Communication tube beneficial to heat dissipation
By setting an internal tube sleeve and an external arc plate heat dissipation structure in the communication tube, and using a combination of heat-conducting blocks and heat dissipation fins, the problem of heat dissipation inside the communication tube is solved, achieving efficient heat dissipation and extended lifespan.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-13
- Publication Date
- 2026-04-14
AI Technical Summary
The lack of heat dissipation structure in existing communication pipes makes it difficult to dissipate the heat generated by the cable during signal transmission and power transmission, affecting the performance and lifespan of the communication pipes.
A heat dissipation structure comprising an embedded tube sleeve and an external arc plate has been designed. The patent for the embedded tube sleeve, which is placed on the outside, discloses a novel heat dissipation structure comprising an embedded tube sleeve and an external arc plate. The heat dissipation structure comprises an embedded tube sleeve and an external arc plate. A heat-conducting block is provided on the inner side of the embedded tube sleeve, and heat dissipation fins are provided on the inner side of the external arc plate. Heat is conducted out by the heat-conducting block and dissipated to the outside through the heat dissipation fins.
This technology enables rapid heat dissipation from the inside of the communication tube, improving heat dissipation efficiency and extending the service life of both the communication tube and the cable.
Smart Images

Figure CN224123805U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of communication tube technology, specifically to a communication tube that facilitates heat dissipation. Background Technology
[0002] With the development of modern science and technology, electrical and optical communication has become increasingly widespread, communication methods have become more diverse, and communication time and efficiency have greatly improved, almost achieving zero-distance communication. However, the realization of these communication technologies requires laying a large number of communication lines, and the laying of these communication lines generally requires the protection of communication conduits.
[0003] Existing communication pipes are simply cylindrical plastic tubes, generally lacking heat dissipation structures. Furthermore, due to the numerous cables installed inside these pipes, which generate heat during signal and power transmission, this heat accumulates within the enclosed pipes and is difficult to dissipate. Over time, this high-temperature environment not only affects the performance and lifespan of the communication pipes but also the lifespan of the cables inside. Utility Model Content
[0004] This invention provides a communication tube that facilitates heat dissipation, thereby solving the problems in the background art.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a communication pipe that facilitates heat dissipation, comprising a communication pipe structure and a heat dissipation structure, wherein the heat dissipation structure comprises an inner sleeve and two outer arc plates, the two outer arc plates are joined together by a hinge seat, and the cavity formed after the two outer arc plates are joined together is a heat dissipation cavity, and the inner sleeve is located inside the heat dissipation cavity.
[0006] A heat-conducting block is provided on the inner side of the embedded sleeve, and the other side of the heat-conducting block overlaps with the outer wall of the communication tube structure.
[0007] The inner side of the external arc plate is provided with heat dissipation fins, and the other side of the heat dissipation fins overlaps with the outer wall of the embedded tube sleeve.
[0008] Furthermore, the communication pipe structure includes an inner lining base layer, a flame-retardant layer, a waterproof and breathable layer, and a wear-resistant layer, which are arranged sequentially from the inside to the outside.
[0009] Furthermore, the inner lining base layer is an MPP base layer, the flame retardant layer is a chlorinated polyethylene layer, the waterproof and breathable layer is a waterproof and breathable membrane stacked layer, and the wear-resistant layer is a nylon woven layer.
[0010] Furthermore, a positioning pin is movably inserted into the outer side of the outer arc plate, and the positioning pin penetrates the outer arc plate and abuts against the outer wall of the inner sleeve.
[0011] Furthermore, a damping spring rod is fixedly connected to the inner side of the embedded sleeve, and an abutment piece is fixedly connected to the other end of the damping spring rod. The other side of the abutment piece overlaps with the outer wall of the communication tube structure.
[0012] Compared with the prior art, this utility model provides a communication tube that facilitates heat dissipation and has the following features:
[0013] Beneficial effects:
[0014] This heat-dissipating communication pipe, through the setting of a heat dissipation structure, uses an embedded sleeve to connect the outside of the communication pipe structure, and with the help of a heat-conducting block, the heat inside the communication pipe structure can be discharged, and then the heat dissipation fins on the inside of the external arc plate can dissipate the heat, which can better exchange heat with the outside environment, ensure that the heat dissipated by the cable is quickly dissipated, achieve excellent heat dissipation effect and effectively extend service life. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the structure of this utility model;
[0016] Figure 2 This is a schematic diagram of the communication tube structure of this utility model;
[0017] Figure 3 This is a schematic diagram of the heat dissipation structure of this utility model;
[0018] Figure 4 This is a schematic diagram of the heat dissipation structure of this utility model;
[0019] Figure 5 This is a schematic diagram of the embedded sleeve structure of this utility model.
