Portable optical cable welding and peeling equipment
By designing a portable optical cable splicing and stripping device, the height of the optical fiber fusion splicer can be adjusted using telescopic rods and pull rods, solving the neck discomfort problem caused by the portability requirements of optical fiber fusion splicing technicians, and achieving comfortable use without having to bend over.
Patent Information
- Application Number
- CN202511306430.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-12
- Publication Date
- 2025-12-05
AI Technical Summary
Due to the need for portability, fiber optic fusion splicing technicians often suffer from neck discomfort and cervical lordosis problems from prolonged periods of looking down while operating the equipment.
Design a portable optical cable splicing and stripping device, including an equipment box, a telescopic pole, a pull rod, and a fixing component. The height of the optical fiber fusion splicer can be adjusted by the combination of the telescopic pole and the pull rod, and the optical fiber fusion splicer can be fixed by the fixing component, so that the operator can operate at eye level.
This avoids fiber optic fusion splicing technicians having to keep their heads down for long periods of time, reducing neck discomfort and improving operating comfort.
Smart Images

Figure CN121069563A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of optical fiber fusion splicing technology, and in particular to a portable optical cable fusion splicing and stripping device. Background Technology
[0002] Cable splicing is a common step in optical cable laying and maintenance. It mainly includes cable opening, stripping the outer sheath, cleaning the optical fiber, cutting the optical fiber, splicing, testing and protection. The main equipment involved includes optical cable strippers, Miller pliers, optical fiber cutters and optical fiber fusion splicers. Among them, the optical fiber fusion splicer is the most critical. Currently, all these devices are placed in an equipment box for transport. When in use, all devices are taken out.
[0003] In existing technologies, cervical lordosis has become a common ailment among fiber optic fusion splicing technicians. This is because, for portability, technicians typically only carry small folding tables, which have limited height. The fiber optic splicing and stripping equipment is placed flat on these low tables. In some poor working environments, the fiber optic fusion splicer is placed directly on the ground. In some cases, the fiber optic fusion splicer is even hung around the neck with a strap for splicing operations. Technicians are always bending over during splicing operations. Each time a technician splices dozens to hundreds of fibers, they need to work with their heads down for long periods of time, which leads to neck discomfort and, in the long run, cervical lordosis. Summary of the Invention
[0004] The purpose of this invention is to provide a portable optical cable splicing and stripping device to solve the technical problem of neck discomfort for technicians in the prior art.
[0005] To address the aforementioned technical problems, the present invention provides a portable optical cable splicing and stripping device, comprising a device box, a telescopic pole, a pull rod, and a fixing assembly;
[0006] The telescopic rod is disposed at one end of the pull rod, the telescopic rod and the pull rod are fixedly connected, the movable end of the telescopic rod is connected to the equipment box, and the equipment box can move closer to or further away from the pull rod through the telescopic rod;
[0007] The pull rod and the telescopic rod are set at an angle, and the fixing component is slidably connected to the pull rod. The fixing component is detachably connected to the fiber optic fusion splicer.
[0008] The equipment box is equipped with a storage space for accommodating the fiber optic fusion splicer.
[0009] In an optional embodiment, the telescopic rod includes a sleeve and a connecting rod. The sleeve is sleeved on the connecting rod and is slidably connected to the connecting rod. The outer wall of the sleeve is fixedly connected to the equipment box, and the sleeve drives the equipment box to slide relative to the connecting rod.
[0010] The end face of the connecting rod is connected to the pull rod, and the connecting rod is perpendicular to the pull rod.
[0011] In an optional embodiment, a crossbar is also included. Two connecting rods are provided, each of which is fitted with a sleeve. The two connecting rods are arranged parallel to each other along the width direction of the equipment box. The two sleeves are respectively connected to the equipment box, and the two connecting rods are vertically connected to the crossbar.
[0012] There are two tie rods, which are arranged parallel to each other and are both vertically connected to the crossbar.
[0013] In an optional embodiment, the crossbar is provided with casters, at least two of which are located on the side of the crossbar away from the connecting rod.
[0014] In an optional embodiment, a support foot is provided on each side of the crossbar, the support foot is threadedly connected to the crossbar, and the support foot is used to support the crossbar;
[0015] The sleeve is also provided with a support foot on the side opposite to the crossbar, and the support foot is threadedly connected to the sleeve.
