Optical fiber arranging device
By designing an optical fiber whole-wire device including the first beam wire mechanism, the bending mechanism and the second beam wire mechanism, the problems of fixed number of whole wires, low applicability, and inability to be bent in the prior art are solved, and flexible organization, bending and fixing of optical fiber wires are realized, and the use effect is improved.
Patent Information
- Application Number
- CN202510503594.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-22
- Publication Date
- 2025-06-06
AI Technical Summary
The number of existing optical fiber whole-wire devices is fixed, cannot be increased or decreased, has low applicability, cannot be bent, and the wiring method is single, which can easily lead to cable damage and hard extrusion, affecting the use effect of optical fiber lines.
An optical fiber whole-wire device including a first beam wire mechanism, a bending mechanism and a second beam wire mechanism is designed. The first beam wire mechanism is used for preliminary finishing and splitting, the bending mechanism is used for bending processing of the optical fiber, and the second beam wire mechanism realizes precise positioning and fixing of the optical fiber through the cooperation of the limit roller and the moving block.
It realizes flexible organization, bending and fixing of optical fiber lines, the number of whole lines can be increased and decreased, the applicability is high, and the wiring methods are diverse, which reduces cable damage and hard extrusion, and improves the use effect of optical fiber lines.
Smart Images

Figure CN120103557A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of optical fiber equipment, and in particular to an optical fiber line assembly device. Background Art
[0002] With the development of communication technology, fiber-optic communication has become the mainstream of communication physical channels. In fiber-optic transmission lines, an optical cable usually includes multiple optical fibers, which are connected to another optical cable or multiple optical fibers of the end user in an optical distribution frame (ODF) or an optical cable junction box (optical junction box). The optical fiber physical channel in the ODF or optical junction box will be rewired according to the needs of the connection during application, that is, it will be re-plugged and re-connected. Optical fiber is a slender, flexible light-guiding medium that uses optical signals to transmit information. It is mainly made of high-purity glass (quartz) or plastic. Its core principle is to limit the propagation of light in the fiber core through total reflection. It has the advantages of high bandwidth, low loss, and anti-electromagnetic interference. It is widely used in communication, sensing, medical and other fields.
[0003] Fiber optic cable assembly refers to a production line that integrates the entire manufacturing process of optical fiber from raw materials to finished products. It usually includes multiple key processes, such as preform rod preparation, fiber drawing, coating, testing and packaging. In the fiber optic manufacturing process, ensuring that the optical fiber cables are neat, tangle-free, and easy to process later is an important technical requirement. Most existing fiber optic cable assembly devices can only achieve simple bundling or preliminary sorting, and are unable to cope with complex fiber optic processing requirements. In addition, existing devices mostly use mechanical fixing methods, which have complex mechanical structures and are inconvenient to adjust. They are prone to failures during use, reducing production efficiency.
[0004] At present, fiber optic patch cords are used as jumper cords from equipment to fiber optic wiring links. They have a thicker protective layer and are generally used to connect optical terminals and terminal boxes. They are used in fiber optic communication systems, fiber optic access networks, fiber optic data transmission, local area networks and other fields. However, in the current fiber optic line finishing device, the neat arrangement and bending of cables are important links to ensure product quality during the fiber optic line finishing process. Although the fiber optic line finishing devices commonly used in the market can meet the basic cable sorting needs, there are some shortcomings, especially for single-line line finishing. Single optical fiber lines are often connected to the inside of the plug-in board by setting a plug-in board for sorting. The number of optical fiber lines is fixed and cannot be increased or decreased. The applicability is low and it cannot be bent. The bundling method is relatively simple, and the internal limit of the single-line optical fiber conductor is often limited by sliding friction, which can easily cause the cable to be damaged or hard squeezed, resulting in poor use of the optical fiber lines inside the cable. Summary of the invention
[0005] The present invention aims to provide an optical fiber line arrangement device to solve the problems in the prior art that the number of lines is fixed, cannot be increased or decreased, has low applicability, cannot be bent, has a relatively single cable bundling method, is easy to cause cable damage, is easy to be hard squeezed, and the optical fiber lines inside the cable have poor use effect.
[0006] The embodiment of the present invention is achieved as follows:
[0007] An embodiment of the present invention provides an optical fiber line arrangement device, which includes a first line bundling mechanism;
[0008] A bending mechanism is provided on the top of the first wire bundling mechanism, a second wire bundling mechanism is provided on the top of the bending mechanism, and adjustable mounting mechanisms are provided at both ends of the first wire bundling mechanism;
[0009] The second harness mechanism comprises a plurality of harness frames connected in series, and a front connecting frame and a rear connecting frame are respectively fixedly mounted at both ends of the plurality of harness frames, and the front connecting frame and the rear connecting frame between adjacent harness frames are hingedly connected to each other;
[0010] The top and bottom surfaces of the plurality of the above-mentioned wire harness frames are respectively provided with a first opening and a second opening, the first opening and the second opening are mutually connected, and the inner walls on both sides of the plurality of the above-mentioned wire harness frames are fixedly installed with arc-shaped plates;
[0011] A third opening and a fourth opening are respectively provided at one end and the other end of the several wire harness frames, and the third opening and the fourth opening are respectively provided with a first limit roller and a second limit roller inside the corresponding wire harness frames, the axes of the first limit roller and the second limit roller are fixedly connected to the axles, and the two ends of the axles are respectively rotatably connected to the first moving block and the second moving block, and the inner walls on both sides of the wire harness frames are provided with sliding grooves adapted to the first moving block and the second moving block, and the first moving block and the second moving block can be slidably embedded in the corresponding sliding grooves, and the interior of the sliding groove is fixedly connected to a limit spring at one end close to the third opening or the fourth opening, and the other end of the limit spring is fixedly connected to the first moving block or the second moving block.
