Cable processing cooling device

By designing a device for moving cables and cooling water in the cable processing cooling device, the problem of low cooling efficiency caused by the increase in cooling water temperature is solved, and a more efficient cooling effect is achieved.

CN222914479UActive Publication Date: 2025-05-27四川金力电缆集团有限公司
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202520677271.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-11
Publication Date
2025-05-27
Estimated Expiration
2035-04-11

AI Technical Summary

Technical Problem

In the existing cable processing cooling device, the temperature of the cooling water gradually increases, resulting in poor cooling effect and low cooling efficiency.

Method used

A cable processing cooling device is designed. By setting a support plate and a threaded sleeve on the cooling pool, the screw and the first guide wheel are driven to move, so that the movement path of the cable is constantly changing, driving the cooling water flows, and ensuring that the cable is exposed to low-temperature cooling water.

Benefits of technology

By changing the movement path of the cable and the flow of cooling water, the cooling effect of the cooling device is significantly improved and the cooling performance of the cable during processing is improved.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN222914479U_ABST
    Figure CN222914479U_ABST
Patent Text Reader

Abstract

The utility model relates to a cable processing cooling device, and belongs to the technical field of cable processing, and the cable processing cooling device comprises a cooling pool, the cooling pool is filled with cooling water, the cooling pool is provided with a traction assembly used for pulling a cable to move, the cooling pool is fixedly provided with a supporting plate, the supporting plate is located above the cooling water, and the supporting plate is provided with an air inlet. The length direction of the supporting plate is perpendicular to the length direction of the cooling pond, a threaded sleeve is rotationally connected to the supporting plate and is vertically arranged, a threaded rod is connected to the threaded sleeve in a threaded mode, the bottom end of the threaded rod penetrates through the supporting plate, the threaded rod is slidably connected with the supporting plate, and a guiding assembly used for guiding the threaded rod to move in the vertical direction is arranged on the supporting plate. And a first guide wheel is arranged below the screw rod, a connecting assembly used for connecting the first guide wheel and the screw rod is arranged at the bottom end of the screw rod, a first rotating assembly used for driving the threaded sleeve to rotate in the forward direction or the reverse direction is arranged at the supporting plate, and the cooling effect of the cooling device is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present application relates to the technical field of cable processing, and in particular to a cable processing cooling device. Background Art

[0002] Cables are made of one or more mutually insulated conductors and an outer insulating protective layer. They are wires that transmit electricity or information from one place to another. As an important component of the cable, the insulation layer not only has an isolation function but also plays a role in corrosion and moisture resistance during use. The cable processing includes the manufacture of the cable core and the manufacture of the sheath. During the manufacturing process, the cable core and the sheath are generally formed together by a high-temperature extruder. Therefore, after extrusion, a certain degree of cooling is required.

[0003] The existing cooling device for cable processing mainly includes a cooling pool and a traction assembly. The cooling pool is filled with cooling water. The traction assembly is arranged on the cooling pool. A bracket is fixedly arranged in the cooling pool. A first guide wheel is rotatably connected to the bracket. Both the bracket and the first guide wheel are in the cooling water. After extrusion is completed, the electric cable passes through the bottom of the first guide wheel under the traction of the traction assembly. The first guide wheel enables the cable to sink into the cooling pool, and the cooling water cools the cable at the same time.

[0004] With regard to the above-mentioned related technologies, since the positions of the bracket and the first guide wheel in the cooling pool remain fixed, the path of the cable moving in the cooling water remains unchanged. During the continuous cooling of the cable, the temperature of the cooling water around the cable will gradually increase, resulting in the cooling water being unable to quickly cool the cable, thereby resulting in the defect of poor cooling effect of the cooling device. Utility Model Content

[0005] In order to improve the cooling effect of the cooling device, the present application provides a cable processing cooling device.

