Optical fiber stripping, cutting and welding equipment
By designing optical fiber stripping and welding equipment with integrated cleaning, welding and peeling functions, and using mobile mechanisms to achieve automated transportation, the problem of inefficiency of existing equipment is solved and the efficiency of the entire process is improved.
Patent Information
- Application Number
- CN202510249583.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-04
- Publication Date
- 2025-06-06
AI Technical Summary
The existing fiber stripping, cutting and welding equipment is relatively low in efficiency, and operators need to operate and transport optical fibers in turn, resulting in inefficient efficiency in the entire process.
Design an optical fiber stripping and welding equipment with integrated cleaning, welding and peeling functions, and automatically transport the optical fibers through a mobile mechanism, so that they can be cleaned, peeled and welded in sequence within the equipment.
Through automated transportation and integrated design, the efficiency of fiber stripping, cutting and welding is significantly improved, reducing fiber transportation time and simplifying the operation process.
Smart Images

Figure CN120103545A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of stripping and fusing, and in particular to an optical fiber stripping and fusing device. Background Art
[0002] Optical fiber is short for optical fiber, which is a fiber made of glass or plastic that can be used as a light transmission tool. In daily life, optical fiber is used for long-distance information transmission because the transmission loss of light in optical fiber is much lower than the transmission loss of electricity in wires.
[0003] Currently, the stripping, cutting, cleaning and splicing of optical fibers are all performed using single-function equipment, which requires operators to operate them in sequence. In addition, the optical fiber needs to be transported during this process, which results in low efficiency of the entire splicing process.
[0004] Therefore, it is necessary to provide an optical fiber stripping and fusion splicing device to solve the above technical problems. Summary of the invention
[0005] The main purpose of the present invention is to provide an optical fiber stripping and fusion splicing device, aiming to solve the technical problem of low optical fiber stripping and fusion splicing efficiency in the prior art.
[0006] To achieve the above object, the present invention provides an optical fiber stripping and fusion splicing device, comprising:
[0007] frame;
[0008] A cleaning assembly, used for cleaning the optical fiber, wherein the number of the cleaning assemblies is two;
[0009] A fusion splicing assembly, used for fusing the two optical fibers to each other;
[0010] Stripping assemblies, the number of the stripping assemblies is two, each of the stripping assemblies includes a first clamp, a second clamp, a stripping tool, a first moving mechanism and a second moving mechanism, the first moving mechanism and the second moving mechanism are both installed on the frame, the first clamp is rotatably installed on the first moving mechanism, the second clamp is rotatably installed on the frame, and the stripping tool is installed on the second moving mechanism; the first clamp and the second clamp are respectively used to clamp the two ends of the optical fiber, the second moving mechanism can drive the stripping tool to move so as to make the stripping tool contact with the surface of the optical fiber; the first moving mechanism can drive the clamp to move so as to move the optical fiber to the cleaning assembly and the fusion splicing assembly in sequence.
[0011] In one embodiment, the first moving mechanism includes a rotating sub-component, a telescopic sub-component and a sliding sub-component, the rotating sub-component is connected to the telescopic sub-component, the rotating sub-component is used to drive the telescopic sub-component to rotate, the extension shaft of the telescopic sub-component is connected to the sliding sub-component, the extension shaft of the telescopic sub-component can be extended or retracted in the vertical direction to drive the sliding sub-component to rise or fall, the sliding sub-component is connected to the first clamp, and the sliding sub-component is used to drive the first clamp to slide.
[0012] In one embodiment, the rotating sub-component includes a first rotating motor and a second rotating motor, the output shaft of the first rotating motor is arranged in a vertical direction, the output shaft of the second rotating motor is arranged in a horizontal direction, the output shaft of the first rotating motor is connected to the cylinder body of the second rotating motor, and the output shaft of the second rotating motor is connected to the telescopic sub-component.
[0013] In one embodiment, the sliding sub-component includes a first screw, a first nut, a second screw and a second nut, the first nut is slidably mounted on the first screw, the second screw is mounted on the first nut, the second nut is slidably mounted on the second screw, and the second nut is connected to the first clamp.
[0014] In one embodiment, the second moving mechanism includes a first slide rail, a first slider, a second slide rail and a second slider, the first slider is slidably installed on the first slide rail along the length direction of the first slide rail, the second slider is slidably installed on the second slide rail along the length direction of the second slide rail, the second slide rail is installed on the first slider, and the stripping tool is installed on the second slider.
