Carbon fiber composite core type overhead insulated cable
By adopting a combination of carbon fiber composite core structure and thermal conductivity wire in overhead insulated cables, the heat dissipation and fire resistance of the cable are improved, and the connection efficiency is improved through docking and connecting mechanisms, solving the problems of existing cable performance and construction efficiency.
Patent Information
- Application Number
- CN202510156876.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-13
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2045-02-13
AI Technical Summary
The existing overhead insulated cables have poor heat dissipation and fire resistance, and are at the same time have low disassembly and assembly and connection efficiency.
Carbon fiber composite core overhead insulated cable is adopted to wind the carbon fiber core and copper wire core through a composite mechanism to increase heat conduction wires to improve heat dissipation and fire resistance, and to achieve rapid butt and efficient connection through docking mechanisms and connection mechanisms.
It improves the heat dissipation and fire resistance of the cable, improves the efficiency and stability of disassembly and assembly and connection, and solves the problem of low construction efficiency of existing cables.
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Figure CN120015412A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of cables, in particular to a carbon fiber composite core type overhead insulated cable. Background Art
[0002] Overhead cable (full name: overhead insulated cable) is an overhead conductor equipped with an insulating layer and a protective sheath. It is a special cable manufactured using a production process similar to that of cross-linked cables. It is a new way of transmitting electricity between overhead conductors and underground cables. Overhead cables are all single-core. According to their different structures, they can be divided into hard aluminum wire structure, hard-drawn copper wire structure, aluminum alloy wire structure, steel core or aluminum alloy core support structure and self-supporting three-core composite structure (the wire core can be hard aluminum or hard copper wire), etc.
[0003] Although the existing insulated cables have certain strength, their heat dissipation and fire resistance are poor. At the same time, during disassembly and maintenance, due to the large number of wire harnesses inside the cable, the terminal connection process of the overhead insulated cable requires separate connection of different wire harnesses before the overall connection of the cable can be completed, and the construction efficiency is relatively low. Summary of the invention
[0004] The object of the present invention is to provide a carbon fiber composite core type overhead insulated cable which is convenient for improving cable performance while improving disassembly and assembly connection efficiency and stability, so as to solve the problems raised in the above background technology.
[0005] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a carbon fiber composite core overhead insulated cable, comprising a carbon fiber core, a copper wire core, a composite structure, a docking structure, a connecting structure and an insulating sleeve, wherein the composite structure is installed on the carbon fiber core to form an insulated cable, and improves the heat dissipation performance and fire resistance. The docking mechanism comprises a docking plate installed on one end of the carbon fiber core, and the docking plate is provided with a connector for improving the connection efficiency with the carbon fiber core and the copper wire core, and is used to install the docking plate on one end of the carbon fiber core and quickly dock the wiring harness in the entire cable. The connecting mechanism is installed on the docking plate to connect and fix two adjacent groups of the docking plates, thereby improving the connection efficiency, facilitating the improvement of cable performance while improving the disassembly and assembly connection efficiency and stability.
[0006] Preferably, the composite structure includes a heat-conducting wire installed on the carbon fiber core, the carbon fiber core and the copper wire core are both spirally wound around the outer wall of the heat-conducting wire to form a group of cable cores, the outer wall of the cable core is provided with an insulating layer, and a fireproof layer is fixedly connected to the inner side of the insulating sleeve, and the multiple groups of cable cores in the fireproof layer as a whole constitute a group of carbon fiber composite core insulated cables, a heat dissipation pad is provided between the insulating layer and the fireproof layer, and a plurality of heat dissipation holes are evenly opened in the heat dissipation pad, which is convenient for forming a carbon fiber composite core overhead insulated cable and improving the overall heat dissipation performance and fireproof performance.
[0007] Preferably, the docking mechanism also includes a plurality of groups of heat-conducting rings fixedly mounted on the docking plate, a fixed block is fixedly connected inside the heat-conducting ring, a first fixed tube and two groups of second fixed tubes are fixedly connected inside the fixed block, a heat-conducting part for connecting to the heat-conducting wire for heat conduction is provided inside the first fixed tube, and a heat sink for dissipating the heat on the heat-conducting ring to the outside is provided on the docking plate, so as to facilitate the installation of the docking plate on one end of the carbon fiber core and the rapid docking of the wiring harness in the entire cable.
