A guiding and conveying device for cable production

By designing a guide conveying device for cable production including a base plate, a guide conveying component and a drive component, the problems of winding, specification adaptability and clamping force adjustment during the cable transmission process are solved, and efficient, stable transmission and quality assurance of the cable are achieved.

CN119018708BActive Publication Date: 2025-06-13JIANGSU XINHAITENG CABLE CO LTD
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Patent Information

Application Number
CN202411529506.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-10-30
Publication Date
2025-06-13
Estimated Expiration
2044-10-30

AI Technical Summary

Technical Problem

The existing guided and conveying devices for cable production cannot effectively straighten the cable, resulting in winding problems; they cannot adapt to the transmission of cables of different specifications; the clamping force adjustment is inconvenient, which affects the quality of the cable.

Method used

A guide conveying device for cable production including a base plate, a guide conveying assembly and a drive assembly is designed. The moving ring and rotating plate are driven by the double-thread screw to control the extrusion clamping force of the guide conveying assembly to the cable; the guide conveying assembly adopts a tapered guide wheel and an elastic cleaning ring to realize the guiding transmission and external cleaning of cables of different specifications.

Benefits of technology

Effectively maintain the straightening state of the cable during the transmission process to avoid wrapping; adapt to the transmission needs of cables of different specifications; ensure the quality of the cable and the cleanliness of the appearance by adjusting the clamping force.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field related to cable production, and discloses a guiding and conveying device for cable production, which includes a bottom plate. Two groups of guiding and conveying components are respectively arranged on the upper sides of both ends of the bottom plate. A cavity is arranged inside the bottom plate, and a driving component is arranged inside the cavity; The present invention can make the cable move between the first cleaning ring and the second cleaning ring and make the cable contact the outer side of the cleaning sleeve by means of the conical structures at one ends of the first guiding wheel and the second guiding wheel in the guiding and conveying component in the opposite direction, so as to clean the impurities on the outer side of the cable through the cleaning sleeve, the first cleaning ring and the second cleaning ring; Then, the cable squeezes the second guiding wheel, causing the second guiding wheel to move upward, and the distance between the first guiding wheel and the second guiding wheel can be changed according to the outer diameter of the cable, so as to guide and convey cables of different specifications.
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Description

Technical Field

[0001] The present invention relates to the technical field related to cable production, and specifically to a guiding and conveying device for cable production. Background Art

[0002] During the production process of power cables, the produced cables will be wound and stored. Before winding, since the outer sheath of the cable requires a cooling time, the distance between the winding device and the conveying equipment is usually relatively long; due to the long distance between the winding device and the conveying device, the cable between the winding device and the conveying device is difficult to be straightened under the action of gravity, and the cable is easy to contact the ground. With the push of the input device, the sheath of the cable will rub against the ground, causing damage to the sheath and affecting the product quality; therefore, during the production process, a guiding and conveying device needs to be set on the moving path of the cable to support the cable; the guiding and conveying device for cable production in the prior art has the following defects:

[0003] 1. In the prior art, during the process of conveying the cable, the guiding and conveying device for cable production cannot straighten the cable that sags due to its weight, making the cable easy to wind around the surface of the equipment during the conveying process, causing damage to the cable and the equipment, and cannot clean the dust and stains on the surface of the cable, resulting in poor appearance of the product, thereby reducing the overall neatness of the cable and affecting the subsequent use effect of the cable;

[0004] 2. In the prior art, the guiding and conveying device for cable production completes the guiding and conveying of the cable by adopting a mutually extruding and conveying method. Since the cable has various different specifications and models, and most of the rollers for conveying the cable are fixed, it cannot meet the production use of cables with various specifications and different diameters, resulting in the need for staff to spend more time to complete the conveying of cables with different specifications, thereby reducing the efficiency of the staff in guiding and conveying the cable;

[0005] 3. In the prior art, during the winding process, the guiding and conveying device for cable production cannot effectively adjust the clamping force of the cable. When the clamping force is too large, it is easy to cause the inner end face of the cable to be out of round, the wire core inside the cable to be out of round, which first affects the insulation resistance, and the outer sheath to be out of round, affecting the overall strength of the cable and reducing the protection of the wire core, resulting in uneven appearance or bulging of the cable, and also making the winding measurement inaccurate; and when the clamping force is too small, it is difficult to straighten the cable, resulting in the cable being easy to wind around the surface of the equipment due to its weight, causing damage to the cable and the equipment. Summary of the Invention

[0006] The purpose of the present invention is to provide a guiding and conveying device for cable production to overcome the above-mentioned defects in the prior art.