[0012] During use, when the optical fiber enters the above-mentioned first wiring bundle mechanism, the optical fiber is firstly sorted and bundled by the above-mentioned first wiring bundle mechanism, and then positioned and auxiliary fixed by the above-mentioned installation mechanism. Next, the optical fiber undergoes necessary bending processing through the above-mentioned bending mechanism and then enters the above-mentioned second wiring bundle mechanism. In the above-mentioned second wiring bundle mechanism, the cooperation between the above-mentioned limit spring and the above-mentioned first moving block or the above-mentioned second moving block ensures that the above-mentioned wheel axle and the above-mentioned first limit roller and the above-mentioned second limit roller thereon can make a slight displacement when subjected to force, thereby effectively reducing damage to the optical fiber.
[0013] The optical fiber line arrangement device disclosed in the present embodiment effectively realizes the arrangement, bending and fixation of optical fiber lines by the cooperation of the first line arrangement mechanism, the bending mechanism and the second line arrangement mechanism, so that the optical fiber line arrangement device has the beneficial effects of being able to increase or decrease the number of lines to be arranged, high applicability, easy bending, various line arrangement methods, cables not easily damaged, cables not easily subjected to hard squeezing and good use effect of the optical fiber lines inside the cables.
[0014] Optionally, an annular groove is provided in the radial direction of the first limiting roller and the second limiting roller.
[0015] With such arrangement, the annular groove is convenient for limiting the position of the cable and preventing the cable from shifting during movement.
[0016] Optionally: the front connecting frame has a first connecting frame and a second connecting frame which are parallel to and spaced from each other, the rear connecting frame has a third connecting frame and a fourth connecting frame which are parallel to and spaced from each other, the first connecting frame and the second connecting frame are staggered with the third connecting frame and the fourth connecting frame, and the first connecting frame and the second connecting frame between adjacent harness frames are hingedly connected to the inner sides of the third connecting frame and the fourth connecting frame;
[0017] A first plug-in block is provided on the outer side of the first connecting frame and the third connecting frame, the first plug-in block penetrates the first connecting frame and the third connecting frame and is limited to the outer side of the third connecting frame, a second plug-in block is provided on the outer side of the second connecting frame and the fourth connecting frame, the second plug-in block penetrates the second connecting frame and the fourth connecting frame and is limited to the outer side of the fourth connecting frame, the second plug-in block has a plug-in column at one end close to the first plug-in block, and the plug-in column is threadedly inserted into the interior of the first plug-in block.
[0018] Such an arrangement makes it easy for the staff to connect the corresponding number of the above-mentioned wire harness frames through the above-mentioned front connecting frame and the above-mentioned rear connecting frame according to the required number, and use the above-mentioned plug-in column on the above-mentioned second plug-in block to penetrate the above-mentioned second connecting frame and the above-mentioned fourth connecting frame, and the above-mentioned first plug-in block penetrates the above-mentioned first connecting frame and the above-mentioned third connecting frame and is threadedly connected to the above-mentioned plug-in column for limiting, so as to facilitate the use of different numbers of cable whole lines, with high flexibility, and the use efficiency of the above-mentioned wire harness frame will be higher, and will not cause waste of space, nor will it be unusable due to insufficient space. At the same time, the two adjacent groups of the above-mentioned wire harness frames can rotate along the center of the circle of the above-mentioned first plug-in block and the above-mentioned second plug-in block, so that the above-mentioned second wire harness mechanism is more practical, which is convenient for plugging in cable whole lines at different positions and the wire harnessing method is better.
[0019] Optionally, the first cable harness mechanism has a cable harness rack, and the adjustable mounting mechanism is mounted on both ends of the cable harness rack.
[0020] Such an arrangement enables the cable tie rack to be precisely adjusted and fixed through the mounting mechanism, thereby facilitating adaptation to cables of different types.
[0021] Optionally: a plurality of wire harness grooves are provided in the internal axial direction of the above-mentioned wire harness rack, a fixing plate is provided on one side wall of the plurality of wire harness grooves, a limiting plate is provided on the other side wall of the above-mentioned wire harness groove, an opening is provided on one end of the above-mentioned fixing plate close to the above-mentioned limiting plate, a fixing shaft is provided in the above-mentioned opening, both ends of the above-mentioned fixing shaft are respectively fixedly connected to the above-mentioned side walls of the opening, a flip block is rotatably connected to the above-mentioned fixed shaft, one side of the above-mentioned flip block is movably sleeved on the outside of the above-mentioned fixed shaft through a torsion spring limiting mechanism, a flip plate is fixedly connected to the other side of the above-mentioned flip block in the radial direction, and the side of the above-mentioned flip plate away from the above-mentioned flip block presses against the limiting plate.
