High-temperature-resistant and high-efficiency heat-dissipation energy storage electric wire

By introducing a multi-layered composite structure into the wire, including thermally conductive and insulating materials, the problem of heat accumulation during power transmission is solved, achieving efficient heat dissipation and protection, extending the service life of the wire, and improving safety.

CN120148959BActive Publication Date: 2026-06-02JIANGSU CHANGYUAN CABLE

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
JIANGSU CHANGYUAN CABLE
Filing Date
2025-03-12
Publication Date
2026-06-02

AI Technical Summary

Technical Problem

Traditional power cables cannot dissipate heat quickly and efficiently during power transmission, resulting in low power transmission efficiency and short service life.

Method used

The wire design employs a multi-layered composite structure, including an inner sheath, wrapping, heat-conducting wire, heat-insulating sleeve, and protective mechanism. Through the combined use of heat-conducting and heat-insulating materials, it achieves rapid heat conduction and insulation, preventing high-temperature damage to the wire, and the protective mechanism prevents rodents and ants from gnawing on it.

Benefits of technology

It improves power transmission efficiency, extends the service life of wires, reduces maintenance costs, and enhances the safety and mechanical strength of wires.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention discloses a high-temperature resistant and efficient heat dissipation energy storage wire, relating to the field of power transmission technology. It includes a heat dissipation mechanism with a heat insulation mechanism on its outer wall. During use, when the wire transmits electricity for an extended period, a large amount of heat is generated inside. Firstly, by connecting the first and second heat-conducting wires to an external heat sink, the heat conducted by the first insulation, first rubber strip, second insulation, and second rubber strip is absorbed and quickly dissipated, achieving rapid and efficient heat dissipation inside the wire. Simultaneously, the guide plate allows air from outside the wire to quickly enter, further improving the heat dissipation efficiency during use. This prevents the wire from experiencing low power transmission efficiency and severe aging due to excessive temperature, extending its service life and reducing maintenance costs.
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Description

Technical Field

[0001] This invention relates to the field of power transmission technology, specifically to a high-temperature resistant and high-efficiency heat dissipation energy storage wire. Background Technology

[0002] With the vigorous promotion and application of clean energy globally, energy storage technology, as a key means to solve the problem of energy storage and supply stability, has developed rapidly. Energy storage systems are widely used in renewable energy power generation grid connection, smart grid peak shaving, electric vehicle charging, and other fields. Energy storage systems require power lines to transmit and distribute electrical energy, and the performance of the power lines directly affects the safety, stability, and lifespan of the energy storage system.

[0003] In existing technologies, power transmission is achieved by connecting electrical devices with wires during power storage. However, during long-term, high-intensity power transmission, a large amount of heat is generated inside the wires. Traditional wires cannot conduct this heat away quickly and efficiently, resulting in low power transmission efficiency and severe aging due to high temperatures, which shortens their lifespan. Summary of the Invention

[0004] The purpose of this invention is to provide a high-temperature resistant and efficient heat dissipation energy storage wire to solve the problems mentioned in the background, such as the large amount of heat generated inside the traditional wire during power transmission that is difficult to conduct away quickly and efficiently, resulting in low power transmission efficiency and short wire life.

[0005] To achieve the above objectives, the present invention provides the following technical solution: a high-temperature resistant and high-efficiency heat dissipation energy storage wire, comprising a heat dissipation mechanism, wherein a heat insulation mechanism is provided on the outer wall of the heat dissipation mechanism, and a protective mechanism is provided on the outer wall of the heat insulation mechanism.

[0006] The heat dissipation mechanism includes an inner sheath. A plurality of first insertion slots are formed on one side of the outer wall of the inner sheath. Guide plates are fixedly inserted into the inner surface of each of the plurality of first insertion slots. Two baffles are fixedly installed on the inner surface of each of the plurality of first insertion slots. A wrapping is provided on the inner surface of the inner sheath. A first shielding layer is provided on the inner surface of the wrapping. A plurality of circular grooves are formed on the outer surface of the first shielding layer. A first heat dissipation sleeve is provided on the inner surface of the first shielding layer. A plurality of second insertion slots are formed on one side of the outer wall of the first heat dissipation sleeve. A first heat-conducting wire is fixedly inserted into the inner surface of each of the plurality of second insertion slots. A second shielding layer is provided on the inner surface of the first heat dissipation sleeve. A plurality of first insulations are provided between the outer surface of the second shielding layer and the inner surface of the first heat dissipation sleeve. A set of first embedding slots is formed on the outer surface of each of the plurality of first embedding slots. A first adhesive strip is fixedly inserted into the inner surface of each set of first embedding slots.

