Automatic optical fiber penetrating spare part peeling device

By designing the peeling device for automatic fiber diffusing and peeling of optical fibers, the upper and lower peeling die modules and drive cylinders are used to achieve automatic peeling of optical fibers, which solves the problem of difficult to remove the end cortex of optical fibers and improves production efficiency.

CN222866905UActive Publication Date: 2025-05-13SHENZHEN HAOLIN PRECISION MASCH CO LTD
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Patent Information

Application Number
CN202420860460.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-04-19
Publication Date
2025-05-13
Estimated Expiration
2034-04-19

AI Technical Summary

Technical Problem

The cortex at the end of the fiber is difficult to remove automatically, resulting in inefficiency.

Method used

An optical fiber automatic diffusing and diffusing device is designed, including a bulk conveying mechanism, an optical fiber conveying mechanism, a threading mechanism and a peeling mechanism. The peeling mechanism consists of an upper peeling knife module and a lower peeling knife module. By driving the cylinder to drive the serrated blade for cutting, the optical fiber is automatically peeled.

Benefits of technology

Automatic peeling of optical fibers is achieved, production and processing efficiency is improved, and multiple optical fibers can be positioned and cut at the same time.

✦ Generated by Eureka AI based on patent content.

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    Figure CN222866905U_ABST
Patent Text Reader

Abstract

The utility model discloses an optical fiber automatic part penetrating and peeling device, and belongs to the technical field of optical fiber outer skin peeling. Comprising a spare part conveying mechanism used for conveying spare parts, an optical fiber conveying mechanism used for conveying optical fibers, a threading mechanism used for threading the optical fibers into the spare parts, and a peeling mechanism used for peeling the optical fibers. The spare part conveying mechanism and the optical fiber conveying mechanism are relatively movably arranged; the threading mechanism is arranged on the side edge of the spare part conveying mechanism and the side edge of the optical fiber conveying mechanism. Compared with the prior art, the beneficial effects of the utility model are that the device can achieve the automatic penetrating of the spare parts and the stripping of the optical fibers through the cooperation of the spare part conveying mechanism, the optical fiber conveying mechanism, the threading mechanism and the stripping mechanism, and can greatly improve the production and processing efficiency.
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Description

Technical Field

[0001] The utility model belongs to the technical field of optical fiber peeling, and particularly relates to an optical fiber automatic loose-piece peeling device. Background Art

[0002] In today's era of rapid technological development, optical fiber has been widely used. With the great progress in information optical fiber transmission, optical fiber sensing and optical fiber connectors, the market demand for optical fiber is increasing, and the production volume is also increasing. When using optical fiber, users usually need to peel off the fiber end. Since the optical fiber is relatively thin, the material of the fiber skin is usually more tough. Without professional tools, peeling is often laborious. Based on this, it is very necessary to pre-strip the end of the optical fiber before it leaves the factory. Utility Model Content

[0003] In order to solve the above problems, the purpose of the utility model is to provide an automatic optical fiber threading and stripping device, which can automatically thread and strip the ends of optical fibers before they leave the factory.

[0004] To achieve the above purpose, the technical solution of the utility model is as follows:

[0005] The utility model provides an automatic optical fiber stripping device for threading loose parts, comprising: a loose parts conveying mechanism for conveying loose parts, an optical fiber conveying mechanism for conveying optical fibers, a threading mechanism for threading optical fibers into loose parts, and a stripping mechanism for stripping optical fibers; the loose parts conveying mechanism and the optical fiber conveying mechanism are relatively movable; the threading mechanism is arranged on the sides of the loose parts conveying mechanism and the optical fiber conveying mechanism; the stripping mechanism comprises an upper stripping knife module and a lower stripping knife module that are relatively movable up and down, the upper stripping knife module is arranged above the loose parts conveying mechanism and the optical fiber conveying mechanism, and the lower stripping knife module is arranged on the upper sides of the loose parts conveying mechanism and the optical fiber conveying mechanism, and the lower stripping knife module is arranged on the upper sides of the loose parts conveying mechanism and the optical fiber conveying mechanism. The knife module group is arranged below the bulk parts conveying mechanism and the optical fiber conveying mechanism, the upper stripping knife module includes an upper stripping knife and an upper stripping knife driving member capable of driving the upper stripping knife to move up and down, and the upper stripping knife is connected to the output end of the upper stripping knife driving member; the lower stripping knife module includes a lower stripping knife and a lower stripping knife driving member capable of driving the lower stripping knife to move up and down, and the lower stripping knife is connected to the output end of the lower stripping knife driving member; and the upper stripping knife is arranged directly above the lower stripping knife; the upper stripping knife and the lower stripping knife are both provided with serrated blades, and a plurality of optical fiber stripping grooves arranged side by side are formed between the serrated blades of the two. In the present application, the loose parts conveying mechanism conveys the loose parts such as the optical fiber head and tail sleeve to the predetermined position, the optical fiber conveying mechanism conveys the optical fiber to the predetermined position, and the threading mechanism drives the optical fiber to be inserted into the loose parts with a set length. At this time, the optical fiber is in the optical fiber stripping groove, and the upper stripping knife and the lower stripping knife are combined to cut the optical fiber in the optical fiber stripping groove. The whole process is automated and does not require human participation, which can greatly improve the efficiency of optical fiber threading and stripping. The serrated blade can form multiple parallel optical fiber stripping grooves, and can simultaneously position and cut multiple optical fibers.

