A cable stripping device

By designing a cable peeling device including a base plate, a cable inlet cylinder, a cable outlet cylinder, a first frame and a second frame, the synchronous movement of the blade and the conveying component is driven by the motor, the problem of low skin peeling efficiency of waste cables is solved, and automatic and efficient skin peeling treatment is achieved.

CN114843945BActive Publication Date: 2025-07-22ELECTRIC POWER PLANNING & ENG INST CO LTD +2
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Patent Information

Application Number
CN202210475902.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-04-29
Publication Date
2025-07-22
Estimated Expiration
2042-04-29

AI Technical Summary

Technical Problem

In the prior art, the peeling efficiency of waste cables is low and requires manual cooperation, resulting in inefficient efficiency.

Method used

A cable peeling device is designed, including a base plate, a cable inlet cylinder, a cable outlet cylinder, a first frame and a second frame, and is provided with a first cutting member and a conveying member. The first motor drives the rotation of the first blade and the conveying member to achieve synchronous transmission and cutting of the cable.

Benefits of technology

The efficiency of cable peeling is improved, and the automated processing of cables is realized during the peeling process is reduced, manual operations are reduced, and processing efficiency is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides a cable stripping device, comprising: a bottom plate, a cable inlet cylinder, a cable outlet cylinder, a first frame and a second frame; the cable inlet cylinder is arranged at a first position of the bottom plate; the cable outlet cylinder is fixedly arranged on the second frame, and the second frame is arranged at a second position of the bottom plate; the first frame is arranged at a third position of the bottom plate; the first frame is provided with a first cutting component and a conveying component, the cable passes through the cable inlet cylinder and penetrates into the cable outlet cylinder, and when the cable is in contact with the first blade and the conveying component, the rotation of the first motor is used to drive the first blade to rotate and drive the conveying component to rotate, and the rotation of the conveying component is used to drive the contacted cable to move, so as to drive the cable to move towards the outlet side of the cable outlet cylinder. The present invention can improve the stripping efficiency of waste cables.
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Description

Technical Field

[0001] The present invention relates to the field of mechanical technology, and particularly to a cable stripping device. Background Art

[0002] Waste cables are usually cables that have been damaged by high current and voltage flow burning, or cables that cannot be used due to negligence during the production process. However, the plastic insulation layer of waste cables and the conductive copper wires wrapped therewith have high recycling value.

[0003] In the prior art, the treatment of waste cables usually adopts the manual stripping method, that is, the work of stripping and cutting waste cables is carried out by manual effort. In addition, the treatment of waste cables can usually also adopt the mechanical stripping method, that is, the waste cables are treated by using a cable stripping machine. This method is semi-mechanized and requires manual cooperation to complete the stripping and cutting operations of waste cables, resulting in a low stripping efficiency for waste cables. Summary of the Invention

[0004] The purpose of the embodiments of the present invention is to provide a cable stripping device to solve the problem of too low stripping efficiency for waste cables.

[0005] To achieve the above purpose, the embodiments of the present invention provide a cable stripping device, including: a bottom plate, a cable inlet cylinder, a cable outlet cylinder, a first frame and a second frame; the cable inlet cylinder is arranged at a first position of the bottom plate; the cable outlet cylinder is fixedly arranged on the second frame, and the second frame is arranged at a second position of the bottom plate; the first frame is arranged at a third position of the bottom plate, and the third position is located between the first position and the second position; the first frame is provided with a first cutting component and a conveying component, the first cutting component includes a first motor, a first transmission shaft and a first blade, the first motor is connected to the first transmission shaft and the conveying component, and the first blade is arranged on the first transmission shaft; wherein, the cable passes through the cable inlet cylinder and penetrates into the cable outlet cylinder, and when the cable is in contact with the first blade and the conveying component, the rotation of the first motor is used to drive the first blade to rotate and drive the conveying component to rotate, and the rotation of the conveying component is used to drive the in-contact cable to move, so as to drive the cable to move towards the outlet side of the cable outlet cylinder.

[0006] One of the above technical solutions has the following advantages or beneficial effects:

[0007] According to the technical solution of the present invention, the cable stripping device includes: a bottom plate, a cable inlet cylinder, a cable outlet cylinder, a first frame, and a second frame. Among them, the first frame is provided with a first cutting component and a conveying component. The cable passes out from the cable inlet cylinder and passes into the cable outlet cylinder. During this process, the cable is conveyed by the conveying component, and the first cutting component disposed between the cable inlet cylinder and the cable outlet cylinder cuts and strips the cable. By using this technical solution to strip the cable, the cable can be conveyed while being stripped, so that the cable passing out from the cable outlet cylinder is in the processed form, thereby improving the efficiency of cable stripping.

