Self-curing insulation waterproof protection assembly

By installing a metal corrugated tube and a crimping device with multiple locking mechanisms on the outside of the cable, the aging problem and insufficient adaptability of the self-curing insulation and waterproof protection components are solved, thereby improving stability and flexibility and ensuring the safety and extended service life of the cable.

CN224005677UActive Publication Date: 2026-03-17SHANDONG HUIHUA ELECTRIC APPLIANCE CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-06
Publication Date
2026-03-17

AI Technical Summary

Technical Problem

Existing self-curing insulating and waterproof protection components are prone to aging and cracking when exposed to strong sunlight for a long time. They cannot flexibly adapt to different cable diameters, and the simple structure of the crimping device leads to instability, affecting the safety and flexibility of the cable.

Method used

A self-curing insulating and waterproof protective assembly was designed, which includes a crimping device and a locking mechanism. It utilizes a metal bellows to provide additional protection, ensures stability through multiple locking mechanisms, and adapts to different cable diameters through adjustable crimping blocks.

Benefits of technology

It effectively prevents the protective layer from being eroded by ultraviolet radiation, improves waterproof performance, extends service life, ensures the long-term stability and flexible adaptability of the fixed structure, and improves the safety and reliability of the cable.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a self-curing insulation waterproof protection assembly, which comprises a cable, a crimping device is arranged on the outer side of the cable, the crimping device comprises a crimping sleeve, a spiral groove, a matching block, a matching sleeve, a control sleeve, a connecting plate, a spiral block, a crimping block and a matching groove, the spiral groove is arranged on the outer side of the matching sleeve, the matching block is arranged in the matching groove, and the control sleeve is arranged on the control sleeve. The connecting plate is connected to one side of the control sleeve, the spiral block is arranged on the inner side of the connecting plate, the crimping block is connected to one side of the matching block, the matching groove is formed in the inner side of the matching sleeve, the cable is sleeved with the protection device, the locking mechanism is arranged on the outer side of the crimping sleeve, and the locking mechanism comprises an adaptive sleeve, an adaptive hole, a locking sleeve, a locking rod, a locking groove, a reset spring and an adaptive rod. The adaptive holes are formed in the adaptive sleeve, the locking grooves are formed in the outer side of the crimping sleeve, the other end of the locking rod is connected with the outer wall of the control sleeve through the reset spring, the adaptive rod is connected to one side of the locking sleeve, and the cable protection device provides comprehensive protection and can flexibly adapt to different cable specifications at the same time.
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Description

Technical Field

[0001] This utility model relates to the technical field of self-curing insulating and waterproof protective components, and more specifically, it relates to a self-curing insulating and waterproof protective component. Background Technology

[0002] Cable protection has always been a critical technical challenge in the fields of power systems and communication networks. Existing self-curing insulation and waterproof protection components have many shortcomings, which seriously affect the safety, reliability and service life of cables.

[0003] Traditional cable installation methods often neglect comprehensive protection, leaving cables directly exposed to harsh environments. The lack of necessary insulation and waterproofing makes cables vulnerable to rain, moisture, dust, and ultraviolet radiation. Prolonged exposure can lead to deterioration of the cable's protective layer, resulting in decreased electrical performance and even safety hazards such as short circuits or leakage. Moisture infiltration can also cause corrosion of the internal metal conductors, significantly shortening the cable's lifespan. This not only increases maintenance and replacement frequency but can also cause unexpected power outages, affecting system stability. With technological advancements, self-curing insulating and waterproof protective components made from special materials have emerged. These components typically use polymer materials, such as silicone or epoxy resin, which have the characteristic of self-curing upon contact with air. Theoretically, this design can form a protective film on the outside of the cable, providing insulation and waterproofing. However, in practical applications, this protective layer has significant limitations. Prolonged exposure to strong sunlight can cause the protective layer to age, crack, or peel. Ultraviolet radiation accelerates the degradation of polymer materials, causing the protective layer to lose its original elasticity and sealing properties.