[0006] Furthermore, the upper stripping knife driving member and the lower stripping knife driving member both adopt driving cylinders.

[0007] Furthermore, the loose parts conveying mechanism includes a loose parts support table, a loose parts fixture is arranged on the loose parts support table, a plurality of loose parts positioning grooves arranged side by side are arranged on the loose parts fixture, two loose parts fixtures are arranged, and the two loose parts fixtures are respectively fixed at opposite ends of the loose parts support table, and a rotating driving member for driving the loose parts support table to rotate is also arranged in the middle of the loose parts support table. In the present application, two loose parts fixtures, one for placing loose parts that are being threaded with optical fibers, and the other for placing loose parts to be threaded with optical fibers, are used to drive the loose parts support table to rotate by the rotating driving member to realize the switching between the two, which can greatly improve the efficiency of loose parts threading optical fibers.

[0008] Furthermore, the rotary drive member is a rotary cylinder.

[0009] Furthermore, the rotary drive is mounted on the bottom of the loose parts support table, the rotary drive is also connected to a drive mounting plate, the drive mounting plate is connected to a lower stripping knife connecting plate, the lower stripping knife drive is mounted on the lower stripping knife connecting plate, the loose parts support table is also provided with a through hole to avoid the lower stripping knife from moving up and down, the through hole is located on the inner side of the loose parts fixture. The lower stripping knife can pass through the loose parts support table through the through hole to the side of the loose parts fixture, and cooperate with the upper stripping knife to strip the optical fiber on the loose parts in the loose parts fixture.

[0010] Further, the optical fiber delivery mechanism includes an optical fiber support table, the optical fiber support table is provided with an optical fiber positioning fixture, the optical fiber positioning fixture is equipped with a wire feeding roller that drives the optical fiber to move forward, and the optical fiber support table is also equipped with a wire feeding drive and a transmission assembly, and the wire feeding drive is connected to the wire feeding roller through the transmission assembly. In the present application, the wire feeding drive drives the optical fiber to move forward through the transmission assembly, and the optical fiber is inserted into the loose parts in the loose parts fixture.

[0011] Furthermore, the wire feeding drive member adopts a driving motor, and the transmission assembly includes a driving wheel, a driven wheel, and a transmission belt. The driving wheel is installed at the output end of the driving motor, and the driven wheel is installed at the end of the wire feeding roller, and the driving wheel and the driven wheel are connected by a transmission belt.

[0012] Furthermore, the optical fiber positioning fixture is provided with an optical fiber conveying groove, and the wire feeding roller is arranged below the optical fiber conveying groove.

[0013] Furthermore, a linear cylinder is installed on the optical fiber support table, a first pull plate is arranged at the output end of the linear cylinder, a slide rail is arranged on the loose parts support table, a slider is arranged at the bottom of the loose parts fixture, the slider is slidably connected to the slide rail, a second pull plate matching the first pull plate is arranged at the bottom of the slider, and the second pull plate is on the linear motion track of the first pull plate. In the present application, when the loose parts fixture rotates to the peeling area, the linear cylinder is actuated, and the first pull plate drives the second pull plate to move linearly, thereby driving the loose parts fixture to slide along the slide rail, close to the optical fiber support table, reducing the distance between the loose parts and the optical fiber, and reducing the wire feeding distance of the wire feeding roller.

