Copper core cable and production device thereof

The cleaning and cooling mechanism of the copper core cable production unit solves the problem of incomplete surface treatment of the armor layer, achieving thorough cleaning and stable cooling of the cable surface, and improving the cable's service life and storage stability.

CN121662519AInactive Publication Date: 2026-03-13JIANGSU SHENGDONG CABLE CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-01-15
Publication Date
2026-03-13
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing armor layer pretreatment effect is poor. Traditional equipment cannot completely remove surface rust, burrs and residual debris, resulting in poor adhesion between the outer sheath and the armor layer, which easily leads to bulging and peeling problems. In addition, the surface treatment after cooling is not thorough, and moisture is difficult to remove, which affects the stability of cable storage and processing effect.

Method used

A copper core cable production device is used, including a cleaning mechanism and a cooling mechanism. Rust, burrs and debris are removed by a grinding plate, a cleaning strip and a high-pressure airflow, and uneven cooling and moisture are completely eliminated by a cooling ring and a wiping plate. Combined with a drying component, the surface is kept clean.

Benefits of technology

It effectively removes rust, burrs, and debris from the surface of the steel wire armor layer, prevents debris from splashing and contaminating the cable, ensures uniform sheath coverage, avoids internal stress and moisture residue after cooling, and improves the cable's service life and storage stability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of cable production equipment, in particular to a copper core cable and a production device thereof.The copper core cable comprises an operation panel, two first fixing plates are arranged on the side wall of the top end of the operation panel, a transmission rod is rotationally connected between the two first fixing plates, and two first gears are arranged on the outer side wall of the transmission rod; the copper core cable production device comprises an operation plate, the side wall of the operation plate is provided with a cleaning mechanism for polishing and cleaning the surface of a cable steel wire armor layer, and the cleaning mechanism comprises two first bases arranged on the side wall of the top end of the operation plate. And then a first motor is started to drive a first inner gear to drive a polishing plate to rotate by 360 degrees for polishing, and compared with traditional fixed polishing, rust and burrs on the surface of the steel wire armor layer can be removed in an all-around mode.
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Description

Technical Field

[0001] This invention relates to the field of cable production equipment technology, and in particular to a copper core cable and its production apparatus. Background Technology

[0002] Submarine cables, as key carriers for marine energy transmission and transoceanic communication, have long been in extreme environments such as high voltage, high salt spray corrosion, seabed sediment friction, and marine organism attachment. The composite protective performance of the steel wire armor layer and the outer sheath directly determines the service life (industry requirements are usually no less than 30 years) and operational safety of the cable. Among them, the outer sheath covering process after steel wire armoring is the core of forming the final protective barrier. It is necessary to first achieve ultra-high cleanliness treatment on the surface of the armor layer, and then complete the uniform covering and stable shaping of the outer sheath. Both are indispensable.

[0003] Existing equipment suffers from poor armor layer pretreatment. Traditional equipment often uses simple grinding or cleaning methods, which cannot completely remove surface rust, burrs, and residual debris. Moreover, debris is prone to splashing and contaminating subsequent processes, resulting in poor adhesion between the outer sheath and the armor layer, and problems such as bulging and peeling are likely to occur. Secondly, the surface treatment after cooling is not thorough, and the residual moisture on the sheath surface is difficult to remove quickly. Furthermore, the wiping parts are prone to dampness and the growth of impurities, which indirectly affects the cable storage stability and subsequent processing results. In order to solve the above problems, we propose a copper core cable and its production device. Summary of the Invention

[0004] The main objective of this invention is to provide a copper core cable and its production apparatus, which can effectively solve the problems in the background art.

[0005] To achieve the above objectives, the technical solution adopted by the present invention is as follows: A copper core cable and its production apparatus include an operating panel. Two first fixed plates are disposed on the top sidewall of the operating panel, and a transmission rod is rotatably connected between the two first fixed plates. Two first gears are disposed on the outer sidewall of the transmission rod. A cleaning mechanism for grinding and cleaning the surface of the cable's steel wire armor layer is disposed on the sidewall of the operating panel. The cleaning mechanism includes two first bases disposed on the top sidewall of the operating panel, and a common first sleeve disposed on the sidewall of the two first bases. An extrusion machine for attaching a protective sleeve to the cable is disposed on the top sidewall of the operating panel. A cooling mechanism for cooling the protective sleeve is disposed on the sidewall of the operating panel.

