Optical fiber cable coating layer processing device

By designing an automated fiber optic cable coating processing device, which utilizes a motor-driven screw and sleeve structure and a universal rotating ball, the automatic peeling of the fiber optic cable coating is achieved, solving the problem of low efficiency in traditional manual operation and significantly improving processing efficiency.

CN224122783UActive Publication Date: 2026-04-14SHANDONG TEGUANGYUAN OPTICAL COMM CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHANDONG TEGUANGYUAN OPTICAL COMM CO LTD
Filing Date
2025-04-14
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

Traditional fiber optic cable coating stripping mainly relies on manual operation, resulting in low processing efficiency.

Method used

An optical fiber cable coating processing device was designed. It utilizes a motor-driven screw and screw sleeve structure, combined with a universal rotating ball and a stripping triangular block, to automatically strip the coating of the optical fiber cable. Through the cooperation of the motor and screw, the position of the optical fiber cable is restricted and the coating is destroyed.

Benefits of technology

This greatly improves the stripping efficiency of optical fiber and cable coatings, significantly shortens processing time, and increases processing efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of optical fiber cable processing, and discloses an optical fiber cable coating layer processing device which comprises a supporting plate, two stabilizing blocks are fixedly connected to the top end of the supporting plate, an adjusting groove is formed in the top end of the supporting plate, a first motor is fixedly connected to one end in the adjusting groove, and a second motor is fixedly connected to the other end in the adjusting groove. The output end of the first motor is fixedly connected with a rotating screw rod, a rotating screw sleeve is screwed on the outer wall of the rotating screw rod, and a stripping triangular block is driven to enter the processing cylinder through a stripping opening under the cooperative use of a second motor, a two-way screw rod, a movable screw sleeve, a movable plate and a mounting block; the outer wall of the optical fiber cable is damaged by the stripping triangular block, the coating layer on the outer surface of the optical fiber cable is damaged under the rotation of the winding drum, the efficiency of stripping the coating layer of the optical fiber cable is further improved, and compared with existing manual operation, the processing time is greatly shortened, and the processing efficiency is improved.
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Description

Technical Field

[0001] This utility model relates to the field of optical fiber and cable processing technology, specifically to an optical fiber and cable coating layer processing device. Background Technology

[0002] Optical fiber cable is a type of communication cable composed of two or more glass or plastic optical fiber cores. These cores are housed within a protective cladding and covered by an outer PVC sheath. Signal transmission along the internal fibers typically uses infrared light. Optical fiber communication is a crucial method of modern information transmission, offering advantages such as large capacity, long relay distance, high security, immunity to electromagnetic interference, and copper savings. Optical fiber is short for optical waveguide filament, usually referring to a single optical fiber filament. Optical cable is a signal transmission cable made from optical fiber filaments, featuring multiple protection measures against external forces. The number of optical fibers varies, ranging from a single fiber to several or even a dozen. It acts as a waveguide medium for transmitting light waves. Optical fiber is a fiber composed of two concentric layers of transparent media. Traditional coating stripping methods rely on manual operation using cold strippers and hot strippers, significantly increasing stripping time and reducing subsequent optical fiber cable processing efficiency. Therefore, a processing device for rapidly stripping the coating of optical fiber cables is proposed. Utility Model Content

[0003] (a) Technical problems to be solved

[0004] To address the shortcomings of existing technologies, this utility model provides an optical fiber and cable coating processing device.

[0005] (II) Technical Solution

[0006] To achieve the above objectives, this utility model provides the following technical solution: a fiber optic cable coating processing device, comprising a support plate, two stabilizing blocks fixedly connected to the top of the support plate, an adjustment groove formed at the top of the support plate, a first motor fixedly connected to one end of the adjustment groove, a rotating screw fixedly connected to the output end of the first motor, a rotating sleeve screwed onto the outer wall of the rotating screw, a moving block fixedly connected to the top of the rotating sleeve, two stabilizing grooves formed at the top of the moving block, a transmission through hole formed between the two stabilizing grooves, a motor groove formed at one end of one of the stabilizing grooves, and a... A second motor is fixedly connected to one end of the device. A bidirectional screw is fixedly connected to the output end of the second motor. The other end of the bidirectional screw extends into the interior of another stabilizing groove and is rotatably connected to one end inside the other stabilizing groove. Two movable sleeves are screwed onto the outer wall of the bidirectional screw. A movable plate is fixedly connected to the top of each of the two movable sleeves. An installation block is fixedly connected to the end of each of the two movable plates that are close to each other. A peeling triangular block is fixedly connected to the end of each of the two installation blocks that are close to each other. A processing cylinder is connected to the top of the movable block. Peeling openings are provided at both ends of the processing cylinder. A downward binding mechanism is fixedly installed inside the processing cylinder.