[0007] Preferably, each of the inner walls of the first insulation is provided with a first conductor, a first filler is provided between the outer wall of the second shielding layer and the inner wall of the first heat sink, a second heat sink is provided on the inner wall of the second shielding layer, a plurality of third insertion slots are provided on one side of the outer wall of the second heat sink, a second heat-conducting wire is fixedly inserted into the inner wall of each of the plurality of third insertion slots, and three second insulations are provided on the inner wall of the second heat sink.

[0008] Preferably, each of the three outer walls of the second insulation has a set of second embedding grooves, the inner walls of the three sets of second embedding grooves are fixedly inserted with second adhesive strips, the inner walls of the three second insulations are provided with second conductors, and a second filler is provided between the second heat dissipation sleeve and the outer wall of the second insulation.

[0009] Preferably, the heat insulation mechanism includes a heat insulation sleeve, the inner wall of the heat insulation sleeve is provided with an installation sleeve, the outer wall of the installation sleeve is provided with a plurality of installation grooves, and the inner wall of each of the plurality of installation grooves is provided with a paraffin sheet.

[0010] Preferably, a fixing sleeve is fixedly installed on the inner wall of the mounting sleeve, and a plurality of placement slots are opened on one side of the outer wall of the fixing sleeve, and a storage box is fixedly inserted into the inner wall of each of the plurality of placement slots.

[0011] Preferably, a storage sleeve is fixedly installed on the inner wall of the fixed sleeve, a storage groove is provided on one side of the outer wall of the storage sleeve, and an isolation sleeve is fixedly installed on the inner wall of the storage sleeve.

[0012] Preferably, the protective mechanism includes an outer sleeve, and a plurality of first fixing grooves are provided on one side of the outer wall of the outer sleeve, and steel wires are fixedly inserted into the inner surface of the plurality of first fixing grooves.

[0013] Preferably, a protective sleeve is fixedly installed on the inner wall of the outer sheath, and a plurality of second fixing grooves are opened on the outer wall of the protective sleeve, and a first rubber block is fixedly inserted into the inner wall of each of the plurality of second fixing grooves.

[0014] Preferably, a wrapping sleeve is fixedly installed on the inner wall of the protective sleeve, and a plurality of third fixing grooves are opened on the outer wall of the wrapping sleeve, and a second rubber block is fixedly inserted into the inner wall of each of the plurality of third fixing grooves.

[0015] Preferably, the outer wall of the inner sheath is fixedly connected to the inner wall of the isolation sleeve, and the outer wall of the heat insulation sleeve is fixedly connected to the inner wall of the wrapping sleeve.

[0016] Compared with the prior art, the beneficial effects of the present invention are:

[0017] 1. In use, when an electrical wire transmits electricity for an extended period, a large amount of heat is generated inside the wire. Firstly, the heat generated by the first and second conductors is rapidly conducted through the first insulation, first adhesive strip, second insulation, and second adhesive strip. Then, by connecting the first and second heat-conducting wires to an external heat sink, the heat conducted by the first insulation, first adhesive strip, second insulation, and second adhesive strip is absorbed and quickly transported away, thus achieving rapid and efficient heat dissipation inside the wire. Simultaneously, the guide plate allows air from outside the wire to quickly enter and absorb its heat through the circular grooves before rapidly circulating out, further improving ventilation and heat dissipation. This significantly improves the heat dissipation efficiency of the wire during use, preventing problems such as low power transmission efficiency and severe aging due to excessive temperature, extending the wire's lifespan, and reducing maintenance costs.

[0018] 2. In use, when the wire is used in a high-temperature environment, the heat insulation sleeve can isolate the heat from the outside of the wire, preventing a large amount of heat from being transferred into the wire. Furthermore, the paraffin sheet absorbs the heat transferred into the wire, causing it to liquefy. Then, the aerogel placed inside the storage box effectively isolates and absorbs the transferred heat. Argon gas stored in the storage tank further insulates the transferred heat, preventing continuous transfer of external heat into the wire. Finally, the insulating sleeve effectively blocks the transfer of high-temperature heat to the cable, reducing the cable temperature and preventing aging and decreased insulation performance due to high temperatures. This structure and method protect the wire from the effects of external high temperatures during power transmission, greatly improving the efficiency of power transmission.