[0006] Preferably, a first internal gear is rotatably connected to the inner sidewall of the first sleeve, and a plurality of first electric telescopic rods are provided on the inner sidewall of the first internal gear. Each telescopic end of the plurality of first electric telescopic rods is provided with a grinding plate. Two first slots are opened on the inner sidewall of the first sleeve, and the first slots are connected to the interior of two first bases. A first air pump is provided on the inner sidewall of each of the two first bases. A slag collection box is provided on the bottom sidewall of the operation plate, a third air pump is provided on the sidewall of the slag collection box, and a drawer is provided at one end of the slag collection box.

[0007] Preferably, a second fixing plate is provided on the top side wall of the operation panel, a first motor is provided on one side wall of the second fixing plate, a rotating shaft is provided at the output end of the first motor, a second gear is provided on the outer side wall of the rotating shaft, the outer side wall of the second gear meshes with the outer side wall of the first internal gear, a fifth gear is provided at the other end of the rotating shaft, a third fixing plate is rotatably connected to the other end of the fifth gear, the bottom end of the third fixing plate is fixedly connected to the top of the operation panel, two reciprocating threaded rods are rotatably connected to the side wall of the first base, a fourth gear is provided at the other end of each of the two reciprocating threaded rods, a first chain is drivenly connected to the outer side wall of one of the first gears and the outer side wall of the fourth gear, a fourth fixing plate is rotatably connected to the other end of the fourth gear, and the bottom end of the fourth fixing plate is fixedly connected to the top of the operation panel.

[0008] Preferably, the top sidewall of the operating panel is provided with two second bases, one sidewall of each of the two second bases is provided with the same second sleeve, the outer sidewall of the second sleeve is provided with two rubber baffles, the inner sidewall of the second sleeve is rotatably connected with a second internal gear, the inner sidewall of the second internal gear is provided with multiple cleaning strips, the inside of the second sleeve is provided with a second slot, the inner sidewall of the second sleeve is provided with multiple air nozzles, the top sidewall of the second sleeve is provided with a second air pump, the output end of the second air pump is fixedly connected to the second slot, and the second base is rotatably connected to the outer sidewall of the reciprocating threaded rod.

[0009] Preferably, the second sleeve is further provided with a third slot, and the inner sidewall of the second sleeve is provided with multiple holes that communicate with the third slot. The bottom sidewalls of the two second bases are provided with sliding plates, and the top sidewall of the operating plate is provided with a sliding groove. The bottom end of the third slot passes through the sliding plate and the second base to provide two fourth slots. The inner sidewalls of the two fourth slots are provided with transport pipes, and the other end of the transport pipes is fixedly connected to the output end of the third air pump.

[0010] Preferably, the outer wall of the rotating shaft is provided with two retaining strips and two limiting plates. The rotating shaft is slidably connected to the outer walls of the two retaining strips with a third gear. The outer wall of the third gear meshes with the outer wall of the second inner gear. The outer walls of the two fourth gears mesh with the outer walls of the fifth gear.

[0011] Preferably, the cooling mechanism includes a first support plate fixedly connected to the top side wall of the operating plate, a second support plate provided on one side wall of the first support plate, a cooling ring rotatably connected to the inner side wall of the second support plate, a sixth gear provided on the outer side wall of the cooling ring, and a second chain drivingly connected to the outer side wall of the other first gear and the outer side wall of the sixth gear.

[0012] Preferably, the inner wall of the cooling ring is provided with multiple cold water nozzles, the side wall of the second support plate is provided with a fourth support plate, the bottom end of the fourth support plate passes through the operating plate and has a fifth slot, the bottom end of the operating plate is provided with a cooling box, one end of the cooling box is provided with a water pump, the output end of the water pump is provided with a water supply pipe, and the other end of the water supply pipe is fixedly connected to the cooling ring.

[0013] Preferably, the cooling mechanism further includes a plurality of third support plates disposed on the top side wall of the operating plate, a fourth internal gear rotatably connected between the plurality of third support plates, a third electric telescopic rod disposed on the bottom side wall of the operating plate, a connecting plate disposed on the telescopic end of the third electric telescopic rod, a fourth motor disposed on one side wall of the connecting plate, a rotating shaft disposed on the output end of the fourth motor, and two seventh gears disposed on the outer side wall of the rotating shaft, the outer side wall of the seventh gear meshing with the outer side wall of the fourth internal gear.