[0015] In one embodiment, the first moving mechanism also includes a first rotating motor, the first rotating motor is mounted on the sliding sub-component, the first clamp is mounted on the output shaft of the rotating motor, the stripping assembly also includes a second rotating motor, the second rotating motor is mounted on the frame, and the second clamp is mounted on the output shaft of the second rotating motor.
[0016] In one embodiment, the stripping assembly further includes a driver, and the driver is signal-connected to the first rotating motor and the second rotating motor respectively.
[0017] In one embodiment, the fusion splicing assembly includes two cameras, the two cameras are used to respectively detect the positions of the optical fibers on the two first clamps, and the two cameras are signal-connected to the rotating sub-component.
[0018] In one embodiment, the fusion splicing assembly further includes two first driving components, and the extending shafts of the two first driving components are respectively connected to the two cameras.
[0019] In one embodiment, the welding assembly further includes a welding device and a second driving component, and the extending shaft of the second driving component is connected to the welding device.
[0020] In the above scheme, the optical fiber stripping and fusion splicing equipment includes a frame, a cleaning component, a fusion splicing component and a stripping component. The cleaning component is used to clean the optical fiber, and the number of cleaning components is two; the fusion splicing component is used to fuse two optical fibers to each other; the number of stripping components is two, and each stripping component includes a first clamp, a second clamp, a stripping tool, a first moving mechanism and a second moving mechanism. The first moving mechanism and the second moving mechanism are both installed on the frame, the first clamp is rotatably installed on the first moving mechanism, the second clamp is rotatably installed on the frame, and the stripping tool is installed on the second moving mechanism; the first clamp and the second clamp are respectively used to clamp the two ends of the optical fiber, and the second moving mechanism can drive the stripping tool to move so as to make the stripping tool contact with the surface of the optical fiber; the first moving mechanism can drive the clamp to move so as to move the optical fiber to the cleaning component and the fusion splicing component in sequence. The operator simultaneously strips the two optical fibers through the two stripping assemblies. The specific steps are to clamp the two ends of the optical fiber with the first clamp and the second clamp respectively, and then insert the stripping tool into the surface of the optical fiber. Then, the first clamp and the second clamp rotate at the same time, and the stripping tool can strip the surface of the optical fiber. After the surface stripping of the two optical fibers is completed, the two first moving mechanisms respectively move their respective first clamps to the two cleaning assemblies, and clean the fiber cores of the optical fibers whose outer layers have been stripped on the two first clamps. After the cleaning is completed, they are placed for a period of time to dry. After the drying is completed, the two first moving mechanisms are started again to transport the two dried fiber cores to the fusion splicing assembly, and the fusion splicing assembly fuses the two fiber cores. In this way, the entire fiber stripping and splicing steps are completed. By integrating the cleaning assembly, the fusion splicing assembly and the stripping assembly into one device, and transporting the optical fiber to each assembly according to the fiber stripping and splicing steps through the first moving mechanism inside the device, automated transportation is achieved, the time for optical fiber transportation is reduced, and the efficiency of stripping and splicing is greatly improved. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on the structures shown in these drawings without paying creative work.
[0022] Figure 1 A schematic structural diagram of an embodiment of an optical fiber stripping and fusion splicing device provided by the present invention;
[0023] Figure 2A schematic structural diagram of an embodiment of a stripping assembly provided by the present invention;
[0024] Figure 3 A structural schematic diagram of another perspective of an embodiment of a stripping assembly provided by the present invention;
[0025] Figure 4 A schematic diagram of a partial structure of an embodiment of a stripping assembly provided by the present invention;
[0026] Figure 5 A schematic structural diagram of an embodiment of a welding assembly provided by the present invention;
[0027] Figure 6 A schematic structural diagram of an embodiment of a cleaning component provided by the present invention;
[0028] Figure 7 A schematic diagram of the internal structure of an embodiment of a cleaning component provided by the present invention.
