High-density communication pipeline
By installing knobs and fixing rods inside the communication conduit, combined with a wire mesh protective layer, a shock-resistant layer, and a waterproof layer, the problem of communication cable damage when the conduit is broken is solved, achieving classified protection of cables and robustness and sealing of the conduit.
Patent Information
- Application Number
- CN202422984470.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-04
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2034-12-04
AI Technical Summary
When existing communication pipelines are damaged, the internal communication cables are easily exposed and damaged.
The pipe is equipped with a knob and fixing rod structure inside. The knob drives the fixing rod and isolation plate to rotate to classify the cables. The outside is equipped with a wire mesh protective layer, a shock-resistant layer and a waterproof layer to enhance the pipe structure. Bolts and sealing tape are used to improve the connection sealing.
It effectively prevents cable damage, enhances the robustness and sealing of pipelines, reduces damage to pipelines caused by external vibration and moisture, and ensures the safety of cables and the stability of connections.
Smart Images

Figure CN223502541U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of pipelines, specifically a high-density communication pipeline. Background Technology
[0002] Communication conduits refer to communication cables that are protected by dedicated conduits, typically concealed underground.
[0003] The existing patent CN118088620B discloses a shockproof structure for communication pipelines. A winding mechanism winds up the cable, and when the cable is wound to a certain extent, a self-locking mechanism automatically fixes the rotating rod, thus securing the cable. This prevents the cable from being pulled during threading, ensuring the length of the cable inside the access end. In the event of an earthquake, a pressure relief mechanism releases the self-locking mechanism from the rotating rod via a baffle. The rotating rod automatically resets under the action of a torsion spring, and the winding mechanism unwinds the cable accordingly. This allows the cable to move synchronously when the two communication pipelines shift, preventing the cable from breaking due to pipeline shift. This improves the cable's tensile strength and protects the cable inside the communication pipeline.
[0004] If existing pipelines are subjected to external destructive forces during use, the outer surface will be damaged, exposing the communication cables inside. At this point, the communication cables as a whole are more susceptible to external damage. Utility Model Content
[0005] The purpose of this invention is to provide a high-density communication pipeline to solve the problem that communication cables inside the pipeline are exposed and easily damaged when the pipeline is damaged.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a high-density communication conduit, comprising a conduit with a first groove inside for storing a communication cable, a second fixing post inside the first groove, and four sets of second grooves inside the second fixing post. Each of the four sets of second grooves has a first fixing rod inside. A knob is fixed to one end of each first fixing rod, rotating which causes the first fixing rod to rotate. The knob is located at one end of the second fixing post. Two sets of second fixing rods are fixed to the outer surface of the first fixing rod, rotating which causes the second fixing rod to rotate. The second fixing rods penetrate the outer surface of the second fixing post. An isolation plate is fixed to one side of each second fixing rod, rotating which causes the isolation plate to rotate.
[0007] As a further embodiment of this utility model: a slot is provided at one end of the isolation plate, and the rotation of the isolation plate causes the slot to rotate; a first fixing post is fixed at the other end of the isolation plate, and the rotation of the isolation plate causes the first fixing post to rotate.
[0008] As a further improvement of this utility model: a wire mesh protective layer is fixed to the outer surface of the pipe, which improves the overall strength of the pipe; an anti-vibration layer is fixed to the outer surface of the wire mesh protective layer, which reduces the damage to the pipe caused by external vibrations.
[0009] As a further embodiment of this utility model: a waterproof layer is fixed to the outer surface of the anti-seismic layer to prevent rainwater from entering the pipe; a first sealing strip is fixed to one end of the outer surface of the waterproof layer to improve the sealing performance when the pipe is connected; and a third fixing ring is fixed to one end of the outer surface of the waterproof layer, with the third fixing ring located at one end of the first sealing strip.
[0010] As a further embodiment of this utility model: a first fixing ring is fixed to the other end of the outer surface of the waterproof layer, and a second fixing ring is fixed to one end of the first fixing ring. When the first fixing ring moves, it drives the second fixing ring to move. A third sealing strip is fixed to the inner wall of the second fixing ring, and the third sealing strip improves the sealing performance when the pipe is connected.
[0011] As a further embodiment of this utility model: a fourth fixing ring is provided at one end of the second fixing ring, and four sets of screw grooves are provided at one end of the second fixing ring, the third fixing ring, and the fourth fixing ring. The second fixing ring and the fourth fixing ring are connected through the screw grooves.
[0012] As a further embodiment of this utility model: a bolt is engaged with the inside of the screw groove, and when the bolt rotates, the second fixing ring and the fourth fixing ring are fixed together through the screw groove, and a second sealing strip is fixed to one end of the fourth fixing ring.