[0014] Preferably, a fourth electric telescopic rod is provided on the inner wall of the water pump, a support frame is provided at the telescopic end of the fourth electric telescopic rod, a third motor is provided on one side wall of the support frame, a rotating block is provided at the output end of the third motor, wiping plates are provided at both the upper and lower ends of the rotating block, a second electric telescopic rod is provided on the inner wall of the support frame, a drying box is provided at the telescopic end of the second electric telescopic rod, and a drying component is provided on the inner wall of the drying box.

[0015] Compared with the prior art, the present invention has the following beneficial effects: 1. This copper core cable and its production device first adjust the grinding plate to match the cable diameter via a first electric telescopic rod, then start the first motor to drive the first internal gear to rotate the grinding plate 360 ​​degrees for grinding. Compared with traditional fixed grinding, it can remove rust and burrs from the surface of the steel wire armor layer in all directions, avoiding gaps in the sheath bonding caused by rust points. Subsequently, the reciprocating threaded rod drives the second sleeve to move back and forth, and the cleaning bar penetrates into the gap of the steel wire twisting to clean. With the help of the second air pump, high-pressure air blows the debris to the third slot. Finally, the debris is sucked into the slag collection box through the third air pump and the transport pipe. This not only avoids debris splashing and contaminating the subsequent extrusion process, but also prevents residual debris from causing electrochemical corrosion of the armor layer in the highly corrosive environment of the seabed, thus extending the service life of the cable.

[0016] 2. This copper core cable and its production device, the transmission rod drives the cooling ring to rotate through the second chain, and the cold water nozzle sprays the sheath surface without dead angles. Compared with the traditional fixed spraying, this step makes the temperature difference on the sheath surface smaller, completely eliminates the internal stress caused by uneven cooling, and avoids the sheath cracking after long-term service. Then, the fourth electric telescopic rod adjusts the wiping plate to fit the sheath, and the fourth motor drives the fourth internal gear to drive the wiping plate to rotate and wipe away the water. The two sets of wiping plates work alternately. The wet wiping plate is dried in time by the drying box drying component, thereby solving the problems of low efficiency and unstable cleanliness of traditional manual wiping. It not only ensures the clarity of subsequent printing, but also avoids the mold growth of the sheath caused by moisture residue, and improves the stability of cable winding and storage. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a partial cross-sectional view of the cleaning mechanism of the present invention; Figure 3 This is a second partial cross-sectional view of the cleaning mechanism of the present invention; Figure 4 This is a third partial cross-sectional view of the cleaning mechanism of the present invention; Figure 5 This is a partial structural diagram of the cooling mechanism of the present invention; Figure 6 This is a partial cross-sectional view of the cooling mechanism of the present invention; Figure 7 This is a second partial structural schematic diagram of the cooling mechanism of the present invention; Figure 8 This is a partial structural schematic diagram of the cooling mechanism of the present invention, shown in Figure 3.

[0018] In the diagram: 1. Control panel; 12. First fixed plate; 13. First gear; 14. First chain; 15. Second chain; 16. Transmission rod; 2. Cleaning mechanism; 3. Extruder; 4. Cooling mechanism; 21. First base; 22. First sleeve; 23. First internal gear; 24. First electric telescopic rod; 25. Grinding plate; 26. Slag suction hole; 27. First slot; 28. First air pump; 29. ​​Second fixed plate; 201 202. First motor; 203. Rotating shaft; 204. Second gear; 205. Slag collection box; 206. Second base; 207. Second sleeve; 208. Second internal gear; 209. Cleaning bar; 210. Second slot; 211. Air nozzle; 212. Third slot; 213. Fourth slot; 214. Transport pipe; 215. Limiting plate; 216. Locking strip; 217. Third gear; 218. Third fixing plate; 219. 8. Fourth fixing plate; 219. Fourth gear; 220. Rubber baffle; 221. Second air pump; 222. Fifth gear; 223. Reciprocating threaded rod; 224. Slide plate; 225. Third air pump; 226. Slide groove; 41. First support plate; 42. Second support plate; 43. Sixth gear; 44. Third support plate; 45. Cooling ring; 46. Cold water nozzle; 47. Fourth support plate; 48. Fifth slot; 49. Cooling box; 401, water pump; 402, water pipe; 403, fourth internal gear; 404, support frame; 405, third motor; 406, rotating block; 407, wiping plate; 408, second electric telescopic rod; 409, drying box; 410, drying assembly; 411, seventh gear; 412, third electric telescopic rod; 413, connecting plate; 414, fourth motor; 415, rotating shaft; 416, fourth electric telescopic rod. Detailed Implementation