[0020] In the diagram: 1. Communication pipe structure; 101. Inner lining base layer; 102. Flame retardant layer; 103. Waterproof and breathable layer; 104. Wear-resistant layer; 2. Heat dissipation structure; 201. Embedded tube sleeve; 202. External arc plate; 203. Hinge seat; 204. Positioning pin; 205. Heat dissipation fins; 206. Damping spring rod; 207. Contact plate; 208. Heat-conducting block. 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 1-5This utility model discloses a communication pipe that facilitates heat dissipation, including a communication pipe structure 1 and a heat dissipation structure 2. The communication pipe structure 1 includes an inner lining base layer 101, a flame retardant layer 102, a waterproof and breathable layer 103, and a wear-resistant layer 104. The inner lining base layer 101, the flame retardant layer 102, the waterproof and breathable layer 103, and the wear-resistant layer 104 are arranged in order from the inside to the outside.
[0023] The heat dissipation structure 2 includes an embedded sleeve 201 and two external arc plates 202. The two external arc plates 202 are joined together by a hinge seat 203. The cavity formed by the two external arc plates 202 after being joined together is a heat dissipation cavity. The embedded sleeve 201 is located inside the heat dissipation cavity.
[0024] A heat-conducting block 208 is provided on the inner side of the embedded sleeve 201, and the other side of the heat-conducting block 208 overlaps with the outer wall of the communication pipe structure 1.
[0025] The inner side of the external arc plate 202 is provided with heat dissipation fins 205, which are made of elastic metal material, such as aluminum alloy or copper, to ensure heat conduction and heat dissipation. The other side of the heat dissipation fins 205 overlaps with the outer wall of the embedded tube sleeve 201.
[0026] By setting up a heat dissipation structure 2, and utilizing the combined action of components such as the embedded sleeve 201, heat-conducting block 208, and heat dissipation fins 205, the heat inside the communication pipe structure 1 can be effectively conducted out and dissipated to the external environment, thereby achieving excellent heat dissipation and effectively extending service life. Simultaneously, by optimizing the composition of the communication pipe structure 1 and setting up components such as the positioning pin 204 and damping spring rod 206, the stability and reliability of the communication pipe are further improved, providing a more reliable technical solution for the laying and protection of communication lines.
[0027] Specifically, the inner lining base layer 101 is an MPP base layer, the flame retardant layer 102 is a chlorinated polyethylene layer, the waterproof and breathable layer 103 is a waterproof and breathable membrane stack layer, and the wear-resistant layer 104 is a nylon woven layer.
[0028] In this implementation plan, the MPP base layer has excellent electrical insulation properties, while the chlorinated polyethylene layer can prevent the spread of fire and improve safety.
[0029] Furthermore, the waterproof and breathable membrane stack layer can provide good waterproof performance, preventing water stains from entering the interior of the inner lining base layer 101, while also having breathable properties, which helps to dissipate heat.
[0030] The wear-resistant layer 104 is a sheath made of nylon yarn. The nylon-woven sheath has strong wear resistance, and the gaps between the nylon fibers help dissipate heat.
[0031] Specifically, a positioning pin 204 is movably inserted into the outer side of the outer arc plate 202, and the positioning pin 204 penetrates the outer arc plate 202 and abuts against the outer wall of the inner sleeve 201.
[0032] In this embodiment, the positioning pin 204 penetrates the external arc plate 202 and abuts against the outer wall of the inner sleeve 201, thereby positioning the external arc plate 202 and preventing it from shifting or loosening during heat dissipation, thus ensuring the stability and reliability of the heat dissipation structure 2.
[0033] Specifically, a damping spring rod 206 is fixedly connected to the inner side of the embedded sleeve 201, and an abutment piece 207 is fixedly connected to the other end of the damping spring rod 206. The other side of the abutment piece 207 overlaps with the outer wall of the communication tube structure 1.