[0022] With such an arrangement, the different types of cable bundles after partitioning can be respectively inserted into the above-mentioned different cable bundle grooves, and the above-mentioned flip block with a torsion spring is used in conjunction with the above-mentioned flip plate to constrain the cable bundle, so that the cable bundle can be better limited, so that the cable bundle can be quickly installed. Compared with the existing cable tie limitation, the installation effect of the cable bundle is better, the classification and partitioning are clearer, and the installation speed is faster. The above-mentioned flip plate can be flipped around the side wall of the above-mentioned opening under the support of the above-mentioned fixed axis, and the wiring is fixed in the above-mentioned wiring frame, which effectively avoids the disorder of the wires. At the same time, the setting of the above-mentioned limiting plate can also limit the excessive deviation of the wiring bundle, so as to achieve a neat and beautiful wiring bundle effect. Whether it is conventional wiring arrangement or large-scale wiring on an electronic equipment production line, the above-mentioned first wiring bundle mechanism can provide efficient and neat wiring bundle solutions, which greatly improves production efficiency and wiring aesthetics.
[0023] Optionally, the mounting mechanism has a mounting frame, and the mounting frame is fixedly connected to two ends of the first wiring harness mechanism.
[0024] In this way, the arrangement of the mounting frame facilitates the fixation of the first wiring harness mechanism.
[0025] Optionally: the above-mentioned mounting frame has a short side and a long side, the short side and the long side are fixedly connected to each other vertically, the short side is threaded with a mounting bolt, the outer side of the long side is fixedly installed with a threaded block, and the outer wall of the threaded block is movably sleeved with a sleeve.
[0026] With such arrangement, the sleeve and the threaded block can be installed detachably, which is convenient for flexible application. The mounting mechanism can also be installed by connecting the mounting bolts to the rear wall of the cabinet. There are more mounting methods, so that the device can be suitable for cabinets of different sizes, thereby improving the adaptability of the device and making the device more flexible.
[0027] Optionally: one end of the sleeve away from the long side is fixedly connected to an adjustment plate, a side of the adjustment plate away from the sleeve is provided with a first rotating rod and a second rotating rod, one end of the first rotating rod and the second rotating rod are hingedly connected to the side of the adjustment plate away from the sleeve, the other ends of the first rotating rod and the second rotating rod are respectively hingedly connected to a first mounting seat and a second mounting seat, and a plurality of screws are movably connected to the first mounting seat and the second mounting seat on one side away from the first rotating rod and the second rotating rod.
[0028] In this way, the above-mentioned mounting bolts and the above-mentioned threaded blocks are used to achieve preliminary adjustment of the angle and height, and then the above-mentioned sleeve is rotated to move outside the above-mentioned threaded block to achieve adjustment of the angle between the above-mentioned mounting frames, and the positions of the above-mentioned first mounting seat and the above-mentioned second mounting seat are fixed by using a plurality of the above-mentioned screws, thereby completing the precise adjustment and fixation of the two sides of the above-mentioned cable tie rack, making the entire installation process flexible, convenient, stable and reliable, and suitable for layout requirements in a variety of different scenarios.
[0029] Optionally, the bending mechanism comprises a plurality of arc-shaped frames, the outer arc surfaces of the plurality of arc-shaped frames are provided with arc-shaped grooves, the two sides of the arc-shaped grooves are provided with a first side plate and a second side plate respectively, the first side plate and the second side plate are parallel to and spaced from each other, and the first side plate and the second side plate are fixedly mounted on the outer arc surface of the arc-shaped frame;
[0030] A convex column is fixedly mounted on the outer wall of the first side plate, and a limiting groove is provided on the outer wall of the second side plate. The convex column is limited and clamped in the inner part of the limiting groove.
[0031] With such arrangement, when the jumper is in use, the cable can be wrapped around the above-mentioned arc groove of the above-mentioned arc frame, and the above-mentioned convex column and the above-mentioned limit groove between adjacent above-mentioned arc frames are mutually limited and clamped, so that the first side plate and the second side plate adjacent to each other on both sides are connected, thereby facilitating the use of different numbers of jumpers, having stronger adaptability and better practicality, and facilitating the above-mentioned arc groove of the above-mentioned arc frame to accurately guide the optical fiber, thereby forming a stable bending path.
[0032] Optionally: a threaded barrel is provided on the inner arc surface of the arc frame, one end of the threaded barrel is movably connected to the inner arc surface of the arc frame through a bearing, one end of the threaded barrel away from the arc frame is threadedly connected to a threaded rod, and one end of the threaded rod away from the threaded barrel is fixedly connected to a mounting block.
[0033] In this arrangement, by rotating the threaded rod, the mounting block moves along the arc groove direction of the arc frame under the action of the threaded barrel and the threaded rod, thereby adjusting the bending radius of the optical fiber, thereby achieving precise bending and arrangement of the optical fiber.
[0034] Optionally, a first limiting strip and a second limiting strip are respectively installed on the side walls of the first side plate and the second side plate, and the first limiting strip and the second limiting strip are symmetrically distributed with each other.
[0035] In this way, the setting of the first limit strip and the second limit strip can prevent the cable from falling off, and can prevent the cable from hanging in the air and causing deformation, especially uneven force at the interface. At the same time, it can ensure that the cable always remains stable during the rotation of the threaded rod and avoids deviation, thereby achieving good working results and stable performance.