[0029] Description of Figure Numbers:
[0030] 100. Optical fiber stripping and fusion splicing equipment; 101. Frame; 1. Cleaning assembly; 2. Fusion assembly; 3. Stripping assembly; 31. First clamp; 32. Second clamp; 33. Stripping tool; 34. First moving mechanism; 35. Second moving mechanism; 341. Rotating subassembly; 342. Telescopic subassembly; 343. Sliding subassembly; 341a. First rotating motor; 341b. Second rotating motor; 351. First slide rail; 352. First slider; 353. Second slide rail; 354. Second slider; 344. First rotating motor; 36. Second rotating motor; 37. Magnet; 345, rotating shaft support seat; 345a, optical fiber placement slot; 22, first driving component; 21, camera; 23, fusion equipment; 24, second driving component; 11, blowing assembly; 12, housing; 121, rack; 121a, first platform; 121b, slide groove; 122, second platform; 122a, slide rail; 13, storage box; 131, mounting plate; 132, drain outlet; 4, sealing cover; 5, vibration assembly; 51, ultrasonic vibrator; 52, shock-absorbing pad; 53, locking piece; 6, support rod; 7, driving cylinder; 8, connecting piece; 81, connecting rod; 9, switch valve.
[0031] The realization of the purpose, functional features and advantages of the present invention will be further explained in conjunction with embodiments and with reference to the accompanying drawings. DETAILED DESCRIPTION
[0032] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0033] It should be noted that if the embodiments of the present invention involve directional indications (such as up, down, left, right, front, back, etc.), the directional indications are only used to explain the relative position relationship, movement status, etc. between the components in a certain specific posture. If the specific posture changes, the directional indication will also change accordingly.
[0034] In addition, if there are descriptions involving "first", "second", etc. in the embodiments of the present invention, the descriptions of "first", "second", etc. are only used for descriptive purposes and cannot be understood as indicating or implying their relative importance or implicitly indicating the number of technical features indicated. Therefore, the features limited to "first" and "second" may explicitly or implicitly include at least one of the features. In addition, if "and / or" or "and / or" appears in the full text, its meaning includes three parallel solutions. Taking "A and / or B" as an example, it includes solution A, solution B, or solutions that satisfy both A and B. In addition, the technical solutions between the various embodiments can be combined with each other, but it must be based on the ability of ordinary technicians in this field to implement. When the combination of technical solutions is contradictory or cannot be implemented, it should be deemed that such combination of technical solutions does not exist and is not within the scope of protection required by the present invention.
[0035] See also Figures 1 to 7The optical fiber stripping and fusion splicing device 100 includes a frame 101, a cleaning component 1, a fusion splicing component 2 and a stripping component 3. The cleaning component 1 is used to clean the optical fiber, and the number of the cleaning components 1 is two; the fusion splicing component 2 is used to fuse two optical fibers to each other; the number of the stripping components 3 is two, and each stripping component 3 includes a first clamp 31, a second clamp 32, a stripping tool 33, a first moving mechanism 34 and a second moving mechanism 35. The first moving mechanism 34 and the second moving mechanism 35 are both installed on the frame 101, the first clamp 31 is rotatably installed on the first moving mechanism 34, the second clamp 32 is rotatably installed on the frame 101, and the stripping tool 33 is installed on the second moving mechanism 35; the first clamp 31 and the second clamp 32 are respectively used to clamp the two ends of the optical fiber, and the second moving mechanism 35 can drive the stripping tool 33 to move so as to make the stripping tool 33 contact with the surface of the optical fiber; the first moving mechanism 34 can drive the clamp to move so as to move the optical fiber to the cleaning component 1 and the fusion splicing component 2 in sequence. The operator simultaneously strips the two optical fibers through the two stripping assemblies 3. The specific steps are to clamp the two ends of the optical fiber with the first clamp 31 and the second clamp 32 respectively, and then insert the stripping tool 33 into the surface of the optical fiber. Then, the first clamp 31 and the second clamp 32 rotate at the same time, and the stripping tool 33 can strip the surface of the optical fiber. After the surface of the two optical fibers are stripped, the two first moving mechanisms 34 move their respective first clamps 31 to the two cleaning assemblies 1, and clean the cores of the optical fibers whose outer layers have been stripped on the two first clamps 31. After completion, place it for a while to dry. After drying, start the two first moving mechanisms 34 again to transport the two dried fiber cores to the fusion splicing component 2. The fusion splicing component 2 will fuse the two fiber cores, thus completing the entire fiber stripping and splicing steps. By integrating the cleaning component 1, the fusion splicing component 2 and the stripping component 3 in one device, and transporting the optical fiber to each component according to the fiber stripping and splicing steps through the first moving mechanism 34 inside the device, automated transportation is achieved, which reduces the time of optical fiber transportation and greatly improves the efficiency of stripping and splicing.
