A fiber optic wrap-around skeleton

CN224604436UActive Publication Date: 2026-08-07BEIJING GUANGHENG TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
BEIJING GUANGHENG TECH CO LTD
Filing Date
2025-07-24
Publication Date
2026-08-07

AI Technical Summary

Technical Problem

目前的绕环骨架只存在单独的一个绕线区域,一旦携带多根分离的光纤时,就需要另外携带单独的绕环骨架,导致携带起来非常占用空间,而且也增加了重量,不够便捷

Benefits of technology

多个分隔环滑动套接在绕线轴上,能够将绕线轴上的绕线区域分隔成互不影响的几段,分隔环的滑动设置能够适应对缠绕光纤所需的各段绕线区域空间大小的调整需求。

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Abstract

The utility model discloses a kind of optical fiber winding skeleton, it is related to optical fiber arrangement technical field.It includes reel and the baffle ring fixed at the both ends of reel, multiple partition rings are slidably sleeved on reel;Positioning assembly for being fixed with reel is equipped on partition ring;The positioning assembly includes the installation port opened on partition ring along radial direction;The inner ring surface and outer ring surface of partition ring are respectively penetrated at the both ends of installation port;Supporting block is fixed in the end of installation port close to partition ring outer ring surface;Corresponding sliding connection has press solid block in the direction of installation port;Press spring is connected between press solid block and supporting block;Press spring is configured with the pre-tightening force of the press solid block and the reel abutment.The beneficial effects of the utility model are that: it can be separated into multiple winding area, is conducive to the winding arrangement of multiple separated optical fibers respectively, saves the weight and space of carrying, improves use convenience.
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Description

Technical Field

[0001] This utility model relates to the field of optical fiber tidying technology, and in particular to an optical fiber loop frame. Background Technology

[0002] Optical fiber, short for optical waveguide fiber, is a type of fiber made of glass or plastic that serves as a means of light transmission. Optical fiber operates on the principle of total internal reflection; when light enters the fiber perpendicularly to its end face and coincides with the fiber's axis, the light will propagate smoothly along the axis.

[0003] Because optical fibers are relatively fragile, excessive bending can damage them, affecting the smoothness and integrity of light propagation, leading to a decrease in optical power and impacting normal transmission performance. The purpose of a fiber optic cable winding system is to support the fiber during winding and arrangement, preventing excessive bending. Currently, the winding system only exists in a single winding area. When carrying multiple separate optical fibers, a separate winding system is required, making it very space-consuming and heavy, and inconvenient to carry. Utility Model Content

[0004] The technical problem to be solved by this utility model is to provide an optical fiber winding frame that can be divided into multiple winding areas, which is conducive to winding and organizing multiple separate optical fibers separately, saving weight and space, and improving ease of use.

[0005] The technical solution adopted by this utility model is: to provide an optical fiber winding frame, including a winding shaft and retaining rings fixed at both ends of the winding shaft, and multiple partition rings are slidably sleeved on the winding shaft; the partition rings are provided with positioning components for fixing with the winding shaft; The positioning component includes a mounting port radially opened on the separator ring; the two ends of the mounting port pass through the inner and outer ring surfaces of the separator ring respectively; a support block is fixed at one end of the mounting port near the outer ring surface of the separator ring; a clamping block is slidably connected to the mounting port along its direction; the clamping block and the support block are connected by a compression spring; the compression spring is configured with a preload force to cause the clamping block to abut against the winding shaft.

[0006] To further optimize this technical solution, a support block for an optical fiber loop frame is made of magnetic material, and the support blocks on each pair of adjacent separating rings are magnetically attracted to each other.

[0007] To further optimize this technical solution, a support block of an optical fiber loop skeleton has an insertion hole at its upper end; a corresponding magnetically connected insertion post is provided in the insertion hole; a stop bar is fixed on the insertion post; a first through slot and a second through slot communicating with the insertion hole are provided at the upper end of the support block; the first through slot and the second through slot correspond to the stop bar respectively; the direction of the first through slot is parallel to the axis of the winding shaft; the second through slot forms a 90° angle with the first through slot.

[0008] The beneficial effects of this utility model are as follows: Multiple separator rings are slidably fitted onto the winding shaft, which can divide the winding area on the winding shaft into several segments that do not affect each other. The sliding setting of the separator rings can adapt to the adjustment requirements of the space size of each winding area required for winding optical fiber.

[0009] The spring force of the compression spring abuts the clamping block against the winding shaft, which can position the separator ring on the winding shaft. Of course, by actively sliding the clamping block away from the winding shaft and compressing the spring appropriately, the positioning of the separator ring can be released, making it easier to move the separator ring. After it is moved into place, the spring returns to its original position, allowing the clamping block to abut against the winding shaft again, and the separator ring returns to its position relative to the winding shaft. Attached Figure Description

[0010] Figure 1 This is a schematic diagram of the structure of this utility model; Figure 2 This is a schematic diagram of the structural state at the separator ring.

[0011] In the diagram, 1 is the winding shaft; 2 is the retaining ring; 3 is the separating ring; 4 is the mounting port; 5 is the support block; 6 is the clamping block; 7 is the compression spring; 8 is the insertion hole; 9 is the insertion post; 10 is the stop bar; 11 is the first through groove; and 12 is the second through groove. Detailed Implementation

[0012] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments.