[0016] In an optional embodiment, the fixing assembly includes a fixing bracket, a locking bolt, and a retaining ring;
[0017] The fixing frame is slidably connected to the pull rod, and the locking bolt passes through the fixing frame and is threadedly connected to the fixing frame. The locking bolt is used to lock the fixing frame to the pull rod.
[0018] The fixing frame has multiple fixing rings on the side opposite to the locking bolt, and the fiber optic fusion splicer extends into the fixing rings and connects to the fixing frame.
[0019] In an optional embodiment, the fiber optic fusion splicer includes a body, a carrier, a drive unit, a splicing unit, and a connecting unit;
[0020] The machine body is provided with the support part, the driving part, the welding part and the connecting part. The support part, the driving part and the welding part are connected to the same plane of the machine body. The driving part and the welding part are fixedly connected to the machine body respectively. The support part is slidably connected to the machine body. The driving part is used to drive the support part to slide relative to the machine body.
[0021] The fusion splice is disposed on the side of the bearing portion away from the driving portion, and the fusion splice is used to splice optical cables;
[0022] The connecting part is located on the side of the machine body away from the bearing part, and the connecting part is connected to the fixing ring.
[0023] In an optional embodiment, the bearing portion includes a bearing platform, a clamp, a connecting block, a pusher / puller, a support body, and a sliding rod;
[0024] The support platform and the clamp are hinged together, and the clamp is rotatable relative to the support platform. The clamp is used to cooperate with the support platform to fix the optical cable.
[0025] The connecting block is fixed to one end of the sliding rod, the connecting block is disposed on one side of the support platform, and the connecting block is connected to the push-pull device;
[0026] The output end of the push-pull device abuts against the support platform, the support platform is rotatably connected to the sliding rod, and the push-pull device is used to drive the support platform to rotate relative to the sliding rod.
[0027] The machine body is provided with a sliding groove, the sliding rod is disposed in the sliding groove, the sliding rod is slidably connected to the machine body, the output end of the drive unit is connected to the sliding rod, and the drive unit is used to drive the sliding rod to slide relative to the machine body;
[0028] The support body is located at the end of the sliding rod opposite to the connecting block, and the support body is used to fix the optical cable.
[0029] In an optional embodiment, the support portion further includes an elastic element, the two ends of which are connected to the connecting block and the support platform, respectively, and the elastic element has a tendency to cause the support platform to squeeze the push-pull device.
[0030] In an optional embodiment, the fiber optic fusion splicer further includes a furnace, which is fixed on the machine body and disposed on the same plane as the support unit, with the output end of the furnace facing the support unit.
[0031] This invention provides a portable optical cable splicing and stripping device, comprising an equipment box, a telescopic rod, a pull rod, and a fixing component. The telescopic rod is located at one end of the pull rod, and the telescopic rod and the pull rod are fixedly connected. The movable end of the telescopic rod is connected to the equipment box, allowing the equipment box to move closer to or further away from the pull rod via the telescopic rod. The pull rod and the telescopic rod are set at an angle, and the fixing component is slidably connected to the pull rod. The fixing component is detachably connected to the optical fiber fusion splicer. The equipment box provides a space for accommodating the optical fiber fusion splicer. The fixing component secures the optical fiber fusion splicer, and the height of the optical fiber fusion splicer can be adjusted by the cooperation of the pull rod and the fixing component. The equipment box allows the operator to sit on it, and the distance between the operator and the optical fiber fusion splicer can be adjusted by the pull rod, making it more convenient for the user and avoiding the need for the user to bend over during operation. This solves the technical problem of neck discomfort for technicians in existing technologies, achieving the technical effect of eliminating the need to bend over during operation and making the user more comfortable. Attached Figure Description
[0032] Figure 1 This is a schematic diagram of the portable optical cable splicing and stripping equipment mentioned in the embodiments of the present invention;
[0033] Figure 2 This is another structural schematic diagram of the portable optical cable splicing and stripping device mentioned in the embodiments of the present invention;
[0034] Figure 3 This is a schematic diagram of the optical fiber fusion splicer mentioned in the embodiments of the present invention;
[0035] Figure 4 This is another structural schematic diagram of the optical fiber fusion splicer mentioned in the embodiments of the present invention;
[0036] Figure 5 This is a schematic diagram of the structure of the support portion mentioned in the embodiment of the present invention;
[0037] Figure 6 This is another structural schematic diagram of the support portion mentioned in the embodiments of the present invention.