[0014] Furthermore, the threading mechanism includes a main support frame, a lifting module, a first connecting plate, a screw translation module, and a threading module. The first connecting plate is connected to the main support frame through the lifting module, the screw translation module is installed on the screw translation module, and the threading module includes a threading module mounting plate, a wire clamping cylinder, and a clamping claw. The wire clamping cylinder is installed on the output end of the screw translation module through the threading module mounting plate, and the clamping claw is connected to the output end of the wire clamping cylinder. In the present application, the lifting module drives the threading module to lift and lower, and the screw translation module drives the threading module to move horizontally, and the two cooperate to adjust the position of the threading module; driven by the wire feeding roller, only a part of the front end of the optical fiber will pass through the loose parts. At this time, the wire clamping cylinder can drive the clamping claw to open and close, and after clamping the optical fiber, it is pulled forward driven by the screw translation module, driving the optical fiber to penetrate into the loose parts with a set length, so as to realize the optical fiber sheathing at the set position. It should be noted that in the present application, the lifting module adopts a lifting motor in conjunction with a guide rail, and the lead screw translation module adopts a lead screw motor, both of which belong to the prior art and their structures are not described in detail here.

[0015] Furthermore, the first connecting plate is connected to a second connecting plate, and the upper stripping knife module is installed on the second connecting plate.

[0016] Furthermore, a jig cover assembly is also installed on the second connecting plate, and the jig cover assembly includes a third connecting plate, a jig cover, a guide sleeve, a guide shaft, and a buffer spring. The third connecting plate is fixedly connected to the second connecting plate, and the guide sleeve passes through and is fixed to the third connecting plate from top to bottom. The upper end of the guide shaft movably passes through the guide sleeve, and the lower end of the guide shaft is connected to the jig cover; the buffer spring is sleeved on the guide shaft, and one end of the buffer spring is connected or abutted to the bottom of the guide sleeve, and the other end is connected or abutted to the upper end of the jig cover. In the present application, before the threading module is actuated, the jig cover will be pressed on the loose parts jig under the drive of the lifting module to fix the loose parts and improve the stability of the threading; the guide sleeve, guide shaft, and buffer spring cooperate with each other to ensure the tightness of the jig cover pressing the loose parts jig, and avoid over-tightening and damage to the jig.

[0017] Furthermore, a pressure roller is provided on the side of the jig cover, and the pressure roller is arranged directly above the wire feeding roller. When the jig cover is pressed onto the loose parts jig, the pressure roller also presses the optical fiber on the wire feeding roller to prevent the optical fiber from detaching from the wire feeding roller and affecting the transportation of the optical fiber.

[0018] Furthermore, the action process of the optical fiber automatic threading and stripping device is as follows:

[0019] 1. The rotating cylinder moves to rotate the parts that need to be threaded to the front of the optical fiber support plate;

[0020] 2. The lifting module drives the fixture cover assembly to press down to limit the loose fixture and optical fiber;

[0021] 3. The wire feeding drive motor drives the wire feeding roller to rotate, and the front end of the optical fiber passes through the loose parts;

[0022] 4. Upper stripping knife module and lower stripping knife module combination knife;

[0023] 5. The lead screw moves the module horizontally to pull the optical fiber to the set length;

[0024] 6. The upper stripping knife module moves, driving the upper stripping knife to cut downward to cut and strip the optical fiber sheath.

[0025] Compared with the prior art, the beneficial effects of the utility model are as follows: the optical fiber automatic threading and stripping device of the utility model can realize automatic threading and stripping of optical fibers through the cooperation of the loose parts conveying mechanism, the optical fiber conveying mechanism, the threading mechanism and the stripping mechanism, which can greatly improve the production and processing efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 It is a structural schematic diagram of an automatic optical fiber threading and stripping device.

[0027] Figure 2 It is a structural diagram of the parts conveying mechanism, the optical fiber conveying mechanism, and the lower stripping knife module.

[0028] Figure 3 It is a structural diagram of the threading mechanism and the upper stripping knife module.

[0029] Figure 4 It is a schematic diagram of the structure of the loose parts fixture and the optical fiber positioning fixture.