[0008] It should be understood that the content described in this part is not intended to identify the key or important features of the embodiments of the present invention, nor is it used to limit the scope of the present invention. Other features of the present invention will become easily understood through the following description. BRIEF DESCRIPTION OF THE DRAWINGS

[0009] The drawings are used to better understand the present solution and do not constitute a limitation to the present disclosure. Among them:

[0010] Figure 1 is one of the structural diagrams of a cable stripping device provided by the present disclosure;

[0011] Figure 2 is the second structural diagram of a cable stripping device provided by the present disclosure;

[0012] Figure 3 is the third structural diagram of a cable stripping device provided by the present disclosure;

[0013] Figure 4 is the structural diagram of the connection component of a cable stripping device provided by the present disclosure;

[0014] Figure 5 is the fourth structural diagram of a cable stripping device provided by the present disclosure;

[0015] Figure 6 is the structural diagram of the fourth transmission shaft of a cable stripping device provided by the present disclosure;

[0016] Figure 7 is the fifth structural diagram of a cable stripping device provided by the present disclosure;

[0017] Figure 8 is the sixth structural diagram of a cable stripping device provided by the present disclosure;

[0018] Figure 9 is the seventh structural diagram of a cable stripping device provided by the present disclosure; DETAILED DESCRIPTION OF THE EMBODIMENTS

[0019] The following describes exemplary embodiments of the present application in conjunction with the accompanying drawings. Various details of the embodiments of the present application are included to facilitate understanding, and they should be considered merely exemplary. Therefore, those of ordinary skill in the art should recognize that various changes and modifications can be made to the embodiments described herein without departing from the scope and spirit of the present application. Similarly, descriptions of well-known functions and structures are omitted in the following description for clarity and conciseness.

[0020] The present disclosure provides a cable stripping device.

[0021] Please refer to Figures 1 to 9 , the cable stripping device includes: a bottom plate 11, a cable inlet cylinder 12, a cable outlet cylinder 13, a first frame 14, and a second frame 15; the cable inlet cylinder 12 is disposed at a first position of the bottom plate 11; the cable outlet cylinder 13 is fixedly disposed on the second frame 15, and the second frame 15 is disposed at a second position of the bottom plate 11; the first frame 14 is disposed at a third position of the bottom plate 11, and the third position is located between the first position and the second position; the first frame 14 is provided with a first cutting member 16 and a conveying member 17, the first cutting member 16 includes a first motor 161, a first transmission shaft 162, and a first blade 163, the first motor 161 is connected to the first transmission shaft 162 and the conveying member 17, and the first blade 163 is disposed on the first transmission shaft 162; wherein, the cable passes through the cable inlet cylinder 12 and penetrates into the cable outlet cylinder 13, and when the cable is in contact with the first blade 163 and the conveying member 17, the rotation of the first motor 161 is used to drive the rotation of the first blade 163 and the rotation of the conveying member 17, and the rotation of the conveying member 17 is used to drive the contacting cable to move, so as to drive the cable to move toward the outlet side of the cable outlet cylinder 13.

[0022] The cable inlet cylinder 12 can be fixedly disposed at the first position of the bottom plate 11 through a bracket, and at the same time, the height of the cable inlet cylinder 12 can be set by adjusting the bracket. The user can adjust the height according to the usage habit and the actual working condition, and the embodiments of the present invention do not limit this.

[0023] In addition, the cable outlet cylinder 13 is fixed to the second frame 15, and a height adjusting device can be provided at the connection between the cable outlet cylinder 13 and the second frame 15. The user can adjust the height according to the usage habit and the actual working condition, and the embodiments of the present invention do not limit this.

[0024] Wherein, the through openings of the cable inlet cylinder 12 and the cable outlet cylinder 13 can be oppositely disposed, and the heights of the cable inlet cylinder 12 and the cable outlet cylinder 13 relative to the bottom plate 11 can be set to the same height, that is, the cable inlet cylinder 12 and the cable outlet cylinder 13 are disposed on the same straight line, and the cable passing through the cable inlet cylinder 12 and cut by the first blade 163 can enter the cable outlet cylinder 13.