[0008] Preferably, the heat sink includes a first heat-conducting block fixedly mounted on the outer wall of the first fixed tube, the first heat-conducting block is fixedly connected to the inner wall of the heat-conducting ring, a second heat-conducting block is fixedly connected between multiple groups of heat-conducting rings, a heat-dissipating cavity is provided in the docking plate, and multiple groups of heat-dissipating grooves connected to the heat-dissipating cavity are evenly provided on the docking plate, so as to dissipate the heat on the heat-conducting ring to the outside.
[0009] Preferably, the docking mechanism also includes a guide ring fixedly installed on one end of the insulating sleeve, the side of the guide ring is coaxially fixedly connected with a fixing ring, a plurality of groups of plug-in grooves are evenly arranged on the fixing ring, the side of the docking plate is fixedly connected with a threaded ring that can be plugged into the outer wall of the plug-in groove, the outer wall of the guide ring is movably sleeved with a threaded tube that can be threadedly connected to the outer wall of the threaded ring, so as to facilitate the connection of the insulating sleeve with the docking plate.
[0010] Preferably, the connecting mechanism includes two groups of semicircular tubes sleeved on the outer wall of the docking plate, one side of the two groups of semicircular tubes are hinged to each other, and the other side can be connected by bolts to form a tubular structure, a guide groove is opened in the semicircular tube, two groups of semicircular rings are slidably connected in the guide groove, a driving shaft is rotatably connected in one of the guide grooves in the upper semicircular tube, the driving shaft passes through the semicircular rings on both sides, two groups of threaded grooves are opened on the driving shaft, the thread directions of the two groups of threaded grooves are opposite, and they are respectively threadedly connected to the semicircular rings on both sides, and a driving member is provided on the driving shaft for simultaneously driving the semicircular rings in the two groups of semicircular tubes to move, so as to facilitate the connection and fixation of the two adjacent groups of docking plates and improve the connection efficiency.
[0011] Preferably, the driving member includes a worm wheel fixedly mounted on the driving shaft, a group of the semicircular tubes is rotatably connected to a worm that meshes with the worm wheel, and the bottom of the upper semicircular ring is fixedly connected to a pushing block for pushing the lower semicircular ring to move and clamp, so as to facilitate the movement of the semicircular rings in the two groups of semicircular tubes at the same time.
[0012] Preferably, the heat conducting member comprises two groups of third heat conducting blocks slidably connected to the inner wall of the first fixed tube, and one end of the third heat conducting block is fixedly connected to a first spring fixedly connected to the first fixed tube, so as to facilitate connection with the heat conducting wire for heat conduction.
[0013] Preferably, the connecting member includes two groups of conductive blocks slidably connected to the inner wall of the second fixed tube, and one end of the conductive block is fixedly connected to a second spring fixedly connected to the inner wall of the second fixed tube, so as to improve the connection efficiency between the conductive block and the carbon fiber core and the copper wire core.
[0014] Preferably, the docking plate and the guide ring are both provided with indicating arrows for determining the docking angle position, so as to assist in determining the docking angle position.
[0015] Compared with the prior art, the present invention has the following beneficial effects:
[0016] The present invention provides a carbon fiber composite core type overhead insulated cable, which solves the problems of relatively insufficient heat dissipation and fire prevention performance of existing overhead insulated cables during use, complicated cable connection operation and low construction efficiency. A carbon fiber core and a copper wire core are wound and combined by a composite mechanism to form a carbon fiber composite core type overhead insulated cable, thereby improving the overall heat dissipation and fire prevention performance. A docking plate is installed on one end of the carbon fiber core by a docking mechanism, and the wiring harness in the entire cable is quickly docked, thereby improving the wiring efficiency between multiple groups of wiring harnesses. Two adjacent groups of docking plates are connected and fixed by a connecting mechanism, thereby improving the connection efficiency and facilitating the connection, disassembly, assembly and maintenance of the cable. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0018] Figure 2 It is a partial structural cross-sectional view of the composite mechanism of the present invention;
[0019] Figure 3 for Figure 2 A magnified image of the middle A area;
[0020] Figure 4 It is a schematic diagram of the local structure of the connecting mechanism of the present invention;
[0021] Figure 5 for Figure 4Enlarged view of area B;
[0022] Figure 6 It is an exploded view of the local structure of the docking mechanism of the present invention;
[0023] Figure 7 for Figure 6 Enlarged view of area C in the middle;
[0024] Figure 8 It is a schematic diagram of the local structure of the docking mechanism of the present invention;
[0025] Fig. 9 It is a partial structural cross-sectional view of the docking mechanism of the present invention;
[0026] Fig.10 for Fig. 9 Enlarged view of area D in the middle.