[0006] The present application provides a cable processing cooling device that adopts the following technical solution:

[0007] A cable processing cooling device comprises a cooling pool, the cooling pool is filled with cooling water, and a traction assembly for pulling the cable to move is arranged on the cooling pool, characterized in that: a support plate is fixedly provided on the cooling pool, the support plate is above the cooling water, the length direction of the support plate is perpendicular to the length direction of the cooling pool, a threaded sleeve is rotatably connected to the support plate, the threaded sleeve is vertically arranged, a screw is threadedly connected to the threaded sleeve, the bottom end of the screw passes through the support plate, the screw and the support plate are slidably connected, a guiding assembly for guiding the screw to move in a vertical direction is arranged at the support plate, a first guide wheel is arranged below the screw, a connecting assembly for connecting the first guide wheel and the screw is arranged at the bottom end of the screw, and a first rotating assembly for driving the threaded sleeve to rotate forward or reversely is arranged at the support plate.

[0008] By adopting the above technical solution, the cable passes through the first guide wheel and the connecting component, the traction component drives the cable to move, and at the same time the first rotating component drives the threaded sleeve to rotate forward or reversely, the threaded sleeve is under the guide component, the threaded sleeve drives the screw to move in the vertical direction, the screw drives the first guide wheel to move through the connecting component, and the first guide wheel drives the cable to move up and down, so that the moving path of the cable is constantly changing, and at the same time, during the movement of the cable, the cooling water is driven to flow, so that the cable can contact the low-temperature cooling water, thereby improving the cooling effect of the cooling device.

[0009] Optionally, the traction assembly includes a motor and a rotating wheel. The motor is arranged at the end of the cooling pool. The motor and the cooling pool are fixedly connected. The output shaft of the motor and the rotating wheel are fixedly connected. The rotating wheel is provided with a guide groove for guiding the cable.

[0010] By adopting the above technical solution, the cable is wound into the guide groove of the rotating wheel, and the motor is started. The motor drives the rotating wheel to rotate. During the rotation of the rotating wheel, the cable is driven to move, so that the traction component realizes the function of traction cable movement.

[0011] Optionally, the bottom end of the screw rod is fixedly connected to a fixed plate, and the connecting assembly includes a connecting plate and a connecting rod. Two connecting plates are provided, and the two connecting plates are fixedly connected to the fixed plate. The connecting plates are parallel to each other, and the length direction of the connecting plates is perpendicular to the length direction of the support plate. The connecting rod is fixed between the two connecting plates, and the first guide wheel is between the two connecting plates. The connecting rod passes through the first guide wheel, and the connecting rod and the first guide wheel are rotationally connected.

[0012] By adopting the above technical solution, the cable is passed between the first guide wheel and the fixed plate. During the movement of the screw, the screw drives the fixed plate to move, the fixed plate drives the connecting plate to move, the connecting plate drives the connecting rod to move, and the connecting rod drives the first guide wheel to move. The first guide wheel and the fixed plate guide the cable, so that the cable moves with the first guide wheel, so that the connecting assembly realizes the connection between the first guide wheel and the screw.

[0013] Optionally, the first rotating assembly includes a first gear and a second gear, both of which are arranged on a threaded sleeve, the threaded sleeve passes through the first gear and the second gear, and both the first gear and the second gear are fixedly connected to the threaded sleeve, the first rotating rod is rotatably connected to the support plate, the first rotating rod is fixedly provided with a first half gear and a first bevel gear, the first half gear and the first gear are meshed and matched, an auxiliary plate is provided above the support plate, one end of the auxiliary plate is fixedly connected to a side wall of the cooling pool, the second rotating rod is rotatably connected to the auxiliary plate, the second rotating rod is fixedly provided with a second half gear and a second bevel gear, the second half gear and the second gear are meshed and matched, and one side wall of the cooling pool is rotatably connected to a third rotating rod, one end of the third rotating rod is fixedly provided with a third bevel gear, both the first bevel gear and the second bevel gear are meshed with the third bevel gear, the first bevel gear and the second bevel gear are respectively located on opposite sides of the third bevel gear, and a linkage assembly for linkage with the motor is provided at one end of the third rotating rod away from the third bevel gear.