[0013] Compared with the prior art, the beneficial effects of this utility model are:
[0014] 1. The knob is rotated to rotate the first fixed rod, which in turn rotates the second fixed rod, which in turn rotates the isolation plate. The isolation plate is rotated to adjust the angle, which facilitates the classification of different types of cables and prevents damage to the cables.
[0015] 2. The bolts are used for rotation. When the bolts rotate, the second and fourth fixing rings are fixed together through the threaded grooves. When the second and fourth fixing rings are fixed, multiple sets of pipes are fixedly connected. The second and third sealing strips are set to improve the sealing performance when multiple sets of pipes are connected. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0017] Figure 2 This is a schematic diagram of the overall internal structure of this utility model;
[0018] Figure 3 This is a schematic diagram of the structure shown in Figure A;
[0019] Figure 4 This is a schematic diagram of the pipe structure of this utility model.
[0020] In the diagram: 1. Pipe; 2. First fixing ring; 3. Second fixing ring; 4. Threaded groove; 5. Third fixing ring; 6. First groove; 7. First sealing strip; 8. Waterproof layer; 9. Fourth fixing ring; 10. Bolt; 11. Wire mesh protective layer; 12. Second sealing strip; 13. First fixing post; 14. Third sealing strip; 15. Second fixing post; 16. Knob; 17. Slot; 18. Isolation plate; 19. First fixing rod; 20. Second groove; 21. Seismic layer; 22. Second fixing rod. Detailed Implementation
[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0022] Please see Figure 1 , 23. In this embodiment of the present invention, a high-density communication conduit includes a conduit 1. A first groove 6 is provided inside the conduit 1 to store a communication cable. A second fixing post 15 is provided inside the first groove 6. Four sets of second grooves 20 are provided inside the second fixing post 15. A first fixing rod 19 is provided inside each of the four sets of second grooves 20. A knob 16 is fixed to one end of the first fixing rod 19. When the knob 16 rotates, it drives the first fixing rod 19 to rotate. The knob 16 is located at one end of the second fixing post 15. Two sets of second fixing rods 22 are fixed to the outer surface of the first fixing rod 19. When the first fixing rod 19 rotates, it drives the second fixing rods 22 to rotate. The second fixing rods 22 penetrate the outer surface of the second fixing post 15. An isolation plate 18 is fixed to one side of the second fixing rod 22. When the second fixing rod 22 rotates, it drives the isolation plate 18 to rotate.
[0023] When the knob 16 is rotated, it causes the first fixed rod 19 to rotate. When the first fixed rod 19 rotates, it causes the second fixed rod 22 to rotate. When the second fixed rod 22 rotates, it causes the isolation plate 18 to rotate.
[0024] Please refer to this carefully. Figure 3 One end of the isolation plate 18 is provided with a slot 17. The rotation of the isolation plate 18 causes the slot 17 to rotate. The other end of the isolation plate 18 is fixed with a first fixing post 13. The rotation of the isolation plate 18 causes the first fixing post 13 to rotate. A wire mesh protective layer 11 is fixed on the outer surface of the pipe 1. The wire mesh protective layer 11 improves the overall strength of the pipe 1. An anti-vibration layer 21 is fixed on the outer surface of the wire mesh protective layer 11. The anti-vibration layer 21 reduces the damage to the pipe 1 caused by external vibration.
[0025] The wire mesh protective layer 11 is made of rubber and wire mesh to improve the overall strength of the pipe 1. The shock-resistant layer 21 is made of thickened resin for protection, which reduces the damage to the pipe 1 caused by external vibration.
[0026] In this embodiment: when the knob 16 rotates, it drives the first fixed rod 19 to rotate; when the first fixed rod 19 rotates, it drives the second fixed rod 22 to rotate; when the second fixed rod 22 rotates, it drives the isolation plate 18 to rotate; when the isolation plate 18 rotates, the angle is adjusted.
[0027] Please refer to this carefully. Figure 2 , 4A waterproof layer 8 is fixed to the outer surface of the seismic layer 21. The waterproof layer 8 prevents rainwater from entering the interior of the pipe 1. A first sealing strip 7 is fixed to one end of the outer surface of the waterproof layer 8. The first sealing strip 7 improves the sealing performance when the pipe 1 is connected. A third fixing ring 5 is fixed to one end of the outer surface of the waterproof layer 8, and the third fixing ring 5 is located at one end of the first sealing strip 7. A first fixing ring 2 is fixed to the other end of the outer surface of the waterproof layer 8. A second fixing ring 3 is fixed to one end of the first fixing ring 2. When the first fixing ring 2 moves, it drives the second fixing ring 3 to move. A third sealing strip 14 is fixed to the inner wall of the second fixing ring 3. The third sealing strip 14 improves the sealing performance when the pipe 1 is connected.