[0004] To further enhance protection, some equipment manufacturers have attempted to crimp metal corrugated tubes onto the outside of the self-curing insulating and waterproof layer. This design aims to utilize the rigidity and durability of the metal corrugated tube to protect the inner insulating and waterproof material while providing additional mechanical strength. However, this method also faces challenges in practical applications. Cables typically come in multiple diameters, and the crimping devices used in existing technologies for crimping corrugated tubes are simple in structure, often employing bolts and nuts to achieve crimping, which limits their use. This necessitates the use of various crimping sleeves of different specifications, making it impossible to flexibly adapt to different cable diameters and severely impacting the equipment's operational flexibility.

[0005] To address the aforementioned issues, some equipment has adopted optimized crimping devices. However, these optimized crimping devices still exhibit some problems in practical applications. The main drawback lies in the overly simple and crude structural design of the crimping device for the metal bellows. This simple crimping method is difficult to guarantee long-term stability, especially when facing temperature changes, vibrations, and mechanical stress. Over time, the crimping device may no longer effectively press the two ends of the metal bellows, causing the metal bellows to slide on the outside of the protective layer. This not only causes part of the protective layer to lose the protection of the metal bellows, but the back-and-forth sliding of the metal bellows may also scratch the inner protective material, further affecting the overall protective effect. Utility Model Content

[0006] (a) Technical problems to be solved

[0007] In view of the problems existing in the prior art, this utility model provides a self-curing insulating and waterproof protective component to solve the technical problems mentioned in the background art.

[0008] (II) Technical Solution

[0009] To achieve the above objectives, this utility model provides the following technical solution: a self-curing insulating and waterproof protection component, comprising a cable, characterized in that: a crimping device is provided on the outer side of the cable, the crimping device comprising a crimping sleeve, a spiral groove, a mating block, a mating sleeve, a control sleeve, a connecting plate, a spiral block, a crimping block, and a mating groove; the spiral groove is formed on the outer side of the mating sleeve; the mating block is slidably installed in the mating groove; the mating sleeve is sleeved on the outer side of the crimping sleeve; the control sleeve is rotatably sleeved on the outer side of the crimping sleeve; the connecting plate is connected to one side of the control sleeve; the spiral block is fixedly disposed on the inner side of the connecting plate, and the spiral block is slidably disposed in the spiral groove. In this assembly, the crimping block is connected to one side of the mating block, the mating groove is opened inside the mating sleeve, a protective device is sleeved on the outside of the cable, and a locking mechanism is provided on the outside of the crimping sleeve. The locking mechanism includes an adapter, an adapter hole, a locking sleeve, a locking rod, a locking groove, a return spring, and an adapter rod. The adapter is rotatably sleeved on the outside of the crimping sleeve, the adapter hole is opened on the adapter, the locking sleeve is slidably sleeved on the outside of the crimping sleeve, one end of the locking rod is inserted into the locking groove, multiple locking grooves are opened on the outside of the crimping sleeve, the other end of the locking rod is connected to the outer wall of the control sleeve through the return spring, and the adapter rod is connected to one side of the locking sleeve.

[0010] The present invention is further provided that the locking sleeve, the control sleeve and the adapter are all provided with anti-slip strips on their outer sides.

[0011] The present invention is further configured such that a sliding rod is fixedly provided on the outer side of the pressing sleeve, and a sliding groove is provided on the inner side of the mating sleeve, the sliding groove being adapted to the sliding rod.

[0012] The present invention is further configured such that a compression spring is connected to one side of the compression block, and a compression plate is connected to the other end of the compression spring.

[0013] The present invention is further provided that a rubber strip is connected to one side of the pressing plate.

[0014] The present invention is further configured such that a push spring is sleeved on the outer side of the adapter rod, one end of the push spring is connected to the locking sleeve, and the other end of the push spring is in contact with the adapter. The push spring further simplifies the operation.

[0015] The present invention is further configured such that the protection device includes a corrugated pipe and a protective layer, the protective layer is bonded to the outside of the cable, and the corrugated pipe is sleeved on the outside of the protective layer. The design of the protection device effectively enhances the protection of the cable.