[0027] In the figure: 1-carbon fiber core; 2-copper wire core; 3-insulating sleeve; 4-composite mechanism; 5-docking mechanism; 6-docking plate; 7-connector; 8-connecting mechanism; 9-heat-conducting wire; 10-cable core; 11-insulating layer; 12-fireproof layer; 13-heat-dissipating pad; 14-heat-dissipating hole; 15-heat-conducting ring; 16-fixing block; 17-first fixing tube; 18-second fixing tube; 19-heat-conducting member; 20-heat-dissipating member; 21-first heat-conducting block; 22-second Two heat-conducting blocks; 23-heat dissipation cavity; 24-heat dissipation groove; 25-guide ring; 26-fixing ring; 27-plug-in groove; 28-threaded ring; 29-threaded tube; 30-semicircular tube; 31-guide groove; 32-semicircular ring; 33-drive shaft; 34-threaded groove; 35-drive member; 36-worm gear; 37-worm; 38-pushing block; 39-third heat-conducting block; 40-first spring; 41-conductive block; 42-second spring; 43-indicator arrow. DETAILED DESCRIPTION
[0028] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0029] See also Figure 1-Figure 10The present invention provides a technical solution: a carbon fiber composite core type overhead insulated cable, comprising a carbon fiber core 1, a copper wire core 2, a composite mechanism 4, a docking mechanism 5, a connecting mechanism 8 and an insulating sleeve 3, wherein the composite mechanism 4 is installed on the carbon fiber core 1 to form an insulated cable and improve the heat dissipation performance and fire resistance. The docking mechanism 5 comprises a docking plate 6 installed at one end of the carbon fiber core 1, and a connector 7 for improving the connection efficiency with the carbon fiber core 1 and the copper wire core 2 is provided on the docking plate 6, which is used to install the docking plate 6 at one end of the carbon fiber core 1 and quickly dock the wiring harness in the entire cable, and the connecting mechanism 8 is installed on the docking plate 6 to connect and fix two adjacent groups of docking plates 6 to improve the connection efficiency.
[0030] The composite structure 4 includes a heat-conducting wire 9 installed on a carbon fiber core 1. The carbon fiber core 1 and the copper wire core 2 are both spirally wound around the outer wall of the heat-conducting wire 9 to form a group of cable cores 10. The outer wall of the cable core 10 is provided with an insulating layer 11. A fireproof layer 12 is fixedly connected to the inner side of the insulating sleeve 3. The fireproof layer 12 is made of mica tape. The multiple groups of cable cores 10 in the fireproof layer 12 as a whole constitute a group of carbon fiber composite core insulated cables. A heat dissipation pad 13 is provided between the insulating layer 11 and the fireproof layer 12. Multiple groups of heat dissipation holes 14 are evenly arranged in the heat dissipation pad 13. The insulating layer 11 and the insulating sleeve 3 are both made of polyvinyl chloride PVC.
[0031] A carbon fiber core 1 and a copper wire core 2 are twisted on the outside of a heat-conducting wire 9 to form a group of cable cores 10, and an insulating layer 11 is extruded on the outside of the cable core 10 for coating, and multiple groups of coated cable cores 10 are bonded together to form a bundle of cables, and a fireproof layer 12 is coated on the outer wall, and finally an insulating sleeve 3 is coated on the outer wall of the fireproof layer 12, and a heat dissipation pad 13 layer is filled between multiple cable cores 10 in the fireproof layer 12 to improve the efficiency of insulation and heat dissipation. Compared with ordinary cables, the carbon fiber composite core type overhead insulated cable has a transmission capacity twice as high as that of ordinary cables. This material can greatly save electricity, has a long service life, a high return on investment, and a high comprehensive value. The internal coating of the heat-conducting wire 9 increases the overall strength of the cable, and also enables the heat to be transferred to the two ends through the heat-conducting wire 9 for heat dissipation, thereby reducing the accumulation of heat inside the cable. At the same time, the fireproof layer 12 effectively improves the overall fireproof performance of the cable.
[0032] The docking mechanism 5 also includes a plurality of groups of heat-conducting rings 15 fixedly mounted on the docking plate 6, a fixed block 16 is fixedly connected inside the heat-conducting ring 15, a first fixed tube 17 and two groups of second fixed tubes 18 are fixedly connected inside the fixed block 16, a heat-conducting member 19 for connecting to the heat-conducting wire 9 for heat conduction is provided inside the first fixed tube 17, and a heat sink 20 for dissipating the heat on the heat-conducting ring 15 to the outside is provided on the docking plate 6.