[0030] Description of labels:

[0031] 1. Bulk parts conveying mechanism; 11. Bulk parts supporting table; 12. Bulk parts fixture; 13. Bulk parts positioning groove; 14. Rotating driving member; 15. Driving member mounting plate; 16. Lower stripping knife connecting plate; 17. Slide rail; 18. Sliding block; 19. Second pull plate; 2. Optical fiber conveying mechanism; 21. Optical fiber supporting table; 22. Optical fiber positioning fixture; 23. Wire feeding roller; 24. Wire feeding driving member; 25. Transmission assembly; 26. Optical fiber conveying groove; 27. Linear cylinder; 28. First pull plate; 3. Threading mechanism; 31. Main support frame; 32. Lifting module; 33. First connecting plate; 34 , screw translation module; 35, threading module; 351, threading module mounting plate; 352, clamping cylinder; 353, clamping claw; 36, second connecting plate; 37, fixture cover assembly; 371, third connecting plate; 372, fixture cover; 373, guide sleeve; 374, guide shaft; 375, buffer spring; 376, pressure roller; 4, stripping mechanism; 41, upper stripping knife module; 411, upper stripping knife; 412, upper stripping knife driving member; 42, lower stripping knife module; 421, lower stripping knife; 422, lower stripping knife driving member; 43, optical fiber stripping groove; 5, loose parts; 6, optical fiber. DETAILED DESCRIPTION

[0032] In order to make the purpose, technical solution and advantages of the utility model more clear, the utility model is further described in detail below in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described here are only used to explain the utility model and are not used to limit the utility model.

[0033] To achieve the above purpose, the technical solution of the utility model is as follows:

[0034] See also Figure 1-4As shown, this embodiment provides an automatic optical fiber threading and stripping device, including: a loose parts conveying mechanism 1 for conveying loose parts 5, an optical fiber conveying mechanism 2 for conveying optical fibers 6, a threading mechanism 3 for threading the optical fibers 6 into the loose parts 5, and a stripping mechanism 4 for stripping the optical fibers 6; the loose parts conveying mechanism 1 and the optical fiber conveying mechanism 2 are relatively movable; the threading mechanism 3 is arranged on the sides of the loose parts conveying mechanism 1 and the optical fiber conveying mechanism 2; the stripping mechanism 4 includes an upper stripping knife module 41 and a lower stripping knife module 42 that are relatively movable up and down, the upper stripping knife module 41 is arranged above the loose parts conveying mechanism 1 and the optical fiber conveying mechanism 2, and the lower stripping knife module 42 is arranged on the loose parts conveying mechanism The upper stripping knife module 41 comprises an upper stripping knife 411 and an upper stripping knife driving member 412 capable of driving the upper stripping knife 411 to move up and down, and the upper stripping knife 411 is connected to the output end of the upper stripping knife driving member 412; the lower stripping knife module 42 comprises a lower stripping knife 421 and a lower stripping knife driving member 422 capable of driving the lower stripping knife 421 to move up and down, and the lower stripping knife 421 is connected to the output end of the lower stripping knife driving member 422; and the upper stripping knife 411 is arranged directly above the lower stripping knife 421; both the upper stripping knife 411 and the lower stripping knife 421 are provided with serrated blades, and a plurality of optical fiber stripping grooves 43 arranged side by side are formed between the serrated blades of the two. In this embodiment, the loose parts conveying mechanism 1 conveys the loose parts 5 such as the optical fiber head and the tail sleeve to a predetermined position, the optical fiber conveying mechanism 2 conveys the optical fiber 6 to a predetermined position, and the threading mechanism 3 drives the optical fiber 6 to be inserted into the loose parts 5 with a set length. At this time, the optical fiber 6 is in the optical fiber stripping groove 43, and the upper stripping knife 411 and the lower stripping knife 421 are combined to cut the optical fiber 6 in the optical fiber stripping groove 43. The whole process is automated and does not require human intervention, which can greatly improve the efficiency of optical fiber 6 threading the loose parts 5 and stripping; the serrated blade can form a plurality of parallel optical fiber stripping grooves 43, and can simultaneously position and cut a plurality of optical fibers 6.

[0035] Furthermore, the upper stripping knife driving member 412 and the lower stripping knife driving member 422 both adopt driving cylinders.