[0019] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments.

[0020] like Figure 1 - Figure 8 As shown, a copper core cable and its production apparatus include an operating plate 1. Two first fixed plates 12 are provided on the top side wall of the operating plate 1. A transmission rod 16 is rotatably connected between the two first fixed plates 12. Two first gears 13 are provided on the outer side wall of the transmission rod 16. A cleaning mechanism 2 is provided on the side wall of the operating plate 1 for grinding and cleaning the surface of the steel wire armor layer of the cable. The cleaning mechanism 2 includes two first bases 21 provided on the top side wall of the operating plate 1. The same first sleeve 22 is provided on the side wall of the two first bases 21. An extruder 3 is provided on the top side wall of the operating plate 1 for adding a protective sleeve to the cable. A cooling mechanism 4 is provided on the side wall of the operating plate 1 for cooling the protective sleeve.

[0021] In this embodiment, a first internal gear 23 is rotatably connected to the inner wall of the first sleeve 22. Multiple first electric telescopic rods 24 are provided on the inner wall of the first internal gear 23. Each telescopic end of the multiple first electric telescopic rods 24 is provided with a grinding plate 25. Two first slots 27 are opened on the inner wall of the first sleeve 22, and both first slots 27 communicate with the interior of two first bases 21. A first air pump 28 is provided on the inner wall of each of the two first bases 21. A slag collection box 204 is provided on the bottom side wall of the operating plate 1. A third air pump 225 is provided on the side wall of the slag collection box 204. A drawer is provided at one end of the slag collection box 204. A second fixing plate 29 is provided on the top side wall of the operating plate 1. A first motor 201 is provided on one side wall of the second fixing plate 29. A rotating shaft is provided at the output end of the first motor 201. 202. A second gear 203 is provided on the outer wall of the rotating shaft 202. The outer wall of the second gear 203 meshes with the outer wall of the first internal gear 23. A fifth gear 222 is provided on the other end of the rotating shaft 202. A third fixed plate 217 is rotatably connected to the other end of the fifth gear 222. The bottom end of the third fixed plate 217 is fixedly connected to the top end of the operating plate 1. Two reciprocating threaded rods 223 are rotatably connected to the side wall of the first base 21. A fourth gear 219 is provided on the other end of each of the two reciprocating threaded rods 223. A first chain 14 is drivenly connected to the outer wall of one of the first gears 13 and the outer wall of the fourth gear 219. A fourth fixed plate 218 is rotatably connected to the other end of the fourth gear 219. The bottom end of the fourth fixed plate 218 is fixedly connected to the top end of the operating plate 1. Two second bases 205 are provided on the end sidewall. A second sleeve 206 is provided on one sidewall of each of the two second bases 205. Two rubber baffles 220 are provided on the outer sidewall of the second sleeve 206. A second internal gear 207 is rotatably connected to the inner sidewall of the second sleeve 206. Multiple cleaning strips 208 are provided on the inner sidewall of the second internal gear 207. A second slot 209 is opened inside the second sleeve 206. Multiple air nozzles 210 are provided on the inner sidewall of the second sleeve 206. A second air pump 221 is provided on the top sidewall of the second sleeve 206. The output end of the second air pump 221 is fixedly connected to the second slot 209. The second base 205 is rotatably connected to the outer sidewall of the reciprocating threaded rod 223. A third slot 211 is also opened inside the second sleeve 206. Multiple holes are provided on the inner sidewall of the 206, which communicate with the third slot 211. Slide plates 224 are provided on the bottom sidewalls of both second bases 205. A sliding groove 226 is provided on the top sidewall of the operating plate 1. Two fourth slots 212 are provided at the bottom of the third slot 211, passing through the slide plates 224 and the second bases 205. Transport pipes 213 are provided on the inner sidewalls of both fourth slots 212. The other end of the transport pipes 213 is fixedly connected to the output end of the third air pump 225. Two retaining strips 215 and two limiting plates 214 are provided on the outer sidewall of the rotating shaft 202. A third gear 216 is slidably connected between the rotating shaft 202 and the outer sidewalls of the two retaining strips 215. The outer sidewall of the third gear 216 meshes with the outer sidewall of the second internal gear 207.The outer walls of both fourth gears 219 mesh with the outer wall of the fifth gear 222.