[0033] The heat sink 20 includes a first heat-conducting block 21 fixedly mounted on the outer wall of the first fixed tube 17. The first heat-conducting block 21 is fixedly connected to the inner wall of the heat-conducting ring 15. A second heat-conducting block 22 is fixedly connected between multiple groups of heat-conducting rings 15. A heat-dissipating cavity 23 is provided in the docking plate 6. Multiple groups of heat-dissipating grooves 24 connected to the heat-dissipating cavity 23 are evenly provided on the docking plate 6.
[0034] The docking mechanism 5 also includes a guide ring 25 fixedly installed on one end of the insulating sleeve 3, and a fixing ring 26 is coaxially fixedly connected to the side of the guide ring 25, and a plurality of groups of plug-in grooves 27 are evenly arranged on the fixing ring 26. A threaded ring 28 capable of being plugged into the outer wall of the plug-in groove 27 is fixedly connected to the side of the docking plate 6, and a threaded tube 29 capable of being threadedly connected to the outer wall of the threaded ring 28 is movably sleeved on the outer wall of the guide ring 25. Indicator arrows 43 for judging the docking angle position are provided on both the docking plate 6 and the guide ring 25.
[0035] The connecting mechanism 8 includes two groups of semicircular tubes 30 sleeved on the outer wall of the docking plate 6, one side of the two groups of semicircular tubes 30 are hinged to each other, and the other side can be connected by bolts to form a tubular structure, a guide groove 31 is opened in the semicircular tube 30, two groups of semicircular rings 32 are slidably connected in the guide groove 31, a driving shaft 33 is rotatably connected in a guide groove 31 in the upper semicircular tube 30, the driving shaft 33 passes through the semicircular rings 32 on both sides, two groups of threaded grooves 34 are opened on the driving shaft 33, the thread directions of the two groups of threaded grooves 34 are opposite, and they are respectively threadedly connected to the semicircular rings 32 on both sides, and a driving member 35 is provided on the driving shaft 33 for simultaneously driving the semicircular rings 32 in the two groups of semicircular tubes 30 to move.
[0036] The driving member 35 includes a worm wheel 36 fixedly mounted on the driving shaft 33, a group of semicircular tubes 30 are rotatably connected to a worm 37 meshing with the worm wheel 36, and the bottom of the upper semicircular ring 32 is fixedly connected to a pushing block 38 for pushing the lower semicircular ring 32 to move and clamp.
[0037] The heat conducting member 19 includes two groups of third heat conducting blocks 39 slidably connected to the inner wall of the first fixed tube 17, one end of the third heat conducting block 39 is fixedly connected to a first spring 40 fixedly connected to the first fixed tube 17, and the connecting member 7 includes two groups of conductive blocks 41 slidably connected to the inner wall of the second fixed tube 18, one end of the conductive block 41 is fixedly connected to a second spring 42 fixedly connected to the inner wall of the second fixed tube 18.
[0038] In this embodiment, by aligning the indicating arrow 43 on the docking tray 6 with the indicating arrow 43 on the guide ring 25, and then inserting the threaded ring 28 into the plug-in slot 27, it can be ensured that the carbon fiber core 1 and the copper wire core 2 can be docked and connected with the conductive blocks 41 at the corresponding positions, and the electrical signal is transmitted to the corresponding second fixed tube 18. At this time, one end of the thermal wire 9 is in conflict with the third thermal block 39, and the first spring 40 is compressed to transfer the heat on the thermal wire 9 to the third thermal block 39 and the first fixed tube 17. At this time, the threaded tube 29 is rotated to thread the threaded ring 28 and the threaded tube 29, so that the connection and fixation between the docking tray 6 and the cable core 10 can be completed.
[0039] At this time, the heat on the first fixed tube 17 will be transferred to the heat-conducting ring 15 through the first heat-conducting block 21, and then transferred to the surrounding heat-conducting rings 15 through the second heat-conducting block 22 on the outer wall of the heat-conducting ring 15. Finally, the heat will be dissipated into the heat dissipation cavity 23 through the heat-conducting ring 15 at the outer position, and dissipated to the outside through the heat dissipation groove 24, thereby realizing efficient heat dissipation function without leakage. The heat dissipation structure is stable and efficient, and can dissipate the heat generated in the middle of the cable core 10 directly from the connection points at both ends, thereby avoiding the problem that the heat dissipation strength of the external cable is high, while the heat dissipation strength of the internal cable is poor in the traditional heat dissipation structure.