[0036] Furthermore, the bulk parts conveying mechanism 1 includes a bulk parts support table 11, on which a bulk parts fixture 12 is arranged, on which a plurality of bulk parts positioning grooves 13 arranged side by side are arranged, and two bulk parts fixtures 12 are arranged, and the two bulk parts fixtures 12 are respectively fixed at opposite ends of the bulk parts support table 11, and a rotating driving member 14 for driving the bulk parts support table 11 to rotate is also arranged in the middle of the bulk parts support table 11. In this embodiment, the two bulk parts fixtures 12, one for placing the bulk parts being threaded with optical fibers, and the other for placing the bulk parts to be threaded with optical fibers, drive the bulk parts support table 11 to rotate by the rotating driving member 14, and realize the switching between the two, which can greatly improve the efficiency of threading the bulk parts with optical fibers.

[0037] Furthermore, the rotary drive member 14 is a rotary cylinder.

[0038] Furthermore, the rotary drive member 14 is installed at the bottom of the bulk component support table 11, and the rotary drive member 14 is also connected to a drive member mounting plate 15, and the drive member mounting plate 15 is connected to a lower stripping knife connecting plate 16, and the lower stripping knife drive member is installed on the lower stripping knife connecting plate 16. The bulk component support table 11 is also provided with a through hole to avoid the lower stripping knife from moving up and down, and the through hole is located on the inner side of the bulk component fixture 12. The lower stripping knife can pass through the bulk component support table 11 through the through hole to the side of the bulk component fixture 12, and cooperate with the upper stripping knife to strip the optical fiber passing through the bulk components in the bulk component fixture 12.

[0039] Furthermore, the optical fiber delivery mechanism 2 includes an optical fiber support plate 21, the optical fiber support plate 21 is provided with an optical fiber positioning fixture 22, a wire feeding roller 23 for driving the optical fiber to move forward is installed in the optical fiber positioning fixture 22, and a wire feeding drive 24 and a transmission assembly 25 are also installed on the optical fiber support plate 21, and the wire feeding drive 24 is connected to the wire feeding roller 23 through the transmission assembly 25. In this embodiment, the wire feeding drive 24 drives the optical fiber to move forward through the transmission assembly 25, and the optical fiber is inserted into the loose parts in the loose parts fixture 12.

[0040] Furthermore, the wire feeding drive member 24 adopts a driving motor, and the transmission assembly 25 includes a driving wheel, a driven wheel, and a transmission belt. The driving wheel is installed at the output end of the driving motor, and the driven wheel is installed at the end of the wire feeding roller 23, and the driving wheel and the driven wheel are connected by a transmission belt.

[0041] Furthermore, the optical fiber positioning fixture 22 is provided with an optical fiber conveying groove 26 , and the wire feeding roller 23 is arranged below the optical fiber conveying groove 26 .

[0042] Furthermore, a linear cylinder 27 is installed on the optical fiber support table 21, and a first pull plate 28 is provided at the output end of the linear cylinder 27. A slide rail 17 is provided on the loose parts support table 11, and a slider 18 is provided at the bottom of the loose parts fixture 12. The slider 18 is slidably connected to the slide rail 17. A second pull plate 19 that matches the first pull plate 28 is also provided at the bottom of the slider 18, and the second pull plate 19 is on the linear motion track of the first pull plate 28. In this embodiment, when the loose parts fixture 12 rotates to the peeling area, the linear cylinder 27 is actuated, and the first pull plate 28 drives the second pull plate 19 to move linearly, thereby driving the loose parts fixture 12 to slide along the slide rail 17, close to the optical fiber support table 21, reducing the distance between the loose parts and the optical fiber, and reducing the wire feeding distance of the wire feeding roller 23.

[0043] Furthermore, the threading mechanism 3 includes a main support frame 31, a lifting module 32, a first connecting plate 33, a screw translation module 34, and a threading module 35. The first connecting plate 33 is connected to the main support frame 31 through the lifting module 32, the screw translation module 34 is installed on the screw translation module 34, and the threading module 35 includes a threading module mounting plate 351, a wire clamping cylinder 352, and a clamping claw 353. The wire clamping cylinder 352 is installed on the output end of the screw translation module 34 through the threading module mounting plate 351, and the clamping claw 353 is connected to the output end of the wire clamping cylinder 352. In this embodiment, the lifting module 32 drives the threading module 35 to lift, and the screw translation module 34 drives the threading module 35 to move horizontally, and the two cooperate to adjust the position of the threading module 35; under the drive of the wire feeding roller 23, only a part of the front end of the optical fiber will pass through the loose parts. At this time, the clamping cylinder 352 can drive the clamping claw 353 to open and close, clamp the optical fiber and pull it forward under the drive of the screw translation module 34, driving the optical fiber to penetrate the loose parts with a set length, so as to realize the optical fiber peeling at the set position. It should be noted that in this embodiment, the lifting module 32 uses a lifting motor in conjunction with a guide rail, and the screw translation module uses a screw motor. Both belong to the existing technology, and their structures are not described in detail here.