[0025] It should be understood that in the case where the cable is not shaped, relevant shaping components can be provided at the cable inlet cylinder 12 so that the cable can be cut by the first blade 163 and enter the cable outlet cylinder 13. The shaping components can fix the cable, thereby correcting the conveying direction of the cable. The specific setting of the shaping components is not limited in the embodiments of the present invention.

[0026] It should be noted that the cable passing through the cable outlet cylinder 13 can be cut manually after the cable is skinned, or a cutting device can be provided at the second frame 15 and near the cable outlet cylinder 13 to cut the cable passing through the cable outlet cylinder 13, so as to meet the user's usage requirements.

[0027] In addition, the first blade 163 can rotate with the rotation of the first transmission shaft 162, and the setting height of the first blade 163 can be set and adjusted according to the actual working conditions, such as the actual size of the cable. On the other hand, the first blade 163 can be used in combination with a height adjustment device, so as to efficiently cut cables of different sizes. And when the cable skinning device is not in use, the first blade 163 can be adjusted to the highest position, thereby improving the safety of the cable skinning device.

[0028] Moreover, the first blade 163 can be a circular blade, that is, when the first blade 163 rotates, the blade makes a circular motion.

[0029] In addition, the conveying component 17 conveys the cable from the cable inlet cylinder 12 to the cable outlet cylinder 13, and the cable needs to be cut during this process. The conveying component 17 can use a roller or gear structure to convey the cable, and the position where the conveying component 17 is set can be before the first blade 163 cuts, or the conveying component 17 can be set at positions before and after the first blade 163 cuts at the same time. The embodiments of the present invention do not limit this.

[0030] In this embodiment, the cable passes through the cable inlet cylinder 12 and enters the cable outlet cylinder 13. When the cable is in contact with the first blade 163 and the conveying component 17, the rotation of the first motor 161 is used to drive the rotation of the first blade 163 and drive the rotation of the conveying component 17. The rotation of the conveying component 17 is used to drive the in-contact cable to move, so as to drive the cable to move toward the outlet side of the cable outlet cylinder 13. Through the setting of this structure, the efficiency of cable skinning treatment can be improved.

[0031] As an alternative embodiment, the first cutting member 16 further includes a second motor 164, a second transmission shaft 165, and a first connecting member 166. The second motor 164 is connected to the second transmission shaft 165, the second transmission shaft 165 is connected to the first connecting member 166, and the first connecting member 166 is connected to the first transmission shaft 162. Wherein, the rotation of the second motor 164 is used to drive the rotation of the second transmission shaft 165, the rotation of the second transmission shaft 165 is used to drive the first connecting member 166 to move in a direction close to or away from the cable, and the first transmission shaft 162 and the first blade 163 move in a direction close to or away from the cable along with the first connecting member 166.

[0032] Wherein, the second transmission shaft 165 can be arranged on the side of the first frame 14, and the second transmission shaft 165 and the first connecting member 166 can be connected by threads, that is, the rotation of the second motor 164 drives the rotation of the second transmission shaft 165, and the rotation of the second transmission shaft 165 drives the first connecting member 166 to move close to or away from the cable.

[0033] It should be understood that the first connecting member 166 is fixedly connected to the first blade 163. Therefore, the movement of the first connecting member 166 close to or away from the cable drives the first blade 163 to move close to or away from the cable, so as to achieve the operation of the first blade 163 cutting the cable or stopping cutting the cable.

[0034] In this embodiment, the control of the up and down movement of the first blade 163 is completed by the second motor 164, the second transmission shaft 165, and the first connecting member 166 arranged on the first frame 14. Specifically, the rotation of the second motor 164 is used to drive the rotation of the second transmission shaft 165, the rotation of the second transmission shaft 165 is used to drive the first connecting member 166 to move in a direction close to or away from the cable, and the first transmission shaft 162 and the first blade 163 move in a direction close to or away from the cable along with the first connecting member 166. Through the setting of the structure, the operability of the cable stripping device is improved. The user can control the position of the first blade 163 according to the actual working conditions, which improves the safety of the cable stripping device and also improves the stripping efficiency.

[0035] It should be noted that the control of the first connecting member 166 can be before cable stripping, that is, after obtaining the specific dimensions and other data of the cable, the height of the first blade 163 can be determined, and then the height of the first connecting member 166 can be adjusted through the second motor 164 and the second transmission shaft 165, so that the first blade 163 is adjusted to the optimal cutting and stripping position.