[0007] The present invention is realized through the following technical solutions.

[0008] A guiding and conveying device for cable production according to the present invention includes a bottom plate. Two groups of guiding and conveying components are respectively arranged on the upper sides of both ends of the bottom plate. A cavity is arranged inside the bottom plate, and a driving component is arranged inside the cavity; the guiding and conveying component includes a first U-shaped frame, the first U-shaped frame is fixed on the upper side of one end of the bottom plate, two first chutes are respectively arranged at both ends of the cavity, two first sliders are slidably arranged inside each first chute, two first guiding wheels are respectively fixed on the upper ends of the two first sliders, two fixing rods are respectively fixed on the upper ends of the two first guiding wheels. An upper second chute is arranged inside the first U-shaped frame, two sliding plates are slidably arranged inside the second chute, two second sliders are respectively fixed on the lower sides of the two sliding plates, two T-shaped rods are respectively slidably arranged inside the two second sliders, two second guiding wheels are respectively fixed on the lower ends of the two T-shaped rods, the two fixing rods respectively slide vertically inside the two second guiding wheels, and two first springs are respectively connected between the upper ends of the two fixing rods and the inside of the two second guiding wheels.

[0009] In a further technical solution, one end of each of the first guiding wheel and the second guiding wheel facing each other is of a conical structure.

[0010] In a further technical solution, a plurality of convex blocks are fixedly arranged in a circumferential array on the outer side of the fixing rod, and the plurality of convex blocks all slide vertically inside the second guiding wheel.

[0011] In a further technical solution, a cleaning sleeve is sleeved on the outer side of each fixing rod, a first cleaning ring is fixed on the upper side of each first guiding wheel, a second cleaning ring is fixed on the lower side of each second guiding wheel, and the cleaning sleeve, the first cleaning ring and the second cleaning ring are all elastic.

[0012] In a further technical solution, the driving component includes two first fixing plates, the two first fixing plates are symmetrically fixed inside the cavity, a double-threaded screw rod is rotatably arranged between the two first fixing plates, a first gear is sleeved on the outer side of the middle of the double-threaded screw rod, a motor is installed inside the cavity, a second gear is sleeved on the output end of the motor, and the first gear meshes with the second gear.

[0013] In a further technical solution, two moving rings are respectively in threaded contact with both ends of the double-threaded screw rod. Two third sliders are respectively slidably arranged at both ends of each first chute. Two rotating plates are respectively connected between both sides of each moving ring and the two third sliders. One end of each rotating plate is rotatably connected to the moving ring, and the other end of each rotating plate is rotatably connected to the third slider. Two second springs are respectively connected between the two third sliders and the two first sliders.

[0014] Further technical solution: Two rubber plates are respectively and fixedly arranged on both sides of each of the first sliders, and each of the rubber plates is in frictional contact with the side wall of the first chute.

[0015] Further technical solution: Two moving plates are respectively and slidably arranged at both ends inside the cavity. A plurality of first rubber blocks are arranged at intervals on the inner sides of both ends of each of the moving plates. A plurality of second rubber blocks are fixedly arranged on one side of each of the third sliders facing the moving plates. The plurality of first rubber blocks are in pressing contact with the plurality of second rubber blocks. The contact surface on one side of each of the first rubber blocks and the second rubber blocks is an inclined surface, and the contact surface on the other side of each of the first rubber blocks and the second rubber blocks is a flat surface.

[0016] Further technical solution: Two bolts are respectively in threaded contact with both ends of the bottom plate, and one end of each of the bolts is in rotational contact inside the moving plate.

[0017] Further technical solution: A second U-shaped frame is fixedly arranged on the upper side of the middle part of the bottom plate. Two electric telescopic blocks are symmetrically and fixedly arranged on the upper side inside the second U-shaped frame. A first guide wheel is rotatably arranged between the extending ends of the two electric telescopic blocks. Two pairs of second fixing plates are symmetrically and fixedly arranged on the upper side of the bottom plate. A second guide wheel is rotatably arranged between each pair of the second fixing plates.