[0019] 3. In use, when electricity is transmitted via wires, environmental factors can cause the wires to be damaged by rodents and ants. The steel wire enhances the mechanical strength of the outer sheath, preventing easy damage from rodents and ants. Furthermore, the first rubber block, containing glass fiber and sharp substances, injures the mouths of rodents and ants, preventing further damage. The second rubber block, containing capsaicin and bittering agents, further protects the wire from continuous damage by rodents and ants, preventing short circuits and spontaneous combustion caused by rodent damage and improving the safety of the wire during use. Attached Figure Description

[0020] Figure 1This is a cross-sectional perspective view of an energy storage wire with high temperature resistance and high heat dissipation according to the present invention.

[0021] Figure 2 This is a cross-sectional plan view of an energy storage wire with high temperature resistance and high heat dissipation according to the present invention.

[0022] Figure 3 This is a plan view of the heat dissipation mechanism in a high-temperature resistant and high-efficiency heat dissipation energy storage wire of the present invention;

[0023] Figure 4 This is an exploded view of the heat dissipation structure in a high-temperature resistant and high-efficiency heat dissipation energy storage wire of the present invention;

[0024] Figure 5 This is a plan view of the heat insulation mechanism in a high-temperature resistant and high-efficiency heat dissipation energy storage wire of the present invention;

[0025] Figure 6 This is an exploded view of the heat insulation mechanism in a high-temperature resistant and high-efficiency heat dissipation energy storage wire of the present invention.

[0026] Figure 7 This is a plan view of the protective mechanism in a high-temperature resistant and high-efficiency heat dissipation energy storage wire of the present invention;

[0027] Figure 8 This is an exploded view of the protective mechanism in a high-temperature resistant and high-efficiency heat dissipation energy storage wire of the present invention.

[0028] In the diagram: 1. Heat dissipation mechanism; 11. Inner sheath; 111. First insertion slot; 112. Guide plate; 113. Baffle; 12. Wrapping; 13. First shielding layer; 131. Circular groove; 14. First heat dissipation sleeve; 141. Second insertion slot; 142. First heat-conducting wire; 15. Second shielding layer; 16. First insulation; 161. First embedding slot; 162. First adhesive strip; 163. First conductor; 17. First filler; 18. Second heat dissipation sleeve; 181. Third insertion slot; 182. Second heat-conducting wire; 19. Second insulation; 191. Second embedding slot; 192. Second rubber strip; 193. Second conductor; 194. Second filler; 2. Heat insulation mechanism; 21. Heat insulation sleeve; 22. Mounting sleeve; 221. Mounting groove; 222. Paraffin sheet; 23. Fixing sleeve; 231. Placement groove; 232. Storage box; 24. Storage sleeve; 241. Storage groove; 25. Isolation sleeve; 3. Protective mechanism; 31. Outer sheath; 311. First fixing groove; 312. Steel wire; 32. Protective sleeve; 321. Second fixing groove; 322. First rubber block; 33. Wrapping sleeve; 331. Third fixing groove; 332. Second rubber block. Detailed Implementation

[0029] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. 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 are within the scope of protection of the present invention.

[0030] Example 1, refer to Figures 1-8 As shown: The present invention provides a high-temperature resistant and high-efficiency heat dissipation energy storage wire, including a heat dissipation mechanism 1, a heat insulation mechanism 2 provided on the outer wall of the heat dissipation mechanism 1, and a protective mechanism 3 provided on the outer wall of the heat insulation mechanism 2.

