Intelligent energy power cable
By using modular splicing flame-retardant mechanisms and reinforced anti-loosening mechanisms, the problem of not being able to replace materials individually when cables are damaged is solved, achieving multi-layer protection and efficient disassembly and replacement of cables, extending the service life of cables and reducing resource waste.
Patent Information
- Application Number
- CN202511016349.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-23
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2045-07-23
AI Technical Summary
Existing smart energy power cables cannot be disassembled and replaced individually when damaged, resulting in the replacement of the entire cable, which reduces the cable's lifespan and causes material waste.
The system employs a modular splicing flame-retardant mechanism, a reinforcement and anti-loosening mechanism, and an anti-deviation and heat dissipation mechanism. Through the combination of limiting slots, positioning frames, glued glass ribbons, calcined mica tape, and low-smoke refractory layers, it achieves modular splicing of materials and enhances stability. Furthermore, it improves the cable's wear resistance, corrosion resistance, and heat dissipation performance through anti-corrosion layers, buffer pads, and heat-conducting rods.
It achieves flame retardancy, wear resistance, corrosion resistance and heat dissipation of the cable, while allowing for individual replacement of damaged parts, extending the cable's service life and reducing resource waste.
Smart Images

Figure CN120748839B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of power cable technology, specifically to a smart energy power cable. Background Technology
[0002] Smart energy utilizes advanced information technologies, such as the Internet of Things, big data, and artificial intelligence, to manage and control energy sources such as electricity, water, and gas in a unified and intelligent manner. This can save energy, reduce emissions, and make electricity use safer and more reliable. A smart energy power cable disclosed in the prior art, with application number CN202122973535.5, has an internal buffer layer that can cushion the impact of heavy objects without damaging the cable core.
[0003] However, the internal materials of existing cables are all integrally formed. When damage occurs, the materials cannot be disassembled and replaced individually. Instead, the entire cable needs to be modified before it can be put back into use, which reduces the service life of the cable and wastes materials. Therefore, in order to avoid the above-mentioned technical problems, it is indeed necessary to provide a smart energy power cable to overcome the defects in the existing technology. Summary of the Invention
[0004] This invention provides a smart energy power cable that can effectively solve the problem mentioned in the background art, where all cables are integrally formed and cannot be disassembled or replaced individually when damaged, but require modification of the entire cable before it can be put back into use, thus reducing the cable's service life.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a smart energy power cable, comprising four conductors, each of the four conductors being sleeved with an insulating sleeve, and a modular splicing flame-retardant mechanism being provided on the outside of the insulating sleeve, the modular splicing flame-retardant mechanism including a limiting slot;
[0006] Each of the four insulating sleeves has a limit slot equally spaced on its outer side. A positioning frame is symmetrically sleeved on the outer side of the limit slot, and an annular partition is installed on the outer side of each positioning frame. One of the annular partitions has a positioning hole symmetrically opened at one end, and an alignment rod is symmetrically engaged at one end of the other annular partition.
[0007] Both of the positioning card frames are equipped with annular partitions on their outer sides. The outer side of the insulating sleeve is wrapped with adhesive glass ribbon at the positions corresponding to the two sides of the annular partitions. Calcined mica ribbon is wrapped around the outer side of the adhesive glass ribbon. Flame-retardant rock wool is filled between the adhesive glass ribbon and the calcined mica ribbon at equal intervals. Anti-slip textures are provided on the outer side of the flame-retardant rock wool and the inner wall of the calcined mica ribbon.
[0008] According to the above technical solution, one end of the alignment rod is embedded inside the positioning hole, the inner wall of the glued glass ribbon is attached to the outer side of the positioning card frame, and the inner wall of the glued glass ribbon is coated with heat-resistant adhesive.
[0009] According to the above technical solution, splicing inserts are equidistantly engaged at both ends of the annular partition, and anti-deviation grooves are provided at both ends of the flame-retardant rock wool.
[0010] The calcined mica strip is fitted with a low-smoke refractory layer on its outer side, and Velcro is installed on the outer side of one end and the inner wall of the other end of the low-smoke refractory layer.