[0018] Advantages of the present invention:

[0019] In a cable production guiding and conveying device of the present invention, a driving assembly is provided. By the clockwise rotation of the double-threaded lead screw in the driving assembly, two moving rings are driven to move in opposite directions and cooperate with the rotation of four rotating plates, so as to control the two groups of guiding and conveying assemblies to exert a mutual pressing and clamping effect on the cable, so that the cable can be kept in a straightened state during the movement, and it is avoided that the cable is wound around the surface of the device during the conveying process; furthermore, when the double-threaded lead screw rotates one circle, the moving ring can be driven to move a certain distance, so as to control the magnitude of the clamping force generated by the two groups of guiding and conveying assemblies pressing on the cable by controlling the number of turns of the rotation of the double-threaded lead screw, and thus the two groups of guiding and conveying assemblies exert a mutual pressing and clamping effect on the cable with an appropriate clamping force;

[0020] In a guiding and conveying device for cable production according to the present invention, a guiding and conveying assembly is provided. The conical structures at one ends of the first guiding wheel and the second guiding wheel in the guiding and conveying assembly are in contact with the cable, so as to guide the cable to move. The cable is moved between the first cleaning ring and the second cleaning ring and the outer side of the cable is in contact with the cleaning sleeve, so as to clean the impurities on the outer side of the cable through the cleaning sleeve, the first cleaning ring and the second cleaning ring. Then, the cable presses the second guiding wheel, causing the second guiding wheel to move upward. When the second guiding wheel moves upward, it stretches the first spring to generate an elastic force. The elastic force of the first spring acts on the second guiding wheel, so that the second cleaning ring is in pressing contact with the outer side of the cable, and the distance between the first guiding wheel and the second guiding wheel can be changed according to the outer diameter of the cable, so as to guide and convey cables of different specifications.

[0021] In a guiding and conveying device for cable production according to the present invention, the bolt is in threaded contact with the bottom plate, so that when the bolt rotates, it can push the moving plate and several first rubber blocks to move into contact with one side of the first slider. When the two third sliders move towards each other and drive several second rubber blocks to move towards each other respectively, at this time, the contact surfaces of several second rubber blocks and several first rubber blocks are inclined planes and several first rubber blocks and several second rubber blocks are in mutual pressing contact, so that the two third sliders can move towards each other stably to clamp the cable. When the two third sliders move in opposite directions and drive several second rubber blocks to move in opposite directions respectively, at this time, the contact surfaces of several first rubber blocks and several second rubber blocks are flat surfaces, so that the third sliders are limited and fixed through the cooperation of several first rubber blocks and several second rubber blocks, avoiding the situation of dislocation when the guiding and conveying assembly clamps the cable and preventing the change of the clamping force on the cable from being affected.

[0022] In a guiding and conveying device for cable production according to the present invention, the outer side of the cable is cleaned by the movement of the cable in cooperation with the stationary cleaning sleeve, the first cleaning ring and the second cleaning ring. Then, since the cleaning sleeve, the first cleaning ring and the second cleaning ring are elastic, the cleaning sleeve, the first cleaning ring and the second cleaning ring can be extruded and deformed according to the outer side of the cable, and the cleaning sleeve, the first cleaning ring and the second cleaning ring are in contact with the outer side of the cable, further cleaning the dust and stains on the surface of the cable. Brief Description of the Drawings

[0023] In order to more clearly illustrate the technical solutions in the embodiments of the invention or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0024] The present invention will be further described below in conjunction with the accompanying drawings and embodiments.

[0025] Figure 1 Isometric structure schematic diagram of the present invention;

[0026] Figure 2 Left view structure schematic diagram of the present invention;

[0027] Figure 3 Is Figure 2 Cross-sectional structure schematic diagram at A-A in

[0028] Figure 4 Is Figure 2 Cross-sectional structure schematic diagram at B-B in

[0029] Figure 5 Is Figure 4 Local enlarged view structure schematic diagram at D in

[0030] Figure 6 Isometric structure schematic diagram of the guiding and conveying component in the present invention;

[0031] Figure 7 Is Figure 6 Front view structure schematic diagram of

[0032] Figure 8 Is Figure 7 Cross-sectional structure schematic diagram at C-C in

