Production equipment for reinforced core of FRP (Fiber Reinforced Plastic) optical cable
By combining components such as the support base, winding structure, and tensioning structure, the problem of cumbersome operation and inaccurate positioning when changing winding components in FRP optical cable reinforcing core production equipment is solved. This enables precise adjustment and tightening at multiple angles, improving production efficiency and equipment adaptability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HUBEI PINGBO COMM TECH CO LTD
- Filing Date
- 2025-06-03
- Publication Date
- 2026-04-17
AI Technical Summary
Existing FRP optical cable reinforcing core production equipment is cumbersome to operate when changing winding components or adjusting equipment layout, and the positioning is inaccurate, which affects product quality and production efficiency. Moreover, the angle adjustment is complicated and difficult to control precisely.
The design incorporates a combination of a support base, a winding structure, a tensioning structure, a drive component, a positioning and locking component, a pressing component, and a guide component. This allows for quick adaptation to the installation of winding components with different specifications and workstation layouts, supports precise multi-angle adjustment and pressing, and simplifies the operation process.
It improves the efficiency and ease of operation of the equipment, reduces production and time costs, meets the optical cable routing and angle requirements of complex production processes, and shortens the equipment installation and commissioning time.
Smart Images

Figure CN224132440U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of optical cable production and winding technology, and in particular to an FRP optical cable reinforcing core production equipment. Background Technology
[0002] With the rapid development of the communications industry, the demand for optical cables, as an important carrier of information transmission, continues to grow, and the performance requirements are becoming increasingly stringent. FRP (fiberglass reinforced plastic) optical cable reinforcing cores, with their advantages of high strength, light weight, corrosion resistance, and good insulation performance, are widely used in the field of communication optical cables.
[0003] Existing production equipment often uses fixed installations or complex bolt-fastening structures for positioning the winding components. During production, replacing winding components of different specifications or adjusting the equipment layout is not only cumbersome and time-consuming, but inaccurate positioning can also lead to loosening or misalignment of the reinforcing core during winding, affecting product quality and production efficiency. Furthermore, when guiding optical cables at different angles, angle adjustment is complex and difficult to control precisely.
[0004] Therefore, it is necessary to provide an FRP optical cable reinforcing core production equipment to solve the above-mentioned technical problems. Utility Model Content
[0005] This utility model provides an FRP optical cable reinforcing core production equipment, which solves the problem that the existing workpieces have cumbersome operation procedures when installing and disassembling the winding assembly, and it is difficult to ensure accurate positioning when changing it.
[0006] To solve the above-mentioned technical problems, this utility model provides an FRP optical cable reinforcing core production equipment, comprising: a support base, a winding structure, and a tensioning structure. The winding structure and tensioning structure are installed on the top inner wall of the support base. A winding component is provided in the middle of the winding structure, and a driving component is installed at the bottom of the winding structure for position driving of the winding component. A positioning locking component is installed on the side end of the winding component. A pressing component is provided in the middle of the tensioning structure for pressing the optical cable inside the tensioning structure. Locking components are provided at both ends of the pressing component, and guide components are provided at both ends of the tensioning structure.
[0007] Preferably, the drive assembly includes a drive motor and a driven rod. An active rod is installed at the output end of the drive motor. A transmission component is connected to the side end of the active rod for workpiece transmission of the driven rod. A drive plate is installed on the side end of the driven rod for supporting the rotation of the winding assembly.
[0008] Preferably, the winding assembly includes a support frame, a winding roller is provided on the side of the support frame, and limit rods are installed at both ends of the winding roller for supporting the rotation of the winding roller.
[0009] Preferably, the positioning and locking assembly includes a sliding block and a locking slider. The sliding block and the locking slider are slidably connected to both ends of the driving assembly and the bottom inner wall, respectively. An arc-shaped positioning component is installed on the side end of the sliding block, and a locking component is installed on the bottom of the locking slider for locking the position of the locking slider. A rotating frame is installed on the side end of the sliding block and the locking slider, and a connecting bracket is rotatably mounted on the side end of the rotating frame.
