Electric power pipe network laying structure
The heat dissipation structure, composed of heat-conducting plates and copper-aluminum composite plates, solves the problem of heat loss from cables, enabling stable operation and rapid cleaning of power grids in high-temperature environments.
Patent Information
- Application Number
- CN202423302066.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2034-12-31
AI Technical Summary
In the existing power grid laying structure, the heat generated by the cables cannot be dissipated quickly, leading to overheating of the cables and affecting the normal operation and lifespan of the equipment.
The heat dissipation structure consists of a heat-conducting plate, a copper-aluminum composite plate, grooves, convex plates, a heat dissipation plate, and a mesh plate. Through the combined design of polypropylene coating, heat insulation layer, and thermally conductive silicone, the heat inside the power pipe body is dissipated. The removable heat dissipation plate and mesh plate design prevent dust accumulation.
Effective heat dissipation prevents cable damage caused by heat buildup, ensures normal operation of the power grid in high-temperature environments, and allows for quick cleaning, adapting to harsh environments.
Smart Images

Figure CN223680694U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to electric power pipe network laying field, concretely relates to electric power pipe network laying structure. BACKGROUND
[0002] Electric power pipe is the product that adopts PE (modified polyethylene) to carry out hot dip plastic or epoxy resin to carry out inside and outside coating, has excellent corrosion resistance. Meanwhile coating itself also has good electrical insulation, will not produce electric corrosion, can also effectively prevent the damage of plant root system and soil environment stress etc.
[0003] The existing electric power pipe network laying structure is supported and laid to cable through the use fixed block and electric power pipe etc., can effectively realize the safety and stability of electric power supply, the above method can realize the laying of electric power website although, but when using the equipment for a long time, cable work will produce a large amount of heat, these heat accumulates in the electric power pipe ontology, cannot be quickly scattered, leads to the cable to appear overheating phenomenon easily in long-term work, prone to the problem of damaging electric power equipment. UTILITY MODEL CONTENTS
[0004] The utility model solves the technical problem in the prior art, provides an electric power pipe network laying structure that can assist the cable in the electric power pipe body to dissipate heat.
[0005] The utility model discloses a kind of electric power pipe network laying structures, including fixed block, the fixed block upper and lower ends are connected with electric power pipe ontology by clamping groove, the inner side wall of the electric power pipe ontology is provided with polypropylene coating, polypropylene coating outside is laid with heat insulation layer, heat insulation layer outside is fixed with heat-conducting silica gel, drawer is installed in the fixed block, grid plate is provided on the side wall of the drawer, two connecting columns are symmetrically provided on the side wall of the fixed block, side plate is connected on the connecting column, two self-locking universal wheels are symmetrically fixed on the bottom end of side plate, four magnetic holes are arranged at the top of the fixed block, the magnetic hole is connected with top plate by magnetic attraction column, heat-conducting plate is installed at the bottom end of the magnetic attraction column, copper-aluminum composite board is fixed on the inner side wall of the heat-conducting plate, recess is arranged at the top of the top plate, convex plate is arranged in the middle of the recess, heat dissipation plate is arranged on the convex plate, screen mesh plate is laid on the bottom end of the heat dissipation plate, two handles are symmetrically fixed on the top end of the heat dissipation plate.
[0006] Further, the clamping groove is formed on the electric power pipe body, and the electric power pipe body is screw-connected with the fixed block.
[0007] Further, the polypropylene coating is adhered with the electric power pipe body, and the polypropylene coating and the heat insulation layer are adhered, and the heat insulation layer is adhered with the heat-conducting silica gel.
[0008] Further, the drawer is slidably connected with the fixed block, and the grid plate is screw-connected with the drawer.
[0009] Further, the connecting column is screw-connected with the fixed block, the side plate is screw-connected with the connecting column, and the self-locking universal wheel is screw-connected with the side plate.
[0010] Further, the magnetic hole is formed in the fixed block, the magnetic attraction column is screw-connected with the top plate, the top plate is inserted with the fixed block, and the heat-conducting plate is screw-connected with the top plate.
[0011] Further, the copper-aluminum composite plate is bonded with the heat-conducting plate, the groove is formed in the top plate, and the convex plate is screw-connected with the groove.
[0012] Further, the heat-dissipating plate is clamped with the groove, the handle is screw-connected with the heat-dissipating plate, and the mesh plate is screw-connected with the heat-dissipating plate.