[0016] The present invention is further configured such that the corrugated pipe is made of metal, and the corrugated pipe made of metal can achieve better protection and prevent animals from gnawing on it.

[0017] (III) Beneficial Effects

[0018] Compared with the prior art, this utility model provides a self-curing insulating and waterproof protective component, which has the following beneficial effects:

[0019] 1. By installing a protective device on the outside of the cable, the device includes a self-curing protective layer bonded to the outside of the cable and a metal corrugated tube sleeved on the outside of the protective layer. The protective layer achieves self-curing through contact with air, forming an insulating and waterproof protective film. The metal corrugated tube is made of opaque metal, which can effectively prevent the protective layer from being corroded by ultraviolet radiation. This solves the problem that self-curing insulating and waterproof layers in existing technologies are prone to aging, cracking, or peeling when exposed to strong sunlight for a long time. At the same time, the metal corrugated tube can also prevent animal bites and external abrasions, further improving the waterproof protection performance, effectively extending the service life of the cable protective layer, and improving the safety and reliability of the cable.

[0020] 2. By setting up a crimping device, which includes components such as a crimping sleeve, a mating sleeve, a control sleeve, a spiral groove, a spiral block, a mating groove, a mating block, and a crimping block, the control sleeve is rotated to drive the spiral block to slide in the spiral groove, which in turn drives the mating sleeve to slide along the slide rod. The radial movement of the crimping block is achieved through the inclined structure design of the mating groove and the mating block. This allows multiple crimping blocks to flexibly adjust their pressing position according to different cable diameters. With the help of the pressing spring and the crimping plate, it can adapt and press corrugated pipes of different specifications. There is no need to equip multiple crimping sleeves of different specifications. This solves the problems of simple structure, limited use, and inability to flexibly adapt to different cable diameters in the existing crimping device, effectively improving the flexibility and versatility of the equipment.

[0021] 3. By setting a locking mechanism on the outside of the crimping sleeve, the locking mechanism includes components such as an adapter, an adapter hole, a locking sleeve, a locking rod, a locking groove, a return spring, and an adapter rod. The adapter and the adapter rod work together to limit the locking sleeve, the locking sleeve limits the locking rod, and the locking rod and the locking groove work together to limit the control sleeve, thereby preventing the control sleeve from moving and thus preventing the mating sleeve from sliding. This forms a multi-locking protection mechanism, which solves the problem that the optimized crimping device structure design in the prior art is too simple and rough, making it difficult to guarantee long-term stability. It effectively prevents the crimping device from loosening under vibration and mechanical stress, avoids the metal bellows from sliding on the outside of the protective layer, and ensures the long-term stability and reliability of the fixed structure. Attached Figure Description

[0022] Figure 1 This is a schematic diagram of the overall structure of a self-curing insulating and waterproof protective component of this utility model;

[0023] Figure 2 This is a schematic diagram of the structure of the crimping device and locking mechanism in this utility model;

[0024] Figure 3 This is a cross-sectional structural diagram of the crimping device and locking mechanism in this utility model;

[0025] Figure 4 for Figure 3 A magnified schematic diagram of the partial structure at point A in the middle;

[0026] Figure 5 for Figure 3 A magnified view of the structure at point B in the middle;

[0027] Figure 6 This is a cross-sectional view of the mating sleeve and pressing block in this utility model.

[0028] In the diagram: 1. Cable; 2. Crimping sleeve; 3. Spiral groove; 4. Mating block; 5. Mating sleeve; 6. Control sleeve; 7. Connecting plate; 8. Spiral block; 9. Crimping block; 10. Mating groove; 11. Adaptor; 12. Adaptor hole; 13. Locking sleeve; 14. Locking rod; 15. Locking groove; 16. Return spring; 17. Adaptor rod; 18. Anti-slip strip; 19. Slide rod; 20. Slide groove; 21. Compression spring; 22. Crimping plate; 23. Rubber strip; 24. Push spring; 25. Bellows; 26. Protective layer. Detailed Implementation

[0029] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.