[0031] The heat dissipation mechanism 1 includes an inner sheath 11. Multiple first insertion slots 111 are formed on one side of the outer wall of the inner sheath 11. Guide plates 112 are fixedly inserted into the inner surface of each of the multiple first insertion slots 111. Two baffles 113 are fixedly installed on the inner surface of each of the multiple first insertion slots 111. A wrapping 12 is provided on the inner surface of the inner sheath 11. A first shielding layer 13 is provided on the inner surface of the wrapping 12. Multiple circular grooves 131 are formed on the outer surface of the first shielding layer 13. A first heat dissipation sleeve 14 is provided on the inner surface of the first shielding layer 13. Multiple second insertion slots 141 are formed on one side of the outer wall of the first heat dissipation sleeve 14. First heat-conducting wires 142 are fixedly inserted into the inner surface of each of the multiple second insertion slots 141. A second shielding layer 15 is provided on the inner surface of the first heat dissipation sleeve 14. Multiple first insulations 16 are provided between the outer surface of the second shielding layer 15 and the inner surface of the first heat dissipation sleeve 14. A set of... The inner walls of the first embedding groove 161 and multiple sets of first embedding grooves 161 are fixedly inserted with first adhesive strips 162. The inner walls of multiple first insulators 16 are provided with first conductors 163. A first filler 17 is provided between the outer wall of the second shielding layer 15 and the inner wall of the first heat dissipation sleeve 14. A second heat dissipation sleeve 18 is provided on the inner wall of the second shielding layer 15. Multiple third insertion grooves 181 are opened on one side of the outer wall of the second heat dissipation sleeve 18. A second heat-conducting wire 182 is fixedly inserted into the inner wall of the multiple third insertion grooves 181. Three second insulators 19 are provided on the inner wall of the second heat dissipation sleeve 18. A set of second embedding grooves 191 is opened on the outer wall of each of the three sets of second embedding grooves 191. A second adhesive strip 192 is fixedly inserted into the inner wall of each of the three second insulators 19. A second conductor 193 is provided on the inner wall of each of the three second insulators 19. A second filler 194 is provided between the outer wall of the second heat dissipation sleeve 18 and the outer wall of the second insulator 19.

[0032] In this embodiment, when power transmission between devices requires the use of wires, the connection between the two devices is established by the operator using wires. Power is then transmitted through the first conductor 163 and the second conductor 193. During prolonged power transmission, a large amount of heat is generated inside the wires. At this time, the heat generated during power transmission is rapidly absorbed and conducted through the first insulation 16 and the second insulation 19. Since both the first insulation 16 and the second insulation 19 are made of polyimide, which has excellent high-temperature resistance, thermal conductivity, and insulation properties, the heat generated during power transmission is quickly absorbed and conducted away. Furthermore, since both the first adhesive strip 162 and the second adhesive strip 192 are made of polymer composite materials such as polyethylene fiber and polyethylene film, they can further conduct the heat conducted by the first insulation 16 and the second insulation 19. Subsequently, under the operation of the operator, the first heat-conducting wire 142 and the second heat-conducting wire 182 are connected to an external heat dissipation device. When the heat dissipation device is working, the temperature of the first heat-conducting wire 142 and the second heat-conducting wire 182 decreases, thereby fully absorbing the heat conducted by the first insulation 16, the first adhesive strip 162, the second insulation 19, and the second adhesive strip 192. With the continuous cooperation of the external heat dissipation device, the heat inside the wire can be continuously dissipated. Under the action of the guide plate 112, air from outside the wire can quickly enter the wire. Under the action of the baffle 113, external dust, impurities, and rainwater can be prevented from entering the wire, thus protecting it. When external air enters the wire, the heat conducted by the first insulation 16, the first rubber strip 162, the second insulation 19, and the second rubber strip 192 can be further absorbed by the circular groove 131. Then, the air is transported to the outside of the wire by the guide plate 112, thereby achieving efficient heat dissipation of the wire during power transmission. This prevents the wire from aging and being damaged due to the inability to dissipate heat generated during operation, greatly improving the efficiency of power transmission. During the process, the inner sheath 11 is made of polyethylene material, which can isolate the wire and improve the protection of the wire. The wrapping 12 is made of polyvinyl chloride material, which can significantly enhance the wire's resistance to compression, tension and torsion. When the external environment causes wear or impact to the wire, the wrapping 12 can play a buffering and protective role, extending the service life of the wire and reducing the failure rate. The first filler 17 and the second filler 194 are both made of polyurethane material, which can enhance the mechanical strength of the wire, especially the tensile strength. When the wire is stretched by external force, the filler can provide additional support and reduce the risk of the wire being damaged due to excessive stretching.