[0014] By adopting the above technical solution, the linkage assembly drives the third rotating rod to rotate, the third rotating rod drives the third bevel gear to rotate, the third bevel gear drives the first bevel gear and the second bevel gear to rotate, the first bevel gear drives the first rotating rod to rotate, the first rotating rod drives the first half gear to rotate, the second bevel gear drives the second rotating rod to rotate, and the second rotating rod drives the second half gear to rotate. When the first half gear and the first gear are meshed, the second half gear and the second gear are in a disengaged state, the first half gear drives the first gear to rotate, and the first gear drives the threaded sleeve to rotate. When the first half gear and the first gear are disengaged, the second half gear and the second gear are meshed and drive the second gear to rotate, and the second gear drives the threaded sleeve to reverse, so that the first rotating assembly realizes the function of driving the threaded sleeve to rotate forward or reverse.

[0015] Optionally, the linkage assembly includes a first sprocket, a second sprocket and a chain, the first sprocket is arranged on the output shaft of the motor, the output shaft of the motor passes through the first sprocket, the motor and the first sprocket are fixedly connected, one end of the third rotating rod is fixedly connected to the second sprocket, and the chain is sleeved outside the first sprocket and the second sprocket.

[0016] By adopting the above technical solution, the motor drives the first sprocket to rotate, the first sprocket drives the chain to rotate, the chain drives the second sprocket to rotate, and the second sprocket drives the third rotating rod to rotate, so that the linkage component realizes the linkage between the motor and the third rotating rod.

[0017] Optionally, the guide assembly includes a guide plate and a telescopic rod, the guide plate and the upper end of the screw rod are fixedly connected, the telescopic rod is fixed between the guide plate and the support plate, and the telescopic rod is composed of multiple rod bodies that are sleeved and slidably connected to each other.

[0018] By adopting the above technical solution, the verticality of the telescopic rod makes it difficult for the guide plate to rotate, and the guide plate makes it difficult for the screw to rotate. During the rotation of the threaded sleeve, the threaded sleeve moves upward or downward, the threaded sleeve drives the guide plate to move, and the telescopic rod contracts or extends, so that the guide component realizes the guiding effect on the screw.

[0019] Optionally, a fourth rotating rod is rotatably connected in the cooling pool, the length direction of the fourth rotating rod is parallel to the length direction of the cooling pool, a plurality of sailboards are fixed on the fourth rotating rod, and the plurality of sailboards are arranged in sequence along the circumferential side wall of the fourth rotating rod, and a second rotating component for driving the fourth rotating rod to rotate is provided at the fixed plate.

[0020] By adopting the above technical solution, when the fixed plate moves upward or downward, the second rotating assembly drives the fourth rotating rod to rotate, the fourth rotating rod drives the sailboard to make a circular motion, and the sailboard drives the cooling water in the cooling pool to move, so that the cooling water around the cable is always changing, thereby improving the effect of cooling the cable.

[0021] Optionally, a fixed rod is fixedly connected to the side of the fixed plate facing away from the first guide wheel, and the second rotating assembly includes a third gear and a rack, the third gear is arranged on a fourth rotating rod, the fourth rotating rod passes through the third gear and is fixedly connected to the third gear, the rack is fixedly connected to one end of the fixed rod away from the fixed plate, the rack is vertically arranged, and the rack is meshed with the third gear.

[0022] By adopting the above technical solution, during the movement of the fixed plate, the fixed plate drives the fixed rod to move, the fixed rod drives the rack to move, the rack drives the third gear to rotate, and the third gear drives the fourth rotating rod to rotate, so that the second rotating assembly realizes the function of driving the fourth rotating rod to rotate.

[0023] Optionally, a second guide wheel is arranged above the first guide wheel, the second guide wheel is located between two connecting plates, and the second guide wheel is rotatably connected to the connecting plates on both sides.

