Communication pipeline convenient for optical cable laying
By using technical means such as airbag protection components, water droplet buffer components and concave foam blocks in optical fiber communication pipelines, the problem of shortening the life of optical fibers in external forces and humid environments is solved, and efficient protection and extended life are achieved.
Patent Information
- Application Number
- CN202422210704.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-09
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2034-09-09
AI Technical Summary
The existing fiber optic communication pipelines are likely to shorten their fiber life after external force and long-term storage, and the problem of moisture accumulation is difficult to solve.
A communication pipeline is designed for easy laying of optical cables, using airbag protection components and water droplet buffer components, combined with concave foam blocks and rubber plates, providing moisture-proof and bump-proof protection effects of partitions.
Through this design, the optical fibers obtain drying, buffering and anti-collision protection during laying, extending the service life of the optical cables and effectively preventing moisture accumulation.
Smart Images

Figure CN222965458U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of optical fiber installation, in particular to a communication pipeline convenient for laying optical cables. Background Technique
[0002] In pipeline communication (CommunicationPipeline), the sending process sends a large amount of data into the pipeline in the form of a character stream, and the receiving process can receive the data from the pipeline, and the two communicate using the pipeline.
[0003] There are various optical cable communication pipelines in the prior art. Most of the existing communication pipelines use mother and son pipelines to install optical fibers. During the process of encountering external forces and long-term storage, the cables will be compressed by external forces, which will affect the light. During long-term storage, moisture accumulation will also occur inside the damp underground pipeline, thus reducing the service life of the optical fiber. For this reason, a communication pipeline with partitions and buffer protection is designed, so the use of this communication pipeline convenient for laying optical cables is required. Content of the Utility Model
[0004] Aiming at the deficiencies of the prior art, the utility model provides a communication pipeline convenient for laying optical cables, and solves the technical problems put forward in the above background technique.
[0005] To achieve the above purposes, the utility model is realized through the following technical solutions: A communication pipeline convenient for laying optical cables, including a first pipe body, a protection component is arranged inside the wall surface of the first pipe body, and an airbag protection component and a water droplet buffer component are installed inside the first pipe body;
[0006] The water droplet buffer component includes a first water droplet-shaped rubber pipe body, the first water droplet-shaped rubber pipe body is installed on the lower inner wall surface of the first pipe body, and a second water droplet-shaped rubber pipe body is installed inside the first water droplet-shaped rubber pipe body.
[0007] Preferably, the protection component includes a concave foam block. A first space is arranged inside the first pipe body, and the cross-section of the first space is annular. The inner part of the first space is divided into an inner ring and an outer ring side wall surface. A pair of rectangular grooves are arranged on the outer ring side wall surface inside the first space. A concave foam block is inserted into the pair of rectangular grooves. A rubber plate is installed on the side wall surface inside the first space. Two pairs of grooves are arranged on the side wall surface of the rubber plate, and the two pairs of grooves are respectively engaged with the pair of concave foam blocks.
[0008] Preferably, the airbag protection component includes a first cylindrical airbag and a second cylindrical airbag. The pair of first cylindrical airbags and the second cylindrical airbag are respectively installed inside the first pipe body, and the pair of first cylindrical airbags and the pair of second cylindrical airbags are respectively located on both sides of the first water droplet-shaped rubber pipe body.
[0009] Beneficial effects
[0010] The utility model provides a communication pipeline facilitating optical cable laying. When laying the optical cable, in order to keep the optical cable dry underground and have a buffer and anti-collision protection effect, at this time, the first pipe body can make there be a certain interval between the first pipe body and the optical cable inside the first pipe body through the concave foam block and the rubber plate in the first space, and through the materials of the rubber plate and the concave foam block, the first pipe body can produce a partition and moisture-proof effect and have a certain buffer effect. When installing the optical fiber, it can be installed inside the second water-drop-shaped rubber pipe body. At this time, a flexible moving space can be provided by the first water-drop-shaped rubber pipe body and the concave foam block. At this time, with the assistance of a pair of first cylindrical air bags and second cylindrical air bags, the cable can complete buffer protection inside the first pipe body, thereby completing the efficient protection and moisture-proof partition of the optical fiber cable laying, and thus extending the service life of the optical cable. Brief description of the drawings
[0011] Figure 1 It is a schematic structural diagram of the first water-drop-shaped rubber pipe body of the communication pipeline facilitating optical cable laying described in the utility model.
[0012] Figure 2 It is a schematic internal structure diagram of the first pipe body of the communication pipeline facilitating optical cable laying described in the utility model.
[0013] In the figure: 1. First pipe body; 2. First cylindrical air bag; 3. Second cylindrical air bag; 4. First water-drop-shaped rubber pipe body; 5. Second water-drop-shaped rubber pipe body; 6. Concave foam block; 7. Rubber plate. Specific implementation manners
[0014] Next, the technical solutions in the embodiments of the utility model will be clearly and completely described in conjunction with the drawings in the embodiments of the utility model. Obviously, the described embodiments are only a part of the embodiments of the utility model, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the utility model without creative efforts shall fall within the protection scope of the utility model.
[0015] Please refer to Figure 1-2 , the utility model provides a technical solution: a communication pipeline facilitating optical cable laying, including a first pipe body 1, a protection component is provided inside the wall surface of the first pipe body 1, and an air bag protection component and a water-drop buffer component are installed inside the first pipe body 1;
[0016] The water-drop buffer component includes a first water-drop-shaped rubber pipe body 4, the first water-drop-shaped rubber pipe body 4 is installed on the lower wall surface inside the first pipe body 1, and a second water-drop-shaped rubber pipe body 5 is installed inside the first water-drop-shaped rubber pipe body 4.