[0030] It should be noted that, unless otherwise specified, all technical and scientific terms used in this application have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains.

[0031] In this utility model, unless otherwise stated, the orientations used, such as "up" and "down", usually refer to the direction shown in the accompanying drawings, or to the vertical, perpendicular, or gravitational direction; similarly, for ease of understanding and description, "left" and "right" usually refer to the left and right shown in the accompanying drawings; "inner" and "outer" refer to the inner and outer contours of each component itself, but the above directional terms are not used to limit this utility model.

[0032] Please see Figures 1-6 A self-curing insulating and waterproof protective component includes a cable 1, characterized in that: a crimping device is provided on the outer side of the cable 1, the crimping device including a crimping sleeve 2, a spiral groove 3, a mating block 4, a mating sleeve 5, a control sleeve 6, a connecting plate 7, a spiral block 8, a crimping block 9, and a mating groove 10; the spiral groove 3 is formed on the outer side of the mating sleeve 5; the mating block 4 is slidably installed in the mating groove 10; the mating sleeve 5 is fitted on the outer side of the crimping sleeve 2; the control sleeve 6 is rotatably fitted on the outer side of the crimping sleeve 2; the connecting plate 7 is connected to one side of the control sleeve 6; the spiral block 8 is fixedly set on the inner side of the connecting plate 7 and slidably set in the spiral groove 3; the crimping block 9 is connected to one side of the mating block 4; and the cable 1 is equipped with a self-curing insulating and waterproof protective component. The groove 10 is opened inside the mating sleeve 5. A protective device is sleeved on the outside of the cable 1. A locking mechanism is provided on the outside of the crimping sleeve 2. The locking mechanism includes an adapter 11, an adapter hole 12, a locking sleeve 13, a locking rod 14, a locking groove 15, a return spring 16, and an adapter rod 17. The adapter 11 is rotatably sleeved on the outside of the crimping sleeve 2. The adapter hole 12 is opened on the adapter 11. The locking sleeve 13 is slidably sleeved on the outside of the crimping sleeve 2. One end of the locking rod 14 is inserted into the locking groove 15. Multiple locking grooves 15 are opened on the outside of the crimping sleeve 2. The other end of the locking rod 14 is connected to the outer wall of the control sleeve 6 through the return spring 16. The adapter rod 17 is connected to one side of the locking sleeve 13.

[0033] Anti-slip strips 18 are connected to the outer sides of the locking sleeve 13, the control sleeve 6, and the adapter sleeve 11.

[0034] A slide rod 19 is fixedly provided on the outer side of the crimping sleeve 2, and a slide groove 20 is provided on the inner side of the mating sleeve 5. The slide groove 20 is adapted to the slide rod 19.

[0035] A compression spring 21 is connected to one side of the compression block 9, and a compression plate 22 is connected to the other end of the compression spring 21.

[0036] A rubber strip 23 is connected to one side of the pressing plate 22.

[0037] A push spring 24 is sleeved on the outside of the adapter rod 17. One end of the push spring 24 is connected to the locking sleeve 13, and the other end of the push spring 24 is in contact with the adapter sleeve 11.