[0013] like Figure 1 As shown, an optical fiber winding frame includes a winding shaft 1 and retaining rings 2 fixed at both ends of the winding shaft 1. The winding shaft 1 is characterized in that: a plurality of separating rings 3 are slidably sleeved on the winding shaft 1; and the separating rings 3 are provided with positioning components for fixing to the winding shaft 1. like Figure 1 As shown, the positioning component includes a mounting port 4 radially opened on the separator ring 3; the two ends of the mounting port 4 pass through the inner and outer ring surfaces of the separator ring 3 respectively; a support block 5 is fixed at one end of the mounting port 4 near the outer ring surface of the separator ring 3; a clamping block 6 is slidably connected to the mounting port 4 along its direction; the clamping block 6 and the support block 5 are connected by a compression spring 7; the compression spring 7 is configured with a preload force to cause the clamping block 6 to abut against the winding shaft 1.

[0014] When there are multiple optical fibers that need to be wound, in order to prevent mutual interference, the optical fibers need to be wound in separate winding areas. This can be achieved by adjusting the positions of multiple separator rings 3 on the winding shaft 1.

[0015] Simply apply external force manually to separate the clamping block 6 from the winding shaft 1. The separating ring 3 can then slide flexibly on the winding shaft 1. Once it has slid into place, release the external force. The spring force of the compression spring 7 will then cause the clamping block 6 to abut and tighten against the winding shaft 1. The position of the separating ring 3 will then be fixed, thus completing the separation of the winding area. The optical fibers can then be wound into their respective winding areas without interfering with each other.

[0016] Through the above process, multiple optical fibers can be wound independently without interference using a single loop frame, eliminating the inconvenience of carrying multiple loop frames, which has significant advantages.

[0017] The support block 5 is made of magnet, and the support blocks 5 on each two adjacent separating rings 3 are magnetically attracted to each other.

[0018] Multiple separator rings 3 can be connected by mutual magnetic attraction of support blocks 5, so that the extra separator rings 3 are magnetically connected tightly, ensuring that the placement on the winding shaft 1 saves space and reduces the encroached winding area.

[0019] like Figure 2 As shown, the upper end of the support block 5 has an insertion hole 8; a corresponding magnetically connected insertion post 9 is provided in the insertion hole 8; a stop bar 10 is fixed on the insertion post 9; the upper end of the support block 5 has a first through groove 11 and a second through groove 12 communicating with the insertion hole 8; the first through groove 11 and the second through groove 12 correspond to the stop bar 10 respectively; the direction of the first through groove 11 is parallel to the axis of the winding shaft 1; the second through groove 12 forms a 90° angle with the first through groove 11.

[0020] The insertion post 9 is magnetically attracted within the insertion hole 8. When the stop bar 10 passes through the first through slot 11, it can effectively block and constrain the outer periphery of the optical fiber wound in the winding area. Figure 2 As shown, the first through slot 11 can penetrate the upper end of the support block 5, allowing the stop bar 10 to block the winding area on the appropriate side as needed. If no obstruction is required, the direction of the magnetic attraction of the plug 9 in the plug hole 8 can be changed, so that the stop bar 10 passes through the second through slot 12, at which point the stop bar 10 can be parallel to the plane where the separator ring 3 is located.

[0021] It is understood that this utility model has been described through some embodiments, and those skilled in the art will recognize that various changes or equivalent substitutions can be made to these features and embodiments without departing from the spirit and scope of this utility model. Furthermore, under the teachings of this utility model, these features and embodiments can be modified to adapt to specific situations and materials without departing from the spirit and scope of this utility model. Therefore, this utility model is not limited to the specific embodiments disclosed herein, and all embodiments falling within the scope of the claims of this application are within the protection scope of this utility model.

Claims

1. An optical fiber winding frame, comprising a winding shaft (1) and retaining rings (2) fixed at both ends of the winding shaft (1), characterized in that: Multiple partition rings (3) are slidably sleeved on the winding shaft (1); the partition rings (3) are provided with positioning components for fixing to the winding shaft (1); The positioning component includes a mounting port (4) radially opened on the separator ring (3); the two ends of the mounting port (4) pass through the inner and outer ring surfaces of the separator ring (3), respectively; a support block (5) is fixed at one end of the mounting port (4) near the outer ring surface of the separator ring (3); a clamping block (6) is slidably connected to the mounting port (4) along its direction; the clamping block (6) and the support block (5) are connected by a compression spring (7); the compression spring (7) is configured with a preload force to make the clamping block (6) abut against the winding shaft (1).

2. The optical fiber loop frame according to claim 1, characterized in that: The support block (5) is made of magnet material, and the support blocks (5) on each two adjacent partition rings (3) are magnetically attracted to each other.

3. The optical fiber loop frame according to claim 2, characterized in that: The upper end of the support block (5) has an insertion hole (8); a corresponding magnetically connected insertion post (9) is provided in the insertion hole (8); a stop bar (10) is fixed on the insertion post (9); the upper end of the support block (5) has a first through groove (11) and a second through groove (12) communicating with the insertion hole (8); the first through groove (11) and the second through groove (12) correspond to the stop bar (10) respectively; the direction of the first through groove (11) is parallel to the axis of the winding shaft (1); the second through groove (12) forms a 90° angle with the first through groove (11).