[0011] According to the above technical solution, one end of the splicing plate is embedded inside the anti-deviation groove, and the low-smoke refractory layer is filled with halogen-free polyethylene.
[0012] According to the above technical solution, a reinforcement and anti-loosening mechanism is provided on the outside of the annular partition, and the reinforcement and anti-loosening mechanism includes an arc-shaped wire mesh;
[0013] The low-smoke fire-resistant layer is symmetrically fitted with an arc-shaped wire mesh on the outside, and the arc-shaped wire mesh is symmetrically fitted with an anti-corrosion layer on the outside.
[0014] Both of the annular partitions have mounting grooves on their outer sides, and positioning cylinders are symmetrically engaged inside the mounting grooves. Thermally conductive rubber blocks are filled inside the mounting grooves at the positions corresponding to the two sides of the positioning cylinders.
[0015] The two opposite annular partitions are symmetrically fitted with positioning clamping rings on their outer sides. The two positioning clamping rings are symmetrically connected with connecting pins by threads. The inner walls of the positioning clamping rings are symmetrically fitted with arc-shaped protrusions, and a limit groove is opened on the outer side of the anti-corrosion layer at the position corresponding to the outer side of the arc-shaped protrusion.
[0016] A buffer cotton pad is provided on the outer side of the anti-corrosion layer at the position corresponding to the positioning clamping ring. A wear-resistant outer layer is sleeved on both the outer side of the buffer cotton pad and the outer side of the positioning clamping ring. A marking ring is fixedly sleeved on the outer side of the wear-resistant outer layer at the position corresponding to the outer side of the positioning clamping ring.
[0017] According to the above technical solution, the anti-corrosion layer is filled with polyvinyl chloride, and one end of the arc-shaped wire mesh and one end of the anti-corrosion layer are attached to one end of the annular partition.
[0018] According to the above technical solution, the outer side of the connecting pin is connected to the inner wall of the positioning cylinder by a thread, the connecting pin is made of a heat-conducting material, and the bottom end of the arc-shaped convex ring is embedded in the limiting groove.
[0019] According to the above technical solution, the wear-resistant outer layer is made of neoprene rubber, the thickness of the buffer cotton pad is equal to the thickness of the positioning clamping ring, and the arc-shaped wire mesh, anti-corrosion layer and positioning clamping ring are distributed in an alternating manner.
[0020] According to the above technical solution, an anti-deviation and heat dissipation mechanism is provided between the four insulating sleeves, and the anti-deviation and heat dissipation mechanism includes a hollow tube;
[0021] A hollow tube is provided between the four insulating sleeves. Elastic support plates are equidistantly snapped onto the outer side of the hollow tube, and a concave limiting block is snapped onto the inner wall of the positioning frame at the position corresponding to the outer side of the elastic support plate. Elastic limiting plates are snapped onto both ends of the elastic support plate.
[0022] The hollow tube is fitted with cross-shaped support plates at equal intervals inside, and the inner wall of the cross-shaped support plates is fitted with reinforcing ribs. Heat-conducting rods are fitted with heat-conducting silicone pads at equal intervals on the outer side of the hollow tube.
[0023] According to the above technical solution, one end of the elastic support plate is embedded inside the concave limiting block, the inner wall of the elastic limiting plate is in contact with the outer side of the insulating sleeve, and the thermally conductive silicone pads at both ends of the heat-conducting rod are in contact with the outer side and inner wall of the hollow tube, respectively.
[0024] Compared with the prior art, the beneficial effects of the present invention are: the present invention has a scientific and reasonable structure and is safe and convenient to use.
[0025] 1. A modular splicing flame-retardant mechanism is set up. Through the cooperation of limiting slots, alignment rods and positioning holes, the positioning card frame and the annular partition can be easily aligned and spliced on the outside of the insulation sleeve and conductor, which improves the convenience of splicing. Then, through the cooperation of glued glass ribbon and calcined mica tape, the positioning card frame and insulation sleeve are further wound, which improves stability. At the same time, the flame-retardant rock wool is limited to the outside of the cable, forming a multi-layer structure, which improves the flame-retardant effect of the cable and reduces the spread of flames. Then, in combination with the low smoke refractory layer, the fire resistance effect is further improved, the smoke generated during combustion is reduced, and the environmental protection performance is increased.