[0040] The docking plates 6 of the two groups of cable ends that need to be docked are placed together, and docking grooves that are plugged into and aligned with each other can be set on the docking plates 6. After the docking is completed, the two groups of semi-circular tubes 30 are opened and sleeved on the outer wall of the docking plate 6. The two groups of semi-circular rings 32 are combined into a circular tube by bolts and sleeved on the outside of the docking plate 6. The semi-circular rings 32 on both sides are at the positions on both sides. At this time, rotating the worm 37 can drive the worm gear 36 to rotate, and the worm gear 36 drives the driving shaft 33 so that the threaded groove 34 drives the semi-circular rings 32 on both sides to slide and extrude synchronously in the guide groove 31. The semi-circular ring 32 sliding on the upper side will drive the lower semi-circular ring 32 to slide synchronously through the pushing block 38, so that the upper and lower groups of semi-circular rings 32 form a circular ring-shaped synchronous sliding to resist the side of the threaded tube 29, so that the docking plates 6 on both sides are constantly resisting and extruding, thereby improving the tightness of the connection.
[0041] It is worth noting that: since the third heat-conducting blocks 39 and the conductive blocks 41 on the two sets of docking plates 6 are respectively ejected by the first spring 40 and the second spring 42, the third heat-conducting blocks 39 on the docking plates 6 on both sides can fit tightly, even if gaps appear in the docking plates 6, it can ensure that heat and electricity can be transmitted stably. The driving method of the worm 37 driving the worm wheel 36 achieves a more stable limit. The drive shaft 33 can only be rotated by the worm 37 driving the worm wheel 36, and the drive shaft 33 cannot drive the worm wheel 36 to drive the worm 37 to rotate. The automatic limit function can be achieved without the need for additional limit parts, and the operation is more efficient and convenient.
[0042] When the connection needs to be removed, the worm 37 can be directly rotated in the opposite direction to make the worm wheel 36 drive the driving shaft 33 to rotate in the opposite direction, so that the semicircular rings 32 on both sides are opened synchronously, reducing the thrust on the side of the threaded tube 29. After opening the bolts, the two groups of semicircular tubes 30 are opened to directly disconnect the docking plates 6 on both sides. The operation is convenient. The setting of the first spring 40 and the second spring 42 can also better ensure the stability of signal transmission between the third heat conducting block 39 and the adjacent heat conducting wire 9, and the conductive block 41 and the adjacent carbon fiber core 1 or copper wire core 2.
[0043] Production process: (1) Raw materials entering the factory; (2) Warehouse; (3) Wire drawing (annealing); (4) Copper wire rewinding; (5) Conductor twisting; (6) Extruded insulation; (7) Filling / wrapping / armoring; (8) Spark test; (9) Steam cross-linking; (10) Wire core cabling; (11) Extruded sheath; (12) Spark test; (13) Inspection and storage.
[0044] It should be noted that, in this article, relational terms such as first and second, etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device.
[0045] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A carbon fiber composite core type overhead insulated cable, characterized in that: include: Carbon fiber core (1), copper wire core (2) and insulating sleeve (3); Also includes: A composite structure (4), the composite structure (4) being mounted on the carbon fiber core (1) and used to form an insulated cable to improve heat dissipation performance and fire resistance performance; A docking mechanism (5), the docking mechanism (5) comprising a docking plate (6) mounted on one end of the carbon fiber core (1), the docking plate (6) being provided with a connector (7) for improving the connection efficiency between the carbon fiber core (1) and the copper wire core (2), and being used to mount the docking plate (6) on one end of the carbon fiber core (1) and quickly dock the wire harness in the entire cable; A connecting mechanism (8) is installed on the docking plate (6) and is used to connect and fix two adjacent groups of docking plates (6) to improve connection efficiency.
2. A carbon fiber composite core type overhead insulated cable according to claim 1, characterized in that: The composite structure (4) comprises a heat-conducting wire (9) mounted on the carbon fiber core (1); the carbon fiber core (1) and the copper wire core (2) are both spirally wound around the outer wall of the heat-conducting wire (9) to form a group of cable cores (10); the outer wall of the cable core (10) is provided with an insulating layer (11); the inner side of the insulating sleeve (3) is fixedly connected with a fireproof layer (12); the multiple groups of cable cores (10) in the fireproof layer (12) as a whole constitute a group of carbon fiber composite core insulated cables; a heat dissipation pad (13) is provided between the insulating layer (11) and the fireproof layer (12); and the heat dissipation pad (13) is evenly provided with multiple groups of heat dissipation holes (14).