[0022] Specifically, the extension length of the grinding plate 25 is adjusted by the first electric telescopic rod 24 to leave a grinding gap with the surface of the steel wire armor layer. Then, the first motor 201 is started, and its output end drives the rotating shaft 202 and the second gear 203 to rotate. Through gear meshing, the first internal gear 23 inside the first sleeve 22 is driven to rotate. The first internal gear 23 drives multiple first electric telescopic rods 24 and grinding plates 25 to rotate around the armored cable core, grinding away surface rust, burrs and protrusions. At the same time, the first air pump 28 is started. The airflow passes through the first slot 27 and multiple slag suction holes 26 to suck the debris into the slag collection box 204. The fifth gear 222 at the other end of the rotating shaft 202 meshes with two fourth gears 219, driving the reciprocating threaded rod 223 to rotate, causing the second base 205 to rotate. The bottom slide plate 224 moves back and forth along the slide groove 226. At the same time, the third gear 216 drives the second internal gear 207 to rotate, which drives the cleaning bar 208 to repeatedly clean the surface of the armor layer. Simultaneously, the second air pump 221 is started, and high-pressure airflow is sprayed obliquely from multiple air nozzles 210 through the second slot 209, blowing the surface residues cleaned down towards multiple holes inside the second sleeve 206. The rubber baffle 220 blocks the debris from splashing. The debris falls into the third slot 211 through multiple holes inside the second sleeve 206, and then through the fourth slot 212 and the transport pipe 213, and is sucked into the slag collection box 204 by the third air pump 225 for storage. The pre-treated armored cable core enters the mold cavity of the extruder 3 at a uniform speed. The extruder 3 evenly covers the surface of the armor layer with the molten outer sheath material.

[0023] In this embodiment, the cooling mechanism 4 includes a first support plate 41 fixedly connected to the top side wall of the operating plate 1, a second support plate 42 provided on one side wall of the first support plate 41, a cooling ring 45 rotatably connected to the inner side wall of the second support plate 42, a sixth gear 43 provided on the outer side wall of the cooling ring 45, a second chain 15 drivingly connected to the outer side wall of another first gear 13 and the outer side wall of the sixth gear 43, a plurality of cold water nozzles 46 provided on the inner side wall of the cooling ring 45, a fourth support plate 47 provided on one side wall of the second support plate 42, a fifth slot 48 opened through the bottom end of the fourth support plate 47 through the operating plate 1, a cooling box 49 provided at the bottom end of the operating plate 1, a water pump 401 provided at one end of the cooling box 49, a water supply pipe 402 provided at the output end of the water pump 401, and the other end of the water supply pipe 402 fixedly connected to the cooling ring 45. The cooling mechanism 4 also includes a plurality of third support plates 44 provided on the top side wall of the operating plate 1, and a fourth chain 46 rotatably connected between the plurality of third support plates 44. The internal gear 403 has a third electric telescopic rod 412 on the bottom side wall of the operating panel 1. The telescopic end of the third electric telescopic rod 412 has a connecting plate 413. The side wall of the connecting plate 413 has a fourth motor 414. The output end of the fourth motor 414 has a rotating shaft 415. The outer wall of the rotating shaft 415 has two seventh gears 411. The outer wall of the seventh gears 411 meshes with the outer wall of the fourth internal gear 403. The inner wall of the water pump 401 has a fourth electric telescopic rod 416. The telescopic end of the fourth electric telescopic rod 416 has a support frame 404. The side wall of the support frame 404 has a third motor 405. The output end of the third motor 405 has a rotating block 406. The upper and lower ends of the rotating block 406 are equipped with wiping plates 407. The inner wall of the support frame 404 has a second electric telescopic rod 408. The telescopic end of the second electric telescopic rod 408 has a drying box 409. The inner wall of the drying box 409 has a drying component 410.