[0026] The combination of anti-deviation grooves, splicing plates, and anti-slip textures enhances the stability of flame-retardant rock wool, prevents deviation, and ensures the flame-retardant effect. The use of Velcro makes it easy to splice and fix the low-smoke fire-resistant layer, which facilitates subsequent disassembly. It is convenient to remove the materials one by one for individual replacement without replacing the entire cable, thus improving service life and reducing resource waste.
[0027] 2. A reinforcement and anti-loosening mechanism is installed. Through the cooperation of the positioning cylinder, connecting pin, and positioning clamping ring, the arc-shaped wire mesh and anti-corrosion layer are easily clamped on the outside of the low-smoke fire-resistant layer. This forces the arc-shaped wire mesh to reinforce the materials spliced inside the cable, increasing stability and preventing loosening. In addition, the cooperation of the arc-shaped convex ring and the limiting groove further improves the clamping and limiting effect, preventing loosening. Then, the cooperation between the anti-corrosion layer and the wear-resistant outer layer improves the cable's corrosion and wear resistance. Furthermore, the buffer cotton pad between the anti-corrosion layer and the wear-resistant outer layer reduces the impact force when the cable is hit, reducing the internal stress and preventing damage. In addition, the cooperation of the positioning cylinder, connecting pin, and positioning clamping ring facilitates the release of the limiting mechanism during disassembly, improving disassembly efficiency.
[0028] 3. An anti-deviation and heat dissipation mechanism is set up. The concave limiting block ensures the stability of the elastic support plate. The elastic limiting plate limits the insulation sleeve and conductor, fixing their positions and preventing deviation. At the same time, the cross support plate and reinforcing ribs inside the hollow tube facilitate the cable's rebound after bending, ensuring the cable's elasticity. In addition, heat-conducting rods and heat-conducting silicone pads are installed on the hollow tube to transfer and disperse heat, preventing heat from concentrating and thus reducing the internal temperature of the cable.
[0029] In summary, by combining modular splicing flame-retardant mechanisms and reinforcement and anti-loosening mechanisms, multiple materials are modularly spliced together on the outside of the conductor, ensuring the cable's low smoke and flame-retardant effects, while also increasing its wear and corrosion resistance. When damage occurs in parts of the materials or conductors, they can be removed and replaced without requiring a complete replacement, thus increasing the cable's service life. Attached Figure Description
[0030] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used together with the embodiments of the invention to explain the invention and do not constitute a limitation thereof.
[0031] In the attached diagram:
[0032] Figure 1 This is a schematic diagram of the structure of the present invention;
[0033] Figure 2 This is a schematic diagram of the modular splicing flame-retardant mechanism of the present invention;
[0034] Figure 3 This is a schematic diagram of the installation structure of the splicing insert plate of the present invention;
[0035] Figure 4 This is the present invention. Figure 3 Schematic diagram of the structure of region A in the middle;
[0036] Figure 5 This is a schematic diagram of the installation structure of the Velcro of the present invention;
[0037] Figure 6 This is a schematic diagram of the structure of the reinforcement and anti-loosening mechanism of the present invention;
[0038] Figure 7 This is the present invention. Figure 6 Schematic diagram of the structure of region B in the middle;
[0039] Figure 8 This is a schematic diagram of the installation structure of the positioning card frame of the present invention;
[0040] Figure 9 This is a schematic diagram of the anti-deviation and heat dissipation mechanism of the present invention.