[0036] See also Figures 2 to 4In one embodiment, the first moving mechanism 34 includes a rotating sub-component 341, a telescopic sub-component 342 and a sliding sub-component 343. The rotating sub-component 341 is connected to the telescopic sub-component 342. The rotating sub-component 341 is used to drive the telescopic sub-component 342 to rotate. The extension shaft of the telescopic sub-component 342 is connected to the sliding sub-component 343. The extension shaft of the telescopic sub-component 342 can be extended or retracted in the vertical direction to drive the sliding sub-component 343 to rise or fall. The sliding sub-component 343 is connected to the first clamp 31, and the sliding sub-component 343 is used to drive the first clamp 31 to slide. Through the above embodiment, the horizontal position adjustment, angle adjustment and height adjustment of the first clamp 31 can be achieved, so that in any case, by adjusting the position of the first clamp 31, the relative position of the first clamp 31 and the second clamp 32 can meet the stripping of the optical fiber, and at the same time, the first clamp 31 can be moved to the cleaning component 1 and the fusion component 2.
[0037] See also Figures 2 to 4 In one embodiment, the rotating sub-component 341 includes a first rotating motor 341a and a second rotating motor 341b, the output shaft of the first rotating motor 341a is arranged in the vertical direction, the output shaft of the second rotating motor 341b is arranged in the horizontal direction, the output shaft of the first rotating motor 341a is connected to the cylinder of the second rotating motor 341b, and the output shaft of the second rotating motor 341b is connected to the telescopic sub-component 342. The output shaft of the first rotating motor 341a is arranged in the vertical direction, and the output shaft of the second rotating motor 341b is arranged in the horizontal direction, so that when the output shaft of the first rotating motor 341a rotates, the first clamp 31 can rotate around the vertical direction, and when the output shaft of the second rotating motor 341b rotates, the first clamp 31 can rotate around the horizontal direction, so that the first clamp 31 can have a wider range of rotation, so that the positions where the welding component 2 and the cleaning component 1 can be placed can have more choices.
[0038] See also Figures 2 to 4 In one embodiment, the sliding sub-component 343 includes a first screw rod, a first nut, a second screw rod and a second nut. The first nut is slidably mounted on the first screw rod, the second screw rod is mounted on the first nut, the second nut is slidably mounted on the second screw rod, and the second nut is connected to the first clamp 31. When the horizontal position of the first clamp 31 needs to be adjusted, the first screw rod is rotated so that the first nut moves along the first screw rod, thereby adjusting the horizontal position of the first clamp 31. At the same time, by installing the second screw rod on the first nut, the second screw rod is rotated so that the second nut moves along the second screw rod, thereby further expanding the horizontal movable range of the first clamp 31, so that it can ensure that the optical fiber is transported to the fusion assembly 2 and the cleaning assembly 1.
[0039] See also Figures 2 to 4In one embodiment, the second moving mechanism 35 includes a first slide rail 351, a first slider 352, a second slide rail 353 and a second slider 354. The first slider 352 is slidably installed on the first slide rail 351 along the length direction of the first slide rail 351, the second slider 354 is slidably installed on the second slide rail 353 along the length direction of the second slide rail 353, the second slide rail 353 is installed on the first slider 352, and the stripping tool 33 is installed on the second slider 354. Specifically, when the position of the second clamp 32 needs to be adjusted, the first slider 352 is driven to slide along the length direction of the first slide rail 351. Since the second slide rail 353 is installed on the first slider 352, and the second clamp 32 is installed on the second slider 354, the movement of the first slider 352 will drive the second clamp 32 to move, thereby adjusting the position of the second clamp 32; and at the same time, the second slider 354 is driven to slide along the length direction of the second slide rail 353, which can further increase the adjustable range of the second clamp 32, so that the relative position of the first clamp 31 and the second clamp 32 can be adjusted to ensure the optical fiber stripping yield.
[0040] See also Figures 2 to 4 Furthermore, an angle is formed between the first slide rail 351 and the second slide rail 353. The second slide rail 353 is mounted on the first slider 352, and the first slider 352 is slidably mounted on the first slide rail 351 along the length direction of the first slide rail 351. In this way, the first slide rail 351 and the second slide rail 353 are arranged to form an angle, so that the first clamping jaw member can be adjusted in a wider range. When the angle between the first slide rail 351 and the second slide rail 353 is 90°, the adjustable range reaches the maximum.