[0036] In summary, the optical fiber line arrangement device disclosed in the present invention has the beneficial effects that the number of lines can be increased or decreased, the applicability is high, the bending is convenient, the bundling methods are diverse, the cables are not easily damaged, the cables are not easily subjected to hard squeezing, and the optical fiber lines inside the cables have good use effects. BRIEF DESCRIPTION OF THE DRAWINGS
[0037] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings required for use in the embodiments are briefly introduced below. It should be understood that the following drawings only show certain embodiments of the present invention and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other related drawings can be obtained based on these drawings without creative work.
[0038] Figure 1 This is a schematic diagram of the three-dimensional structure of an optical fiber line arrangement device according to an embodiment of the present invention;
[0039] Figure 2 is a schematic diagram of the three-dimensional structure of the second wire harness mechanism in an embodiment of the present invention;
[0040] Figure 3 It is a schematic diagram of a three-dimensional structure in which a first plug-in block and a second plug-in block are connected to each other in an embodiment of the present invention;
[0041] Figure 4 Schematic diagram of the three-dimensional structure of the first limiting roller or the second limiting roller in an embodiment of the present invention;
[0042] Figure 5 is a schematic diagram of a partial three-dimensional structure of a second wire harness mechanism in an embodiment of the present invention;
[0043] Figure 6 is a schematic diagram of the three-dimensional structure of the first wire harnessing mechanism in an embodiment of the present invention;
[0044] Figure 7 For the embodiment of the present invention Figure 6 The enlarged schematic diagram at A in the middle;
[0045] Figure 8Schematic diagram of the three-dimensional structure of the bending mechanism in an embodiment of the present invention;
[0046] Fig. 9 Schematic diagram of the three-dimensional structure of the arc frame in an embodiment of the present invention.
[0047] Icons: 1-first harness mechanism, 2-bending mechanism, 3-second harness mechanism, 4-installation mechanism, 5-harness frame, 6-front connecting frame, 7-rear connecting frame, 8-first opening, 9-second opening, 10-arc plate, 11-third opening, 12-fourth opening, 13-first limiting roller, 14-second limiting roller, 15-axle, 16-first moving block, 17-second moving block, 18-slide, 19-limiting spring, 20-annular groove, 21-first connecting frame, 22-second connecting frame, 23-third connecting frame, 24-fourth connecting frame, 25-first plug-in block, 26-second plug-in block, 27-plug-in column, 28- Cable tie rack, 29-cable tie groove, 30-fixed plate, 31-limiting plate, 32-opening, 33-fixed axis, 34-flip block, 35-flip plate, 36-mounting rack, 37-short side, 38-long side, 39-mounting bolt, 40-threaded block, 41-sleeve, 42-adjusting plate, 43-first rotating rod, 44-second rotating rod, 45-first mounting seat, 46-second mounting seat, 47-screw, 48-arc frame, 49-arc groove, 50-first side plate, 51-second side plate, 52-boss, 53-limiting groove, 54-threaded cylinder, 55-threaded rod, 56-mounting block, 57-first limiting strip, 58-second limiting strip. DETAILED DESCRIPTION
[0048] In order to make the purpose, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are part of the embodiments of the present invention, not all of the embodiments. Generally, the components of the embodiments of the present invention described and shown in the drawings here can be arranged and designed in various different configurations.
[0049] Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the invention claimed for protection, but merely represents selected embodiments of the present invention. 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.
[0050] Example
[0051] See also Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 7 , Figure 8 and Fig. 9 , this embodiment provides an optical fiber line arrangement device, comprising a first line bundling mechanism 1;
[0052] A bending mechanism 2 is provided on the top of the first wire bundling mechanism 1, a second wire bundling mechanism 3 is provided on the top of the bending mechanism 2, and adjustable mounting mechanisms 4 are provided at both ends of the first wire bundling mechanism 1;
[0053] The second harness mechanism 3 has a plurality of harness frames 5 connected in series, and a front connecting frame 6 and a rear connecting frame 7 are fixedly mounted at both ends of the plurality of harness frames 5, and the front connecting frames 6 and the rear connecting frames 7 between adjacent harness frames 5 are hingedly connected to each other;
[0054] The top and bottom surfaces of the plurality of harness frames 5 are respectively provided with a first opening 8 and a second opening 9, the first opening 8 and the second opening are interconnected, and the inner walls on both sides of the plurality of harness frames 5 are fixedly mounted with an arc-shaped plate 10;
[0055] A third opening 11 and a fourth opening 12 are respectively provided at one end and the other end of a plurality of wiring harness frames 5, and a first limiting roller 13 and a second limiting roller 14 are respectively provided inside the wiring harness frames 5 corresponding to the third opening 11 and the fourth opening 12, and the axes of the first limiting roller 13 and the second limiting roller 14 are fixedly connected with a wheel axle 15, and the two ends of the wheel axle 15 are respectively rotatably connected with a first moving block 16 and a second moving block 17, and slide grooves 18 adapted to the first moving block 16 and the second moving block 17 are provided on the inner walls on both sides of the wiring harness frame 5, and the first moving block 16 and the second moving block 17 can be slidably embedded in the corresponding slide grooves 18, and a limiting spring 19 is fixedly connected to one end of the interior of the slide groove 18 close to the third opening 11 or the fourth opening 12, and the other end of the limiting spring 19 is fixedly connected to the first moving block 16 or the second moving block 17.