[0013] Compared with the prior art, the utility model has the following beneficial effects:
[0014] The heat-dissipating structure composed of the heat-conducting plate, the copper-aluminum composite plate, the groove, the convex plate, the heat-dissipating plate and the mesh plate can guarantee the performance of the power pipe body under high temperature environment through the design of the polypropylene coating of the power pipe body and the heat insulation layer, can ensure that the copper-aluminum composite plate and the heat-conducting plate can conduct the heat generated by the cable in the power pipe body out, avoid the problem that the heat accumulation in the structure causes the cable in the structure to overheat and be damaged, can effectively guarantee the work of the structure under high strength, and when working under the condition of bad environment, the design of the heat-dissipating plate and the mesh plate can dismantle them at any time, avoid the dust and the like from entering the structure due to the long-term fixation of the structure, and facilitate the quick cleaning of the structure. BRIEF DESCRIPTION OF DRAWINGS
[0015] Figure 1 It is a structural schematic view of the power pipe network laying structure.
[0016] Figure 2 It is a structural schematic view of the top plate in the power pipe network laying structure.
[0017] Figure 3 It is a structural schematic view of the drawer in the power pipe network laying structure.
[0018] Figure 4 It is a structural schematic view of the power pipe body in the power pipe network laying structure.
[0019] Figure 5 This is a main sectional view of the power pipe body in the power pipeline laying structure described in this utility model;
[0020] Figure 6 The power pipe body in the power pipeline laying structure described in this utility model Figure 2 Enlarged view of point A in the middle.
[0021] The annotations in the attached figures are explained as follows:
[0022] 1. Copper-aluminum composite panel; 2. Magnetic hole; 3. Side panel; 4. Fixing block; 5. Power pipe body; 6. Heat-conducting plate; 7. Magnetic column; 8. Self-locking caster wheel; 9. Connecting column; 10. Groove; 11. Protruding plate; 12. Top plate; 13. Drawer; 14. Mesh panel; 15. Snap-fit groove; 16. Insulation layer; 17. Polypropylene coating; 18. Thermally conductive silicone; 19. Heat sink; 20. Handle; 21. Mesh panel. Detailed Implementation
[0023] To enable those skilled in the art to better understand the present invention, the technical solutions of the present invention 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 invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort should fall within the protection scope of the present invention.
[0024] like Figures 1-3 As shown, an embodiment of a power pipeline laying structure includes a fixing block 4. The upper and lower ends of the fixing block 4 are connected to a power pipe body 5 via snap-fit grooves 15. A polypropylene coating 17 is provided on the inner wall of the power pipe body 5, and a heat insulation layer 16 is provided on the outer side of the polypropylene coating 17. Thermally conductive silicone 18 is fixed to the outer side of the heat insulation layer 16. A drawer 13 is installed inside the fixing block 4, and a mesh plate 14 is provided on the side wall of the drawer 13. Two connecting posts 9 are symmetrically arranged on both side walls of the fixing block 4, and side plates 3 are connected to the connecting posts 9. Two self-locking casters 8 are symmetrically fixed on both sides of the bottom end of the side plate 3. Four magnetic holes 2 are opened at the four corners of the top of the fixing block 4. The magnetic holes 2 are connected to the top plate 12 through magnetic suction columns 7. A heat-conducting plate 6 is installed at the bottom of the magnetic suction column 7. A copper-aluminum composite plate 1 is fixed on the inner side wall of the heat-conducting plate 6. A groove 10 is opened at the top of the top plate 12. A protruding plate 11 is set in the middle of the groove 10. A heat dissipation plate 19 is set on the protruding plate 11. A mesh plate 21 is laid at the bottom of the heat dissipation plate 19. Two handles 20 are symmetrically fixed on both sides of the top of the heat dissipation plate 19.