[0038] In the diagram, 1-Equipment box; 2-Telescopic rod; 201-Sleeve; 202-Connecting rod; 3-Pull rod; 4-Fixing component; 401-Fixing frame; 402-Locking bolt; 403-Fixing ring; 5-Fiber optic fusion splicer; 501-Body; 502-Bearing part; 5021-Bearing platform; 5022-Clamping device; 5023-Connecting block; 5024-Push-pull device; 5025-Support body; 5026-Sliding rod; 5027-Elastic element; 503-Drive part; 504-Fusion splicing part; 505-Connecting part; 506-Furnace; 6-Crossbar; 7-Universal wheel; 8-Support foot. Detailed Implementation
[0039] The specific embodiments of the present invention will be described in further detail below with reference to the accompanying drawings and examples. The following examples are used to illustrate the present invention, but are not intended to limit the scope of the invention.
[0040] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal communication between two components. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.
[0041] In related technologies, cervical lordosis has become a common ailment among fiber optic fusion splicing technicians. This is because, for portability, technicians typically only carry small folding tables, which have limited height. The fiber optic splicing and stripping equipment is placed flat on these low tables. In some poor working environments, the fiber optic fusion splicer is placed directly on the ground. In some cases, the fiber optic fusion splicer is even hung around the neck with a strap for splicing operations. Technicians are always bending over during splicing operations. Each time a technician splices dozens to hundreds of fibers, they need to work with their heads down for long periods of time, which leads to neck discomfort and, in the long run, cervical lordosis.
[0042] In view of this, such as Figures 1-6 As shown, some embodiments of the present invention provide a portable optical cable splicing and stripping device, including an equipment box 1, a telescopic rod 2, a pull rod 3, and a fixing component 4; the telescopic rod 2 is disposed at one end of the pull rod 3, the telescopic rod 2 and the pull rod 3 are fixedly connected, the movable end of the telescopic rod 2 is connected to the equipment box 1, and the equipment box 1 can move closer to or further away from the pull rod 3 through the telescopic rod 2; the pull rod 3 and the telescopic rod 2 are arranged at an angle, and the fixing component 4 is slidably connected to the pull rod 3, and the fixing component 4 is detachably connected to the optical fiber splicer 5; the equipment box 1 is provided with a accommodating space for accommodating the optical fiber splicer 5.
[0043] In the above embodiments, the equipment box 1, telescopic rod 2, pull rod 3, and fixing component 4 can all be made of metal. The equipment box 1 can be rectangular, and a closable top cover is provided on the top of the equipment box 1, so that the equipment box 1 can be opened and the fiber optic fusion splicer 5 can be placed in and taken out of the accommodating space. The cross-sections of the telescopic rod 2 and the pull rod 3 can be circular or rectangular. The movable end of the telescopic rod 2 is connected to the bottom of the outer surface of the equipment box 1, and the telescopic rod 2 can be welded to the equipment box 1. The end face of the pull rod 3 can be connected to the end face of the telescopic rod 2. The pull rod 3 can be long and narrow, and the pull plate is set at an angle to the telescopic rod 2. The pull rod 3 can be easily pulled by the user to move the equipment box 1 and its interior. Furthermore, in the fiber optic fusion splicer 5, the fixing component 4 can be sleeved on the pull rod 3. The fixing component 4 can be slidably connected to the pull rod 3 and can slide back and forth along the length of the pull rod 3. At the same time, the fixing component 4 can be fixed at a certain height on the pull rod 3, so that the height of the fixing component 4 can be adjusted. The fiber optic fusion splicer 5 can be connected to the fixing component 4, so that the fiber optic fusion splicer 5 is set at a higher position. The distance between the equipment box 1 and the fiber optic fusion splicer 5 can be adjusted by the telescopic rod 2, which can facilitate the use of operators of different heights. And by adjusting the height of the fiber optic fusion splicer 5 by the fixing component 4, it is convenient for the operator to operate at eye level and avoid neck discomfort caused by the operator looking down for a long time.