[0007] One of the stabilizing blocks has a cable winding mechanism fixedly connected to its top.

[0008] Preferably, the downward pressure restraint mechanism includes a torsion screw, the top end of the processing cylinder is provided with a threaded through hole, the outer wall of the torsion screw is screwed into the inside of the threaded through hole, and a universal rotating ball is fixedly installed at the bottom end of the torsion screw.

[0009] Preferably, the cable winding mechanism includes two fixed blocks, one end of each of the two fixed blocks being fixedly connected to the top sides of one of the stabilizing blocks respectively, one end of one of the fixed blocks being fixedly connected to a third motor, one end of each of the two fixed blocks being rotatably connected to a rotating block, one end of each of the two rotating blocks being provided with a mounting groove, and a rotating plate being installed inside each of the two mounting grooves by fixing screws, and a winding drum being fixedly connected between the two rotating plates, and the output end of the third motor being fixedly connected to one end of one of the rotating blocks.

[0010] Preferably, a limiting rod is fixedly connected between the two stabilizing blocks, and a limiting sleeve is slidably connected to the outer wall of each of the two limiting rods. One end of each limiting sleeve is fixedly connected to both ends of the moving block.

[0011] Preferably, each of the four corners at the bottom of the support plate is fixedly connected with a movable caster.

[0012] Preferably, a silicone anti-slip layer is fixedly installed on the outer wall of the winding drum.

[0013] (III) Beneficial Effects

[0014] Compared with the prior art, the present invention provides an optical fiber and cable coating processing device, which has the following beneficial effects:

[0015] This fiber optic cable coating processing device works by passing the fiber optic cable through a processing drum and winding it around the outer wall of a take-up drum. The rotation of a torsion screw drives a threaded screw, which in turn moves a omnidirectional rotating ball until it contacts the outer wall of the fiber optic cable, thus restricting its position. The free rotation of the omnidirectional rotating ball allows the fiber optic cable to move within the processing drum via the rotation of the take-up drum. With the cooperation of a second motor, a bidirectional screw, a moving screw sleeve, a moving plate, and a mounting block, a stripping triangular block is driven through a stripping opening into the processing drum, damaging the outer wall of the fiber optic cable. The rotation of the take-up drum further destroys the outer coating of the fiber optic cable, significantly improving the efficiency of coating stripping. Compared to existing manual operations, this greatly shortens processing time and increases processing efficiency. Attached Figure Description

[0016] Figure 1 This is a front view structural diagram of the present invention;

[0017] Figure 2 This is a frontal cross-sectional view of the present invention.

[0018] Figure 3 This is a schematic diagram of the downward restraint mechanism of this utility model;

[0019] Figure 4 This utility model Figure 2 A magnified view of the structure at point A in the middle;

[0020] Figure 5 This utility model Figure 1 A magnified schematic diagram of the structure at point B in the middle.

[0021] In the diagram: 1. Support plate; 2. Stabilizing block; 3. First motor; 4. Rotating screw; 5. Rotating sleeve; 6. Moving block; 7. Second motor; 8. Bidirectional screw; 9. Moving sleeve; 10. Moving plate; 11. Mounting block; 12. Peeling triangular block; 13. Processing cylinder; 14. Torsion screw; 15. Universal rotating ball; 16. Fixing block; 17. Third motor; 18. Rotating block; 19. Fixing screw; 20. Rotating plate; 21. Rewinding drum; 22. Limiting rod; 23. Moving caster. Detailed Implementation