[0025] The embodiment of the utility model provides a power pipe network laying structure capable of assisting the cable in the power pipe body to radiate heat, solves the problem that in the prior art, when power pipe network is laid, a large amount of heat generated by cable work is accumulated in the power pipe body, which easily affects the long-term normal work of the cable, thus leading to the problem that the structure cools down too slowly during work and thus the cable overheats and affects normal work, the general idea of the embodiment of the utility model for solving the above problem lies in: the heat dissipation structure composed of the heat conduction plate 6, copper-aluminum composite board 1, groove 10, convex plate 11, heat dissipation plate 19 and gauze plate 21, so that when the structure is laid on the power pipe body 5, the polypropylene coating 17 of the power pipe body 5 can be combined with the design of the heat insulation layer 16 to ensure the performance of the power pipe under high temperature environment, the heat in the power pipe body 5 is exported by the heat-conducting silica gel 18, the copper-aluminum composite board 1 and the heat conduction plate 6 can export the heat generated by the cable in the power pipe body 5, the problem that the structure is damaged due to overheating of the cable in the structure is avoided, the working of the structure under high strength can be effectively ensured, and when the structure works under harsh environment, the heat dissipation plate 19 is combined with the design of the gauze plate 21, the heat dissipation plate 19 can be disassembled at any time, dust and the like are prevented from entering the structure due to long-term fixation of the structure, and the structure can be conveniently and quickly cleaned.
[0026] As shown in Figure 1 , Figure 2 and Figure 4 , the clamping groove 15 is formed on the power pipe body 5, and the power pipe body 5 is screw-connected with the fixed block 4.
[0027] As an implementation mode, the clamping groove 15 is designed, which facilitates the splicing of the power pipe body 5 and the fixed block 4 and facilitates the adsorption of moisture generated in the power pipe body 5.
[0028] As shown in Figure 5 , the polypropylene coating 17 is bonded with the power pipe body 5, the polypropylene coating 17 is bonded with the heat insulation layer 16, and the heat insulation layer 16 is bonded with the heat-conducting silica gel 18.
[0029] As an implementation mode, the polypropylene coating 17 is designed, which has good heat resistance, can still maintain good performance under high temperature environment, is not easy to decompose or deteriorate, and is combined with the design of the heat insulation layer 16 to improve the high-temperature resistance and heat insulation capacity of the power pipe body 5, so as to achieve the purpose of improving the heat dissipation effect of the power pipe body 5.
[0030] As shown in Figure 3 , the drawer 13 is slidingly connected with the fixed block 4, and the grid plate 14 is screw-connected with the drawer 13.
[0031] As an implementation form, the drawer 13 is matched with the design of the grid plate 14, which facilitates the placement of dehumidification particles and the like, and facilitates the adsorption of moisture in the structure at any time to ensure that the structure can work continuously for a long time in a high humidity environment.
[0032] As shown in Figure 1 , the connecting column 9 is threadedly connected with the fixed block 4, the side plate 3 is screw-connected with the connecting column 9, and the self-locking universal wheel 8 is screw-connected with the side plate 3.
[0033] As an implementation form, the connecting column 9 realizes the connection and fixation of the side plate 3, and cooperates with the design of the self-locking universal wheel 8, so that the whole structure can be moved and adjusted when the structure works.
[0034] As shown in Figure 1 , the magnetic hole 2 is formed on the fixed block 4, the magnetic attraction column 7 is screw-connected with the top plate 12, the top plate 12 is inserted with the fixed block 4, and the heat conduction plate 6 is screw-connected with the top plate 12.
[0035] As an implementation form, the magnetic hole 2 cooperates with the design of the magnetic attraction column 7, which facilitates the installation or disassembly of the top plate 12 at any time, realizes the protection of the top end of the power pipe body 5 by the top plate 12, and can effectively improve the compression resistance of the top end of the power pipe body 5.
[0036] As shown in Figures 1-2 , the copper-aluminum composite board 1 is adhered with the heat conduction plate 6, the groove 10 is formed on the top plate 12, and the convex plate 11 is screw-connected with the groove 10.
[0037] As an implementation form, the copper-aluminum composite board 1 cooperates with the design of the heat conduction plate 6, which has good heat dissipation performance due to the high thermal conductivity of copper and the good heat dissipation of aluminum, and the convex plate 11 cooperates with the design of the groove 10, which facilitates the installation or disassembly of the heat dissipation plate 19.
[0038] As shown in Figure 6 , the heat dissipation plate 19 is clamped and connected with the groove 10, the handle 20 is screw-connected with the heat dissipation plate 19, and the mesh screen plate 21 is screw-connected with the heat dissipation plate 19.
[0039] As an implementation form, the heat dissipation plate 19 cooperates with the design of the mesh screen plate 21, which can ensure the heat dissipation of the structure while facilitating the disassembly and cleaning of the structure, avoiding the blockage of the structure by dust and the like, and ensuring the flexibility of the structure in use.