[0010] Preferably, the clamping assembly includes a fixed frame, an adjusting frame is rotatably connected to the bottom of the fixed frame, a clamping frame is slidably attached to the bottom of the adjusting frame, and elastic reset members are installed at both ends of the clamping frame for elastic support. The locking assembly includes a locking rod and an arc-shaped adjusting groove. A locking bolt is installed on the side end of the locking rod for adjusting and locking the clamping assembly. The arc-shaped adjusting groove is formed on the inner wall of both ends of the tensioning frame.
[0011] Preferably, the guiding component includes a support plate, and a guide rod is installed on the side end of the support plate for guiding the position of the optical cable inside the tensioning structure. Limiting rings are installed at both ends of the guide rod.
[0012] Compared with related technologies, the FRP optical cable reinforcing core production equipment provided by this utility model has the following beneficial effects:
[0013] This invention provides an FRP (fiberglass reinforced plastic) optical cable reinforcing core production equipment. During optical cable production, the cable typically requires guidance and winding. To improve equipment efficiency, a positioning and locking component allows for rapid adaptation to winding components of different specifications and workstation layouts. This eliminates the need for large-scale modifications when upgrading or replacing production lines, reducing production and time costs. Furthermore, the equipment is easy to operate, significantly shortening installation and debugging time. Simultaneously, during the guidance and winding of the internal optical cable, the coordinated use of the clamping and locking components enables multi-angle, precise angle adjustment and clamping of the cable, meeting the requirements of different cable directions and angles in complex production processes. Moreover, the workpiece is easy to operate and better adapts to different adjustment needs. Attached Figure Description
[0014] Figure 1 A schematic diagram of a preferred embodiment of an FRP optical cable reinforcing core production equipment provided by this utility model;
[0015] Figure 2 for Figure 1 The diagram shows the structure of the driving component.
[0016] Figure 3 for Figure 1 The diagram shows the structure of the winding roller;
[0017] Figure 4 for Figure 3The diagram shows an enlarged view of part A.
[0018] Figure 5 for Figure 1 The diagram shows the structure of the arc-shaped adjustment groove.
[0019] The diagram is labeled as follows: 1. Support base; 2. Rewinding structure; 3. Tensioning structure; 4. Drive assembly; 41. Drive motor; 42. Driving rod; 43. Driven rod; 44. Transmission component; 45. Drive plate; 5. Rewinding assembly; 51. Shelf frame; 52. Rewinding roller; 53. Limiting rod; 6. Positioning and locking assembly; 61. Sliding block; 62. Arc-shaped positioning component; 63. Locking slider; 64. Locking component; 65. Rotating frame; 66. Connecting bracket; 7. Pressing assembly; 71. Fixed frame; 72. Adjusting frame; 73. Pressing frame; 74. Elastic reset component; 8. Locking assembly; 81. Locking rod; 82. Locking bolt; 83. Arc-shaped adjusting groove; 9. Guide assembly; 91. Support plate; 92. Guide rod; 93. Limiting ring. Detailed Implementation
[0020] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0021] Please refer to the following: Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 ,in, Figure 1 A schematic diagram of a preferred embodiment of an FRP optical cable reinforcing core production equipment provided by this utility model; Figure 2 for Figure 1 The diagram shows the structure of the driving component. Figure 3 for Figure 1 The diagram shows the structure of the winding roller; Figure 4 for Figure 3 The diagram shows an enlarged view of part A. Figure 5 for Figure 1 The diagram shows the structure of the arc-shaped adjustment groove. An FRP optical cable reinforcing core production device includes: a support base 1, a winding frame 2, and a tensioning frame 3. The winding frame 2 and tensioning frame 3 are installed on the top inner wall of the support base 1. A winding assembly 5 is provided in the middle of the winding frame 2, and a driving assembly 4 is installed at the bottom of the winding frame 2 for position driving of the winding assembly 5. A positioning locking assembly 6 is installed on the side end of the winding assembly 5. A pressing assembly 7 is provided in the middle of the tensioning frame 3 for pressing the optical cable inside the tensioning frame 3. Locking assemblies 8 are provided at both ends of the pressing assembly 7, and guide assemblies 9 are provided at both ends of the tensioning frame 3.
[0022] The drive assembly 4 includes a drive motor 41 and a driven rod 43. The output end of the drive motor 41 is equipped with a driving rod 42. The side end of the driving rod 42 is connected to a transmission component 44 for workpiece transmission of the driven rod 43. The side end of the driven rod 43 is equipped with a drive plate 45 for supporting the rotation of the winding assembly 5.