[0056] During use, when the optical fiber enters the first wiring bundle mechanism 1, the optical fiber is first preliminarily sorted and bundled by the first wiring bundle mechanism 1, and then positioned and auxiliary fixed by the installation mechanism 4. Next, the optical fiber undergoes necessary bending processing through the bending mechanism 2 and then enters the second wiring bundle mechanism 3. In the second wiring bundle mechanism 3, the cooperation of the limit spring 19 and the first moving block 16 or the second moving block 17 ensures that the axle 15 and the first limit roller 13 and the second limit roller 14 thereon can make a slight displacement when subjected to force, thereby effectively reducing damage to the optical fiber.
[0057] The optical fiber line arrangement device disclosed in the present embodiment effectively realizes the arrangement, bending and fixation of optical fiber lines by the cooperation of the first line arrangement mechanism 1, the bending mechanism 2 and the second line arrangement mechanism 3, so that the optical fiber line arrangement device has the beneficial effects of being able to increase or decrease the number of lines to be arranged, high applicability, easy bending, various line arrangement methods, cables not easily damaged, cables not easily subjected to hard squeezing and good use effect of the optical fiber lines inside the cables.
[0058] See also Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 7 , Figure 8 and Fig. 9 The first limiting roller 13 and the second limiting roller 14 are provided with an annular groove 20 in the radial direction, and the annular groove 20 is convenient for limiting the position of the cable to prevent the cable from shifting during the movement.
[0059] The front connecting frame 6 has a first connecting frame 21 and a second connecting frame 22 which are parallel to each other and spaced apart, and the rear connecting frame 7 has a third connecting frame 23 and a fourth connecting frame 24 which are parallel to each other and spaced apart. The first connecting frame 21 and the second connecting frame 22 and the third connecting frame 23 and the fourth connecting frame 24 are staggered with each other, and the first connecting frame 21 and the second connecting frame 22 between adjacent harness frames 5 are hingedly connected to the inner sides of the third connecting frame 23 and the fourth connecting frame 24;
[0060] A first plug-in block 25 is provided on the outside of the first connecting frame 21 and the third connecting frame 23, and the first plug-in block 25 penetrates the first connecting frame 21 and the third connecting frame 23 and is limited to the outer side of the third connecting frame 23. A second plug-in block 26 is provided on the outside of the second connecting frame 22 and the fourth connecting frame 24, and the second plug-in block 26 penetrates the second connecting frame 22 and the fourth connecting frame 24 and is limited to the outer side of the fourth connecting frame 24. The second plug-in block 26 has a plug-in column 27 at one end close to the first plug-in block 25, and the plug-in column 27 is threadedly inserted into the interior of the first plug-in block 25. This arrangement is convenient for the staff to connect the corresponding number of harness frames 5 through the front connection according to the required number. The frame 6 is connected to the rear connecting frame 7, and the plug-in column 27 on the second plug-in block 26 penetrates the second connecting frame 22 and the fourth connecting frame 24. The first plug-in block 25 penetrates the first connecting frame 21 and the third connecting frame 23 and is threadedly connected to the plug-in column 27 for limiting, so as to facilitate the use of different numbers of cable whole lines, with high flexibility, and the use efficiency of the wire harness frame 5 will be higher, without causing waste of space, and will not be unable to be used due to insufficient space. At the same time, the two adjacent groups of wire harness frames 5 can rotate along the center of the first plug-in block 25 and the second plug-in block 26, so that the second wire harness mechanism 3 is more practical, which is convenient for plugging in cable whole lines at different positions and the wire harness method is better.
[0061] See also Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 7 , Figure 8 and Fig. 9 The first cable harness mechanism 1 has a cable harness frame 28, and adjustable mounting mechanisms 4 are installed at both ends of the cable harness frame 28, so that the cable harness frame 28 can be accurately adjusted and fixed through the mounting mechanisms 4, so as to adapt to different types of cables.
[0062] A plurality of cable ducts 29 are axially provided inside the cable harness rack 28, and a fixing plate 30 is provided on one side wall of the plurality of cable ducts 29, and a limiting plate 31 is provided on the other side wall of the cable duct 29. An opening 32 is provided on one end of the fixing plate 30 close to the limiting plate 31, and a fixing shaft 33 is provided in the opening 32. Both ends of the fixing shaft 33 are fixedly connected to the side walls of the opening 32, and a flip block 34 is rotatably connected to the fixing shaft 33. One side of the flip block 34 is movably sleeved on the outside of the fixing shaft 33 through a torsion spring limiting movement, and a flip plate 35 is radially fixedly connected to the other side of the flip block 34, and the side of the flip plate 35 away from the flip block 34 abuts against the limiting plate 31, so that different types of cable bundles after partitioning can be respectively inserted into different cable ducts 29, and a torsion spring with The spring flip block 34 cooperates with the flip plate 35 to constrain the cable bundle, so that the cable bundle can be better limited, so that the cable bundle can be quickly installed. Compared with the existing cable tie limiter, the installation effect of the cable bundle is better, the classification and zoning are clearer, and the installation speed is faster. The flip plate 35 can be flipped around the side wall of the opening 32 under the support of the fixed axis 33, and the wiring is fixed in the wiring frame 5, which effectively avoids the disorder of the wires. At the same time, the setting of the limiting plate 31 can also limit the excessive deviation of the wiring bundle, and achieve a neat and beautiful wiring effect. Whether it is conventional wiring arrangement or large-scale wiring on an electronic equipment production line, the first wiring bundle mechanism 1 can provide an efficient and neat wiring solution, which greatly improves production efficiency and wiring aesthetics.