[0040] The specific implementation process of the embodiment is as follows: when the structure is used, the structure needs to be placed in a proper position, and the cable is drawn out through the power pipe body 5 to realize the support and laying of the cable by the power pipe body 5, and the overall adjustment of the position of the structure can be realized by cooperating with the design of the self-locking universal wheel 8, so that the position of the structure can be adjusted during the laying work to facilitate the laying work, and when the cable works, the heat generated by the cable can be conducted out through the heat-conducting silica gel 18, and the copper-aluminum composite board 1 and the heat-conducting plate 6 can effectively assist the heat dissipation of the power pipe body 5, and at the same time, the top plate 12 can protect the top end of the power pipe body 5 without affecting the heat dissipation of the structure, so that the compression resistance of the power pipe body 5 can be effectively improved, and the mesh screen plate 21 cooperates with the design of the heat dissipation plate 19 to effectively isolate dust and other substances at the top end, so that dust is not easily accumulated to block the heat dissipation plate 19 at the top end of the structure in harsh environments, and the recess 10 and the convex plate 11 are designed to facilitate the disassembly and cleaning of the heat dissipation plate 19 at any time, so that the flexibility of the structure during work is ensured, and the drawer 13 can store dehumidifying particles, and when the cable works in the power pipe body 5, the dehumidifying particles can absorb the moisture in the power pipe body 5, so that the moisture does not affect the normal work of the cable.
[0041] The above description of the disclosed embodiments enables a person skilled in the art to implement or use the present application. Various modifications to these embodiments will be apparent to those skilled in the art, and the general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present application. Therefore, the present application will not be limited to the embodiments shown herein, but will conform to the widest scope consistent with the principles and novel features disclosed herein.
Claims
1. An electrical power pipe network laying structure, characterized by: The utility model provides a fixed block (4), the fixed block (4) both ends are connected with the electric power pipe body (5) through the clamping groove (15), the electric power pipe body (5) inside wall is provided with polypropylene coating (17), polypropylene coating (17) outside is equipped with heat insulation layer (16), heat insulation layer (16) outside is fixed with heat conduction silica gel (18), the fixed block (4) is installed with drawer (13), the sidewall of drawer (13) is provided with grid plate (14), the both sides wall of fixed block (4) is provided with two connecting columns (9) symmetry, connecting column (9) is connected with side plate (3), the both sides symmetry fixed with two self -locking universal wheel (8) of side plate (3) bottom, the fixed block (4) top four corners are provided with four magnetic holes (2), magnetic hole (2) is connected with top plate (12) through magnetic attraction column (7), the bottom of magnetic attraction column (7) is installed with heat conduction plate (6), the inside wall of heat conduction plate (6) is fixed with copper aluminium composite board (1), the top of top plate (12) is provided with recess (10), the recess (10) is provided with the boss (11) in the middle, the boss (11) is provided with the heat dissipation plate (19), the heat dissipation plate (19) bottom is equipped with net screen board (21), the heat dissipation plate (19) top both sides symmetry fixed with two handle (20).
2. A power tube-laying structure according to claim 1, characterized in that: The clamping groove (15) is formed on the electric power pipe body (5), and the electric power pipe body (5) is screw connected with the fixed block (4).
3. A power tube laying structure according to claim 1, characterized in that: The polypropylene coating (17) is adhered to the electric power pipe body (5), and the polypropylene coating (17) and the heat insulation layer (16) are adhered.
4. A power tube laying structure according to claim 1, characterized in that: The drawer (13) is slidingly connected with the fixed block (4), and the grid plate (14) is screw connected with the drawer (13).
5. A power tube network laying structure according to claim 1, characterized in that: The connecting column (9) is screw connected with the fixed block (4), the side plate (3) is screw connected with the connecting column (9), and the self-locking universal wheel (8) is screw connected with the side plate (3).
6. A power tube network laying structure according to claim 1, characterized in that: The magnetic hole (2) is formed on the fixed block (4), the magnetic attraction column (7) is screw connected with the top plate (12), the top plate (12) is inserted with the fixed block (4), and the heat conduction plate (6) is screw connected with the top plate (12).
7. A power tube network laying structure according to claim 1, characterized in that: The copper aluminium composite board (1) is adhered to the heat conduction plate (6), the recess (10) is formed on the top plate (12), and the boss (11) is screw connected with the recess (10).
8. A power tube network laying structure according to claim 1, characterized in that: The heat dissipation plate (19) is clamping groove connected with the recess (10), the handle (20) is screw connected with the heat dissipation plate (19), and the net screen board (21) is screw connected with the heat dissipation plate (19).