[0044] Some embodiments of the present invention provide a portable optical cable splicing and stripping device, including an equipment box 1, a telescopic rod 2, a pull rod 3, and a fixing component 4; the telescopic rod 2 is disposed at one end of the pull rod 3, and the telescopic rod 2 and the pull rod 3 are fixedly connected, with the movable end of the telescopic rod 2 connected to the equipment box 1, allowing the equipment box 1 to move closer to or further away from the pull rod 3 via the telescopic rod 2; the pull rod 3 and the telescopic rod 2 are arranged at an angle, and the fixing component 4 is slidably connected to the pull rod 3, and the fixing component 4 is detachably connected to the optical fiber fusion splicer 5; the equipment box 1 is provided with a space for accommodating the optical fiber fusion splicer 5, the fixing component 4 is used to fix the optical fiber fusion splicer 5, and the height of the optical fiber fusion splicer 5 is adjusted by the cooperation of the pull rod 3 and the fixing component 4; the equipment box 1 allows the operator to sit, and the distance between the operator and the optical fiber fusion splicer 5 can be adjusted by the pull rod 3, thereby making it more convenient for the user, avoiding the user having to bend down to operate, solving the technical problem of neck discomfort for technicians in the prior art, and achieving the technical effect of not needing to bend down to operate, making the user more comfortable.
[0045] In an optional embodiment, the telescopic rod 2 includes a sleeve 201 and a connecting rod 202. The sleeve 201 is sleeved on the connecting rod 202 and the sleeve 201 is slidably connected to the connecting rod 202. The outer wall of the sleeve 201 is fixedly connected to the equipment box 1, and the sleeve 201 drives the equipment box 1 to slide relative to the connecting rod 202. The end face of the connecting rod 202 is connected to the pull rod 3, and the connecting rod 202 is perpendicular to the pull rod 3.
[0046] In the above embodiment, the sleeve 201 and the connecting rod 202 have the same cross-sectional shape. The cross-sectional size of the sleeve 201 is larger than that of the connecting rod 202. The cross-sections of both the sleeve 201 and the connecting rod 202 can be square. The sleeve 201 is fitted onto the connecting rod 202 and slides, so that the equipment box 1 welded to the sleeve 201 can slide relative to the connecting rod 202 through the sleeve 201. The connecting rod 202 can be set parallel to the ground and is set vertically on the end face of the pull rod 3, so that the pull rod 3 can be set vertically, which makes it convenient for the user to adjust the height of the fiber optic fusion splicer 5 and also makes it convenient for the fiber optic fusion splicer 5 to face the user.
[0047] In an optional embodiment, a crossbar 6 is also included. Two connecting rods 202 are provided, and each connecting rod 202 is fitted with a sleeve 201. The two connecting rods 202 are arranged parallel to each other along the width direction of the equipment box 1. The two sleeves 201 are respectively connected to the equipment box 1. The two connecting rods 202 are vertically connected to the crossbar 6. Two pull rods 3 are provided, and the two pull rods 3 are arranged parallel to each other. The two pull rods 3 are vertically connected to the crossbar 6.
[0048] In the above embodiment, the crossbar 6 can also be made of metal, and the cross section of the crossbar 6 can also be square. The crossbar 6 is set parallel to the ground. Two connecting rods 202 and two tie rods 3 can be connected to the crossbar 6. The two connecting rods 202 are horizontal and spaced apart. The two connecting rods 202 are welded to the crossbar 6, while the two tie rods 3 are vertical. The ends of the two tie rods 3 away from the crossbar 6 can be connected together by square tubes. The two tie rods 3 are parallel and spaced apart, so as to better fix the equipment box 1.
[0049] In an optional embodiment, the crossbar 6 is provided with casters 7, and at least two casters 7 are provided. The casters 7 are located on the side of the crossbar 6 away from the connecting rod 202.
[0050] In the above embodiment, two casters 7 can be provided. The casters 7 can be provided on the side of the crossbar 6 away from the connecting rod 202. The casters 7 can be welded to the crossbar 6. When the user pulls the lever 3 to move, the user pulls the lever 3 at an angle. After the two casters 7 touch the ground, the user can pull the lever 3 and then slide through the casters 7 to move the equipment box 1.
[0051] In an optional embodiment, a support foot 8 is provided on each side of the crossbar 6, and the support foot 8 is threadedly connected to the crossbar 6. The support foot 8 is used to support the crossbar 6. A support foot 8 is also provided on the side of the sleeve 201 away from the crossbar 6, and the support foot 8 is threadedly connected to the sleeve 201.