[0022] Please see Figure 1-5An optical fiber cable coating processing device includes a support plate 1. Two stabilizing blocks 2 are fixedly connected to the top of the support plate 1. An adjustment groove is formed at the top of the support plate 1. A first motor 3 is fixedly connected to one end of the adjustment groove. A rotating screw 4 is fixedly connected to the output end of the first motor 3. A rotating sleeve 5 is screwed onto the outer wall of the rotating screw 4. A moving block 6 is fixedly connected to the top of the rotating sleeve 5. Two stabilizing grooves are formed at the top of the moving block 6. A transmission through hole is formed between the two stabilizing grooves. A motor groove is formed at one end of one of the stabilizing grooves, and a second motor groove is fixedly connected to one end of the motor groove. Motor 7, the output end of the second motor 7 is fixedly connected to a bidirectional screw 8, the other end of the bidirectional screw 8 extends into the interior of another stabilizing groove and is rotatably connected to one end inside the other stabilizing groove, two movable screw sleeves 9 are screwed onto the outer wall of the bidirectional screw 8, the top ends of the two movable screw sleeves 9 are fixedly connected to movable plates 10, the ends of the two movable plates 10 that are close to each other are fixedly connected to mounting blocks 11, the ends of the two mounting blocks 11 that are close to each other are fixedly connected to peeling triangular blocks 12, the top end of the movable block 6 is connected to a processing cylinder 13, both ends of the processing cylinder 13 are provided with peeling openings, and the processing cylinder 13 is connected to a processing cylinder 6. A downward clamping mechanism is fixedly installed inside the drum 13. A cable winding mechanism is fixedly connected to the top of one of the stabilizing blocks 2. The cable winding mechanism includes two fixed blocks 16, one end of which is fixedly connected to both sides of the top of one of the stabilizing blocks 2. A third motor 17 is fixedly connected to one end of one of the fixed blocks 16. A rotating block 18 is rotatably connected to one end of each of the two fixed blocks 16. A mounting groove is opened at one end of each of the two mounting grooves. A rotating plate 20 is installed inside each of the two mounting grooves by fixing screws 19. A winding drum 21 is fixedly connected between the two rotating plates 20. The output end of the third motor 17 is fixedly connected to one end of one of the rotating blocks 18. With the cooperation of the second motor 7, the bidirectional screw 8, the moving screw sleeve 9, the moving plate 10 and the mounting block 11, the stripping triangular block 12 is driven to enter the interior of the processing cylinder 13 through the stripping opening, so that the stripping triangular block 12 damages the outer wall of the optical fiber cable. Under the rotation of the winding drum 21, the outer coating of the optical fiber cable is damaged, which further improves the efficiency of stripping the coating of the optical fiber cable. Compared with the existing manual operation, the processing time is greatly shortened and the processing efficiency is improved.

[0023] Please see Figure 3The downward pressure restraint mechanism includes a torsion screw 14. A threaded through hole is provided at the top of the processing cylinder 13. The outer wall of the torsion screw 14 is screwed into the inside of the threaded through hole. A universal rotating ball 15 is fixedly installed at the bottom of the torsion screw 14. After the optical fiber cable passes through the processing cylinder 13 and is wound around the outer wall of the winding drum 21, the rotation of the torsion screw 14 will drive the universal rotating ball 15 to move through the threaded connection until it contacts the outer wall of the optical fiber cable, thereby restricting the position of the optical fiber cable. Furthermore, the optical fiber cable can move inside the processing cylinder 13 through the rotation of the winding drum 21 by rotating the universal rotating ball 15 in the free direction.

[0024] It should also be noted that a limit rod 22 is fixedly connected between the two stabilizing blocks 2, and a limit sleeve is slidably connected to the outer wall of each of the two limit rods 22. One end of each limit sleeve is fixedly connected to both ends of the moving block 6, thereby improving the limiting effect when the moving block 6 moves. The four corners of the bottom of the support plate 1 are fixedly connected to the moving casters 23, which facilitates the movement of the entire device. A silicone anti-slip layer is fixedly installed on the outer wall of the winding drum 21. When winding the optical fiber cable, the silicone anti-slip layer further improves its winding anti-slip performance.