[0028] The waterproof layer 8 uses synthetic rubber or synthetic resin as the main film-forming material to prevent rainwater from entering the interior of the pipe 1. The first sealing strip 7 and the third sealing strip 14 improve the sealing performance when the pipe 1 is connected.
[0029] Please refer to this carefully. Figure 2 A fourth fixing ring 9 is provided at one end of the second fixing ring 3. Four sets of screw grooves 4 are opened at one end of the second fixing ring 3, the third fixing ring 5, and the fourth fixing ring 9. The second fixing ring 3 and the fourth fixing ring 9 are connected through the screw grooves 4. A bolt 10 is engaged inside the screw grooves 4. When the bolt 10 rotates, it fixes the second fixing ring 3 and the fourth fixing ring 9 together through the screw grooves 4. A second sealing strip 12 is fixed at one end of the fourth fixing ring 9.
[0030] When bolt 10 rotates, it fixes the second fixing ring 3 and the fourth fixing ring 9 together through the screw groove 4. When the second fixing ring 3 and the fourth fixing ring 9 are fixed, they drive multiple sets of pipes 1 to be fixedly connected.
[0031] In this embodiment: when the bolt 10 rotates, it fixes the second fixing ring 3 and the fourth fixing ring 9 together through the screw groove 4. When the second fixing ring 3 and the fourth fixing ring 9 are fixed, they drive multiple sets of pipes 1 to be fixedly connected. The second sealing strip 12 and the third sealing strip 14 are set to improve the sealing performance when multiple sets of pipes 1 are connected.
[0032] Working principle: Rotating the knob 16 causes the first fixed rod 19 to rotate, which in turn causes the second fixed rod 22 to rotate, which in turn causes the isolation plate 18 to rotate. The isolation plate 18 is adjusted in angle as it rotates, which facilitates the classification of different types of passage cables and prevents damage to the passage cables as a whole.
[0033] Rotation is achieved by rotating bolt 10. When bolt 10 rotates, it fixes the second fixing ring 3 and the fourth fixing ring 9 together through the threaded groove 4. When the second fixing ring 3 and the fourth fixing ring 9 are fixed, they drive the multiple sets of pipes 1 to be fixedly connected. The second sealing strip 12 and the third sealing strip 14 are set to improve the sealing performance when the multiple sets of pipes 1 are connected.
[0034] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. A high-density communication conduit, comprising a conduit (1), characterized in that, The pipe (1) has a first groove (6) inside, and a second fixing post (15) is provided inside the first groove (6). The second fixing post (15) has four sets of second grooves (20) inside, and a first fixing rod (19) is provided inside each of the four sets of second grooves (20). A knob (16) is fixed to one end of the first fixing rod (19), and the knob (16) is located at one end of the second fixing post (15). Two sets of second fixing rods (22) are fixed to the outer surface of the first fixing rod (19), and the second fixing rods (22) penetrate the outer surface of the second fixing post (15). An isolation plate (18) is fixed to one side of the second fixing rod (22).
2. The high-density communication pipeline according to claim 1, characterized in that, One end of the isolation plate (18) is provided with a slot (17), and the other end of the isolation plate (18) is fixed with a first fixing post (13).
3. The high-density communication pipeline according to claim 1, characterized in that, The outer surface of the pipe (1) is fixed with a wire mesh protective layer (11), and the outer surface of the wire mesh protective layer (11) is fixed with a shock-resistant layer (21).
4. The high-density communication conduit according to claim 3, characterized in that, A waterproof layer (8) is fixed to the outer surface of the anti-seismic layer (21). A first sealing strip (7) is fixed to one end of the outer surface of the waterproof layer (8). A third fixing ring (5) is fixed to one end of the outer surface of the waterproof layer (8), and the third fixing ring (5) is located at one end of the first sealing strip (7).
5. A high-density communication conduit according to claim 4, characterized in that, The other end of the outer surface of the waterproof layer (8) is fixed with a first fixing ring (2), one end of the first fixing ring (2) is fixed with a second fixing ring (3), and the inner wall of the second fixing ring (3) is fixed with a third sealing strip (14).
6. A high-density communication conduit according to claim 5, characterized in that, A fourth fixing ring (9) is provided at one end of the second fixing ring (3), and four sets of screw grooves (4) are opened at one end of the second fixing ring (3), the third fixing ring (5), and the fourth fixing ring (9).
7. A high-density communication conduit according to claim 6, characterized in that, The screw groove (4) is internally connected to a bolt (10), and one end of the fourth fixing ring (9) is fixed with a second sealing strip (12).