[0023] When the winding assembly 5 is winding the optical cable, the drive motor 41 at the bottom can accurately and stably drive the position rotation of the winding assembly 5, thereby improving the driving convenience of the entire device.
[0024] The drive component 4 includes, but is not limited to, motor drive, hydraulic drive, and pneumatic drive; in this embodiment, the drive component 4 is preferably motor drive.
[0025] The winding assembly 5 includes a support frame 51, and a winding roller 52 is provided on the side of the support frame 51. Limiting rods 53 are installed at both ends of the winding roller 52 to support the rotation of the winding roller 52.
[0026] When rotating the entire take-up roller 52, it can be easily positioned and locked onto the inner wall of the support frame 51 by the limiting rods 53 at both ends, ensuring the stability of the position of the take-up roller 52 and facilitating its disassembly.
[0027] The winding assembly 5 includes, but is not limited to, solid spools and hollow spools; in this embodiment, the winding assembly 5 is preferably a hollow spool.
[0028] The positioning and locking assembly 6 includes a sliding block 61 and a locking slider 63. The sliding block 61 and the locking slider 63 are slidably connected to both ends of the drive assembly 4 and the bottom inner wall, respectively. An arc-shaped positioning element 62 is installed on the side end of the sliding block 61, and a locking element 64 is installed on the bottom of the locking slider 63 for locking the position of the locking slider 63. A rotating frame 65 is installed on the side end of the sliding block 61 and the locking slider 63, and a connecting bracket 66 is rotatably connected to the side end of the rotating frame 65.
[0029] When conveniently positioning and locking the winding assembly 5, first, position the entire winding assembly 5. Then, slide the bottom locking slider 63 downwards. When the locking slider 63 slides downwards, it can cooperate with the rotating connecting brackets 66 at both ends to slide the sliding blocks 61 at both ends in a synchronized manner. At the same time, the arc-shaped positioning piece 62 on the side of the sliding block 61 will accurately and stably position and clamp the winding assembly 5. After the position is positioned, the position can be locked and fixed by the locking piece 64 at the bottom of the locking slider 63 to reduce the loosening of the sliding block 61 and the locking slider 63 during use.
[0030] The positioning and locking assembly 6 includes, but is not limited to, a mechanical locking structure and a pneumatic-hydraulic locking structure; in this embodiment, the positioning and locking assembly 6 preferably uses a mechanical locking structure.
[0031] The clamping assembly 7 includes a fixed frame 71, an adjusting frame 72 rotatably connected to the bottom of the fixed frame 71, a clamping frame 73 slidingly attached to the bottom of the adjusting frame 72, and elastic reset members 74 installed at both ends of the clamping frame 73 for elastic support. The locking assembly 8 includes a locking rod 81 and an arc-shaped adjusting groove 83. A locking bolt 82 is installed on the side end of the locking rod 81 for adjusting and locking the clamping assembly 7. The arc-shaped adjusting groove 83 is formed on the inner walls of both ends of the tensioning frame 3.
[0032] When adjusting the clamping of the optical cable in the middle, firstly, rotate the entire adjusting frame 72 along the position of the fixed frame 71 and press the bottom clamping frame 73 against the surface of the optical cable. Then, under the elastic support of the elastic reset members 74 at both ends, the clamping frame 73 can be elastically pressed against the surface of the optical cable to ensure that the optical cable is tensioned during guidance. After the position is adjusted, the adjusting frame 72 can be locked and fixed in position by the locking bolts 82 at both ends to prevent the workpiece from loosening during use.
[0033] The clamping component 7 includes, but is not limited to, contact clamping and non-contact clamping; in this embodiment, the clamping component 7 is preferably contact clamping.
[0034] The guide assembly 9 includes a support plate 91, and a guide rod 92 is installed on the side of the support plate 91 for guiding the position of the optical cable inside the tensioning structure 3. Limiting rings 93 are installed at both ends of the guide rod 92.
[0035] The guide components 9 at both ends can guide and support the position of the optical cable during winding, reducing wear and tear on the optical cable during winding.
[0036] The guide component 9 includes, but is not limited to, a fixed guide structure and an adjustable guide structure; in this embodiment, the guide component 9 is preferably a fixed guide structure.