[0025] In summary, when using this optical fiber cable coating processing device, the optical fiber cable is first passed through the processing cylinder 13 and wound around the outer wall of the take-up drum 21. Then, the rotation of the torsion screw 14 drives the threaded screw to move its universal rotating ball 15 until it contacts the outer wall of the optical fiber cable, thereby restricting the position of the optical fiber cable. Furthermore, the free rotation of the universal rotating ball 15 allows the optical fiber cable to move within the processing cylinder 13 via the rotation of the take-up drum 21. When the second motor 7 is powered on, its output will drive the bidirectional screw 8 to rotate. The bidirectional screw 8 will then drive the moving sleeve 9 to move through its threads, causing the moving plate 10 and the mounting block 11 to move closer together. This will also cause the peeling triangular block 12 to enter the processing cylinder 13 through the peeling opening, thus damaging the outer wall of the optical fiber cable. With the rotation of the winding drum 21, the outer coating of the optical fiber cable will be damaged. In use, when the first motor 3 is powered on, its output will drive the rotating screw to rotate, and the rotating sleeve 5 will move through its threads, causing the position of the processing drum 13 to be adjusted left and right. By removing the fixing screw 19, the rotating plate 20 and the rotating block 18 can be separated, thus completing the free disassembly of the winding drum 21.

Claims

1. An optical fiber cable coating processing device, comprising a support plate (1), characterized in that: Two stabilizing blocks (2) are fixedly connected to the top of the support plate (1). An adjustment groove is provided at the top of the support plate (1). A first motor (3) is fixedly connected to one end of the adjustment groove. A rotating screw (4) is fixedly connected to the output end of the first motor (3). A rotating sleeve (5) is screwed onto the outer wall of the rotating screw (4). A moving block (6) is fixedly connected to the top of the rotating sleeve (5). Two stabilizing grooves are provided at the top of the moving block (6). A transmission through hole is provided between the two stabilizing grooves. A motor groove is provided at one end of one of the stabilizing grooves. A second motor (7) is fixedly connected to one end of the motor groove. The output end of the second motor (7) is fixedly connected to... A bidirectional screw (8) has one end extending into the interior of another stabilizing groove and rotatably connected to one end inside the other stabilizing groove. Two movable sleeves (9) are screwed onto the outer wall of the bidirectional screw (8). A movable plate (10) is fixedly connected to the top of each of the two movable sleeves (9). An installation block (11) is fixedly connected to the end of each of the two movable plates (10) that is close to each other. A peeling triangular block (12) is fixedly connected to the end of each of the two installation blocks (11) that is close to each other. A processing cylinder (13) is connected to the top of the movable block (6). Peeling openings are provided at both ends of the processing cylinder (13). A downward binding mechanism is fixedly installed inside the processing cylinder (13). One of the stabilizers (2) is fixedly connected to a cable winding mechanism at its top.

2. The optical fiber and cable coating processing apparatus according to claim 1, characterized in that: The downward pressure restraint mechanism includes a torsion screw (14), the top end of the processing cylinder (13) is provided with a threaded through hole, the outer wall of the torsion screw (14) is screwed into the inside of the threaded through hole, and a universal rotating ball (15) is fixedly installed at the bottom end of the torsion screw (14).

3. The optical fiber and cable coating processing apparatus according to claim 2, characterized in that: The cable winding mechanism includes two fixed blocks (16), one end of each fixed block (16) is fixedly connected to the top two sides of one of the stabilizing blocks (2), one end of one of the fixed blocks (16) is fixedly connected to a third motor (17), one end of each of the two fixed blocks (16) is rotatably connected to a rotating block (18), one end of each of the two rotating blocks (18) is provided with an installation groove, and a rotating plate (20) is installed inside each of the two installation grooves by fixing screws (19), and a winding drum (21) is fixedly connected between the two rotating plates (20). The output end of the third motor (17) is fixedly connected to one end of one of the rotating blocks (18).

4. The optical fiber and cable coating processing apparatus according to claim 3, characterized in that: A limiting rod (22) is fixedly connected between the two stabilizing blocks (2), and a limiting sleeve is slidably connected to the outer wall of each of the two limiting rods (22). One end of each limiting sleeve is fixedly connected to both ends of the moving block (6).

5. The optical fiber and cable coating processing apparatus according to claim 4, characterized in that: Each of the four corners of the bottom end of the support plate (1) is fixedly connected with a movable caster (23).

6. The optical fiber and cable coating processing apparatus according to claim 5, characterized in that: A silicone anti-slip layer is fixedly installed on the outer wall of the winding drum (21).