[0038] In this embodiment, when the bellows 25 needs to be tightened, firstly, the adapter 11 is rotated, which drives the adapter hole 12 to rotate. When the adapter hole 12 moves to the position corresponding to the adapter rod 17, the locking sleeve 13 is pushed. The locking sleeve 13 drives the adapter rod 17 through the adapter hole 12. At the same time, the locking sleeve 13 and the adapter 11 cooperate to compress the push spring 24 sleeved on the outside of the adapter rod 17. When the push spring 24 is compressed to its limit, the outer end of the locking rod 14 loses the limit of the locking sleeve 13. Then, the control sleeve 6 is rotated, which drives the locking rod 14 to rotate. Then, the side wall of the locking groove 15 compresses one end of the locking rod 14. Due to the rounded corner structure design at the edge of the locking groove 15 and the end of the locking rod 14, one end of the locking rod 14 will then exit from the locking groove 15. As the locking rod 14 slides out, the other end of the locking rod 14 will stretch the return spring 16. At the same time, the control sleeve 6 will drive the spiral block 8 to rotate through the connecting plate 7. Due to the special structural design of the spiral groove 3 and the special arrangement of the spiral block 8, the spiral block 8 will slide in the spiral groove 3. Due to the cooperation of the sliding rod 19 and the sliding groove 20, the fitting sleeve 5 will be limited. Then the fitting sleeve 5 will drive the fitting groove 10 to slide along the sliding rod 19 and the sliding groove 20. Due to the inclined structural design of the fitting groove 10 and the fitting block 4, when the fitting groove 10 slides with the fitting sleeve 5, the fitting block 4 will drive the pressing block 9 to move outward. Then the pressing block 9 will drive the pressing plate 22 to move outward through the pressing spring 21. Then the bellows 25 will be fitted onto the outside of the protective layer 26. When the crimping sleeve 2 connected to one end of the corrugated pipe 25 is moved to the outer side of the corresponding position of the protective layer 26, the control sleeve 6 is rotated in the opposite direction. The control sleeve 6 drives the connecting block and the spiral block 8 to rotate. Then, through the cooperation of the spiral block 8 and the spiral groove 3, and the limiting of the mating sleeve 5 by the slide rod 19 and the slide groove 20, the mating sleeve 5 will drive the mating groove 10 to slide and reset along the slide rod 19. Then, the mating block 4 will drive the crimping block 9 to reset, so that the crimping block 9 drives the compression spring 21 and the crimping plate 22 to gather inward, so that the crimping plate 22 contacts the cured protective layer 26. Then, the crimping block 9 continues to gather inward, so that the crimping block 9 and the crimping plate 22 cooperate to press the compression spring 21, so that multiple crimping plates 22 cooperate to press the protective layer 26 and the cable. 1. The clamping device 22 is fixed in place. The rubber strip 23 on the inner side of the pressing plate 22 increases the friction, further ensuring the stability of the fixation. At this time, the return spring 16 will drive the locking rod 14 to reset, so that the other end of the locking rod 14 is engaged in the corresponding locking groove 15. Then, the adapter 11 is released, and the push spring 24 will push the adapter 11 to slide back to its original position. Then, the adapter 11 will drive the adapter rod 17 to slide back to its original position. When the push spring 24 is fully reset, the adapter 11 is rotated again, so that the adapter 11 drives the adapter hole 12 to the position corresponding to the non-adaptive rod 17. At this time, the adapter 11 and the adapter rod 17 will cooperate to limit the locking sleeve 13 to prevent the locking sleeve 13 from sliding. Then, the locking sleeve 13 will limit the locking rod 14, so that the locking rod 14 will not move.Then, the locking rod 14 and the locking groove 15 cooperate to limit the movement of the control sleeve 6, preventing the control sleeve 6 from moving and thus preventing the mating sleeve 5 from sliding, thereby ensuring the stability of the fixed structure. Then, when the crimping sleeve 2 connected to the other end of the bellows 25 moves to the corresponding position, the corresponding crimping sleeve 2 can be fixed to the outside of the protective layer 26 by referring to the above steps.

[0039] Please see Figures 1-3 As one implementation of the protection device: the protection device includes a corrugated pipe 25 and a protective layer 26, the protective layer 26 is bonded to the outside of the cable 1, and the corrugated pipe 25 is sleeved on the outside of the protective layer 26.

[0040] The bellows 25 is made of metal.

[0041] More specifically, when the device is needed, first wipe the outside of the cable 1 clean, then surround the outside of the cable 1 with the protective layer 26 and bond the protective layer 26 together. Then wait briefly to allow the protective layer 26 to come into contact with the air and achieve self-curing, thereby achieving waterproof and insulating protection for the cable 1. Then, put the metal corrugated tube 25 on the outside of the protective layer 26. The corrugated tube 25 is made of opaque metal material, which firstly prevents the protective layer 26 from being corroded by ultraviolet rays, and at the same time can prevent animals from biting and external abrasion. At the same time, the setting of the corrugated tube 25 can further improve the waterproof protection performance.