[0024] By adopting the above technical solution, the cable is passed between the first guide wheel and the second guide wheel. When the traction component drives the cable to move, the cable drives the first guide wheel and the second guide wheel to rotate. The setting of the first guide wheel and the second guide wheel reduces the friction force on the cable during movement, thereby making the cable less prone to wear.

[0025] In summary, the present application includes at least one of the following beneficial technical effects:

[0026] 1. The first rotating assembly drives the threaded sleeve to rotate forward or backward. Under the guidance of the guide assembly, the threaded sleeve drives the screw rod to move upward or downward. The screw rod drives the first guide wheel to move through the connecting assembly. The first guide wheel drives the cable to move, changing the path of the cable, thereby enabling the cable to contact with low-temperature cooling water, thereby improving the cooling effect of the cooling device;

[0027] 2. The linkage between the third rotating rod and the motor is realized through the linkage assembly, and there is no need to provide power for the rotation of the third rotating rod separately, thus saving resources;

[0028] 3. The sailboard is driven to rotate by the fourth rotating rod, and the sailboard drives the cooling water to turn over, so that the cooling water around the cable is always low-temperature cooling water, thereby improving the cooling effect of the cooling device. BRIEF DESCRIPTION OF THE DRAWINGS

[0029] Figure 1 It is a structural schematic diagram of a cable processing cooling device according to an embodiment of the present application;

[0030] Figure 2 is a schematic diagram of the structure of the guide assembly in the embodiment of the present application;

[0031] Figure 3 It is a structural cross-sectional view of the connection component in the embodiment of the present application.

[0032] In the figure, 1, cooling pool; 11, auxiliary plate; 12, second rotating rod; 13, second half gear; 14, second bevel gear; 15, third rotating rod; 16, third bevel gear; 2, traction assembly; 21, motor; 22, rotating wheel; 221, guide groove; 3, support plate; 31, threaded sleeve; 32, screw; 33, first guide wheel; 34, fixed plate; 35, first rotating rod; 36, first half gear; 37, first bevel gear; 38, fixed rod; 39, second guide wheel; 4, guide assembly; 41, guide plate; 42, telescopic rod; 5, connecting assembly; 51, connecting plate; 52, connecting rod; 6, first rotating assembly; 61, first gear; 62, second gear; 7, linkage assembly; 71, first sprocket; 72, second sprocket; 73, chain; 8, fourth rotating rod; 81, sailboard; 9, second rotating assembly; 91, third gear; 92, rack. DETAILED DESCRIPTION

[0033] The following is combined with Figure 1-Figure 3 This application is described in further detail.

[0034] An embodiment of the present application discloses a cable processing cooling device.

[0035] refer to Figure 1A cable processing cooling device includes a cooling pool 1 filled with coolant. A traction assembly 2 for traction of cables is arranged at one end of the cooling pool 1. The traction assembly 2 includes a motor 21 and a rotating wheel 22. The rotating wheel 22 has a guide groove 221 for guiding the cable along the circumferential side wall.

[0036] The cable enters the cooling water from the end of the cooling pool 1 away from the motor 21. The cooling water cools the cable. At the same time, the cable is coiled around the wheel 22 for one circle. The cable's own weight makes the cable and the wall of the guide groove 221 of the wheel 22 in close contact. The motor 21 is started, and the motor 21 drives the wheel 22 to rotate. The wheel 22 drives the cable out of the cooling water, thereby completing the cooling of the cable.

[0037] refer to Figure 1 , Figure 2 and Figure 3 A support plate 3 is provided in the cooling pool 1, and the support plate 3 is horizontally arranged. The two ends of the support plate 3 are fixedly connected to the inner walls of the opposite sides of the cooling pool 1 respectively. A threaded sleeve 31 is rotatably connected to the support plate 3, and the threaded sleeve 31 is perpendicular to the support plate 3. A screw 32 is threadedly connected to the threaded sleeve 31, and the screw 32 penetrates the support plate 3 and is slidably connected to the support plate 3. The pitch of the screw 32 is 10 cm. A fixed plate 34 is fixed to the lower surface of the support plate 3, and the fixed plate 34 is parallel to the support plate 3. A first guide wheel 33 and a second guide wheel 39 are provided directly below the fixed plate 34, and the second guide wheel 39 is provided directly above the first guide wheel 33. A connecting component 5 for connecting the first guide wheel 33 is provided at the fixed plate 34, and a first rotating component 6 for driving the threaded sleeve 31 to rotate forward or reversely is provided on the support plate 3. A guide component 4 for guiding the screw 32 to move in the vertical direction is provided on the support plate 3.