[0052] In the above embodiment, the support foot 8 can be rotatably connected by a threaded column and a fixed plate. The end face of the threaded column can be set as a ball, and the fixed plate is provided with a round hole. The ball of the threaded column extends into the round hole in the fixed plate, so that the fixed plate can rotate relative to the threaded column. The fixed plate can be set on the side closer to the ground. After the threaded column can rotate, the threaded column carries the fixed plate closer to or away from the ground. A threaded column is provided at each end of the crossbar 6. The two fixed plates on both sides can be pressed tightly to the ground by the two threaded columns, thereby fixing the crossbar 6. Furthermore, a support foot 8 is also provided on the side of each sleeve 201 away from the crossbar 6. The four support feet 8 can fix the stretched sleeve 201 and the crossbar 6. At this time, the two universal wheels 7 can be set at intervals with the ground, thereby better fixing the sleeve 201 and the crossbar 6.
[0053] In an optional embodiment, the fixing component 4 includes a fixing frame 401, a locking bolt 402, and a fixing ring 403; the fixing frame 401 is slidably connected to the pull rod 3, the locking bolt 402 passes through the fixing frame 401 and is threadedly connected to the fixing frame 401, and the locking bolt 402 is used to lock the fixing frame 401 to the pull rod 3; a plurality of fixing rings 403 are provided on the side of the fixing frame 401 away from the locking bolt 402, and the fiber optic fusion splicer 5 extends into the fixing rings 403 and connects to the fixing frame 401.
[0054] In the above embodiment, the fixing frame 401 can be rectangular, made of metal, and vertically mounted on the ground. A ring is provided on the side of the fixing frame 401 away from the fiber optic fusion splicer 5. The fixing frame 401 is fitted onto the pull rod 3 through the ring, and a locking bolt 402 can be provided on the ring. The locking bolt 402 can pass through the ring and lock the fixing frame 401 onto the pull rod 3, thereby fixing the fixing frame 401. Multiple fixing rings 403 can be provided on the fixing frame 401. The cross-section of the fixing ring 403 can be rectangular, and multiple fixing rings 403 can be provided. The multiple fixing rings 403 can be arranged in a matrix along the surface of the fixing frame 401, and the fiber optic fusion splicer 5 can extend into the multiple fixing rings 403, so that the fiber optic fusion splicer 5 can be connected to the fixing rings 403.
[0055] In an optional embodiment, the fiber optic fusion splicer 5 includes a body 501, a carrier 502, a drive 503, a fusion splice 504, and a connector 505. The carrier 502, drive 503, fusion splice 504, and connector 505 are disposed on the body 501. The carrier 502, drive 503, and fusion splice 504 are connected to the same plane of the body 501. The drive 503 and fusion splice 504 are fixedly connected to the body 501, and the carrier 502 is slidably connected to the body 501. The drive 503 is used to drive the carrier 502 to slide relative to the body 501. The fusion splice 504 is disposed on the side of the carrier 502 away from the drive 503 and is used to fusion splice optical cables. The connector 505 is disposed on the side of the body 501 away from the carrier 502 and is connected to a fixing ring 403.
[0056] In the above embodiments, the fiber optic fusion splicer 5 includes a body 501, a working surface, a support part 502, a fusion splicing part 504, a drive part 503, a connecting part 505, an image acquisition part, a display, and a windproof cover. A working surface is provided on one side of the body 501. The working surface is planar and rectangular, and can be welded to the body 501. A connecting part 505 is provided on the side opposite the working surface. The working surface is vertically arranged. The windproof cover is mounted on the body 501 and is rotatably connected to the body 501. The windproof cover is used for wind protection. The connecting part 505 is used for detachable connection of a quick-release bracket. A support part 502 is also provided on the working surface. The drive unit 503, fusion splice unit 504, and image acquisition unit are symmetrically arranged on both sides of the fusion splice unit 504 for clamping and fixing the optical fiber. The drive unit 503 is located inside the body 501 and connected to the support unit 502 for driving the support unit 502 to slide relative to the body 501 to align the optical fiber. The fusion splice unit 504 is used to fusion splice two aligned optical fibers. The image acquisition unit is used to acquire the alignment point image of the optical fiber and provide image data for optical fiber alignment. The display is located on the upper side of the body 501 and is electrically connected to the image acquisition unit. The display is used to display the image acquired by the image acquisition unit.