[0033] In the figure, base plate 10, first U-shaped frame 11, first slider 12, first guiding wheel 14, fixed rod 15, second guiding wheel 16, second slider 17, sliding plate 18, second sliding groove 19, T-shaped rod 20, cavity 21, first spring 22, first sliding groove 23, convex block 24, cleaning sleeve 25, first cleaning ring 26, second cleaning ring 27, first fixing plate 28, double-threaded screw rod 29, motor 30, first gear 31, second gear 32, moving ring 33, rotating plate 34, bolt 35, moving plate 36, first rubber block 37, second rubber block 38, second U-shaped frame 39, electric telescopic block 40, first guiding wheel 41, second fixing plate 42, second guiding wheel 43, third slider 44, second spring 45, rubber plate 46. Detailed implementation manners

[0034] The following will describe the present invention in detail in conjunction with Figures 1-8 For the sake of convenience of narration, the following directions are defined as follows: the up-down, left-right, front-back directions mentioned below are consistent with the up-down, left-right, front-back directions of the Figure 1 its own projection relationship.

[0035] In conjunction with the attached Figures 1-8, A guiding and conveying device for cable production, comprising a bottom plate 10. On the upper sides of both ends of the bottom plate 10, two groups of guiding and conveying components are respectively provided. Inside the bottom plate 10, there is a cavity 21, and inside the cavity 21, a driving component is provided; The guiding and conveying component includes a first U-shaped frame 11, and the first U-shaped frame 11 is fixed on the upper side of one end of the bottom plate 10. At both ends of the cavity 21, two first sliding grooves 23 are respectively provided. Inside each first sliding groove 23, two first sliding blocks 12 are slidably arranged. At the upper ends of the two first sliding blocks 12, two first guiding wheels 14 are respectively fixed. At the upper ends of the two first guiding wheels 14, two fixing rods 15 are respectively fixed. On the upper side inside the first U-shaped frame 11, a second sliding groove 19 is provided. Inside the second sliding groove 19, two sliding plates 18 are slidably arranged. At the lower sides of the two sliding plates 18, two second sliding blocks 17 are respectively fixed. Inside the two second sliding blocks 17, two T-shaped rods 20 are respectively slidably arranged. At the lower ends of the two T-shaped rods 20, two second guiding wheels 16 are respectively fixed. The two fixing rods 15 respectively slide vertically inside the two second guiding wheels 16. At the upper ends of the two fixing rods 15, two first springs 22 are respectively connected to the inside of the two second guiding wheels 16.

[0036] Preferably, at one end of each first guiding wheel 14 and the second guiding wheel 16 facing each other, a conical structure is formed.

[0037] Preferably, a plurality of convex blocks 24 are fixedly arranged in a circumferential array on the outer side of the fixing rod 15, and the plurality of convex blocks 24 all slide vertically inside the second guiding wheel 16.

[0038] Preferably, a cleaning sleeve 25 is sleeved on the outer side of each fixing rod 15. On the upper side of each first guiding wheel 14, a first cleaning ring 26 is fixed. On the lower side of each second guiding wheel 16, a second cleaning ring 27 is fixed. The cleaning sleeve 25, the first cleaning ring 26, and the second cleaning ring 27 are all elastic.

[0039] Preferably, the driving component includes two first fixing plates 28, and the two first fixing plates 28 are symmetrically fixed inside the cavity 21. Between the two first fixing plates 28, a double-threaded lead screw 29 is rotatably arranged. On the outer side of the middle part of the double-threaded lead screw 29, a first gear 31 is sleeved. Inside the cavity 21, a motor 30 is installed. On the outer side of the output end of the motor 30, a second gear 32 is sleeved. The first gear 31 meshes with the second gear 32.

[0040] Preferably, two moving rings 33 are respectively in threaded contact with both ends of the double-threaded lead screw 29. Two third sliders 44 are respectively slidably arranged at both ends of each first chute 23. Two rotating plates 34 are respectively connected between both sides of each moving ring 33 and the two third sliders 44. One end of each rotating plate 34 is rotatably connected to the moving ring 33, and the other end of each rotating plate 34 is rotatably connected to the third slider 44. Two second springs 45 are respectively connected between the two third sliders 44 and the two first sliders 12.

[0041] Preferably, two rubber plates 46 are respectively fixed to both sides of each first slider 12, and each rubber plate 46 is in frictional contact with the side wall of the first chute 23.