[0038] The connecting assembly 5 includes a connecting plate 51 and a connecting rod 52. Two connecting plates 51 are provided. The two connecting plates 51 are respectively fixedly connected to the side of the fixing plate 34 away from the screw rod 32. The connecting plate 51 is perpendicular to the fixing plate 34. The two connecting plates 51 are parallel to each other. The first guide wheel 33 and the second guide wheel 39 are both located between the two connecting plates 51. The opposite sides of the second guide wheel 39 are respectively rotatably connected to the two connecting plates 51. The connecting rod 52 is fixed between the two connecting plates 51. The connecting rod 52 passes through the first guide wheel 33 and is rotatably connected to the first guide wheel 33.

[0039] The cable passes between the first guide wheel 33 and the second guide wheel 39, and the cable is between the two connecting plates 51. The first rotating component 6 drives the threaded sleeve 31 to rotate forward or reversely. Under the guidance of the guide component 4, the threaded sleeve 31 drives the screw 32 to move upward or downward, the screw 32 drives the fixed plate 34 to move, the fixed plate 34 drives the connecting plate 51 to move, the connecting plate 51 drives the connecting rod 52 to move, the connecting rod 52 drives the first guide wheel 33 to move, and at the same time the connecting plate 51 drives the second guide wheel 39 to move, the first guide wheel 33 and the second guide wheel 39 drive the cable to move upward or downward, thereby changing the cable movement path. At the same time, in the process of the traction component 2 driving the cable to move, the cable drives the first guide wheel 33 and the second guide wheel 39 to rotate, and the first guide wheel 33 and the second guide wheel 39 reduce the wear of the cable.

[0040] refer to Figure 1 and Figure 2 The first rotating assembly 6 includes a first gear 61 and a second gear 62, both of which are arranged on the threaded sleeve 31, the threaded sleeve 31 passes through the first gear 61 and the second gear 62, the first gear 61 and the second gear 62 are fixedly connected to the threaded sleeve 31, the first gear 61 is below the second gear 62, a first rotating rod 35 is rotatably connected to the support plate 3, the length direction of the first rotating rod 35 is perpendicular to the support plate 3, a first half gear 36 and a first bevel gear 37 are fixedly provided on the first rotating rod 35, the first half gear 36 is below the first bevel gear 37, the first half gear 36 and the first gear 61 correspond and mesh with each other, an auxiliary plate 11 is fixedly provided on the side wall of the cooling pool 1, the auxiliary plate 11 is above the support plate 3, the auxiliary plate 11 is parallel to the support plate 3, the lower surface of the auxiliary plate 11 is rotatably connected to the second rotating rod 12, the second rotating The length direction of the rod 12 is perpendicular to the auxiliary plate 11, and the second half gear 13 and the second bevel gear 14 are fixedly provided on the second rotating rod 12, and the second half gear 13 is located above the second bevel gear 14, and the second half gear 13 corresponds to and meshes with the second gear 62. A third bevel gear 16 is provided at the first bevel gear 37, and the first bevel gear 37 and the second bevel gear 14 are both meshed with the third bevel gear 16, and the second bevel gear 14 and the first bevel gear 37 are respectively located on the upper and lower sides of the third bevel gear 16, and a third rotating rod 15 is fixedly provided on one side of the third bevel gear 16, and the length direction of the third rotating rod 15 is parallel to the support plate 3, and one end of the third rotating rod 15 away from the third bevel gear 16 passes through a side wall of the cooling pool 1, and the third rotating rod 15 is rotatably connected to the cooling pool 1, and one end of the third rotating rod 15 away from the third bevel gear 16 is provided with a linkage assembly 7 for linkage with the motor 21.