[0024] Specifically, the other first gear 13 on the transmission rod 16 drives the sixth gear 43 to rotate via the second chain 15, causing the cooling ring 45 to rotate synchronously. At the same time, the water pump 401 is started, and the cold water in the cooling box 49 is sent into the cooling ring 45 through the water pipe 402, and is evenly sprayed onto the sheath surface through multiple cold water nozzles 46 for initial cooling and shaping. The cooling water flows back to the cooling box 49 through the fifth slot 48 for recycling. The fourth electric telescopic rod 416 in the two intersecting fourth internal gears 403 is started to operate, adjusting the position of the support frame 404 so that the wiping plate 407 fits against the sheath surface. At the same time, the fourth motor 414 is started, and its output end drives the rotating shaft 415 and the two seventh gears 411 to rotate. Through meshing, the two fourth internal gears 403 are rotated, thereby wiping away the residual moisture on the surface of the cable covered with the sheath. And when a set of wiping After the wiping plate 407 has been wiped for a period of time, the fourth electric telescopic rods 416 in the other two fourth internal gears 403 start to operate, adjust the position of the support frame 404 so that the wiping plate 407 fits against the surface of the sheath, and the fourth electric telescopic rods 416 in the other two fourth internal gears 403 start to retract. At the same time, the third motor 405 is started to drive the rotating block 406 to rotate 180 degrees. Then, the drying box 409 is pushed close to the surface of the wiping plate 407 that has just been wiped by the second electric telescopic rod 408. The drying component 410 blows hot air to dry the wet wiping plate 407. At the same time, the third electric telescopic rod 412 is started, so that the connecting plate 413 drives the fourth motor 414 and the two seventh gears 411 to move, so that the two seventh gears 411 and the other two fourth internal gears 403 rotate, and so on for repeated use.

[0025] It should be noted that this invention relates to a copper core cable and its production apparatus. The user adjusts the extension length of the grinding plate 25 using the first electric telescopic rod 24 to leave a grinding gap with the surface of the steel wire armor layer. Then, the first motor 201 is started, and its output end drives the rotating shaft 202 and the second gear 203 to rotate. Through gear meshing, the first internal gear 23 inside the first sleeve 22 is driven to rotate. The first internal gear 23 drives multiple first electric telescopic rods 24 and the grinding plate 25 to rotate around the armored cable core, grinding away surface rust, burrs, and protrusions. At the same time, the first air pump 28 is started, and the airflow passes through the first slot 27 and multiple slag suction holes 26 to suck the debris into the slag collection box 204. The fifth gear 222 at the other end of the rotating shaft 202 meshes with and drives two fourth gears 219, which in turn drive the reciprocating threaded rod 22. 3. Rotation causes the second base 205 to reciprocate along the slide groove 226 via the bottom slide plate 224. At the same time, the third gear 216 drives the second internal gear 207 to rotate, causing the cleaning strip 208 to repeatedly clean the surface of the armor layer. Simultaneously, the second air pump 221 is activated, and high-pressure airflow is sprayed obliquely from multiple air nozzles 210 through the second slot 209, blowing the surface residues cleaned down towards multiple holes inside the second sleeve 206. The rubber baffle 220 blocks the debris from splashing, and the debris falls into the third slot 211 through multiple holes inside the second sleeve 206. Then, through the fourth slot 212 and the transport pipe 213, it is sucked into the slag collection box 204 by the third air pump 225 for storage. The pre-treated armored cable core enters the mold cavity of the extruder 3 at a uniform speed. The extruder 3 evenly coats the surface of the armor layer with the molten outer sheath material.