[0036] As an alternative embodiment, reference may be made to Figure 3, the device further includes: a second cutting member 18; the second cutting member 18 is disposed on the first frame 14, and the second cutting member 18 includes a third transmission shaft 181, a second blade 182, and a second connecting member 183. The third transmission shaft 181 is connected to the second connecting member 183, the second connecting member 183 is connected to the second transmission shaft 165, and the second blade 182 is disposed on the third transmission shaft 181; wherein, the rotation of the second motor 164 is used to drive the rotation of the second transmission shaft 165, and the rotation of the second transmission shaft 165 is used to drive the first connecting member 166 and the second connecting member 183 to perform relative movement in opposite directions.

[0037] Wherein, the second cutting member 18 may be symmetrically disposed with respect to the cable relative to the first cutting member 16. For example, the first cutting member 16 is disposed directly above the cable conveying track, and the second cutting member 18 is disposed directly below the cable conveying track. The specific installation positions of the first cutting member 16 and the second cutting member 18 may be set according to the actual working conditions and user requirements, and the embodiments of the present invention do not limit this.

[0038] In the second cutting member 18, the rotation of the third transmission shaft 181 drives the rotation of the second blade 182. Among them, the third transmission shaft 181 may be rotated by a separate motor or by the first motor 161. For example, the first transmission shaft 162 and the third transmission shaft 181 are connected by a conveyor belt, that is, the rotation of the first transmission shaft 162 can drive the rotation of the third transmission shaft 181, so that the second blade 182 performs a cutting motion.

[0039] Wherein, the second blade 182 may be a circular blade, that is, when the second blade 182 rotates, the blade performs a circular motion.

[0040] In addition, the rotation of the second motor 164 is used to drive the rotation of the second transmission shaft 165, and the rotation of the second transmission shaft 165 is used to drive the first connecting member 166 and the second connecting member 183 to perform relative movement in opposite directions. Among them, the first connecting member 166 and the second connecting member 183 may be connected to the second transmission shaft 165 through a threaded structure, that is, the rotation of the second transmission shaft 165 can drive the first connecting member 166 and the second connecting member 183 to perform relative movement in opposite directions.

[0041] It should be noted that because the first connecting member 166 and the second connecting member 183 perform relative movement in opposite directions, the threaded structure between the first connecting member 166 and the second transmission shaft 165 and the threaded structure between the second connecting member 183 and the second transmission shaft 165 are opposite structures.

[0042] In this embodiment, the second cutting member 18 is an auxiliary cutting member for assisting the first cutting member 16. By setting two blades, the effect of cable stripping can be improved. Among them, the rotation of the second motor 164 drives the rotation of the second transmission shaft 165, and the rotation of the second transmission shaft 165 drives the first connecting member 166 and the second connecting member 183 to move relatively in opposite directions. When cable stripping is required, the rotation of the second motor 164 adjusts the first blade 163 and the second blade 182 to the optimal cutting position, so as to perform cable stripping. Through the setting of this structure, while improving the stripping effect, the efficiency of cable stripping can also be improved.

[0043] In addition, the movement of the second connecting member 183 can be carried out by a separate motor. When the movement of the second connecting member 183 depends on the first motor 161, a conveyor belt can also be provided on the top of the first frame 14, and the second transmission shaft 165 and the transmission shaft controlling the second connecting member 183 are connected through the conveyor belt. It should be noted that when the second transmission shaft 165 is arranged on the side of the first frame 14, the transmission shaft controlling the second connecting member 183 can be arranged on the other side of the first frame 14. The rotation of the second transmission shaft 165 drives the rotation of the conveyor belt, thereby driving the transmission of the transmission shaft controlling the second connecting member 183.

[0044] As an alternative embodiment, the second cutting member 18 further includes a first transmission device 184. The first transmission device 184 is fixedly arranged on the second frame 15, and the first transmission device 184 is used to connect the first transmission shaft 162 and the third transmission shaft 181. Among them, when the first motor 161 drives the first transmission shaft 162 to rotate, the rotation of the first transmission shaft 162 drives the third transmission shaft 181 to rotate through the first transmission device 184, and the rotation of the third transmission shaft 181 is used to drive the second blade 182 to rotate.

[0045] Among them, the first transmission device 184 can be a device that converts the rotation of the first transmission shaft 162 into the rotation of the third transmission shaft 181. Specifically, when the first motor 161 drives the first transmission shaft 162 to rotate, the rotation of the first transmission shaft 162 drives the third transmission shaft 181 to rotate through the first transmission device 184.