[0041] The linkage assembly 7 includes a first sprocket 71, a second sprocket 72 and a chain 73. The output shaft of the motor 21 passes through the first sprocket 71 and is fixedly connected to the first sprocket 71. The second sprocket 72 is fixedly connected to an end of the third rotating rod 15 away from the third bevel gear 16. The chain 73 is sleeved outside the first sprocket 71 and the second sprocket 72. Both the first sprocket 71 and the second sprocket 72 are meshed with the chain 73.

[0042] The output shaft of the motor 21 drives the first sprocket 71 to rotate, the first sprocket 71 drives the chain 73 to rotate, the chain 73 drives the second sprocket 72 to rotate, the second sprocket 72 drives the third rotating rod 15 to rotate, the third rotating rod 15 drives the third bevel gear 16 to rotate, the third bevel gear 16 drives the first bevel gear 37 and the second bevel gear 14 to rotate, the first bevel gear 37 drives the first rotating rod 35 to rotate, the first rotating rod 35 drives the first half gear 36 to rotate, the second bevel gear 14 drives the second rotating rod 12 to rotate, and the second rotating rod 12 drives the second half gear 1 3 rotates, when the first half gear 36 is meshed with the first gear 61, the second half gear 13 and the second gear 62 are in a disengaged state, the first half gear 36 drives the first gear 61 to rotate, and the first gear 61 drives the threaded sleeve 31 to rotate forwardly, when the first gear 61 and the first half gear 36 are disengaged, the second half gear 13 and the second gear 62 are meshed, the second half gear 13 drives the second gear 62 to rotate, and the second gear 62 drives the threaded sleeve 31 to reverse, so that the first rotating component 6 realizes the function of driving the threaded sleeve 31 to rotate forwardly or reversely.

[0043] refer to Figure 2 The guide assembly 4 includes a guide plate 41 and a telescopic rod 42. The guide plate 41 is fixedly connected to the upper end of the screw rod 32. The guide plate 41 is parallel to the support plate 3. The telescopic rod 42 is fixed between the guide plate 41 and the support plate 3. The telescopic rod 42 is composed of multiple rod bodies that are sleeved and slidably connected to each other.

[0044] Through the limiting effect of the telescopic rod 42, the guide plate 41 is not easy to rotate, and then the guide plate 41 makes the screw rod 32 not easy to rotate. During the rotation of the threaded sleeve 31, the screw rod 32 can move in the vertical direction, so that the guide component 4 realizes the guiding effect on the screw rod 32.

[0045] refer to Figure 1 and 2 There are two fourth rotating rods 8 rotatably connected in the cooling pool 1, the length direction of the fourth rotating rods 8 is parallel to the length direction of the cooling pool 1, a plurality of sailboards 81 are fixed on the fourth rotating rods 8, and the plurality of sailboards 81 are arranged in sequence along the circumferential side wall of the fourth rotating rods 8, and a second rotating component 9 is provided in the cooling pool 1 to drive the fourth rotating rods 8 to rotate.

[0046] A fixing rod 38 is fixedly provided on the side of the connecting plate 51 away from the first guide wheel 33, and the length direction of the fixing rod 38 is perpendicular to the connecting plate 51. The second rotating assembly 9 includes a third gear 91 and a rack 92. Two of the third gear 91 and the rack 92 are provided. The third gear 91 is provided on the fourth rotating rod 8 and corresponds one to one. The fourth rotating rod 8 passes through the third gear 91 and is fixedly connected to the third gear 91. The rack 92 is fixedly connected to one end of the fixing rod 38 away from the connecting plate 51 and corresponds one to one. The length direction of the rack 92 is perpendicular to the length direction of the fixing rod 38. The rack 92 and the third gear 91 are meshed and correspond one to one.