[0042] Preferably, two moving plates 36 are respectively slidably arranged at both ends inside the cavity 21. A plurality of first rubber blocks 37 are respectively arranged at intervals on the inner sides of both ends of each moving plate 36. A plurality of second rubber blocks 38 are fixed to one side of each third slider 44 facing the moving plate 36. The plurality of first rubber blocks 37 are in pressing contact with the plurality of second rubber blocks 38. The contact surface on one side of each first rubber block 37 and the second rubber block 38 is an inclined surface, and the contact surface on the other side of each first rubber block 37 and the second rubber block 38 is a flat surface.

[0043] Preferably, two bolts 35 are respectively in threaded contact with both ends of the bottom plate 10, and one end of each bolt 35 is in rotational contact inside the moving plate 36.

[0044] Preferably, a second U-shaped frame 39 is fixed to the upper side of the middle part of the bottom plate 10. Two electric telescopic blocks 40 are symmetrically fixed to the upper side inside the second U-shaped frame 39. A first guide wheel 41 is rotatably arranged between the extending ends of the two electric telescopic blocks 40. Two pairs of second fixing plates 42 are symmetrically fixed to the upper side of the bottom plate 10. A second guide wheel 43 is rotatably arranged between each pair of second fixing plates 42.

[0045] Specific usage method of the present invention: First, the cable on the conveying device touches the top of the first guide wheel 41 and the bottoms of the two second guide wheels 43, and the cable is located within the two groups of guiding and conveying components; at this time, the staff controls the motor 30 to start. When the motor 30 starts, the first gear 31 meshes with the second gear 32 to drive the double-threaded lead screw 29 to rotate. When the double-threaded lead screw 29 rotates, the two external threads with opposite thread directions at both ends of the double-threaded lead screw 29 are in threaded contact with the two moving rings 33 respectively, so that the rotation of the double-threaded lead screw 29 can drive the two moving rings 33 to move towards each other or in opposite directions at the same time; when the double-threaded lead screw 29 rotates clockwise, it drives the two moving rings 33 to move towards each other. The movement of the moving ring 33 drives the two third sliders 44 to slide towards each other through the two rotating plates 34 respectively. The two third sliders 44 sliding towards each other respectively compress the two second springs 45 to generate elastic forces. The elastic forces of the two second springs 45 act on the two first sliders 12 respectively, so that the two first sliders 12 slide towards each other. The two first sliders 12 sliding towards each other drive the two first guide wheels 14 and the second guide wheels 16 to slide towards each other respectively; the two first guide wheels 14 and the second guide wheels 16 slide towards each other, so as to exert a mutual extrusion and clamping effect on the cable. Among them, the first slider 12 slides in the first chute 23 and frictionally contacts the two side walls of the first chute 23 through the two rubber plates 46, so that the two first sliders 12 move smoothly in the first chute 23, avoiding the two first sliders 12 moving too fast relative to each other and preventing the clamping force on the cable from being too large.

[0046] At the same time, through the conical structures at one end of the first guide wheel 14 and the second guide wheel 16 facing each other to contact the cable, a guiding movement effect is exerted on the cable, so that the cable moves between the first cleaning ring 26 and the second cleaning ring 27 and the cable contacts the outer side of the cleaning sleeve 25, so as to facilitate the cleaning of the impurities on the outer side of the cable by the cleaning sleeve 25, the first cleaning ring 26 and the second cleaning ring 27; then, the cable squeezes the second guide wheel 16, causing the second guide wheel 16 to move upward. The upward movement of the second guide wheel 16 stretches the first spring 22 to generate an elastic force. The elastic force of the first spring 22 acts on the second guide wheel 16, so that the second cleaning ring 27 is in extrusion contact with the outer side of the cable, and the distance between the first guide wheel 14 and the second guide wheel 16 can be changed according to the outer diameter of the cable, so as to be able to guide and convey cables of different specifications. Among them, the upward movement of the second guide wheel 16 drives the T-shaped rod 20 to slide vertically in the second slider 17, so that the horizontal movement of the second guide wheel 16 can drive the sliding plate 18 to slide in the second chute 19 through the T-shaped rod 20 and the second slider 17. When the first guide wheel 14 moves horizontally and drives the second guide wheel 16 to move horizontally through the fixed rod 15, it is convenient for the second guide wheel 16 to move smoothly horizontally, avoiding any shaking of the second guide wheel 16 and avoiding affecting the clamping effect on the cable.