[0034] In this embodiment, to enhance the fit between the embedded sleeve 201 and the communication tube structure 1 and improve heat conduction efficiency, a damping spring rod 206 is fixedly connected to the inner side of the embedded sleeve 201. The damping spring rod 206 has a certain degree of elasticity and extensibility, and can be adaptively adjusted according to the outer diameter of the communication tube structure 1, so that the embedded sleeve 201 can be tightly fitted onto the outer side of the communication tube structure 1. At the same time, an abutment piece 207 is fixedly connected to the other end of the damping spring rod 206, and the other side of the abutment piece 207 overlaps with the outer wall of the communication tube structure 1, further enhancing the fit and stability between the embedded sleeve 201 and the communication tube structure 1.
[0035] In use, the operator can place the communication line inside the communication tube structure 1, and then attach the heat dissipation structure 2 to the outside of the communication tube structure 1. The embedded tube sleeve 201 is in close contact with the outer wall of the communication tube structure 1 through the heat-conducting block 208. When the communication line is working, the heat generated can be transferred to the embedded tube sleeve 201 through the heat-conducting block 208.
[0036] Subsequently, the heat is transferred through the inner sleeve 201 to the heat dissipation fins 205 on the inner side of the outer arc plate 202. The heat dissipation fins 205 increase the heat dissipation area and improve the heat dissipation efficiency, so that the heat can be dissipated to the external environment more quickly.
[0037] Meanwhile, the positioning pin 204 penetrates the outer arc plate 202 and abuts against the outer wall of the embedded sleeve 201, ensuring the stability and reliability of the heat dissipation structure 2 and preventing displacement or loosening during heat dissipation. In addition, the damping spring rod 206 and the abutment piece 207 further enhance the fit and stability between the embedded sleeve 201 and the communication pipe structure 1, improving heat conduction efficiency.
[0038] In summary, this heat-dissipating communication pipe, by setting up a heat dissipation structure 2, uses an embedded sleeve 201 to connect the outer side of the communication pipe structure 1, and with the heat-conducting block 208, it can conduct heat out of the inner side of the communication pipe structure 1. Then, the heat dissipation fins 205 on the inner side of the external arc plate 202 dissipate the heat, which can better exchange heat with the outside world, ensure that the heat dissipated by the cable is quickly dissipated, achieve the effect of good heat dissipation and effectively extend service life.
[0039] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A communication tube with heat dissipation function, comprising a communication tube structure (1) and a heat dissipation structure (2), characterized in that: The heat dissipation structure (2) includes an embedded sleeve (201) and two external arc plates (202). The two external arc plates (202) are joined together by a hinge seat (203). The cavity formed after the two external arc plates (202) are joined together is a heat dissipation cavity. The embedded sleeve (201) is located inside the heat dissipation cavity. A heat-conducting block (208) is provided on the inner side of the embedded sleeve (201), and the other side of the heat-conducting block (208) overlaps with the outer wall of the communication pipe structure (1). The inner side of the external arc plate (202) is provided with heat dissipation fins (205), and the other side of the heat dissipation fins (205) overlaps with the outer wall of the inner sleeve (201).
2. The communication tube with heat dissipation as described in claim 1, characterized in that: The communication pipe structure (1) includes an inner lining base layer (101), a flame retardant layer (102), a waterproof and breathable layer (103), and a wear-resistant layer (104), which are arranged in order from the inside to the outside.
3. The communication tube with heat dissipation as described in claim 2, characterized in that: The inner lining base layer (101) is an MPP base layer, the flame retardant layer (102) is a chlorinated polyethylene layer, the waterproof and breathable layer (103) is a waterproof and breathable membrane stack layer, and the wear-resistant layer (104) is a nylon braided layer.
4. The communication tube with heat dissipation as described in claim 1, characterized in that: A positioning pin (204) is movably inserted into the outer side of the outer arc plate (202), and the positioning pin (204) penetrates the outer arc plate (202) and abuts against the outer wall of the inner sleeve (201).
5. A communication tube with heat dissipation as described in claim 1, characterized in that: The inner side of the embedded sleeve (201) is fixedly connected to a damping spring rod (206), and the other end of the damping spring rod (206) is fixedly connected to an abutment piece (207). The other side of the abutment piece (207) overlaps with the outer wall of the communication tube structure (1).