[0041] Labels in the diagram: 1. Conductor; 2. Insulating sleeve;
[0042] 3. Modular splicing flame-retardant mechanism; 301. Limiting slot; 302. Positioning frame; 303. Positioning insertion hole; 304. Alignment rod; 305. Annular partition; 306. Glued fiberglass tape; 307. Calcined mica tape; 308. Flame-retardant rock wool; 309. Anti-slip texture; 310. Anti-deviation groove; 311. Splicing insert plate; 312. Low smoke refractory layer; 313. Velcro;
[0043] 4. Reinforced anti-loosening mechanism; 401. Arc-shaped wire mesh; 402. Anti-corrosion layer; 403. Mounting groove; 404. Positioning cylinder; 405. Thermally conductive rubber block; 406. Positioning clamping ring; 407. Connecting pin; 408. Arc-shaped convex ring; 409. Limiting groove; 410. Buffer cotton pad; 411. Wear-resistant outer layer; 412. Marking ring sleeve;
[0044] 5. Anti-deviation and heat dissipation mechanism; 501. Hollow tube; 502. Elastic support plate; 503. Concave limiting block; 504. Elastic limiting plate; 505. Cross support plate; 506. Reinforcing rib; 507. Heat-conducting rod; 508. Heat-conducting silicone pad. Detailed Implementation
[0045] The preferred embodiments of the present invention will be described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are for illustration and explanation only and are not intended to limit the present invention.
[0046] Example: Figure 1-9 As shown, the present invention provides a technical solution, a smart energy power cable, including four conductors 1, each of the four conductors 1 is sleeved with an insulating sleeve 2, and a modular splicing flame-retardant mechanism 3 is provided on the outside of the insulating sleeve 2, the modular splicing flame-retardant mechanism 3 including a limiting slot 301.
[0047] Four insulating sleeves 2 are provided with equidistant limit slots 301 on their outer sides. Positioning frames 302 are symmetrically sleeved on the outer side of the limit slots 301. Annular partitions 305 are installed on the outer side of each positioning frame 302. A positioning hole 303 is symmetrically opened at one end of one annular partition 305, and an alignment rod 304 is symmetrically clamped at one end of the other annular partition 305.
[0048] Both positioning frames 302 have annular partitions 305 installed on their outer sides. The outer side of the insulating sleeve 2 is wrapped with adhesive glass ribbon 306 on both sides of the annular partitions 305. Calcined mica ribbon 307 is wrapped around the outer side of the adhesive glass ribbon 306. Flame-retardant rock wool 308 is filled between the adhesive glass ribbon 306 and the calcined mica ribbon 307 at equal intervals. Anti-slip textures 309 are opened on the outer side of the flame-retardant rock wool 308 and the inner wall of the calcined mica ribbon 307. In order to ensure the stability of the splicing, one end of the alignment rod 304 is embedded in the positioning hole 303. The inner wall of the adhesive glass ribbon 306 is in contact with the outer side of the positioning frame 302. The inner wall of the adhesive glass ribbon 306 is coated with heat-resistant adhesive.
[0049] Both ends of the annular partition 305 are equidistantly connected with splicing inserts 311, and both ends of the flame-retardant rock wool 308 are provided with anti-deviation grooves 310.
[0050] The calcined mica strip 307 is fitted with a low-smoke refractory layer 312 on the outside. The outer side of one end of the low-smoke refractory layer 312 and the inner wall of the other end are both fitted with Velcro 313. In order to prevent the flame-retardant rock wool 308 from shifting, one end of the splicing plate 311 is embedded in the anti-deviation groove 310. The low-smoke refractory layer 312 is filled with halogen-free polyethylene.
[0051] A reinforcing and anti-loosening mechanism 4 is provided on the outside of the annular partition 305. The reinforcing and anti-loosening mechanism 4 includes an arc-shaped wire mesh 401.
[0052] A curved wire mesh 401 is symmetrically sleeved on the outside of the low smoke refractory layer 312, and an anti-corrosion layer 402 is symmetrically sleeved on the outside of the curved wire mesh 401. In order to improve the anti-corrosion effect, the anti-corrosion layer 402 is filled with polyvinyl chloride. One end of the curved wire mesh 401 and one end of the anti-corrosion layer 402 are attached to one end of the annular partition 305.
[0053] Both annular partitions 305 have mounting grooves 403 on their outer sides, and positioning cylinders 404 are symmetrically engaged inside the mounting grooves 403. Thermally conductive rubber blocks 405 are filled inside the mounting grooves 403 at the positions corresponding to the two sides of the positioning cylinders 404.