[0047] During the movement of the connecting plate 51, the connecting plate 51 drives the fixed rod 38 to move, the fixed rod 38 drives the rack 92 to move, the rack 92 drives the third gear 91 to rotate, the third gear 91 drives the fourth rotating rod 8 to rotate, and the fourth rotating rod 8 drives the sailboard 81 to make a circular motion. During the movement of the sailboard 81, the cooling water in the cooling pool 1 is driven to roll, so that the cooling water around the cable can quickly mix with the cooling water away from the cable, thereby reducing the temperature of the cooling water around the cable.

[0048] The implementation principle of a cable processing cooling device in an embodiment of the present application is as follows: the cable is passed through the first guide wheel 33 and the second guide wheel 39, the motor 21 is started, the motor 21 drives the rotating wheel 22 to rotate, the rotating wheel 22 pulls the cable toward the outside of the cooling pool 1, and at the same time, the motor 21 drives the third rotating rod 15 to rotate through the linkage component 7, the third rotating rod 15 provides power for the first rotating component 6, the first rotating component 6 drives the threaded sleeve 31 to rotate forward or reversely, the threaded sleeve 31 is guided by the guide component 4, the threaded sleeve 31 drives the screw 32 to move upward or downward, the screw 32 drives the first guide wheel 33 and the second guide wheel 39 to move through the connecting component 5, the first guide wheel 33 and the second guide wheel 39 drive the cable to move reciprocatingly upward or downward, so that the moving path of the cable changes continuously, and at the same time, during the movement of the cable, the cooling water is driven to flow, so that the cable can contact the low-temperature cooling water, thereby improving the cooling effect of the cooling device.

[0049] The embodiments of this specific implementation method are all preferred embodiments of the present application, and are not intended to limit the protection scope of the present application. Therefore, all equivalent changes made based on the structure, shape, and principle of the present application should be included in the protection scope of the present application.

Claims

1. A cable processing cooling device, comprising a cooling pool (1), wherein the cooling pool (1) is filled with cooling water, and a traction component (2) for traction cable movement is arranged on the cooling pool (1), characterized in that: The cooling pool (1) is fixedly provided with a support plate (3), the support plate (3) is located above the cooling water, the length direction of the support plate (3) is perpendicular to the length direction of the cooling pool (1), a threaded sleeve (31) is rotatably connected to the support plate (3), the threaded sleeve (31) is vertically arranged, a screw rod (32) is threadedly connected to the threaded sleeve (31), the bottom end of the screw rod (32) passes through the support plate (3), the screw rod (32) and the support plate (3) are slidably connected, a guide assembly (4) for guiding the screw rod (32) to move in a vertical direction is arranged at the support plate (3), a first guide wheel (33) is arranged below the screw rod (32), a connecting assembly (5) for connecting the first guide wheel (33) and the screw rod (32) is arranged at the bottom end of the screw rod (32), and a first rotating assembly (6) for driving the threaded sleeve (31) to rotate in a forward or reverse direction is arranged at the support plate (3).

2. A cable processing cooling device according to claim 1, characterized in that: The traction assembly (2) comprises a motor (21) and a rotating wheel (22); the motor (21) is arranged at the end of the cooling pool (1); the motor (21) and the cooling pool (1) are fixedly connected; the output shaft of the motor (21) and the rotating wheel (22) are fixedly connected; and a guide groove (221) for guiding a cable is provided on the rotating wheel (22).

3. A cable processing cooling device according to claim 1, characterized in that: The bottom end of the screw rod (32) is fixedly connected to a fixing plate (34). The connecting assembly (5) comprises a connecting plate (51) and a connecting rod (52). Two connecting plates (51) are provided. The two connecting plates (51) and the fixing plate (34) are fixedly connected. The connecting plates (51) are parallel to each other. The length direction of the connecting plates (51) is perpendicular to the length direction of the support plate (3). The connecting rod (52) is fixedly arranged between the two connecting plates (51). The first guide wheel (33) is located between the two connecting plates (51). The connecting rod (52) passes through the first guide wheel (33). The connecting rod (52) and the first guide wheel (33) are rotatably connected.