3. A carbon fiber composite core type overhead insulated cable according to claim 2, characterized in that: The docking mechanism (5) further comprises a plurality of groups of heat-conducting rings (15) fixedly mounted on the docking plate (6); a fixing block (16) is fixedly connected inside the heat-conducting ring (15); a first fixing tube (17) and two groups of second fixing tubes (18) are fixedly connected inside the fixing block (16); a heat-conducting member (19) for connecting to the heat-conducting wire (9) for heat conduction is provided inside the first fixing tube (17); and a heat-dissipating member (20) for dissipating heat from the heat-conducting ring (15) to the outside is provided on the docking plate (6).
4. A carbon fiber composite core type overhead insulated cable according to claim 3, characterized in that: The heat sink (20) comprises a first heat conducting block (21) fixedly mounted on the outer wall of the first fixed tube (17); the first heat conducting block (21) is fixedly connected to the inner wall of the heat conducting ring (15); a second heat conducting block (22) is fixedly connected between a plurality of groups of the heat conducting rings (15); a heat dissipation cavity (23) is provided in the docking plate (6); and a plurality of groups of heat dissipation grooves (24) connected to the heat dissipation cavity (23) are evenly provided on the docking plate (6).
5. The carbon fiber composite core type overhead insulated cable according to claim 1, characterized in that: The docking mechanism (5) further comprises a guide ring (25) fixedly mounted on one end of the insulating sleeve (3); a fixing ring (26) is coaxially fixedly connected to the side of the guide ring (25); a plurality of groups of plug-in slots (27) are evenly arranged on the fixing ring (26); a threaded ring (28) capable of plugging into the outer wall of the plug-in slot (27) is fixedly connected to the side of the docking plate (6); and a threaded tube (29) capable of threadingly connecting to the outer wall of the threaded ring (28) is movably sleeved on the outer wall of the guide ring (25).
6. A carbon fiber composite core type overhead insulated cable according to claim 5, characterized in that: The connecting mechanism (8) comprises two groups of semicircular tubes (30) sleeved on the outer wall of the docking plate (6), one side of the two groups of semicircular tubes (30) are hinged to each other, and the other side can be connected by bolts to form a tubular structure, a guide groove (31) is provided in the semicircular tube (30), two groups of semicircular rings (32) are slidably connected in the guide groove (31), a driving shaft (33) is rotatably connected in one of the guide grooves (31) in the upper semicircular tube (30), the driving shaft (33) passes through the semicircular rings (32) on both sides, two groups of thread grooves (34) are provided on the driving shaft (33), the thread directions of the two groups of thread grooves (34) are opposite, and they are respectively threadedly connected to the semicircular rings (32) on both sides, and a driving member (35) is provided on the driving shaft (33) for simultaneously driving the semicircular rings (32) in the two groups of semicircular tubes (30) to move.
7. A carbon fiber composite core type overhead insulated cable according to claim 6, characterized in that: The driving member (35) comprises a worm wheel (36) fixedly mounted on the driving shaft (33); a group of the semicircular tubes (30) are rotatably connected to a worm (37) meshing with the worm wheel (36); and a pushing block (38) for pushing the semicircular ring (32) on the lower side to move and clamp is fixedly connected to the bottom of the upper semicircular ring (32).
8. The carbon fiber composite core type overhead insulated cable according to claim 3, characterized in that: The heat conducting member (19) comprises two groups of third heat conducting blocks (39) slidably connected to the inner wall of the first fixed tube (17), and one end of the third heat conducting block (39) is fixedly connected to a first spring (40) fixedly connected to the first fixed tube (17).
9. The carbon fiber composite core type overhead insulated cable according to claim 3, characterized in that: The connecting member (7) comprises two groups of conductive blocks (41) slidably connected to the inner wall of the second fixed tube (18), and one end of the conductive block (41) is fixedly connected to a second spring (42) fixedly connected to the inner wall of the second fixed tube (18).
10. The carbon fiber composite core type overhead insulated cable according to claim 5, characterized in that: The docking plate (6) and the guide ring (25) are both provided with indicating arrows (43) for determining the docking angle position.
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