[0063] See also Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 7 , Figure 8 and Fig. 9 The mounting mechanism 4 has a mounting frame 36 , and the mounting frame 36 is fixedly connected to both ends of the first wire harness mechanism 1 . The setting of the mounting frame 36 facilitates the fixation of the first wire harness mechanism 1 .
[0064] The mounting frame 36 has a short side 37 and a long side 38, and the short side 37 and the long side 38 are fixedly connected to each other vertically. A mounting bolt 39 is threadedly inserted on the short side 37, and a threaded block 40 is fixedly installed on the outer side of the long side 38. A sleeve 41 is movably sleeved on the outer wall of the threaded block 40. The sleeve 41 and the threaded block 40 are detachably installed to facilitate flexible application. The mounting mechanism 4 can also be installed by connecting the mounting bolts 39 to the rear side wall of the cabinet. There are more installation methods, so that the device can be used in cabinets of different sizes, thereby improving the adaptability of the device and making the device more flexible.
[0065] The first and second mounting seats 45 and 46 are respectively hingedly connected to each other on one side of the adjusting plate 42 away from the sleeve 41, and the other ends of the first and second mounting seats 43 and 44 are respectively hingedly connected to the first and second mounting seats 46. The first and second mounting seats 45 and 46 are movably connected to the sides away from the first and second mounting seats 43 and 44 with a plurality of screws 47. The mounting bolts 39 and the threaded block 40 are used to achieve preliminary adjustment of the angle and height, and then the angle between the mounting brackets 36 is adjusted by rotating the sleeve 41 outside the threaded block 40. The positions of the first and second mounting seats 45 and 46 are fixed by a plurality of screws 47, thereby completing the precise adjustment and fixation of the two sides of the cable tie rack 28, making the entire installation process flexible, convenient, stable and reliable, and suitable for layout requirements in a variety of different scenarios.
[0066] See also Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 7 , Figure 8 and Fig. 9The bending mechanism 2 has a plurality of arc frames 48, and the outer arc surfaces of the plurality of arc frames 48 are all provided with arc grooves 49. A first side plate 50 and a second side plate 51 are respectively provided on both sides of the arc groove 49. The first side plate 50 and the second side plate 51 are parallel to and spaced from each other, and the first side plate 50 and the second side plate 51 are both fixedly mounted on the outer arc surface of the arc frame 48; a convex column 52 is fixedly mounted on the outer wall of the first side plate 50, and a limiting groove 53 is provided on the outer wall of the second side plate 51. The convex column 52 is limited and clamped in the inner part of the limiting groove 53. When the jumper is used, the cable can be wound around the arc groove 49 of the arc frame 48. By adopting the method of mutually limiting and clamping the convex column 52 and the limiting groove 53 between adjacent arc frames 48, the first side plates 50 and the second side plates 51 adjacent to each other on both sides are connected, so as to facilitate the use of different numbers of jumpers, have stronger adaptability and better practicality, and facilitate the arc groove 49 of the arc frame 48 to accurately guide the optical fiber, thereby forming a stable bending path.
[0067] A threaded barrel 54 is provided on the inner arc surface of the arc frame 48, one end of the threaded barrel 54 is movably connected to the inner arc surface of the arc frame 48 through a bearing, one end of the threaded barrel 54 away from the arc frame 48 is threadedly connected to a threaded rod 55, and one end of the threaded rod 55 away from the threaded barrel 54 is fixedly connected to a mounting block 56. By rotating the threaded rod 55, the mounting block 56 moves along the arc groove 49 of the arc frame 48 under the action of the threaded barrel 54 and the threaded rod 55, thereby adjusting the bending radius of the optical fiber, thereby achieving precise bending and sorting of the optical fiber.
[0068] The first limit strip 57 and the second limit strip 58 are respectively installed on the side walls of the first side plate 50 and the second side plate 51. The first limit strip 57 and the second limit strip 58 are symmetrically distributed with each other. The arrangement of the first limit strip 57 and the second limit strip 58 can prevent the cables from falling off and hanging in the air, thereby causing deformation, especially uneven force at the interface. At the same time, it can ensure that the cable of the threaded rod 55 always remains stable during rotation to avoid deviation, thereby achieving good working effect and stable performance.
[0069] See also Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 7 , Figure 8 and Fig. 9In this embodiment, the optical fiber to be sorted is first placed in the beam groove 29 through the beam frame 28 and the beam groove 29 of the first beam mechanism 1. The opening 32 on one side of the fixed plate 30 allows the optical fiber to be easily placed and its position is limited. The flip block 34 and the flip plate 35 connected to the fixed shaft 33 can release or fix the optical fiber, thereby realizing the sorting of the optical fiber. The limit plate 31 further ensures that the optical fiber remains in the beam groove 29. The sorted optical fiber is then sent to the bending mechanism 2 to realize the bending requirement of the optical fiber, and then it is sorted again by the second beam mechanism 3, and finally the optical fiber sorting process is completed. This process not only improves the efficiency of optical fiber sorting, but also ensures the neatness and standard of the optical fiber, which is convenient for subsequent use and installation.