[0044] Furthermore, the first connecting plate 33 is connected to the second connecting plate 36 , and the upper stripping knife module 41 is installed on the second connecting plate 36 .

[0045] Furthermore, a jig cover assembly 37 is also installed on the second connecting plate 36, and the jig cover assembly 37 includes a third connecting plate 371, a jig cover 372, a guide sleeve 373, a guide shaft 374, and a buffer spring 375. The third connecting plate 371 is fixedly connected to the second connecting plate 36, the guide sleeve 373 passes through the third connecting plate 371 from top to bottom and is fixed to the third connecting plate 371, the upper end of the guide shaft 374 movably passes through the guide sleeve 373, and the lower end of the guide shaft 374 is connected to the jig cover 372; the buffer spring 375 is sleeved on the guide shaft 374, and one end of the buffer spring 375 is connected to or abuts the bottom of the guide sleeve 373, and the other end is connected to or abuts the upper end of the jig cover 372. In this embodiment, before the threading module 35 is actuated, the jig cover 372 will be pressed on the loose parts jig 12 under the drive of the lifting module 32 to fix the loose parts and improve the stability of the threading; the guide sleeve 373, the guide shaft 374, and the buffer spring cooperate with each other to ensure the tightness of the jig cover 372 pressing the loose parts jig 12, and avoid excessive pressing to cause damage to the jig.

[0046] Furthermore, a pressure roller 376 is provided on the side of the jig cover 372, and the pressure roller 376 is arranged directly above the wire feeding roller 23. When the jig cover 372 is pressed onto the loose parts jig 12, the pressure roller 376 also presses the optical fiber on the wire feeding roller 23 to prevent the optical fiber from escaping from the wire feeding roller 23 and affecting the transportation of the optical fiber.

[0047] Furthermore, the action process of the optical fiber automatic threading and stripping device is as follows:

[0048] 1. The rotating cylinder moves to rotate the loose parts that need to be threaded to the front of the optical fiber support plate 21;

[0049] 2. The lifting module 32 drives the fixture cover assembly 37 to press down to limit the loose fixture 12 and the optical fiber;

[0050] 3. The wire feeding drive motor drives the wire feeding roller 23 to rotate, and the front end of the optical fiber passes through the loose parts;

[0051] 4. The upper stripping knife module 41 and the lower stripping knife module 42 are closed;

[0052] 5. The screw rod translation module 34 moves to pull the optical fiber to the set length;

[0053] 6. The upper stripping knife module 41 moves, driving the upper stripping knife to cut downward, thereby cutting and stripping the outer sheath of the optical fiber.

[0054] The automatic optical fiber threading and stripping device of this embodiment can realize automatic optical fiber threading and stripping through the cooperation of the loose parts conveying mechanism 1, the optical fiber conveying mechanism 2, the threading mechanism 3 and the stripping mechanism 4, which can greatly improve the production and processing efficiency.

[0055] The above are only preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present invention should be included in the protection scope of the present invention.

Claims

1. An automatic optical fiber threading and stripping device, characterized in that: The invention comprises: a bulk conveying mechanism for conveying bulk parts, an optical fiber conveying mechanism for conveying optical fibers, a threading mechanism for inserting optical fibers into bulk parts, and a stripping mechanism for stripping optical fibers; the bulk conveying mechanism and the optical fiber conveying mechanism are relatively movable; the threading mechanism is arranged on the sides of the bulk conveying mechanism and the optical fiber conveying mechanism; the stripping mechanism comprises an upper stripping knife module and a lower stripping knife module that are relatively movable up and down, the upper stripping knife module is arranged above the bulk conveying mechanism and the optical fiber conveying mechanism, and the lower stripping knife module is arranged on the bulk conveying mechanism The upper stripping knife module comprises an upper stripping knife and an upper stripping knife driving member capable of driving the upper stripping knife to move up and down, and the upper stripping knife is connected to the output end of the upper stripping knife driving member; the lower stripping knife module comprises a lower stripping knife and a lower stripping knife driving member capable of driving the lower stripping knife to move up and down, and the lower stripping knife is connected to the output end of the lower stripping knife driving member; and the upper stripping knife is arranged directly above the lower stripping knife; the upper stripping knife and the lower stripping knife are both provided with serrated blades, and a plurality of optical fiber stripping grooves arranged side by side are formed between the serrated blades of the two.