[0054] Two opposing annular partitions 305 are symmetrically fitted with positioning clamping rings 406 on their outer sides. The two positioning clamping rings 406 are symmetrically connected with connecting pins 407 by threads. The inner walls of the positioning clamping rings 406 are symmetrically fitted with arc-shaped protruding rings 408. A limiting groove 409 is opened on the outer side of the anti-corrosion layer 402 corresponding to the outer side of the arc-shaped protruding ring 408. In order to facilitate the limiting of the anti-corrosion layer 402, the outer side of the connecting pin 407 is connected to the inner wall of the positioning cylinder 404 by threads. The connecting pin 407 is made of heat-conducting material. The bottom end of the arc-shaped protruding ring 408 is embedded in the limiting groove 409.
[0055] A cushioning cotton pad 410 is provided on the outer side of the anti-corrosion layer 402 at the position corresponding to the positioning clamping ring 406. A wear-resistant outer layer 411 is sleeved on the outer side of both the cushioning cotton pad 410 and the positioning clamping ring 406. A marking ring sleeve 412 is fixedly sleeved on the outer side of the wear-resistant outer layer 411 at the position corresponding to the outer side of the positioning clamping ring 406. In order to improve the wear resistance and cushioning effect, the wear-resistant outer layer 411 is made of neoprene rubber. The thickness of the cushioning cotton pad 410 is equal to the thickness of the positioning clamping ring 406. The arc-shaped wire mesh 401, the anti-corrosion layer 402 and the positioning clamping ring 406 are distributed in an alternating manner.
[0056] An anti-deviation and heat dissipation mechanism 5 is provided between the four insulating sleeves 2. The anti-deviation and heat dissipation mechanism 5 includes a hollow tube 501.
[0057] A hollow tube 501 is provided between the four insulating sleeves 2. Elastic support plates 502 are equidistantly clamped to the outside of the hollow tube 501. A concave limiting block 503 is clamped to the inner wall of the positioning frame 302 at the position corresponding to the outer side of the elastic support plate 502. Elastic limiting plates 504 are clamped to both ends of the elastic support plate 502.
[0058] Inside the hollow tube 501, cross support plates 505 are equidistantly clamped together. Reinforcing ribs 506 are clamped together on the inner wall of the cross support plates 505. Heat-conducting rods 507 are equidistantly clamped together on the outer side of the hollow tube 501, and heat-conducting silicone pads 508 are clamped together at both ends of the heat-conducting rods 507. In order to limit the conductor 1, one end of the elastic support plate 502 is embedded in the concave limiting block 503. The inner wall of the elastic limiting plate 504 is in contact with the outer side of the insulating sleeve 2. The heat-conducting silicone pads 508 at both ends of the heat-conducting rods 507 are in contact with the outer side and inner wall of the hollow tube 501, respectively.
[0059] The working principle and usage process of this invention are as follows: First, the positioning card frame 302 and the annular partition 305 are conveniently sleeved on the outside of the insulating sleeve 2 through the limiting card slot 301, and the alignment rod 304 is embedded in the positioning insertion hole 303, so that the two positioning card frames 302 and the two annular partitions 305 are aligned with each other to prevent displacement, thereby limiting the four insulating sleeves 2 to the inside of the positioning card frame 302. Then, the glued glass ribbon 306 is used for winding and fixing, which improves the stability of the positioning card frame 302 and the annular partition 305 on the outside of the insulating sleeve 2.
[0060] Next, through the cooperation of the anti-deviation groove 310 and the splicing plate 311, it is convenient to fill the outside of the glued glass ribbon 306 with flame-retardant rock wool 308, and then perform secondary winding through the calcined mica tape 307. At the same time, through the cooperation of the anti-slip texture 309, the stability of the flame-retardant rock wool 308 is further improved, so that the glued glass ribbon 306, flame-retardant rock wool 308 and calcined mica tape 307 are layered and spliced together, which improves the flame-retardant effect of the cable. Then, the low smoke fire-resistant layer 312 is wrapped and fixed to the outside of the calcined mica tape 307 through the Velcro 313, which further improves the fireproof effect and reduces environmental pollution.