[0042] In summary, during the use or operation of the overall equipment: when it is necessary to tighten the bellows 25, firstly rotate the adapter 11, which drives the adapter hole 12 to rotate. When the adapter hole 12 moves to the position corresponding to the adapter rod 17, it pushes the locking sleeve 13. The locking sleeve 13 drives the adapter rod 17 through the adapter hole 12. At the same time, the locking sleeve 13 and the adapter 11 cooperate to compress the push spring 24 sleeved on the outside of the adapter rod 17. When the push spring 24 is compressed to its limit, the outer end of the locking rod 14 loses the limit of the locking sleeve 13. Then, rotate the control sleeve 6, which drives the locking rod 14 to rotate. Then, the side wall of the locking groove 15 compresses one end of the locking rod 14. Due to the rounded corner structure design at the edge of the locking groove 15 and the end of the locking rod 14, the locking rod 14... The end will slide out of the locking groove 15, and at the same time, the other end of the locking rod 14 will drive the return spring 16 to stretch. At the same time, the control sleeve 6 will drive the spiral block 8 to rotate through the connecting plate 7. Due to the special structural design of the spiral groove 3 and the special arrangement of the spiral block 8, the spiral block 8 will slide in the spiral groove 3. Due to the cooperation of the sliding rod 19 and the sliding groove 20, the fitting sleeve 5 will be limited. Then the fitting sleeve 5 will drive the fitting groove 10 to slide along the sliding rod 19 and the sliding groove 20. Due to the inclined structural design of the fitting groove 10 and the fitting block 4, when the fitting groove 10 slides with the fitting sleeve 5, the fitting block 4 will drive the pressing block 9 to move outward. Then the pressing block 9 will drive the pressing plate 22 to move outward through the pressing spring 21. Then the bellows 25 will be fitted onto the protective layer 26. On the outside, when the crimping sleeve 2 connected to one end of the bellows 25 moves to the outside of the corresponding position of the protective layer 26, the control sleeve 6 is rotated in the opposite direction. The control sleeve 6 drives the connecting block and the spiral block 8 to rotate. Then, through the cooperation of the spiral block 8 and the spiral groove 3, and the limiting of the mating sleeve 5 by the slide rod 19 and the slide groove 20, the mating sleeve 5 will drive the mating groove 10 to slide and reset along the slide rod 19. Then, the mating block 4 will drive the crimping block 9 to reset, so that the crimping block 9 drives the compression spring 21 and the crimping plate 22 to gather inward, so that the crimping plate 22 contacts the cured protective layer 26. Then, the crimping block 9 continues to gather inward, so that the crimping block 9 and the crimping plate 22 cooperate to press the compression spring 21, so that multiple crimping plates 22 cooperate to press the protective layer 26. The cable 1 is fixedly clamped, and the rubber strip 23 on the inner side of the crimping plate 22 increases the friction, further ensuring the stability of the fixation. At this time, the return spring 16 will drive the locking rod 14 to reset, so that the other end of the locking rod 14 is engaged in the corresponding locking groove 15. Then, the adapter 11 is released, and the push spring 24 will push the adapter 11 to slide back to its original position. Then, the adapter 11 will drive the adapter rod 17 to slide back to its original position. When the push spring 24 is fully reset, the adapter 11 is rotated again, so that the adapter 11 drives the adapter hole 12 to the position corresponding to the non-adaptive rod 17. At this time, the adapter 11 and the adapter rod 17 will cooperate to limit the locking sleeve 13 to prevent the locking sleeve 13 from sliding. Then, the locking sleeve 13 will limit the locking rod 14, so that the locking rod 14 will not move.Then, the locking rod 14 and the locking groove 15 cooperate to limit the movement of the control sleeve 6, preventing the control sleeve 6 from moving and thus preventing the mating sleeve 5 from sliding, thereby ensuring the stability of the fixed structure. Then, when the crimping sleeve 2 connected to the other end of the bellows 25 moves to the corresponding position, the corresponding crimping sleeve 2 can be fixed to the outside of the protective layer 26 by referring to the above steps.