[0046] It should be understood that the first transmission device 184 is arranged on the second frame 15, and the first transmission device 184 can be composed of several gears and conveyor belts, so that the rotation of the first transmission shaft 162 drives the rotation of the third transmission shaft 181, and further enables the second blade 182 to rotate for cutting the cable.

[0047] See Figure 4 , Figure 4It represents the first transmission device 184, and the first transmission device 184 is composed of two conveyor belts 1841 and two gears 1842. The two gears 1842 are arranged on the same board surface, and the board surface is fixedly arranged on the second frame 15. The two gears 1842 are matched and respectively equipped with conveyor belts 1841. Among them, the conveyor belt 1841 is connected to the first transmission shaft 162. The rotation of the first transmission shaft 162 can drive the rotation of the conveyor belt and the two gears 1842, thereby driving the rotation of the other conveyor belt. The other conveyor belt is connected to the third transmission shaft 181, and further causes the third transmission shaft 181 and the second blade 182 connected thereto to rotate.

[0048] In this embodiment, by setting the first transmission device 184, the rotation of the first transmission shaft 162 drives the rotation of the third transmission shaft 181. Specifically, when the first motor 161 drives the first transmission shaft 162 to rotate, the rotation of the first transmission shaft 162 drives the third transmission shaft 181 to rotate through the first transmission device 184. The rotation of the third transmission shaft 181 is used to drive the second blade 182 to rotate. Through the setting of the structure, the first cutting component 16 and the second cutting component 18 can share one motor to complete the cutting work of the cable. And when the first transmission shaft 162 rotates, the third transmission shaft 181 will rotate. When the first transmission shaft 162 stops rotating, the third transmission shaft 181 will also stop rotating, thereby reducing the probability of cable cutting errors caused by the out-of-synchronization of the two cutting components.

[0049] As an alternative implementation, please refer to Figure 5 , the conveying component 17 includes a fourth transmission shaft 171, a first conveyor belt 172, a second transmission device 173 and a third transmission device 174. The two ends of the first conveyor belt 172 are respectively connected to the first transmission shaft 162 and the fourth transmission shaft 171. The fourth transmission shaft 171 is fixedly connected to the second transmission device 173, and the second transmission device 173 is movably connected to the third transmission device 174; among them, the rotation of the first motor 161 is used to drive the first transmission shaft 162 to rotate. The rotation of the first transmission shaft 162 drives the fourth transmission shaft 171 to rotate through the first conveyor belt 172. The rotation of the fourth transmission shaft 171 drives the second transmission device 173 to rotate. The rotation of the second transmission device 173 drives the third transmission device 174 to rotate. The rotation of the third transmission device 174 is used to drive the in-contact cable to move, so as to drive the cable to move toward the outlet side of the cable outlet cylinder 13.

[0050] In addition, the conveying component 17 can be provided with another auxiliary conveying component with the same structure at a symmetrical position relative to the cable, that is, the cable is conveyed through two identical structures. For example: the cable is clamped by two gear structures, and the rotation directions of the two gears are opposite, so that the cable reaches the cable outlet cylinder 13 from the cable inlet cylinder 12.

[0051] Among them, the second transmission device 173 and the third transmission device 174 can be gear structures. That is, the rotation of the gear structure in the second transmission device 173 drives the rotation of the gear structure in the third transmission device 174, and the gear structure in the third transmission device 174 can be in direct contact with the cable. That is, the cable is conveyed by the rotation of the gear structure in the third transmission device 173.

[0052] In addition, please refer to Figure 6 , the fourth transmission shaft 171 can be a structure including an inner rod 1711 and an outer rod 1712. Among them, a limiting block 1713 is provided on the inner rod 1711. By using the limiting block 1713, the inner rod 1711 can rotate synchronously with the outer rod 1712. While the first conveyor belt 172 drives the fourth transmission shaft 171 to rotate, it further drives the synchronous rotation of the second transmission device 173 and the third transmission device 174.

[0053] In this embodiment, by setting the fourth transmission shaft 171, the first conveyor belt 172, the second transmission device 173 and the third transmission device 174, the rotation of the first motor 161 is used to drive the rotation of the first transmission shaft 162. The rotation of the first transmission shaft 162 drives the fourth transmission shaft 171 to rotate through the first conveyor belt 172. The rotation of the fourth transmission shaft 171 drives the second transmission device 173 to rotate. The rotation of the second transmission device 173 drives the third transmission device 174 to rotate. Thus, relying on the rotation of the third transmission device 174 to drive the in-contact cable to move, so as to drive the cable to move toward the outlet side of the cable outlet cylinder 13. Through the setting of this structure, the operation of the conveying component 17 can start according to the movement of the first cutting component 16, reducing the probability that the cable starts to be conveyed without being skinned. In addition, simultaneous skinning and conveying of the cable can improve the efficiency of the cable skinning device.