[0061] Next, using the cooperation of positioning cylinder 404 and connecting pin 407, positioning clamping ring 406 is fixed on the outside of annular partition 305, and through the cooperation of arc-shaped convex ring 408 and limiting groove 409, arc-shaped wire mesh 401 and anti-corrosion layer 402 are clamped, so that arc-shaped wire mesh 401 and anti-corrosion layer 402 are symmetrically spliced on the outside of low smoke fire-resistant layer 312. Subsequently, it cooperates with wear-resistant outer layer 411 to improve the stability and corrosion and wear resistance of the cable, and improve the service life of the cable. In addition, the buffer cotton pad 410 is used to reduce the impact force when the cable is hit, reduce the internal force, and prevent damage.
[0062] Next, the heat can be transferred through the heat-conducting rubber block 405 inside the mounting groove 403, allowing the heat inside the cable to diffuse to the outside and pass through the positioning clamping ring 406 and the wear-resistant outer layer 411 to the outside, thereby reducing the temperature inside the cable.
[0063] Next, when the internal materials of the cable are damaged, the outermost wear-resistant outer layer 411 is peeled off according to the position of the marked ring 412, exposing the positioning clamping ring 406. Then, the connecting pin 407 can be rotated to disassemble the positioning clamping ring 406, releasing the restriction on the arc-shaped wire mesh 401 and the anti-corrosion layer 402, making it easy to disassemble and assemble. Then, the low-smoke refractory layer 312, calcined mica tape 307 and glued glass tape 306 are removed layer by layer to replace the damaged parts, while the other parts of the cable can still be used, increasing the service life of the cable. Furthermore, the damaged conductor 1 can be divided and replaced, further improving convenience and reducing material waste.
[0064] Finally, the concave limiting block 503 ensures the stability of the elastic support plate 502. The elastic limiting plate 504 then limits the insulation sleeve 2 and conductor 1, fixing their stability and preventing displacement. In addition, the cross support plate 505 and reinforcing ribs 506 inside the hollow tube 501 improve the cable's rebound effect after bending. Furthermore, the heat-conducting rod 507 and heat-conducting silicone pad 508 installed on the hollow tube 501 transfer and disperse heat, preventing heat from concentrating and thus reducing the internal temperature of the cable.
[0065] Finally, it should be noted that the above descriptions are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A smart energy power cable comprising four conductors (1), characterized in that: Four said conductor (1) outside each set with an insulating sleeve (2), the insulating sleeve (2) outside is provided with modular splicing flame retardant mechanism (3), the modular splicing flame retardant mechanism (3) includes limiting card slot (301); Four said insulating sleeve (2) outside each equidistantly provided with limiting card slot (301), the limiting card slot (301) outside symmetrically set with positioning card frame (302), and the positioning card frame (302) outside each is installed with annular partition (305), one said annular partition (305) one end symmetrically provided with positioning insertion hole (303), and the other annular partition (305) one end symmetrically connected with alignment insertion rod (304); The insulating sleeve (2) outside corresponding annular partition (305) both sides of the position are wound with glass silk tape (306), the glass silk tape (306) outside is wound with calcined mica tape (307), and the glass silk tape (306) and calcined mica tape (307) are filled with flame-retardant rock wool (308) at equal intervals, the flame-retardant rock wool (308) outside and the inner wall of calcined mica tape (307) are provided with anti-skid lines (309); The annular partition (305) outside is provided with reinforcing anti-loose mechanism (4), the reinforcing anti-loose mechanism (4) includes arc iron wire mesh (401); The calcined mica tape (307) outside is sleeved with low smoke fire-resistant layer (312), the low smoke fire-resistant layer (312) outside is symmetrically sleeved with arc iron wire mesh (401), the arc iron wire mesh (401) outside is symmetrically sleeved with corrosion-resistant layer (402); Two said annular partition (305) outside each is provided with mounting groove (403), and the mounting groove (403) is symmetrically connected with positioning cylinder (404) inside, the mounting groove (403) inside corresponding positioning cylinder (404) both sides of the position are filled with heat-conducting rubber block (405); Opposite two said annular partition (305) outside each is symmetrically sleeved with positioning clamping ring (406), two said positioning clamping ring (406) inside are symmetrically connected with connecting bolt (407) through threads, the positioning clamping ring (406) inner wall is symmetrically connected with arc convex ring (408), and the corrosion-resistant layer (402) outside corresponding arc convex ring (408) outside position is provided with limiting slot (409); The corrosion-resistant layer (402) outside corresponding positioning clamping ring (406) one side position is provided with buffer cotton pad (410), the buffer cotton pad (410) outside and the positioning clamping ring (406) outside each is sleeved with wear-resistant outer layer (411), the wear-resistant outer layer (411) outside corresponding positioning clamping ring (406) outside position is fixedly sleeved with mark ring sleeve (412).