[0043] When the device is needed, first wipe the outside of the cable 1 clean, then surround the outside of the cable 1 with the protective layer 26 and bond the protective layer 26 together. Then wait a short time for the protective layer 26 to come into contact with the air and achieve self-curing, thereby achieving waterproof and insulating protection for the cable 1. Then, put the metal corrugated tube 25 on the outside of the protective layer 26. The corrugated tube 25 is made of opaque metal material, which first prevents the protective layer 26 from being corroded by ultraviolet rays, and at the same time can prevent animals from biting and external abrasion. At the same time, the setting of the corrugated tube 25 can further improve the waterproof protection performance.

[0044] Of all the solutions mentioned above, those involving the connection between two components can be selected according to the actual situation, such as welding, bolt and nut connection, bolt or screw connection, or other known connection methods, which will not be elaborated here. For all the fixed connections mentioned above, welding is preferred. Although embodiments of this utility model have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of this utility model. The scope of this utility model is defined by the appended claims and their equivalents.

Claims

1. A self-curing insulating waterproofing protection assembly comprising a cable (1), characterized in that: The cable (1) is provided with a crimping device outside, the crimping device comprises a crimping sleeve (2), a spiral groove (3), a matching block (4), a matching sleeve (5), a control sleeve (6), a connecting plate (7), a spiral block (8), a crimping block (9) and a matching groove (10), the spiral groove (3) is arranged outside the matching sleeve (5), the matching block (4) is arranged in the matching groove (10), the control sleeve (6) is arranged outside the crimping sleeve (2), the connecting plate (7) is connected to one side of the control sleeve (6), the spiral block (8) is arranged inside the connecting plate (7), the crimping block (9) is connected to one side of the matching block (4), the matching groove (10) is arranged inside the matching sleeve (5), the cable (1) is provided with a protection device outside, the crimping sleeve (2) is provided with a locking mechanism outside, the locking mechanism comprises an adapter sleeve (11), an adapter hole (12), a locking sleeve (13), a locking rod (14), a locking groove (15), a reset spring (16) and an adapter rod (17), the adapter sleeve (11) is arranged outside the crimping sleeve (2), the adapter hole (12) is arranged on the adapter sleeve (11), the locking sleeve (13) is arranged outside the crimping sleeve (2), a plurality of locking grooves (15) are arranged outside the crimping sleeve (2), the locking rod (14) is connected to the outer wall of the control sleeve (6) through the reset spring (16) at the other end, and the adapter rod (17) is connected to one side of the locking sleeve (13).

2. A self-curing insulating waterproofing protection assembly according to claim 1, characterized in that: The locking sleeve (13), the control sleeve (6) and the adapter sleeve (11) are all connected with anti-skid strips (18) outside.

3. A self-curing insulating waterproofing protection assembly according to claim 2, characterized in that: A sliding rod (19) is fixedly arranged outside the crimping sleeve (2), a sliding groove (20) is arranged inside the matching sleeve (5), and the sliding groove (20) is matched with the sliding rod (19).

4. A self-curing insulating waterproofing protection assembly according to claim 3, characterized in that: A compression spring (21) is connected to one side of the crimping block (9), and a crimping plate (22) is connected to the other end of the compression spring (21).

5. A self-curing insulating waterproofing protection assembly according to claim 4, characterized in that: A rubber strip (23) is connected to one side of the crimping plate (22).

6. A self-curing insulating waterproofing protection assembly according to claim 1, characterized in that: A push spring (24) is arranged outside the adapter rod (17), one end of the push spring (24) is connected with the locking sleeve (13), and the other end of the push spring (24) is connected with the adapter sleeve (11) in a contact mode.

7. A self-curing insulating waterproofing protection assembly according to any one of claims 1 to 6, characterized in that: The protection device comprises a bellows (25) and a protective layer (26), the protective layer (26) is bonded outside the cable (1), and the bellows (25) is arranged outside the protective layer (26).

8. A self-curing insulating waterproofing protection assembly according to claim 7, characterized in that: The bellows (25) is made of metal.