4. A cable processing cooling device according to claim 2, characterized in that: The first rotating assembly (6) comprises a first gear (61) and a second gear (62), the first gear (61) and the second gear (62) are both arranged on a threaded sleeve (31), the threaded sleeve (31) passes through the first gear (61) and the second gear (62), the first gear (61) and the second gear (62) are both fixedly connected to the threaded sleeve (31), a first rotating rod (35) is rotatably connected to the support plate (3), a first half gear (36) and a first bevel gear (37) are fixedly arranged on the first rotating rod (35), the first half gear (36) and the first gear (61) are meshed and matched, an auxiliary plate (11) is arranged above the support plate (3), one end of the auxiliary plate (11) is fixedly connected to a side wall of the cooling pool (1), A second rotating rod (12) is rotatably connected to the auxiliary plate (11), a second half gear (13) and a second bevel gear (14) are fixedly provided on the second rotating rod (12), the second half gear (13) and the second gear (62) are meshed and matched, a third rotating rod (15) is rotatably connected to a side wall of the cooling pool (1), a third bevel gear (16) is fixedly provided at one end of the third rotating rod (15), both the first bevel gear (37) and the second bevel gear (14) are meshed with the third bevel gear (16), the first bevel gear (37) and the second bevel gear (14) are respectively located at opposite sides of the third bevel gear (16), and a linkage assembly (7) for linkage with a motor (21) is provided at one end of the third rotating rod (15) away from the third bevel gear (16).

5. A cable processing cooling device according to claim 4, characterized in that: The linkage assembly (7) comprises a first sprocket (71), a second sprocket (72) and a chain (73); the first sprocket (71) is arranged on the output shaft of the motor (21); the output shaft of the motor (21) passes through the first sprocket (71); the motor (21) and the first sprocket (71) are fixedly connected; one end of the third rotating rod (15) is fixedly connected to the second sprocket (72); and the chain (73) is sleeved outside the first sprocket (71) and the second sprocket (72).

6. A cable processing cooling device according to claim 1, characterized in that: The guide assembly (4) comprises a guide plate (41) and a telescopic rod (42); the guide plate (41) and the upper end of the screw rod (32) are fixedly connected; the telescopic rod (42) is fixedly arranged between the guide plate (41) and the support plate (3); the telescopic rod (42) is composed of a plurality of rod bodies sleeved together, and the rod bodies are slidably connected to each other.

7. A cable processing cooling device according to claim 3, characterized in that: A fourth rotating rod (8) is rotatably connected in the cooling pool (1), the length direction of the fourth rotating rod (8) is parallel to the length direction of the cooling pool (1), a plurality of sailboards (81) are fixedly arranged on the fourth rotating rod (8), and the plurality of sailboards (81) are arranged in sequence along the circumferential side wall of the fourth rotating rod (8), and a second rotating component (9) for driving the fourth rotating rod (8) to rotate is arranged at the fixed plate (34).

8. A cable processing cooling device according to claim 7, characterized in that: A fixing rod (38) is fixedly connected to a side of the fixing plate (34) away from the first guide wheel (33); the second rotating assembly (9) comprises a third gear (91) and a rack (92); the third gear (91) is arranged on a fourth rotating rod (8); the fourth rotating rod (8) passes through the third gear (91) and is fixedly connected to the third gear (91); the rack (92) is fixedly connected to an end of the fixing rod (38) away from the fixing plate (34); the rack (92) is vertically arranged, and the rack (92) and the third gear (91) are meshed.

9. A cable processing cooling device according to claim 3, characterized in that: A second guide wheel (39) is arranged above the first guide wheel (33), the second guide wheel (39) is located between two connecting plates (51), and the second guide wheel (39) is rotatably connected to the connecting plates (51) on both sides.