[0017] When laying optical fibers, in order to keep the optical fibers dry underground and have a buffer and anti-collision protection effect, at this time, the first pipe body 1 can make a certain interval between the first pipe body 1 and the optical fibers inside the first pipe body 1 through the concave foam block 6 and the rubber plate 7 inside the first space. And through the materials of the rubber plate 7 and the concave foam block 6, the first pipe body 1 can produce a partition and moisture-proof effect and have a certain buffer effect. When installing the optical fiber, it can be installed inside the second water-drop-shaped rubber pipe body 5. At this time, the first water-drop-shaped rubber pipe body 4 and the concave foam block 6 can provide a flexible moving space. At this time, with the assistance of a pair of first cylindrical air bags 2 and second cylindrical air bags 3, the cable can complete buffer protection inside the first pipe body 1, thus completing the efficient protection and moisture-proof partition of the optical fiber cable laying, and thus extending the service life of the optical cable.
[0018] In this embodiment, it is further set that the protection component includes a concave foam block 6. A first space is opened inside the first pipe body 1 and the cross-section of the first space is annular. The inner part of the first space is divided into an inner ring and an outer ring side wall surface. A pair of rectangular grooves are opened on the outer ring side wall surface inside the first space. The concave foam block 6 is inserted inside the pair of rectangular grooves. A rubber plate 7 is installed on the side wall surface inside the first space. Two pairs of grooves are opened on the side wall surface of the rubber plate 7 and the two pairs of grooves are respectively engaged with a pair of concave foam blocks 6.
[0019] In order to keep the optical fibers dry underground and have a buffer and anti-collision protection effect, at this time, the first pipe body 1 can make a certain interval between the first pipe body 1 and the optical fibers inside the first pipe body 1 through the concave foam block 6 and the rubber plate 7 inside the first space. And through the materials of the rubber plate 7 and the concave foam block 6, the first pipe body 1 can produce a partition and moisture-proof effect and have a certain buffer effect.
[0020] In this embodiment, it is further set that the air bag protection component includes a first cylindrical air bag 2 and a second cylindrical air bag 3. A pair of the first cylindrical air bags 2 and the second cylindrical air bags 3 are respectively installed inside the first pipe body 1 and a pair of the first cylindrical air bags 2 and a pair of the second cylindrical air bags 3 are respectively located on both sides of the first water-drop-shaped rubber pipe body 4.
[0021] The first water-drop-shaped rubber pipe body 4 and the concave foam block 6 provide a flexible moving space. At this time, with the assistance of a pair of first cylindrical air bags 2 and second cylindrical air bags 3, the cable can complete buffer protection inside the first pipe body 1.
[0022] The detailed connection means are well-known techniques in the art. The following mainly introduces the working principle and process. The specific work is as follows.
[0023] Embodiment: When laying optical fibers, in order to keep the optical fibers dry underground and provide buffer and anti-collision protection, at this time, the first pipe body 1 can make there be a certain interval between the first pipe body 1 and the optical fibers inside the first pipe body 1 through the concave foam block 6 and the rubber plate 7 inside the first space. And through the materials of the rubber plate 7 and the concave foam block 6, the first pipe body 1 can produce a partition and moisture-proof effect and have a certain buffering effect. When installing the optical fiber, it can be installed inside the second water-drop-shaped rubber pipe body 5. At this time, a flexible moving space can be provided by the first water-drop-shaped rubber pipe body 4 and the concave foam block 6. At this time, with the assistance of a pair of first cylindrical air bags 2 and second cylindrical air bags 3, the cable can complete buffer protection inside the first pipe body 1, so as to complete the efficient protection and moisture-proof partition of the optical fiber cable laying, and thus extend the service life of the optical cable.
[0024] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations.
Claims
1. A communication pipe for facilitating the laying of optical cables, comprising a first pipe body (1), characterized in that: A protective component is provided inside the wall of the first tube body (1), and an airbag protective component and a water drop buffer component are installed inside the first tube body (1); The water drop buffer assembly comprises a first water drop-shaped rubber tube body (4), wherein the first water drop-shaped rubber tube body (4) is installed on the lower wall surface inside the first tube body (1), and a second water drop-shaped rubber tube body (5) is installed inside the first water drop-shaped rubber tube body (4).
2. A communication pipeline for facilitating the laying of optical cables according to claim 1, characterized in that: The protective component comprises a concave foam block (6); a first space is provided inside the first tube body (1) and the cross section of the first space is annular; the first space is divided into an inner ring and an outer ring side wall; a pair of rectangular grooves are provided on the outer ring side wall of the first space; the concave foam block (6) is inserted into the pair of rectangular grooves; a rubber plate (7) is installed on the side wall of the first space; two pairs of grooves are provided on the side wall of the rubber plate (7) and the two pairs of grooves are respectively engaged with the pair of concave foam blocks (6).
3. A communication pipeline for facilitating the laying of optical cables according to claim 1, characterized in that: The airbag protection component comprises a first cylindrical airbag (2) and a second cylindrical airbag (3), wherein a pair of the first cylindrical airbag (2) and the second cylindrical airbag (3) are respectively installed inside the first tube body (1), and the pair of the first cylindrical airbag (2) and the pair of the second cylindrical airbag (3) are respectively located on both sides of the first teardrop-shaped rubber tube body (4).