[0033] Example 2, according to Figure 1 , Figure 2 , Figure 5 as well as Figure 6 As shown, the heat insulation mechanism 2 includes a heat insulation sleeve 21. The inner wall of the heat insulation sleeve 21 is provided with an installation sleeve 22. The outer wall of the installation sleeve 22 is provided with multiple installation grooves 221. The inner wall of each of the multiple installation grooves 221 is provided with a paraffin sheet 222. A fixing sleeve 23 is fixedly installed on the inner wall of the installation sleeve 22. A multiple placement groove 231 is provided on one side of the outer wall of the fixing sleeve 23. A storage box 232 is fixedly inserted into the inner wall of each of the multiple placement grooves 231. A storage sleeve 24 is fixedly installed on the inner wall of the fixing sleeve 23. A storage groove 241 is provided on one side of the outer wall of the storage sleeve 24. An isolation sleeve 25 is fixedly installed on the inner wall of the storage sleeve 24.

[0034] In this embodiment, when the wire is used in a high-temperature environment, the heat insulation sleeve 21, made of fiberglass, provides excellent high-temperature resistance and insulation, resisting heat radiation and conduction in high-temperature environments, protecting the wire from damage. It also possesses a certain mechanical strength, capable of withstanding external forces. When external heat is conducted into the wire, the paraffin sheet 222 quickly absorbs the heat, blocking the heat transfer. Furthermore, the aerogel placed inside the storage box 232 effectively absorbs the heat. The insulation and high-temperature resistance properties can absorb and block heat, thus preventing the rapid conduction of heat from the outside of the wire to the inside. Then, under the action of argon gas stored in the storage tank 241, due to the low thermal conductivity and excellent heat insulation performance of argon gas, the heat during the conduction process can be further blocked to prevent the heat from continuously being conducted into the inside of the wire. Since the insulating sleeve 25 is made of silicone rubber, it has good high-temperature resistance and flexibility, thus providing effective heat insulation protection for the wire, thereby preventing the rapid conduction of external heat into the inside of the wire during power transmission, and thus protecting the wire.

[0035] Example 3, according to Figure 1 , Figure 2 , Figure 7 as well as Figure 8As shown, the protective mechanism 3 includes an outer sheath 31. Multiple first fixing grooves 311 are formed on one side of the outer wall of the outer sheath 31. Steel wires 312 are fixedly inserted into the inner surface of each of the multiple first fixing grooves 311. A protective sleeve 32 is fixedly installed on the inner surface of the outer sheath 31. Multiple second fixing grooves 321 are formed on the outer surface of the protective sleeve 32. First rubber blocks 322 are fixedly inserted into the inner surface of each of the multiple second fixing grooves 321. A wrapping sleeve 33 is fixedly installed on the inner surface of the protective sleeve 32. Multiple third fixing grooves 331 are formed on the outer surface of the wrapping sleeve 33. Second rubber blocks 332 are fixedly inserted into the inner surface of each of the multiple third fixing grooves 331. The outer surface of the inner sheath 11 is fixedly connected to the inner surface of the isolation sleeve 25, and the outer surface of the heat insulation sleeve 21 is fixedly connected to the inner surface of the wrapping sleeve 33.

[0036] In this embodiment, during power transmission, the wire may be damaged by rodents and ants due to prolonged human supervision and maintenance. To address this, a steel wire 312 inside the outer sheath 31 significantly improves its mechanical strength, preventing easy damage from rodents and ants. When rodents and ants reach the protective sleeve 32, the first rubber block 322 inside the first fixing groove 312, containing glass fiber and sharp materials, can scratch the rodents' mouths, preventing further damage. The rodents and ants further gnaw at the wire. When they reach the sheath 33, the second rubber block 332 inside the third fixing groove 331 stimulates the rodents and ants, preventing them from gnawing and damaging the wire. This protects the wire and prevents it from continuing to gnaw and damage it, thus preventing short circuits and spontaneous combustion during power transmission. This greatly improves the safety of the wire during use and reduces the cost of wire maintenance.