[0026] The sheathed cable enters the cooling ring 45 area. Another first gear 13 on the transmission rod 16 drives the sixth gear 43 to rotate via the second chain 15, causing the cooling ring 45 to rotate synchronously. Simultaneously, the water pump 401 is activated, and cold water from the cooling box 49 is sent into the cooling ring 45 via the water pipe 402. Multiple cold water nozzles 46 evenly spray the sheath surface for initial cooling and shaping. The cooling water flows back to the cooling box 49 through the fifth slot 48 for recycling. The fourth electric telescopic rod 416 within the two intersecting fourth internal gears 403 is activated, adjusting the position of the support frame 404 so that the wiping plate 407 fits against the sheath surface. Simultaneously, the fourth motor 414 is activated, its output driving the rotating shaft 415 and two seventh gears 411 to rotate. This meshing drives the two fourth internal gears 403 to rotate, thereby wiping away residual moisture from the sheathed cable surface. Furthermore, when a set of wiping plates 407 wipes... After a period of time, the fourth electric telescopic rods 416 in the other two fourth internal gears 403 begin to operate, adjusting the position of the support frame 404 so that the wiping plate 407 fits against the surface of the sheath. The fourth electric telescopic rods 416 in the other two fourth internal gears 403 begin to retract. At the same time, the third motor 405 is started, driving the rotating block 406 to rotate 180 degrees. Subsequently, the drying box 409 is pushed close to the surface of the wiping plate 407 that has just been wiped by the second electric telescopic rod 408. The drying component 410 blows hot air to dry the wet wiping plate 407. At the same time, the third electric telescopic rod 412 is started, causing the connecting plate 413 to drive the fourth motor 414 and the two seventh gears 411 to move, causing the two seventh gears 411 and the other two fourth internal gears 403 to rotate. This process is repeated to prevent residual moisture and oil on the surface of the sheath after cooling, which would affect subsequent printing and packaging.

[0027] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of this invention is defined by the appended claims and their equivalents.

Claims

1. A copper core cable and its production apparatus, comprising an operation panel (1), characterized in that: The top side wall of the operating plate (1) is provided with two first fixing plates (12), and a transmission rod (16) is rotatably connected between the two first fixing plates (12). The outer side wall of the transmission rod (16) is provided with two first gears (13). The side wall of the operating plate (1) is provided with a cleaning mechanism (2) for grinding and cleaning the surface of the cable steel wire armor layer. The cleaning mechanism (2) includes two first bases (21) on the top side wall of the operating plate (1), and the side wall of the two first bases (21) is provided with the same first sleeve (22). The top side wall of the operating plate (1) is provided with an extruder (3) for adding a protective sleeve to the cable. The side wall of the operating plate (1) is provided with a cooling mechanism (4) for cooling the protective sleeve.

2. The copper core cable and its production apparatus according to claim 1, characterized in that: The inner wall of the first sleeve (22) is rotatably connected to a first internal gear (23). The inner wall of the first internal gear (23) is provided with a plurality of first electric telescopic rods (24). The telescopic ends of the plurality of first electric telescopic rods (24) are all provided with grinding plates (25). The inner wall of the first sleeve (22) has two first slots (27), and the first slots (27) are all connected to the interior of the two first bases (21). The inner walls of the two first bases (21) are all provided with first air pumps (28). The bottom side wall of the operating plate (1) is provided with a slag collection box (204). The side wall of the slag collection box (204) is provided with a third air pump (225). One end of the slag collection box (204) is provided with a drawer.

3. The copper core cable and its production apparatus according to claim 1, characterized in that: The top side wall of the operating plate (1) is provided with a second fixing plate (29), and a first motor (201) is provided on one side wall of the second fixing plate (29). The output end of the first motor (201) is provided with a rotating shaft (202). The outer side wall of the rotating shaft (202) is provided with a second gear (203). The outer side wall of the second gear (203) meshes with the outer side wall of the first internal gear (23). The other end of the rotating shaft (202) is provided with a fifth gear (222). The other end of the fifth gear (222) is rotatably connected to a third fixing plate (217). The bottom end of the third fixing plate (217) is fixedly connected to the top end of the operating plate (1). The side wall of the first base (21) is rotatably connected to two reciprocating threaded rods (223). The other end of each of the two reciprocating threaded rods (223) is provided with a fourth gear (219). The outer wall of one of the first gears (13) is connected to the outer wall of the fourth gear (219) by a first chain (14). The other end of the fourth gear (219) is rotatably connected to a fourth fixing plate (218). The bottom end of the fourth fixing plate (218) is fixedly connected to the top end of the operating plate (1).