[0057] In an optional embodiment, the carrier 502 includes a carrier platform 5021, a clamp 5022, a connecting block 5023, a pusher / puller 5024, a support body 5025, and a sliding rod 5026; the carrier platform 5021 and the clamp 5022 are hinged, and the clamp 5022 can rotate relative to the carrier platform 5021. The clamp 5022 is used to cooperate with the carrier platform 5021 to fix the optical cable; the connecting block 5023 is fixed to one end of the sliding rod 5026, and the connecting block 5023 is disposed on one side of the carrier platform 5021. The connecting block 5023 is connected to the pusher / puller 5024; the output end of the pusher / puller 5024... The support platform 5021 abuts against the sliding rod 5026, and the support platform 5021 is rotatably connected to the sliding rod 5026. The push-pull device 5024 is used to drive the support platform 5021 to rotate relative to the sliding rod 5026. A sliding groove is provided on the body 501, and the sliding rod 5026 is disposed in the sliding groove. The sliding rod 5026 is slidably connected to the body 501. The output end of the drive unit 503 is connected to the sliding rod 5026, and the drive unit 503 is used to drive the sliding rod 5026 to slide relative to the body 501. The support body 5025 is disposed at one end of the sliding rod 5026 away from the connecting block 5023, and the support body 5025 is used to fix the optical cable.
[0058] In an optional embodiment, the support portion 502 further includes an elastic element 5027, the two ends of which are connected to the connecting block 5023 and the support platform 5021 respectively, and the elastic element 5027 has a tendency to cause the support platform 5021 to squeeze the pusher 5024.
[0059] In the above embodiment, the support part 502 includes a support platform 5021, a clamp 5022, a connecting block 5023, an electromagnetic push-pull rod 3, a spring element, a V-shaped support body 5025, and a sliding rod 5026. Both the support platform 5021 and the clamp 5022 can be made of metal. The support platform 5021 and the clamp 5022 are hinged together. Both the support platform 5021 and the clamp 5022 are provided with optical fiber snap-fit slots. After being clamped by the support platform 5021 and the clamp 5022, the optical fiber can be fixed. The support body 5025 can be V-shaped, and the push-pull rod 3 can... The electromagnetic push-pull rod 3 is used. The surface of the support platform 5021 is parallel to the working surface, facilitating horizontal operation by the technician. A clamp 5022 is rotatably mounted on the support platform 5021, and the clamp 5022 and support platform 5021 can be magnetically fixed together. The support platform 5021 and clamp 5022 are used to clamp the optical fiber. The connecting block 5023 has an L-shaped structure and is hinged to the support platform 5021. The support platform 5021 can rotate towards the connecting block 5023. A spring element is provided between the support platform 5021 and the connecting block 5023. The upper side of the pull support platform 5021 is rotated towards the connecting block 5023. An electromagnetic push-pull rod 3 is provided above the connecting block 5023. The electromagnetic push-pull rod 3 is used to push the support platform 5021 to an upright position. At this time, the elastic element 5027 is stretched. The V-shaped support body 5025 is connected to the connecting block 5023 through the sliding rod 5026. The drive unit 503 is connected to the sliding rod 5026. In use, after stripping and wiping the optical fiber, the clamp 5022 is opened, and the optical fiber is cut by the optical fiber cutter and placed on the support platform 5021. The operation can be performed manually or automatically by electronic components. When the clamp 5022 is closed, the carrier platform 5021 tilts under the action of the elastic element, which facilitates the smooth entry of the optical fiber into the carrier platform 5021 and avoids the optical fiber having an excessive angle when inserted. After the clamp 5022 is closed, the electromagnetic push-pull rod 3 operates to straighten the carrier platform 5021, so that the end of the optical fiber is located on the V-shaped support body 5025. The windproof cover is closed, and the drive unit 503 drives the V-shaped support body 5025 and the connecting block 5023 to move closer to the fusion splice unit 504 through the sliding rod 5026 and align the optical fiber port. The fusion splice unit 504 then operates to complete the fusion splicing.
[0060] In an optional embodiment, the fiber optic fusion splicer 5 further includes a furnace 506, which is fixed on the body 501. The furnace 506 and the support unit 502 are arranged on the same plane, and the output end of the furnace 506 faces the support unit 502.