2. The intelligent energy power cable of claim 1, wherein: The alignment insertion rod (304) one end is embedded in the positioning insertion hole (303) inside, the glass silk tape (306) inner wall is attached to the outer side of the positioning card frame (302), the glass silk tape (306) inner wall is smeared with heat-resistant adhesive.
3. The intelligent energy power cable of claim 1, wherein: The ring-shaped partition plate (305) is clamped with spliced plug-in plates (311) at equal distances at both ends, and the flame-retardant rock wool (308) is provided with anti-deviation grooves (310) at both ends; The low-smoke fire-resistant layer (312) is provided with magic pastes (313) on the outer side of one end and the inner wall of the other end.
4. The intelligent energy power cable of claim 3, wherein: The spliced plug-in plate (311) is embedded into the anti-deviation groove (310), and the low-smoke fire-resistant layer (312) is filled with halogen-free material polyethylene.
5. The intelligent energy power cable of claim 3, wherein: The corrosion-resistant layer (402) is filled with polyvinyl chloride, and one end of the arc-shaped iron wire mesh (401) and one end of the corrosion-resistant layer (402) are attached to one end of the ring-shaped partition plate (305).
6. The intelligent energy power cable of claim 5, wherein: The outer side of the connecting bolt (407) is connected with the inner wall of the positioning cylinder (404) through threads, the connecting bolt (407) is made of heat-conducting material, and the bottom end of the arc-shaped convex ring (408) is embedded into the limiting groove (409).
7. The intelligent energy power cable of claim 5, wherein: The wear-resistant outer layer (411) is made of neoprene, the thickness of the buffer cotton pad (410) is equal to the thickness of the positioning clamping ring (406), and the arc-shaped iron wire mesh (401), the corrosion-resistant layer (402) and the positioning clamping ring (406) are distributed in each other.
8. The intelligent energy power cable of claim 5, wherein: Four said insulation sleeve (2) between the setting of anti-deviation and heat dissipation mechanism (5), said anti-deviation and heat dissipation mechanism (5) includes a hollow tube (501); Four said insulation sleeve (2) between the setting of a hollow tube (501), the outer side of the hollow tube (501) is clamped with an elastic support plate (502), and the inner wall of the positioning clamping frame (302) is clamped with a concave limiting block (503) corresponding to the outer side of the elastic support plate (502), the elastic support plate (502) is clamped with an elastic limiting plate (504) at both ends; The hollow tube (501) is clamped with a cross support plate (505) at equal distances, the cross support plate (505) is clamped with a reinforcing rib (506) on the inner wall, the outer side of the hollow tube (501) is clamped with a heat-conducting rod (507), and the heat-conducting rod (507) is clamped with a heat-conducting silica gel pad (508) at both ends.
9. The intelligent energy power cable of claim 8, wherein: The elastic support plate (502) is embedded into the concave limiting block (503) at one end, the inner wall of the elastic limiting plate (504) is attached to the outer side of the insulation sleeve (2), and the heat-conducting silica gel pads (508) at both ends of the heat-conducting rod (507) are attached to the outer side and the inner wall of the hollow tube (501).
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