame (3) is slidably mounted on each sliding plate (101). The sliding peeling frame (3) has an inclined surface in the middle of its side. The wedge block (201) can push the sliding peeling frame (3) to move when it contacts the inclined surface in the middle of the sliding peeling frame (3). The peeling mechanism also includes a wedge plate (1011) and a side push plate (2001). The wedge plate (1011) is fixedly connected to the outside of the sliding plate (101). The side push plate (2001) is fixedly connected to the lifting frame (2). A spring is also provided between the sliding plate (101) and the supporting base frame (1). Four side push plates (2001) are symmetrically fixedly connected to the lifting frame (2). When the lifting frame (2) descends, the wedge plate (1011) can be pushed to move by the side push plate (2001).

2. The data cable core sheath stripping device according to claim 1, characterized in that, The locking assembly includes a limiting block (2041), a sliding block (206), and a locking spring (207). The limiting block (2041) is fixedly connected to the sliding clamp (204), and the sliding block (206) is slidably connected to the lifting frame (2). The locking spring (207) is connected between the sliding block (206) and the lifting frame (2).

3. The data cable core sheath stripping device according to claim 1, characterized in that, It also includes a storage frame (4), a tension spring (401), a vibrating motor (402), a vibrating shaft (403), and a vibrating block (404). The storage frame (4) is slidably connected to the mounting frame (104). A tension spring (401) is provided between the storage frame (4) and the mounting frame (104). The vibrating motor (402) is fixedly installed on the mounting frame (104). The vibrating shaft (403) is rotatably connected to the mounting frame (104). The output shaft of the vibrating motor (402) is connected to the vibrating shaft (403). The two ends of the vibrating shaft (403) are fixedly connected to the vibrating blocks (404). When the vibrating shaft (403) rotates, the vibrating blocks (404) can contact the storage frame (4).

4. The data cable core sheath stripping device according to claim 3, characterized in that, It also includes a fixed push rod (202), a fixed inner push rod (405), a rotating feeding shaft (5), a feeding torsion spring (501), and a lever (502). The fixed push rod (202) is fixedly connected to the lifting frame (2), and the fixed inner push rod (405) is fixedly connected to the storage frame (4). The rotating feeding shaft (5) is rotatably connected inside the storage frame (4). The rotating feeding shaft (5) is provided with a feeding slot (5001). The feeding torsion spring (501) is provided between the rotating feeding shaft (5) and the storage frame (4). The lever (502) is fixedly connected to the rotating feeding shaft (5).

5. A wire core sheath stripping device for data cable production according to claim 4, characterized in that, It also includes a connecting plate (208), an unlocking frame (6) and a support spring (601). The connecting plate (208) is fixedly connected to the sliding block (206), and the unlocking frame (6) is slidably connected to the support base (1). A support spring (601) is provided between the unlocking frame (6) and the support base (1).

6. The data cable core sheath stripping device according to claim 5, characterized in that, It also includes a straight push rod (203), a discharge shaft (7), a fixed push block (701), a discharge torsion spring (702), a swing plate (703), a sliding connecting rod (704), a moving frame (705), an electric push rod (706), and a clamping bar (707). The straight push rod (203) is fixedly connected to the lifting frame (2), and the discharge shaft (7) is rotatably connected to the support base frame (1). The fixed push block (701) is fixedly connected to the discharge shaft (7), and a discharge torsion spring is provided between the discharge shaft (7) and the support base frame (1). (702) A swing plate (703) is fixedly connected to the discharge shaft (7). A slotted hole is opened on the swing plate (703). A sliding connecting rod (704) is slidably connected to the support base (1). A movable frame (705) is fixedly connected to the sliding connecting rod (704). The movable frame (705) is slidably connected in the slotted hole on the swing plate (703). An electric push rod (706) is installed in the movable frame (705). The telescopic rod of the electric push rod (706) passes through the movable frame (705) and is fixedly connected to a clamping strip (707).

7. The data cable core sheath stripping device according to claim 6, characterized in that, The clamping bar (707) is rigid, and the side of the clamping bar (707) that contacts the data cable is relatively rough so that the clamping bar (707) can clamp the data cable.

Citation Information

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