[0061] In the above embodiment, the furnace 506 is disposed on the lower side of the body 501, and the furnace 506 is used for the protective sleeve 201 on the heat-shrinkable optical fiber.
[0062] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A portable optical cable fusion splicing and stripping apparatus, characterized by, The device box, the telescopic rod, the pull rod and the fixing assembly are included. The telescopic rod is arranged at one end of the pull rod, and the telescopic rod and the pull rod are fixedly connected. The pull rod is arranged at an angle with the telescopic rod, and the fixing assembly is slidably connected to the pull rod. The device box is provided with a containing space for containing the optical fiber fusion splicer.
2. The portable optical-fiber fusion splicing and stripping apparatus according to claim 1, wherein The telescopic rod includes a sleeve and a connecting rod, the sleeve is sleeved on the connecting rod, the sleeve and the connecting rod are slidably connected, the outer wall of the sleeve is fixedly connected with the device box, and the sleeve drives the device box to slide relative to the connecting rod. The end surface of the connecting rod is connected to the pull rod, and the connecting rod is arranged perpendicularly to the pull rod.
3. The portable optical-fiber fusion splicing and stripping apparatus according to claim 2, wherein The connecting rod is provided with two sleeves, and the two sleeves are connected with the device box. The pull rod is provided with two, and the two pull rods are arranged in parallel.
4. The portable optical-fiber fusion splicing and stripping apparatus according to claim 3, wherein The cross rod is provided with universal wheels, and the universal wheels are arranged on the side of the cross rod away from the connecting rod.
5. The portable optical-fiber fusion splicing and stripping apparatus according to claim 3, wherein The cross rod is provided with a support foot on each side, and the support foot is threadedly connected with the cross rod. The sleeve is provided with a support foot on the side away from the cross rod.
6. The portable optical-fiber fusion splicing and stripping apparatus according to claim 1, wherein The fixing assembly includes a fixing frame, a locking bolt and a fixing ring. The fixing frame is slidably connected to the pull rod, the locking bolt is arranged on the fixing frame and is threadedly connected with the fixing frame, and the locking bolt is used for locking the fixing frame on the pull rod. The optical fiber fusion splicer includes a body, a bearing part, a driving part, a fusion part and a connecting part.
7. The portable optical-fiber fusion splicing and stripping apparatus according to claim 6, wherein The body is provided with the bearing part, the driving part, the fusion part and the connecting part, the bearing part, the driving part and the fusion part are connected on the same plane of the body, the driving part and the fusion part are fixedly connected with the body, the bearing part is slidably connected with the body, and the driving part is used for driving the bearing part to slide relative to the body. The fusion part is arranged on the side of the bearing part away from the driving part, and is used for fusing optical cables. The connecting part is arranged on the side of the body away from the bearing part, and is connected with the fixing ring. The bearing part includes a bearing table, a clamp, a connecting block, a push-pull device, a support body and a sliding rod.
8. The portable optical-fiber fusion splicing and stripping apparatus according to claim 7, wherein The bearing table and the clamp are hingedly connected, the clamp can rotate relative to the bearing table, and the clamp is used for fixing optical cables in cooperation with the bearing table. The connecting block is fixed at one end of the sliding rod, and is arranged at one side of the bearing table. An output end of the push-pull device is in abutment with the bearing table, the bearing table is rotationally connected with the sliding rod, and the push-pull device is used to drive the bearing table to rotate relative to the sliding rod. A sliding groove is arranged on the machine body, the sliding rod is arranged in the sliding groove, the sliding rod is slidingly connected with the machine body, an output end of the driving part is connected with the sliding rod, and the driving part is used to drive the sliding rod to slide relative to the machine body. The support body is arranged at one end of the sliding rod away from the connecting block, and is used to fix the optical cable.
9. The portable optical-fiber fusion splicing and stripping apparatus according to claim 8, wherein The bearing part further comprises an elastic member, two ends of the elastic member are respectively connected with the connecting block and the bearing table, and the elastic member has a movement trend of pressing the bearing table against the push-pull device.
10. The portable optical-fiber fusion splicing and stripping apparatus according to claim 7, wherein The optical fiber fusion splicer further comprises a furnace, the furnace is fixed on the machine body, the furnace is arranged on the same plane as the bearing part, and an output end of the furnace faces the bearing part.