[0041] See also Figures 2 to 4 In one embodiment, the first moving mechanism 34 further includes a first rotating motor 344, which is mounted on the sliding sub-component 343, and the first clamp 31 is mounted on the output shaft of the rotating motor. The stripping assembly 3 further includes a second rotating motor 36, which is mounted on the frame 101, and the second clamp 32 is mounted on the output shaft of the second rotating motor 36. The first rotating motor 344 and the second rotating motor 36 drive the first clamp 31 and the second clamp 32 to rotate respectively, so that the operator does not need to manually rotate the first clamp 31 and the second clamp 32, and the first clamp 31 and the second clamp 32 are automatically rotated, which further improves the stripping efficiency.
[0042] See also Figures 2 to 4Further, the stripping assembly 3 further includes a second rotating shaft, which is connected to the output shaft of the second rotating motor 36 through a bearing, and the second clamp 32 is installed on the second rotating shaft, and a magnet 37 is provided on the second clamp 32. The second rotating shaft is connected to the output shaft of the second rotating motor 36 through a bearing, so that the connection accuracy is guaranteed as much as possible; and the second clamp 32 is tightened by screws, and the magnet 37 is provided to absorb the optical fiber, so as to fully ensure the clamping force of the optical fiber, and avoid relative displacement during the tensioning process of the optical fiber during stripping, which leads to a decrease in yield.
[0043] See also Figures 2 to 4 Furthermore, the first moving mechanism 34 also includes a first rotating shaft and a rotating shaft support seat 345. The first rotating shaft is rotatably mounted on the rotating shaft support seat 345. The output shaft of the first rotating motor 344 is in transmission connection with the first rotating shaft, and the first clamp 31 is mounted on the first rotating shaft. The first rotating shaft is in transmission connection with the output shaft of the first rotating motor 344. Since the first rotating shaft is extended outward, when the first rotating motor 344 is running, due to the processing gap between the parts, the first rotating shaft will deviate from the rotation center due to the influence of gravity during the rotation process and tilt downward, which will lead to a decrease in the optical fiber stripping yield. At this time, the rotating shaft support seat 345 is set, and one end of the first rotating shaft away from the output shaft of the first rotating motor 344 is rotatably mounted on the rotating shaft support seat 345. In this way, by adding the rotating shaft support seat 345, the first rotating shaft is supported, thereby ensuring the concentricity of the optical fiber rotation.
[0044] See also Figures 2 to 4 Furthermore, the rotating shaft support seat 345 and the first rotating shaft are both provided with a fiber placement groove 345a, and the fiber placement groove 345a is used to place the optical fiber. The rotating shaft support seat 345 and the first rotating shaft are both provided with a fiber placement groove 345a, so that the optical fiber can be placed in the optical fiber placement groove 345a to prevent the optical fiber from being separated.
[0045] In one embodiment, the stripping assembly 3 further includes a driver, which is respectively connected to the first rotating motor 344 and the second rotating motor 36. The driver enables the first rotating motor 344 and the second rotating motor 36 to rotate synchronously, thereby ensuring the yield of optical fiber stripping.
[0046] See also Figure 5In one embodiment, the fusion assembly 2 includes two cameras 21, which are used to detect the positions of the optical fibers on the two first clamps 31 respectively, and the two cameras 21 are connected to the rotating sub-component 341 by signals. The two cameras 21 detect the positions of the optical fibers. When the positions of the optical fibers are suitable for the fusion position, the fusion can be performed directly. When the positions of the optical fibers are not suitable for fusion, the cameras 21 transmit signals to the rotating sub-component 341 to control the rotation of the rotating sub-component 341, adjust the position and angle of the optical fibers on the first clamps 31, so that the optical fibers meet the position requirements for fusion, and improve the fusion yield.
[0047] See also Figure 5 In one embodiment, the fusion assembly 2 further includes two first driving components 22, and the extension shafts of the two first driving components 22 are respectively connected to the two cameras 21. By adjusting the positions of the two cameras 21 by the two first driving components 22, the cameras 21 can accurately determine the position of the optical fiber.