[0047] Next, the staff rotates two bolts 35. The bolts 35 rotate and are in threaded contact with the bottom plate 10 through the bolts 35, thereby pushing the moving plate 36 and several first rubber blocks 37 to move. When several first rubber blocks 37 move and contact one side of the first slider 12, the staff stops rotating the bolts 35; when two third sliders 44 move towards each other and drive several second rubber blocks 38 to move towards each other respectively, at this time, the contact surfaces between several second rubber blocks 38 and several first rubber blocks 37 are inclined planes and several first rubber blocks 37 and several second rubber blocks 38 are in mutual extrusion contact, so that the two sliders 44 can move towards each other stably to clamp the cable; when two third sliders 44 move in opposite directions and drive several second rubber blocks 38 to move in opposite directions respectively, at this time, the contact surfaces between several first rubber blocks 37 and several second rubber blocks 38 are planes, so as to limit and fix the third slider 44 through the cooperation of several first rubber blocks 37 and several second rubber blocks 38, avoid the situation of dislocation when the guiding and conveying assembly clamps the cable, and prevent the change of the clamping force on the cable from being affected.

[0048] Finally, the staff controls the expansion and contraction of two electric telescopic blocks 40, thereby driving the first guide wheel 41 to move up and down. Through the upward movement of the first guide wheel 41 and the fixation with two second guide wheels 43, the cable is further straightened. The conveying device starts to drive the cable to move. The cable moves while the cleaning sleeve 25, the first cleaning ring 26, and the second cleaning ring 27 remain stationary, so as to clean the outer side of the cable; furthermore, since the cleaning sleeve 25, the first cleaning ring 26, and the second cleaning ring 27 are elastic, the cleaning sleeve 25, the first cleaning ring 26, and the second cleaning ring 27 can be extruded and deformed according to the outer side of the cable, so that the cleaning sleeve 25, the first cleaning ring 26, and the second cleaning ring 27 contact the outer side surface of the cable, and further clean the dust and stains on the surface of the cable.

[0049] In the guiding and conveying device for cable production of the present invention, a driving assembly is provided. By the clockwise rotation of the double-threaded lead screw 29 in the driving assembly, two moving rings 33 are driven to move towards each other and cooperate with the rotation of four rotating plates 34, so as to control the two groups of guiding and conveying assemblies to mutually extrude and clamp the cable, so as to keep the cable in a straightened state during the movement process and avoid the cable from winding around the surface of the equipment during the conveying process; furthermore, every time the double-threaded lead screw 29 rotates one circle, the moving ring 33 can be driven to move a certain distance, so as to control the magnitude of the clamping force generated by the two groups of guiding and conveying assemblies squeezing the cable by controlling the number of turns of the double-threaded lead screw 29, and thus mutually extrude and clamp the cable with an appropriate clamping force.

[0050] In a guiding and conveying device for cable production according to the present invention, a guiding and conveying assembly is provided. The conical structures at one ends of the first guiding wheel 14 and the second guiding wheel 16 in the guiding and conveying assembly are in contact with the cable, so as to guide the cable to move. The cable is moved between the first cleaning ring 26 and the second cleaning ring 27 and the outer side of the cable is in contact with the cleaning sleeve 25, so as to facilitate the cleaning of impurities on the outer side of the cable by the cleaning sleeve 25, the first cleaning ring 26 and the second cleaning ring 27. Then, the cable squeezes the second guiding wheel 16, causing the second guiding wheel 16 to move upward. The upward movement of the second guiding wheel 16 stretches the first spring 22 to generate an elastic force, and the elastic force of the first spring 22 acts on the second guiding wheel 16, so that the second cleaning ring 27 is in pressing contact with the outer side of the cable, and the distance between the first guiding wheel 14 and the second guiding wheel 16 can be changed according to the outer diameter of the cable, so as to guide and convey cables of different specifications.

[0051] In a guiding and conveying device for cable production according to the present invention, the bolt 35 is in threaded contact with the bottom plate 10, so that when the bolt 35 rotates, it can push the moving plate 36 and several first rubber blocks 37 to move into contact with one side of the first slider 12. When the two third sliders 44 move towards each other and drive several second rubber blocks 38 to move towards each other respectively, at this time, the contact surfaces of several second rubber blocks 38 and several first rubber blocks 37 are inclined planes and several first rubber blocks 37 and several second rubber blocks 38 are in mutual extrusion contact, so that the two third sliders 44 can move towards each other stably to clamp the cable. When the two third sliders 44 move in opposite directions and drive several second rubber blocks 38 to move in opposite directions respectively, at this time, the contact surfaces of several first rubber blocks 37 and several second rubber blocks 38 are planes, so that the third sliders 44 are limited and fixed by the cooperation of several first rubber blocks 37 and several second rubber blocks 38, avoiding the situation of displacement when the guiding and conveying assembly clamps the cable and preventing the change of the clamping force on the cable from being affected.