[0070] See also Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 7 , Figure 8 and Fig. 9 In this embodiment, an adjustable mounting mechanism 4 is used. When in use, the angles of the first rotating rod 43 and the second rotating rod 44 can be adjusted according to the width of the cabinet, and the first mounting seat 45 and the second mounting seat 46 can be fitted with the inner wall of the cabinet, and then a plurality of screws 47 are used to limit and fix them, so that the device can be used in cabinets of different sizes, thereby improving the adaptability of the device and making the device more flexible.
[0071] See also Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 7 , Figure 8 and Fig. 9 In this embodiment, the optical fiber line assembly device has at least the following beneficial effects:
[0072] This optical fiber line arrangement device effectively realizes the arrangement, bending and fixing of optical fiber lines through the coordinated work of the first wire bundling mechanism 1, the bending mechanism 2 and the second wire bundling mechanism 3. When working, the installation position of the entire device is first adjusted by the installation mechanism 4 to facilitate operation and fixing. The wire bundling frame 28 in the first wire bundling mechanism 1 accommodates optical fibers through the wire bundling groove 29. The flip plate 35 can be flexibly adjusted to meet the needs of optical fibers of different diameters under the action of the torsion spring. The fixing plate 30 and the limiting plate 31 ensure that the optical fibers are neatly arranged. The optical fibers pass through the arc frame 48 and enter the bending mechanism 2. The first limit strip 57, the second limit strip 58 and the limit groove 53 between the plate 50 and the second side plate 51 realize precise bending to ensure the uniformity and beauty of the bending angle of the optical fiber. The optical fiber then enters the second wiring harness mechanism 3, wherein the arc plate 10 provides support, and the wiring harness frame 5 is adjustable through the installed first plug-in block 25, the second plug-in block 26, the first moving block 16 and the second moving block 17 in cooperation with the limit spring 19 for positioning, ensuring that the optical fibers are neatly arranged while being easy to adjust. The limit roller cooperates with the wheel axle 15 to provide stable support for the optical fiber to prevent the wire from skewing during the bending process.
[0073] See also Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 7 , Figure 8 and Fig. 9 The overall working process of this embodiment is as follows: first, the device is fixed by the installation mechanism 4, and then the optical fiber is arranged by the first wire bundling mechanism 1, and then the bending mechanism 2 is used to achieve precise bending, and finally the optical fiber is accurately positioned and fixed by the second wire bundling mechanism 3. The whole process ensures that the optical fiber is neat, beautiful and durable, and improves the work efficiency and product quality. In particular, by providing the second wire bundling mechanism 3, when in use, the corresponding number of wire bundling frames 5 can be connected through the front connecting frame 6 and the rear connecting frame 7 according to the required number, and the plug-in column 27 on the second plug-in block 26 is threadedly connected to the first plug-in block 25, so that the two adjacent groups of front connecting frames 6 and rear connecting frames 7 are limited, so as to facilitate not The same number of cable bundles can be used with higher flexibility, and the cable bundle frame 5 can be used more efficiently without wasting space or being unable to be used due to insufficient space. At the same time, the two adjacent sets of cable bundle frames 5 can rotate along the center of the first plug-in block 25 and the second plug-in block 26, so that the second cable bundle mechanism 3 is more practical and convenient for plugging in cable bundles at different positions. The cable bundle method is better, and the first limit roller 13 and the second limit roller 14 with a limit spring 19 that can be adjusted are used to limit the cables, thereby preventing the cables from slipping and improving the stability of the cable bundle. Rolling friction is used to prevent the cable bundle frame 5 from causing damage to the cables, and the protection performance is better.
[0074] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. For those skilled in the art, the present invention may have various modifications and variations. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.
Claims
1. An optical fiber line arrangement device, characterized in that: It comprises a first wire harness mechanism (1); A bending mechanism (2) is provided on the top of the first wire bundling mechanism (1), a second wire bundling mechanism (3) is provided on the top of the bending mechanism (2), and adjustable mounting mechanisms (4) are provided at both ends of the first wire bundling mechanism (1); The second harness mechanism (3) comprises a plurality of harness frames (5) connected in series, a front connecting frame (6) and a rear connecting frame (7) being fixedly mounted at both ends of the plurality of harness frames (5), and the front connecting frame (6) and the rear connecting frame (7) between adjacent harness frames (5) being hingedly connected to each other; The top surfaces and bottom surfaces of the plurality of wire harness frames (5) are respectively provided with a first opening (8) and a second opening (9), the first opening (8) and the second opening (9) are interconnected, and the inner walls on both sides of the plurality of wire harness frames (5) are fixedly mounted with arc-shaped plates (10); A third opening (11) and a fourth opening (12) are respectively provided at one end and the other end of the plurality of wire harness frames (5); a first limiting roller (13) and a second limiting roller (14) are respectively provided inside the third opening (11) and the fourth opening (12) corresponding to the wire harness frames (5); the axes of the first limiting roller (13) and the second limiting roller (14) are fixedly connected to a wheel axle (15); the two ends of the wheel axle (15) are respectively rotatably connected to a first moving block (16) and a second moving block (17); and adapters are provided on the inner walls of both sides of the wire harness frames (5); The first movable block (16) and the second movable block (17) have a sliding groove (18), wherein the first movable block (16) and the second movable block (17) can be slidably embedded in the corresponding sliding groove (18), and one end of the interior of the sliding groove (18) close to the third opening (11) or the fourth opening (12) is fixedly connected to a limit spring (19), and the other end of the limit spring (19) is fixedly connected to the first movable block (16) or the second movable block (17).