[0048] See also Figure 5 In one embodiment, the fusion splicing assembly 2 further includes a fusion splicing device 23 and a second driving component 24, and the extension shaft of the second driving component 24 is connected to the fusion splicing device 23. The position of the fusion splicing device 23 is adjusted by the second driving component 24, so that the optical fiber can enter the fusion splicing device 23 for fusion splicing.
[0049] See also Figure 5 Furthermore, the cleaning component 1 includes a blowing component 11, a shell 12, a sealing cover 4 and a vibration component 5. The shell 12 includes a frame 121 and a storage box 13. The storage box 13 is used to contain the cleaning liquid. The storage box 13 is formed with a containing groove. The sealing cover 4 is slidably installed on the frame 121. The sealing cover 4 is used to cover or open the containing groove. The vibration component 5 is installed on the frame 121. The end of the vibration component 5 away from the frame 121 is connected to the storage box 13. The blowing component 11 is used to air-dry the optical fiber. The first movable structure transports the optical fiber into the accommodating cavity, starts the vibration component 5, and the vibration component 5 starts to vibrate, which will drive the solution in the accommodating cavity to vibrate, thereby removing the debris and impurities on the surface of the optical fiber into the solution. After waiting for a certain period of time, when all the debris and impurities on the surface of the optical fiber are cleaned, the first movable structure transports the optical fiber to the blowing component 11. In fact, the solution in the accommodating cavity is generally acetone. In order to prevent the volatilization of acetone, the sealing cover 4 needs to be driven to move again after cleaning to cover the accommodating cavity, which can prevent the volatilization of acetone in the accommodating cavity. Then the blowing component 11 blows air to dry the solution on the optical fiber to accelerate the volatilization of the surface solution, which can save the time of waiting for the optical fiber to dry.
[0050] See also Figure 6 or Figure 7Furthermore, the vibration assembly 5 includes a plurality of ultrasonic vibrators 51, and the plurality of ultrasonic vibrators 51 are all installed at the bottom of the storage box 13, and the plurality of ultrasonic vibrators 51 are arranged in a rectangular shape. The ultrasonic vibrator 51 is used to achieve vibration, so that the solution in the containing cavity is shaken, and the debris and impurities on the optical fiber are cleaned. The ultrasonic vibrator 51 can generate a very precise vibration frequency. The ultrasonic vibrator 51 can generate a high frequency. This high-frequency characteristic enables the ultrasonic wave to propagate farther in a specific medium and has good penetration ability. The vibration energy generated by the ultrasonic vibrator 51 can be highly concentrated at one point or a small area, and can effectively remove dirt in small gaps without damaging the workpiece itself. Ultrasonic technology can achieve functions such as cleaning and detection without direct contact with the object, reducing the risk of physical damage to the processed object. By adjusting the working parameters of the ultrasonic vibrator 51, the intensity and range of the ultrasonic wave can be flexibly controlled to meet the needs of different application scenarios. The vibration generated by the ultrasonic vibrator 51 is highly efficient and can complete the task in a shorter time. At the same time, the energy consumed is relatively small, which helps to reduce operating costs. In addition, multiple ultrasonic vibrators 51 are provided, so that the multiple ultrasonic vibrators 51 can make the debris and impurities on the optical fiber clean more thoroughly. The multiple ultrasonic vibrators 51 are arranged in a rectangular shape, so that the force on each part of the optical fiber is more uniform.
[0051] See also Figure 6 or Figure 7 Further, the storage box 13 is formed with a mounting plate 131, and the vibration assembly 5 further includes a shock-absorbing pad 52, the number of which is equal to the number of the ultrasonic vibrators 51, and the ultrasonic vibrators 51 are mounted on the mounting plate 131, one side of the shock-absorbing pad 52 abuts against the ultrasonic vibrators 51, and the other side of the shock-absorbing pad 52 is mounted on the rack 121. Specifically, the ultrasonic vibrator 51 will vibrate after being started, and the vibration will be transmitted to the storage box 13 and the rack 121. In order to prevent the rack 121 from vibrating, the shock-absorbing pad 52 is provided, and the ultrasonic vibrator 51 is connected to the shock-absorbing pad 52, and then mounted on the rack 121 through the shock-absorbing pad 52, so that the shock-absorbing pad 52 will buffer the vibration of the ultrasonic vibrator 51 and prevent the vibration from being transmitted to the rack 121.