[0037] The working principle of the entire mechanism is as follows: When power transmission to equipment is required using wires, the wires are first connected between the equipment under the operation of the operator. Then, power can be transmitted through the action of the first conductor 163 and the second conductor 193. During long-term power transmission, a large amount of heat will be generated inside the wires. At this time, through the action of the first insulation 16 and the second insulation 19, since both the first insulation 16 and the second insulation 19 are made of polyimide, which has good high temperature resistance, thermal conductivity and insulation properties, the heat generated by the first conductor 163 and the second conductor 193 during power transmission will be quickly absorbed and conducted by the first insulation 16 and the second insulation 19. Furthermore, due to the action of the first adhesive strip 162... Both the first insulation 16 and the second adhesive strip 192 are made of polymer composite materials such as polyethylene fiber and polyethylene film, which can further conduct the heat conducted by the first insulation 16 and the second insulation 19. Subsequently, under the operation of the operator, the first heat-conducting wire 142 and the second heat-conducting wire 182 are connected to an external heat dissipation device. When the heat dissipation device is working, the temperature of the first heat-conducting wire 142 and the second heat-conducting wire 182 decreases, thereby fully absorbing the heat conducted by the first insulation 16, the first adhesive strip 162, the second insulation 19 and the second adhesive strip 192. With the continuous cooperation of the external heat dissipation device, the heat inside the wire can be continuously dissipated. At the same time, under the action of the guide plate 112, the air outside the wire can be allowed to pass through. The baffle 113 quickly enters the wire's interior, preventing external dust, impurities, and rainwater from entering, thus protecting the wire. When external air enters the wire, the circular groove 131 further absorbs the heat conducted by the first insulation 16, first rubber strip 162, second insulation 19, and second rubber strip 192. This heat is then transported to the outside of the wire by the guide plate 112, achieving efficient heat dissipation during power transmission. This prevents the wire from aging and being damaged due to the inability to dissipate heat during operation, greatly improving the power transmission efficiency. During use, the inner sheath 11 is made of polyethylene material, which provides insulation for the wire. The insulation sleeve 21, made of polyvinyl chloride, enhances the protection of the wire. It significantly strengthens the wire's resistance to pressure, tension, and torsion. When the wire is subjected to wear or impact from the external environment, the insulation sleeve 12 acts as a buffer and protector, extending the wire's lifespan and reducing the failure rate. The first filler 17 and the second filler 194 are both made of polyurethane. These fillers enhance the wire's mechanical strength, especially its tensile strength. When the wire is subjected to external tension, the fillers provide additional support, reducing the risk of damage due to excessive stretching. When the wire is used in high-temperature environments, the insulation sleeve 21, made of fiberglass, provides additional protection.It possesses excellent high-temperature resistance and insulation properties, capable of resisting heat radiation and heat conduction in high-temperature environments, protecting the wire from damage. It also possesses a certain mechanical strength, able to withstand certain external forces. When external heat is conducted into the wire, the paraffin sheet 222 quickly absorbs the heat, blocking the conduction. Subsequently, the aerogel placed inside the storage box 232, with its excellent heat insulation and high-temperature resistance, absorbs and blocks heat, preventing rapid conduction of external heat into the wire. Then, the argon gas stored in the storage tank 241, with its low thermal conductivity and excellent heat insulation properties, further blocks heat conduction, preventing continuous heat transfer into the wire. Since the insulating sleeve 25 is made of silicone rubber, possessing good high-temperature resistance and flexibility, it provides effective heat insulation protection for the wire. During power transmission, the wire experiences prolonged exposure to heat. Because electrical wires are susceptible to damage from rodents and ants during human care and maintenance, the installation of a steel wire 312 inside the outer sheath 31 significantly enhances its mechanical strength, preventing easy erosion by rodents and ants. When rodents and ants reach the protective sleeve 32, the first rubber block 322 inside the first fixing groove 311, containing glass fiber and sharp substances, scratches their mouths, preventing further erosion. Subsequently, when rodents and ants reach the outer sheath 33, the second rubber block 332 inside the third fixing groove 331, containing capsaicin and bittering agents, stimulates them, preventing further erosion. This protects the wire from continued damage by rodents and ants, preventing short circuits and spontaneous combustion during power transmission. This greatly improves the safety of the wire during use and reduces maintenance costs.