[0054] It should be noted that the size of the third transmission device 174 can be adjusted according to the actual size of the cable, so that the third transmission device 174 is always engaged with the outside of the cable and conveys the cable.

[0055] As an optional implementation manner, the device further includes a distance adjustment device 19. The distance adjustment device 19 includes an adjustment support arm 191 and an adjustment plate 192. The first end of the adjustment support arm 191 is movably connected to the conveying component 17, and the second end of the adjustment support arm 191 is movably connected to the adjustment plate 192; among them, the adjustment plate 192 is used to move toward or away from the cable, so as to drive the change of the first included angle between the adjustment support arm 191 and the horizontal plane. The angular change of the adjustment support arm 191 in the horizontal direction drives the movement of the conveying component 17, so that the conveying component 17 moves toward the direction of cable contact. The movement direction of the first connecting member 166 is perpendicular to the movement direction of the conveying component 17.

[0056] Among them, the adjusting plate 192 can control the included angle between the adjusting support arm 191 and the horizontal direction in a fixed manner. For example, when the conveying component 17 reaches a suitable position relative to the cable, the first included angle between the adjusting support arm 191 and the horizontal direction also needs to be fixed. The adjusting plate 192 connected to the adjusting support arm 191 can fix the first included angle, and the adjusting plate 192 is fixed by means of a pin.

[0057] Of course, the adjusting plate 192 can also fix the first included angle by setting other fixing components, and the embodiments of the present invention do not limit this.

[0058] In addition, when two opposite third transmission devices 174 are provided in the conveying component 17, two corresponding adjusting support arms 191 need to be provided and respectively connected to the two opposite third transmission devices 174.

[0059] In this implementation, a specific adjusting device 19 is provided to control the distance between the conveying component 17 and the cable. By controlling the adjusting plate 192 to move closer to or away from the cable, the first included angle between the adjusting support arm 191 and the horizontal plane is changed. The angular change of the adjusting support arm 191 in the horizontal direction drives the movement of the conveying component 17, so that the conveying component 17 moves in the direction of contacting the cable, and can be appropriately adjusted according to the actual size of the cable, thereby improving the stability during cable conveying and further improving the efficiency of the cable stripping device.

[0060] As an alternative implementation, refer to Figure 7 , the cable inlet cylinder 12 includes a cylinder body 121, a first shaping plate 122, a second shaping plate 123 and an adjusting device 124. The first shaping plate 122 and the second shaping plate 123 are arranged inside the cylinder body 121. The adjusting device 124 is fixedly connected to the cylinder body 121. The adjusting device 124 is connected to the first shaping plate 122 through a first guide rod 125 passing through the cylinder body 121, and the adjusting device 124 is connected to the second shaping plate 123 through a second guide rod 126 passing through the cylinder body 121; among them, the adjusting device 124 controls the first guide rod 125 and the second guide rod 126 to move closer to or away from the cable. The movement of the first guide rod 125 drives the first shaping plate 122 to move closer to or away from the cable, and the movement of the second guide rod 126 drives the second shaping plate 123 to move closer to or away from the cable.

[0061] Among them, the first shaping plate 122 and the second shaping plate 123 are arranged inside the cylinder body 121, that is, the first shaping plate 122 and the second shaping plate 123 are in contact with and fit the cable. The sizes of the first shaping plate 122 and the second shaping plate 123 can be set according to the inner surface size of the cylinder body 121, and the embodiments of the present invention do not limit this.

[0062] In addition, the first guide rod 125 is used to control the movement of the first shaping plate 122, and the second guide rod 126 is used to control the movement of the second shaping plate 123. Both the first guide rod 125 and the second guide rod 126 pass through the housing of the cylinder body 121. The number and specific positions of the first guide rod 125 and the second guide rod 126 can be set according to the actual working conditions, and the embodiments of the present invention do not limit this.

[0063] The adjusting device 124 is used to adjust the first guide rod 125 and the second guide rod 126. Among them, the adjusting device 124 can be provided with any components convenient for operation to control the first guide rod 125 and the second guide rod 126. For example: the adjusting device 124 is a rotatable rocker structure, and by controlling the rocker structure, the first guide rod 125 and the second guide rod 126 generate displacement changes, so as to control the first shaping plate 122 and the second shaping plate 123; the adjusting device 124 can also be a stretchable pull ring structure, and by controlling the pull ring structure, the first guide rod 125 and the second guide rod 126 generate displacement changes, so as to control the first shaping plate 122 and the second shaping plate 123.