[0052] See also Figure 6 or Figure 7 Furthermore, the vibration assembly 5 further includes a locking member 53, the mounting plate 131 is formed with a first mounting hole, the frame 121 is formed with a second mounting hole, the locking member 53 passes through the first mounting hole and is mounted on the second mounting hole, and the shock absorbing pad 52 and the ultrasonic vibrator 51 are both sleeved on the locking member 53. The storage box 13 and the frame 121 are connected by the above structure, so that the storage box 13 and the frame 121 can be quickly disassembled and installed, and the shock absorbing pad 52 and the ultrasonic vibrator 51 can be fixed to prevent the shock absorbing pad 52 and the ultrasonic vibrator 51 from being separated.
[0053] See also Figure 6 or Figure 7 Furthermore, the cleaning assembly 1 also includes a support rod 6, a driving cylinder 7 and two connecting members 8, wherein the two ends of one connecting member 8 are rotatably connected to one side of the frame 121 and one side of the sealing cover 4 respectively, wherein the two ends of the other connecting member 8 are rotatably connected to the other side of the frame 121 and the other side of the sealing cover 4 respectively, the two ends of the support rod 6 are connected to the two connecting members 8, the cylinder body of the driving cylinder 7 is rotatably installed on the frame 121, and the output shaft of the driving cylinder 7 is rotatably connected to the support rod 6. Specifically, when it is necessary to open the sealing cover 4, the driving cylinder 7 is started and the output shaft of the driving cylinder 7 is retracted, which will drive the support rod 6 to move toward the driving cylinder 7 and simultaneously drive the two connecting parts 8 to rotate around the frame 121, so that the top ends of the two connecting parts 8 will drive the sealing cover 4 to move, thereby opening the receiving groove; when it is necessary to close the sealing cover 4, the driving cylinder 7 is started and the output shaft of the driving cylinder 7 is extended, which will drive the support rod 6 to move away from the driving cylinder 7 and simultaneously drive the two connecting parts 8 to rotate around the frame 121, so that the top ends of the two connecting parts 8 will drive the sealing cover 4 to move in the opposite direction, thereby covering the receiving groove.
[0054] See also Figure 6 or Figure 7 Further, the connecting member 8 includes two connecting rods 81 arranged in parallel, and both ends of the two connecting rods 81 are respectively rotatably connected to the frame 121 and the sealing cover 4. Each connecting member 8 includes two connecting rods 81 arranged in parallel, so that the two connecting rods 81 form a parallelogram structure, which ensures that the sealing cover 4 is easy to open and close, and can ensure better sealing when closed.
[0055] See also Figure 6 or Figure 7 Furthermore, the frame 121 includes a first platform 121a and a second platform 122, the first platform 121a is slidably mounted on the second platform 122, and the first platform 121a is connected to the vibration assembly 5. Since the storage box 13 is in the frame 121, when the solution in the storage box 13 needs to be replaced, the first platform 121a is driven to slide on the second platform 122, so that the first platform 121a extends out of the second platform 122, so that the operator can replace the solution more conveniently.
[0056] See also Figure 6 or Figure 7 Further, the first platform 121a is formed with a slide groove 121b, and the second platform 122 is formed with a slide rail 122a, and the first platform 121a is slidably mounted on the slide rail 122a through the slide groove 121b. By providing the slide groove 121b and the slide rail 122a, the sliding between the first platform 121a and the second platform 122 is smooth.
[0057] See also Figure 6 or Figure 7 Furthermore, the storage box 13 is formed with a drain port 132 which is interconnected with the containing tank. Since the storage box 13 is in the frame 121, when the solution in the storage box 13 needs to be replaced, the first platform 121a is driven to slide on the second platform 122 so that the first platform 121a extends out of the second platform 122, and then the solution can be discharged from the drain port 132. In this way, by making the first platform 121a and the second platform 122 slide and adding the drain port 132, it is further convenient for the operator to add and replace the solution.
[0058] See also Figure 6 or Figure 7 Furthermore, the cleaning assembly 1 further includes a switch valve 9 and a connecting pipe, the switch valve 9 is installed on the first platform 121a, and the two ends of the connecting pipe are respectively connected to the switch valve 9 and the drain port 132. The connecting pipe connects the switch valve 9 and the drain port 132, so that when the solution needs to be discharged, the opening valve is opened, so that the solution in the holding tank will flow out from the drain port 132 and rush through the connecting pipe to the opening valve, and then be discharged from the outlet of the opening valve. By setting such a structure, the discharge of the solution can be autonomously controlled, and the operation is simple and convenient, which greatly reduces the labor intensity of the operator.