2. The optical fiber line assembly device according to claim 1, characterized in that: The first limiting roller (13) and the second limiting roller (14) are provided with an annular groove (20) in the radial direction.
3. The optical fiber line assembly device according to claim 1, characterized in that: The front connecting frame (6) comprises a first connecting frame (21) and a second connecting frame (22) which are parallel to each other and spaced apart from each other, the rear connecting frame (7) comprises a third connecting frame (23) and a fourth connecting frame (24) which are parallel to each other and spaced apart from each other, the first connecting frame (21) and the second connecting frame (22) and the third connecting frame (23) and the fourth connecting frame (24) are staggered with each other, and the first connecting frame (21) and the second connecting frame (22) between adjacent harness frames (5) are hingedly connected to the inner sides of the third connecting frame (23) and the fourth connecting frame (24); A first plug-in block (25) is provided on the outer side of the first connecting frame (21) and the third connecting frame (23), and the first plug-in block (25) penetrates the first connecting frame (21) and the third connecting frame (23) and is limited to the outer side of the third connecting frame (23); a second plug-in block (26) is provided on the outer side of the second connecting frame (22) and the fourth connecting frame (24), and the second plug-in block (26) penetrates the second connecting frame (22) and the fourth connecting frame (24) and is limited to the outer side of the fourth connecting frame (24); the second plug-in block (26) has a plug-in column (27) at one end close to the first plug-in block (25), and the plug-in column (27) is threadedly inserted into the interior of the first plug-in block (25).
4. The optical fiber line assembly device according to claim 1, characterized in that: The first harness mechanism (1) comprises a harness rack (28), and the adjustable mounting mechanisms (4) are mounted on both ends of the harness rack (28).
5. The optical fiber line assembly device according to claim 4, characterized in that: A plurality of cable slits (29) are axially provided inside the cable harness rack (28), one side wall of each of the cable slits (29) is provided with a fixing plate (30), and a limiting plate (31) is provided on the other side wall of the cable slit (29). An opening (32) is provided at one end of the fixing plate (30) close to the limiting plate (31), a fixing shaft (33) is provided in the opening (32), and both ends of the fixing shaft (33) are respectively fixedly connected to the side walls of the opening (32), a flip block (34) is rotatably connected to the fixing shaft (33), one side of the flip block (34) is movably sleeved on the outside of the fixing shaft (33) through a torsion spring limiting mechanism, and a flip plate (35) is radially fixedly connected to the other side of the flip block (34), and the side of the flip plate (35) away from the flip block (34) abuts against the limiting plate (31).
6. The optical fiber line assembly device according to claim 1, characterized in that: The mounting mechanism (4) comprises a mounting frame (36), and the mounting frame (36) is fixedly connected to two ends of the first wiring harness mechanism (1).
7. The optical fiber line assembly device according to claim 6, characterized in that: The mounting frame (36) comprises a short side (37) and a long side (38), wherein the short side (37) and the long side (38) are fixedly connected to each other vertically, a mounting bolt (39) is threadedly inserted on the short side (37), a threaded block (40) is fixedly mounted on the outer side of the long side (38), and a sleeve (41) is movably sleeved on the outer wall of the threaded block (40).
8. The optical fiber line assembly device according to claim 7, characterized in that: An end of the sleeve (41) away from the long side (38) is fixedly connected to an adjustment plate (42), and a first rotating rod (43) and a second rotating rod (44) are provided on a side of the adjustment plate (42) away from the sleeve (41). One end of the first rotating rod (43) and the second rotating rod (44) are hingedly connected to a side of the adjustment plate (42) away from the sleeve (41), and the other ends of the first rotating rod (43) and the second rotating rod (44) are hingedly connected to a first mounting seat (45) and a second mounting seat (46) respectively. A plurality of screws (47) are movably connected to a side of the first mounting seat (45) and the second mounting seat (46) away from the first rotating rod (43) and the second rotating rod (44).
9. The optical fiber line assembly device according to claim 1, characterized in that: The bending mechanism (2) comprises a plurality of arc-shaped frames (48), the outer arc surfaces of the plurality of arc-shaped frames (48) are each provided with an arc-shaped groove (49), a first side plate (50) and a second side plate (51) are respectively provided on both sides of the arc-shaped groove (49), the first side plate (50) and the second side plate (51) are parallel to and spaced from each other, and the first side plate (50) and the second side plate (51) are both fixedly mounted on the outer arc surface of the arc-shaped frame (48); A convex column (52) is fixedly mounted on the outer wall of the first side plate (50), and a limiting groove (53) is provided on the outer wall of the second side plate (51), and the convex column (52) is limited and clamped inside the limiting groove (53).
10. The optical fiber line assembly device according to claim 9, characterized in that: The inner arc surface of the arc frame (48) is provided with a threaded tube (54), one end of the threaded tube (54) is movably connected to the inner arc surface of the arc frame (48) through a bearing, one end of the threaded tube (54) away from the arc frame (48) is threadedly connected to a threaded rod (55), and one end of the threaded rod (55) away from the threaded tube (54) is fixedly connected to a mounting block (56).