[0064] In this embodiment, the cable inlet cylinder 12 includes the first shaping plate 122 and the second shaping plate 123 directly used for shaping, so that the shape of the cable tends to be a straight line state. Specifically, the user makes the first guide rod 125 and the second guide rod 126 move closer to or away from the cable through the adjusting device 124. The movement of the first guide rod 125 drives the first shaping plate 122 to move closer to or away from the cable, and the movement of the second guide rod 126 drives the second shaping plate 123 to move closer to or away from the cable, so that the first shaping plate 122 and the second shaping plate 123 shape or reshape the cable. Through the setting of this structure, the shape of the cable after passing through the cable inlet cylinder 12 is adjusted, which is beneficial to the peeling treatment and transmission work, and thus improves the efficiency of the cable peeling device and the product quality after the peeling treatment.

[0065] As an alternative embodiment, reference can be made to Figure 8, The adjusting device 124 includes a screw rod 1241, a mounting plate 1242, and an auxiliary guide rod 1243. A handle 1244 is provided at the first end of the screw rod 1241, and a rotating shaft 1245 is provided at the second end of the screw rod 1241. The screw rod 1241 passes through the mounting plate 1242 and is fixedly connected to the cylinder body 121. The mounting plate 1242 is movably connected to the first shaping plate 122 and the second shaping plate 123. Among them, the rotation of the handle 1244 drives the mounting plate 1242 to move in a direction close to or away from the cable. The movement of the mounting plate 1242 drives the auxiliary guide rod 1243 to move, so that the second angle between the auxiliary guide rod 1243 and the horizontal plane changes. The movement of the auxiliary guide rod 1243 drives the first guide rod 125 and the second guide rod 126 to move.

[0066] In this embodiment, the adjusting device 124 horizontally translates the mounting plate 1242 through the provided screw rod 1241, so that the auxiliary guide rod 1243 connected to the mounting plate 1242 moves, that is, the second angle between the auxiliary guide rod 1243 and the horizontal plane changes. Furthermore, the movement of the auxiliary guide rod 1243 drives the first guide rod 125 and the second guide rod 126 to move, and the first guide rod 125 and the second guide rod 126 then drive the first shaping plate 122 and the second shaping plate 123 to move. Through the setting of this structure, the operation convenience of the adjusting device 124 is improved, and the shaping effect of the first shaping plate 122 and the second shaping plate 123 on the cable can be improved through the adjusting device 124.

[0067] As an alternative embodiment, a conveying auxiliary structure 127 is provided on the plate surface of the first shaping plate 122 facing the second shaping plate 123; a conveying auxiliary structure 127 is provided on the plate surface of the second shaping plate 123 facing the first shaping plate 122.

[0068] Among them, the conveying auxiliary structure 127 can be made of a material with high lubricity.

[0069] In addition, the conveying auxiliary structure 127 can be in the form of rollers or hemispherical protrusions.

[0070] In this embodiment, the conveying auxiliary structure 127 is arranged on the two opposite surfaces of the first shaping plate 122 and the second shaping plate 123. Through the setting of this structure, the interference of the first shaping plate 122 and the second shaping plate 123 on the cable conveying can be reduced, and on the other hand, the conveying resistance of the cable during conveying can also be reduced.

[0071] As an alternative embodiment, please refer to Figure 9, the cable stripping device further includes: a third cutting member 20, which is fixedly arranged on the second frame 15; the third cutting member 20 includes a sliding bearing plate 21, a blade control member 22, a third blade 23 and a third motor 24. The sliding bearing plate 21 is fixedly connected to the second frame 15 through a third guide rod 25. The blade control member 22 is arranged on the plate surface of the sliding bearing plate 21 and is connected to the third blade 23 through a fourth guide rod 26. The third motor 24 is connected to the blade control member 22. Wherein, when the cable passes through the cable outlet cylinder 13, the rotation of the third motor 24 is used to drive the rotation of the blade control member 22, and the rotation of the blade control member 22 drives the third blade 23 to move in a direction close to or away from the cable, so as to cut the cable passing through the cable outlet cylinder 13.

[0072] Wherein, the blade control member 22 is used to control the third blade 23 to move close to or away from the cable. The blade control member 22 can directly control the cutting movement of the third blade 23 through the fourth guide rod 26, or can perform equidistant cutting on the cable according to user requirements.