2. The optical fiber automatic threading and stripping device according to claim 1, characterized in that: The loose parts conveying mechanism includes a loose parts supporting table, a loose parts jig is arranged on the loose parts supporting table, a plurality of loose parts positioning grooves arranged side by side are arranged on the loose parts jig, two loose parts jigs are provided, and the two loose parts jigs are respectively fixed at the opposite ends of the loose parts supporting table, and a rotating driving part for driving the loose parts supporting table to rotate is also arranged in the middle of the loose parts supporting table.

3. The optical fiber automatic threading and stripping device according to claim 2, characterized in that: The rotating driving component is installed on the bottom of the loose parts support table, and the rotating driving component is also connected to a driving component mounting plate, and the driving component mounting plate is connected to a lower stripping knife connecting plate. The lower stripping knife driving component is installed on the lower stripping knife connecting plate. The loose parts support table is also provided with a through hole to avoid the upper and lower movements of the lower stripping knife, and the through hole is located on the inner side of the loose parts fixture.

4. The optical fiber automatic threading and stripping device according to claim 2, characterized in that: The optical fiber conveying mechanism includes an optical fiber support table, the optical fiber support table is provided with an optical fiber positioning fixture, a wire feeding roller for driving the optical fiber forward is installed in the optical fiber positioning fixture, a wire feeding drive and a transmission assembly are also installed on the optical fiber support table, and the wire feeding drive is connected to the wire feeding roller through the transmission assembly.

5. The optical fiber automatic threading and stripping device according to claim 4, characterized in that: The wire feeding drive member adopts a driving motor, and the transmission assembly includes a driving wheel, a driven wheel, and a transmission belt. The driving wheel is installed at the output end of the driving motor, and the driven wheel is installed at the end of the wire feeding roller, and the driving wheel and the driven wheel are connected by a transmission belt.

6. The optical fiber automatic threading and stripping device according to claim 4, characterized in that: The optical fiber positioning fixture is provided with an optical fiber conveying groove, and the wire feeding roller is arranged below the optical fiber conveying groove.

7. The optical fiber automatic threading and stripping device according to claim 4, characterized in that: A linear cylinder is also installed on the optical fiber support table, and a first pull plate is provided at the output end of the linear cylinder. A slide rail is provided on the loose parts support table, and a slider is provided at the bottom of the loose parts fixture. The slider is slidably connected to the slide rail, and a second pull plate that cooperates with the first pull plate is also provided at the bottom of the slider, and the second pull plate is on the linear motion trajectory of the first pull plate.

8. The optical fiber automatic threading and stripping device according to claim 1, characterized in that: The threading mechanism includes a main support frame, a lifting module, a first connecting plate, a screw translation module, and a threading module. The first connecting plate is connected to the main support frame through the lifting module. The screw translation module is installed on the screw translation module. The threading module includes a threading module mounting plate, a wire clamping cylinder, and a clamping claw. The wire clamping cylinder is installed on the output end of the screw translation module through the threading module mounting plate, and the clamping claw is connected to the output end of the wire clamping cylinder.

9. The optical fiber automatic threading and stripping device according to claim 8, characterized in that: The first connecting plate is connected to a second connecting plate, and the upper stripping knife module is installed on the second connecting plate.

10. The optical fiber automatic threading and stripping device according to claim 9, characterized in that: A jig cover assembly is also installed on the second connecting plate, and the jig cover assembly includes a third connecting plate, a jig cover, a guide sleeve, a guide shaft, and a buffer spring. The third connecting plate is fixedly connected to the second connecting plate, and the guide sleeve passes through and is fixed to the third connecting plate from top to bottom. The upper end of the guide shaft movably passes through the guide sleeve, and the lower end of the guide shaft is connected to the jig cover; the buffer spring is sleeved on the guide shaft, and one end of the buffer spring is connected or abutted to the bottom of the guide sleeve, and the other end is connected or abutted to the upper end of the jig cover.