4. The copper core cable and its production apparatus according to claim 1, characterized in that: The top side wall of the operating plate (1) is provided with two second bases (205), and one side wall of the two second bases (205) is provided with the same second sleeve (206). The outer side wall of the second sleeve (206) is provided with two rubber baffles (220). The inner side wall of the second sleeve (206) is rotatably connected with a second internal gear (207). The inner side wall of the second internal gear (207) is provided with multiple cleaning strips (208). The second sleeve (206) is provided with a second slot (209) inside. The inner side wall of the second sleeve (206) is provided with multiple air blowing nozzles (210). The top side wall of the second sleeve (206) is provided with a second air pump (221). The output end of the second air pump (221) is fixedly connected to the second slot (209). The second base (205) is rotatably connected to the outer side wall of the reciprocating threaded rod (223).

5. A copper core cable and its production apparatus according to claim 4, characterized in that: The second sleeve (206) is also provided with a third slot (211). The inner side wall of the second sleeve (206) is provided with multiple holes, which are connected to the third slot (211). The bottom side wall of the two second bases (205) is provided with a sliding plate (224). The top side wall of the operating plate (1) is provided with a sliding groove (226). The bottom end of the third slot (211) passes through the sliding plate (224) and the second base (205) and provides two fourth slots (212). The inner side wall of the two fourth slots (212) is provided with a transport pipe (213). The other end of the transport pipe (213) is fixedly connected to the output end of the third air pump (225).

6. A copper core cable and its production apparatus according to claim 3, characterized in that: The outer wall of the rotating shaft (202) is provided with two retaining strips (215) and two limiting plates (214). The rotating shaft (202) is slidably connected to the outer wall of the two retaining strips (215) with a third gear (216). The outer wall of the third gear (216) meshes with the outer wall of the second internal gear (207). The outer walls of the two fourth gears (219) mesh with the outer wall of the fifth gear (222).

7. A copper core cable and its production apparatus according to claim 1, characterized in that: The cooling mechanism (4) includes a first support plate (41) fixedly connected to the top side wall of the operating plate (1), a second support plate (42) is provided on one side wall of the first support plate (41), a cooling ring (45) is rotatably connected to the inner side wall of the second support plate (42), a sixth gear (43) is provided on the outer side wall of the cooling ring (45), and a second chain (15) is connected to the outer side wall of the other first gear (13) and the outer side wall of the sixth gear (43).

8. A copper core cable and its production apparatus according to claim 7, characterized in that: The inner wall of the cooling ring (45) is provided with multiple cold water nozzles (46), and the second support plate (42) is provided with a fourth support plate (47) on one side wall. The bottom end of the fourth support plate (47) passes through the operation plate (1) and has a fifth slot (48). The bottom end of the operation plate (1) is provided with a cooling box (49). One end of the cooling box (49) is provided with a water pump (401). The output end of the water pump (401) is provided with a water pipe (402). The other end of the water pipe (402) is fixedly connected to the cooling ring (45).

9. A copper core cable and its production apparatus according to claim 7, characterized in that: The cooling mechanism (4) also includes a plurality of third support plates (44) provided on the top side wall of the operating plate (1), and a fourth internal gear (403) rotatably connected between the plurality of third support plates (44). A third electric telescopic rod (412) is provided on the bottom side wall of the operating plate (1). A connecting plate (413) is provided at the telescopic end of the third electric telescopic rod (412). A fourth motor (414) is provided on one side wall of the connecting plate (413). A rotating shaft (415) is provided at the output end of the fourth motor (414). Two seventh gears (411) are provided on the outer side wall of the rotating shaft (415). The outer side wall of the seventh gear (411) meshes with the outer side wall of the fourth internal gear (403).

10. A copper core cable and its production apparatus according to claim 8, characterized in that: The water pump (401) is provided with a fourth electric telescopic rod (416) on its inner side wall. The telescopic end of the fourth electric telescopic rod (416) is provided with a support frame (404). A third motor (405) is provided on one side wall of the support frame (404). A rotating block (406) is provided at the output end of the third motor (405). Wiping plates (407) are provided at both the upper and lower ends of the rotating block (406). A second electric telescopic rod (408) is provided on the inner side wall of the support frame (404). A drying box (409) is provided at the telescopic end of the second electric telescopic rod (408). A drying assembly (410) is provided on the inner side wall of the drying box (409).