[0059] The above description is only an exemplary embodiment of the present invention, and does not limit the patent scope of the present invention. All equivalent structural changes made by using the contents of the present invention specification and drawings under the technical concept of the present invention, or directly / indirectly applied in other related technical fields are included in the patent protection scope of the present invention.
Claims
1. An optical fiber stripping and fusion splicing device, characterized in that: include: frame; A cleaning assembly, used for cleaning the optical fiber, wherein the number of the cleaning assemblies is two; A fusion splicing assembly, used for fusing the two optical fibers to each other; Stripping assemblies, the number of the stripping assemblies is two, each of the stripping assemblies includes a first clamp, a second clamp, a stripping tool, a first moving mechanism and a second moving mechanism, the first moving mechanism and the second moving mechanism are both installed on the frame, the first clamp is rotatably installed on the first moving mechanism, the second clamp is rotatably installed on the frame, and the stripping tool is installed on the second moving mechanism; the first clamp and the second clamp are respectively used to clamp the two ends of the optical fiber, the second moving mechanism can drive the stripping tool to move so as to make the stripping tool contact with the surface of the optical fiber; the first moving mechanism can drive the clamp to move so as to move the optical fiber to the cleaning assembly and the fusion splicing assembly in sequence.
2. The optical fiber stripping and fusion splicing equipment according to claim 1, characterized in that: The first moving mechanism includes a rotating sub-component, a telescopic sub-component and a sliding sub-component, the rotating sub-component is connected to the telescopic sub-component, the rotating sub-component is used to drive the telescopic sub-component to rotate, the extension shaft of the telescopic sub-component is connected to the sliding sub-component, the extension shaft of the telescopic sub-component can be extended or retracted in the vertical direction to drive the sliding sub-component to rise or fall, the sliding sub-component is connected to the first clamp, and the sliding sub-component is used to drive the first clamp to slide.
3. The optical fiber stripping and fusion splicing equipment according to claim 2, characterized in that: The rotating sub-component includes a first rotating motor and a second rotating motor, the output shaft of the first rotating motor is arranged in a vertical direction, the output shaft of the second rotating motor is arranged in a horizontal direction, the output shaft of the first rotating motor is connected to the cylinder body of the second rotating motor, and the output shaft of the second rotating motor is connected to the telescopic sub-component.
4. The optical fiber stripping and fusion splicing equipment according to claim 3, characterized in that: The sliding sub-component includes a first screw, a first nut, a second screw and a second nut, the first nut is slidably mounted on the first screw, the second screw is mounted on the first nut, the second nut is slidably mounted on the second screw, and the second nut is connected to the first clamp.
5. The optical fiber stripping and fusion splicing device according to any one of claims 2 to 4, characterized in that: The second moving mechanism includes a first slide rail, a first slider, a second slide rail and a second slider. The first slider is slidably installed on the first slide rail along the length direction of the first slide rail, the second slider is slidably installed on the second slide rail along the length direction of the second slide rail, the second slide rail is installed on the first slider, and the stripping tool is installed on the second slider.
6. The optical fiber stripping and fusion splicing equipment according to claim 5, characterized in that: The first moving mechanism also includes a first rotating motor, which is mounted on the sliding sub-component, and the first clamp is mounted on the output shaft of the rotating motor. The stripping assembly also includes a second rotating motor, which is mounted on the frame, and the second clamp is mounted on the output shaft of the second rotating motor.
7. The optical fiber stripping and fusion splicing equipment according to claim 6, characterized in that: The stripping assembly further includes a driver, and the driver is signal-connected to the first rotating motor and the second rotating motor respectively.
8. The optical fiber stripping and fusion splicing equipment according to claim 7, characterized in that: The fusion splicing assembly includes two cameras, which are used to respectively detect the positions of the optical fibers on the two first clamps, and the two cameras are connected to the rotating sub-component by signals.
9. The optical fiber stripping and fusion splicing equipment according to claim 8, characterized in that: The fusion assembly further includes two first driving components, and the extending shafts of the two first driving components are respectively connected to the two cameras.
10. The optical fiber stripping and fusion splicing equipment according to claim 9, characterized in that: The welding assembly further comprises a welding device and a second driving component, wherein an extended shaft of the second driving component is connected to the welding device.