[0037] The working principle of the FRP optical cable reinforcing core production equipment provided by this utility model is as follows:
[0038] In the production and processing of optical cables, firstly, one end of the optical cable is passed through the tensioning frame 3 and wound up to the inner wall of the side of the winding assembly 5. Then, the angle of the entire clamping assembly 7 is adjusted to ensure that the clamping assembly 7 can accurately clamp the optical cable. After adjusting to a suitable angle, the locking assemblies 8 at both ends can be used to easily lock and fix the clamping assembly 7 according to its position, simplifying the complicated process. Subsequently, the drive assembly 4 at the bottom will drive the winding assembly 5 to rotate, thereby performing the winding process of the optical cable. After the workpiece is wound up, the winding assembly 5 can be installed and removed by the positioning locking assembly 6 at the side end, thereby improving the practicality of the entire device.
[0039] Compared with related technologies, the FRP optical cable reinforcing core production equipment provided by this utility model has the following beneficial effects:
[0040] In the production and processing of optical cables, the cables typically require guidance and winding. To improve equipment efficiency, the positioning and locking component 6 can quickly adapt to winding components 5 of different specifications and workstation layouts. This eliminates the need for large-scale modifications when upgrading or replacing equipment on the production line, reducing production and time costs. Furthermore, its ease of operation significantly shortens equipment installation and debugging time. Simultaneously, during the internal guidance and winding of the optical cables, the coordinated use of the clamping component 7 and locking component 8 allows for multi-angle and precise angle adjustment and clamping of the optical cables, meeting the requirements of different cable directions and angles in complex production processes. Moreover, the workpiece is easy to operate and better adapts to different adjustment needs.
[0041] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the content of this utility model specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.
Claims
1. An FRP optical cable reinforcement core production apparatus characterized by comprising: include: The system includes a support base, a winding mechanism, and a tensioning mechanism. The winding mechanism and tensioning mechanism are installed on the top inner wall of the support base. A winding component is located in the middle of the winding mechanism, and a drive component is installed at the bottom of the winding mechanism for position driving of the winding component. A positioning and locking component is installed on the side end of the winding component. A pressing component is located in the middle of the tensioning mechanism for pressing the optical cable inside the tensioning mechanism. Locking components are located at both ends of the pressing component, and guide components are located at both ends of the tensioning mechanism.
2. The FRP optical cable reinforcement core production apparatus according to claim 1, wherein The drive assembly includes a drive motor and a driven rod. An active rod is installed at the output end of the drive motor. A transmission component is connected to the side end of the active rod for workpiece transmission of the driven rod. A drive plate is installed on the side end of the driven rod for supporting the rotation of the winding assembly.
3. The FRP optical cable reinforcement core production apparatus according to claim 1, wherein The winding assembly includes a support frame, a winding roller is provided on the side of the support frame, and limit rods are installed at both ends of the winding roller to support the rotation of the winding roller.
4. The FRP optical cable reinforcement core production apparatus according to claim 1, wherein The positioning and locking assembly includes a sliding block and a locking slider. The sliding block and the locking slider are slidably connected to both ends of the drive assembly and the bottom inner wall, respectively. An arc-shaped positioning component is installed on the side end of the sliding block, and a locking component is installed on the bottom of the locking slider for locking the position of the slider. A rotating frame is installed on the side end of the sliding block and the locking slider, and a connecting bracket is rotatably attached to the side end of the rotating frame.
5. The FRP optical cable reinforcement core production apparatus according to claim 1, wherein The clamping assembly includes a fixed frame, an adjusting frame rotatably connected to the bottom of the fixed frame, a clamping frame slidingly attached to the bottom of the adjusting frame, and elastic reset components installed at both ends of the clamping frame for elastic support. The locking assembly includes a locking rod and an arc-shaped adjusting groove. A locking bolt is installed on the side end of the locking rod for adjusting and locking the clamping assembly. The arc-shaped adjusting groove is formed on the inner wall of both ends of the tensioning frame.
6. The FRP optical cable strength core production apparatus according to claim 1, wherein The guiding component includes a support plate, and a guide rod is installed on the side end of the support plate for guiding the position of the optical cable inside the tensioning structure. Limiting rings are installed at both ends of the guide rod.