[0038] 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 high-temperature resistant and high-efficiency heat dissipation energy storage wire, characterized in that: It includes a heat dissipation mechanism (1), the outer wall of the heat dissipation mechanism (1) is provided with a heat insulation mechanism (2), and the outer wall of the heat insulation mechanism (2) is provided with a protective mechanism (3). The heat dissipation mechanism (1) includes an inner sleeve (11). A plurality of first insertion slots (111) are provided on one side of the outer wall of the inner sleeve (11). Guide plates (112) are fixedly inserted into the inner surface of each of the plurality of first insertion slots (111). Two baffles (113) are fixedly installed on the inner surface of each of the plurality of first insertion slots (111). A wrapping (12) is provided on the inner surface of the inner sleeve (11). A first shielding layer (13) is provided on the inner surface of the wrapping (12). A plurality of circular grooves (131) are provided on the outer surface of the first shielding layer (13). A first heat dissipation... The heat-dissipating sleeve (14) has a plurality of second insertion slots (141) on one side of its outer wall. The inner surface of each of the plurality of second insertion slots (141) is fixedly inserted with a first heat-conducting wire (142). The inner surface of the first heat-dissipating sleeve (14) is provided with a second shielding layer (15). The outer surface of the second shielding layer (15) and the inner surface of the first heat-dissipating sleeve (14) are provided with a plurality of first insulations (16). The outer surface of each of the plurality of first insulations (16) is provided with a set of first embedding slots (161). The inner surface of each of the plurality of first embedding slots (161) is fixedly inserted with a first adhesive strip (162). The inner surface of each of the first insulation (16) is provided with a first conductor (163), the outer surface of the second shielding layer (15) and the inner surface of the first heat dissipation sleeve (14) are provided with a first filler (17), the inner surface of the second shielding layer (15) is provided with a second heat dissipation sleeve (18), the outer wall of the second heat dissipation sleeve (18) is provided with a plurality of third insertion slots (181), the inner surface of each of the plurality of third insertion slots (181) is fixedly inserted with a second heat-conducting wire (182), and the inner surface of the second heat dissipation sleeve (18) is provided with three second insulations (19). Each of the three second insulators (19) has a set of second embedding grooves (191) on its outer wall. Each of the three sets of second embedding grooves (191) has a second adhesive strip (192) fixedly inserted into its inner wall. Each of the three second insulators (19) has a second conductor (193) on its inner wall. A second filler (194) is provided between the second heat sink (18) and the outer wall of the second insulator (19). The heat insulation mechanism (2) includes a heat insulation sleeve (21), the inner wall of the heat insulation sleeve (21) is provided with an installation sleeve (22), the outer wall of the installation sleeve (22) is provided with a plurality of installation grooves (221), and the inner wall of the plurality of installation grooves (221) is provided with paraffin sheets (222). The inner wall of the mounting sleeve (22) is fixedly fitted with a fixing sleeve (23), and a plurality of placement slots (231) are provided on one side of the outer wall of the fixing sleeve (23). Storage boxes (232) are fixedly inserted into the inner wall of the plurality of placement slots (231). A storage sleeve (24) is fixedly installed on the inner wall of the fixed sleeve (23), a storage groove (241) is opened on one side of the outer wall of the storage sleeve (24), and an isolation sleeve (25) is fixedly installed on the inner wall of the storage sleeve (24).

2. The high-temperature resistant and high-efficiency heat dissipation energy storage wire according to claim 1, characterized in that: The protective mechanism (3) includes an outer sleeve (31), and a plurality of first fixing grooves (311) are provided on one side of the outer wall of the outer sleeve (31), and steel wires (312) are fixedly inserted into the inner surface of the plurality of first fixing grooves (311).

3. The high-temperature resistant and high-efficiency heat dissipation energy storage wire according to claim 2, characterized in that: The inner wall of the outer sheath (31) is fixedly fitted with a protective sleeve (32), and the outer wall of the protective sleeve (32) is provided with a plurality of second fixing grooves (321), and a first rubber block (322) is fixedly inserted into the inner wall of each of the plurality of second fixing grooves (321).

4. The high-temperature resistant and high-efficiency heat dissipation energy storage wire according to claim 3, characterized in that: The inner wall of the protective sleeve (32) is fixedly installed with a wrapping sleeve (33), and the outer wall of the wrapping sleeve (33) is provided with a plurality of third fixing grooves (331), and a second rubber block (332) is fixedly inserted into the inner wall of each of the plurality of third fixing grooves (331).

5. The high-temperature resistant and high-efficiency heat dissipation energy storage wire according to claim 4, characterized in that: The outer wall of the inner sheath (11) is fixedly connected to the inner wall of the isolation sleeve (25), and the outer wall of the heat insulation sleeve (21) is fixedly connected to the inner wall of the wrapping sleeve (33).