[0052] In a guiding and conveying device for cable production according to the present invention, the outer side of the cable is cleaned by the movement of the cable in cooperation with the non-movement of the cleaning sleeve 25, the first cleaning ring 26 and the second cleaning ring 27. Then, since the cleaning sleeve 25, the first cleaning ring 26 and the second cleaning ring 27 are elastic, the cleaning sleeve 25, the first cleaning ring 26 and the second cleaning ring 27 can be extruded and deformed according to the outer side of the cable, so that the cleaning sleeve 25, the first cleaning ring 26 and the second cleaning ring 27 are in contact with the outer side surface of the cable, and further clean the dust and stains on the cable surface.

[0053] The above embodiments are only used to illustrate the technical concept and features of the present invention, and the purpose is to enable those skilled in the art to understand the content of the present invention and implement it, and it cannot be used to limit the protection scope of the present invention. Any equivalent changes or modifications made according to the spirit and essence of the present invention should be covered within the protection scope of the present invention.

Claims

1. A guide and conveyor device for cable production, characterized in that: The cam is an angular channel structure formed on the upper side of the second cam, and the cam is a vertical channel structure formed on the upper side of the second cam, wherein the cam is provided with a plurality of first springs, each of which is provided with a plurality of first springs, each of which is provided with a plurality of first springs. A plurality of protrusions are fixed, and the plurality of protrusions slide vertically in the second guide wheel; a cleaning sleeve is sleeved on the outer side of each fixed rod, a first cleaning ring is fixedly provided on the upper side of each first guide wheel, and a second cleaning ring is fixedly provided on the lower side of each second guide wheel, and the cleaning sleeve, the first cleaning ring and the second cleaning ring are all elastic; a driving assembly comprises two first fixed plates, the two first fixed plates are symmetrically fixed inside the cavity, a double-threaded screw is rotatably provided between the two first fixed plates, a first gear is sleeved on the outer side of the middle part of the double-threaded screw, a motor is installed inside the cavity, a second gear is sleeved on the outer side of the output end of the motor, and the first gear is meshed with the second gear; two moving rings are respectively threadedly contacted at both ends of the double-threaded screw, two third sliding blocks are respectively slidably provided at both ends of each first slide groove, two rotating plates are respectively connected to the two third sliding blocks on both sides of each moving ring, one end of each rotating plate is rotatably connected to the moving ring, and the other end of each rotating plate is rotatably connected to the third sliding block, and two second springs are respectively connected to the two third sliding blocks between the two first sliding blocks.

2. A guide and conveyor device for cable production according to claim 1, characterized in that: Two rubber plates are fixedly disposed on both sides of each first sliding block, and each rubber plate is in frictional contact with the side wall of the first sliding groove.

3. A guide and conveyor device for cable production according to claim 1, characterized in that: Two movable plates are slidably provided at both ends of the cavity, a plurality of first rubber blocks are spaced apart on the inner sides of both ends of each movable plate, a plurality of second rubber blocks are fixedly provided on one side of each third slider facing the movable plate, the plurality of first rubber blocks are in extrusion contact with the plurality of second rubber blocks, one side contact surface of each first rubber block with the second rubber block is an inclined surface, and the other side contact surface of each first rubber block with the second rubber block is a plane.

4. A guide and conveyor device for cable production according to claim 3, characterized in that: Two bolts are respectively threadedly contacted at the two ends of the bottom plate, and one end of each bolt is rotationally contacted in the moving plate.

5. A guide and conveyor device for cable production according to claim 1, characterized in that: A second U-shaped frame is fixedly provided on the upper middle side of the base plate, two electric telescopic blocks are symmetrically fixedly provided on the inner upper side of the second U-shaped frame, a first guide wheel is rotatably provided between the protruding ends of the two electric telescopic blocks, two pairs of second fixed plates are symmetrically fixedly provided on the upper side of the base plate, and a second guide wheel is rotatably provided between each pair of second fixed plates.

Citation Information

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