[0073] When equidistant cutting of the cable is required, reference can be made to Figure 9 , the blade control member 22 can be provided with a disc structure, and a rotating rod is further arranged on the disc structure. The rotating rod is inserted into the square frame, so that when the disc rotates, the square frame drives the fourth guide rod 26 to continuously perform cutting movement. During a single cutting process, when the fourth guide rod 26 moves towards the cable, the cable is cut. After the cutting is completed, the third blade 23 moves in a direction away from the cable to perform a reset movement, thereby completing equidistant cutting.

[0074] In this implementation scheme, when the cable passes through the cable outlet cylinder 13, the rotation of the third motor 24 is used to drive the rotation of the blade control member 22, and the rotation of the blade control member 22 drives the third blade 23 to move in a direction close to or away from the cable, so as to cut the cable passing through the cable outlet cylinder 13. The setting of this structure adds a cable segmentation function to the cable stripping device, and improves the practicability and functionality of the cable stripping device.

[0075] It should be understood that various forms of processes shown above can be used, and steps can be reordered, added or deleted. For example, the steps described in the present invention can be executed in parallel, sequentially or in different orders, as long as the desired results of the technical solutions disclosed in the present disclosure can be achieved, and no limitations are imposed herein.

[0076] The above specific embodiments do not constitute a limitation to the protection scope of the present invention. Those skilled in the art should understand that various modifications, combinations, sub-combinations and substitutions can be made according to design requirements and other factors. Any modifications, equivalent substitutions and improvements made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.

Claims

1. A cable stripping device, characterized in that, Comprising: A bottom plate, a cable inlet cylinder, a cable outlet cylinder, a first frame and a second frame; The cable inlet cylinder is arranged at a first position of the bottom plate; The cable outlet cylinder is fixedly arranged on the second frame, and the second frame is arranged at a second position of the bottom plate; The first frame is arranged at a third position of the bottom plate, and the third position is located between the first position and the second position; The first frame is provided with a first cutting component and a conveying component. The first cutting component includes a first motor, a first transmission shaft and a first blade. The first motor is connected to the first transmission shaft and the conveying component, and the first blade is arranged on the first transmission shaft; Wherein, the cable passes through the cable inlet cylinder and penetrates into the cable outlet cylinder. When the cable is in contact with the first blade and the conveying component, the rotation of the first motor is used to drive the rotation of the first blade and the rotation of the conveying component. The rotation of the conveying component is used to drive the in-contact cable to move, so as to drive the cable to move towards the outlet side of the cable outlet cylinder; The first cutting component further includes a second motor, a second transmission shaft and a first connecting piece. The second motor is connected to the second transmission shaft, the second transmission shaft is connected to the first connecting piece, and the first connecting piece is connected to the first transmission shaft; Wherein, the rotation of the second motor is used to drive the rotation of the second transmission shaft, and the rotation of the second transmission shaft is used to drive the first connecting piece to move in a direction close to or away from the cable. The first transmission shaft and the first blade move in two up and down directions along with the first connecting piece; The conveying component includes a fourth transmission shaft, a first conveyor belt, a second transmission device and a third transmission device. The two ends of the first conveyor belt are respectively connected to the first transmission shaft and the fourth transmission shaft. The fourth transmission shaft is fixedly connected to the second transmission device, and the second transmission device is movably connected to the third transmission device; Wherein, the rotation of the first motor is used to drive the rotation of the first transmission shaft. The rotation of the first transmission shaft drives the rotation of the fourth transmission shaft through the first conveyor belt. The rotation of the fourth transmission shaft drives the rotation of the second transmission device. The rotation of the second transmission device drives the rotation of the third transmission device. The rotation of the third transmission device is used to drive the in-contact cable to move, so as to drive the cable to move towards the outlet side of the cable outlet cylinder.

2. The cable stripping device according to claim 1, characterized in that, The device further includes: a second cutting component; The second cutting component is arranged on the first frame. The second cutting component includes a third transmission shaft, a second blade and a second connecting piece. The third transmission shaft is connected to the second connecting piece, the second connecting piece is connected to the second transmission shaft, and the second blade is arranged on the third transmission shaft; Wherein, the rotation of the second motor is used to drive the rotation of the second transmission shaft, and the rotation of the second transmission shaft is used to drive the first connecting piece and the second connecting piece to perform a relative movement in opposite directions.

3. The cable stripping device according to claim 2, characterized in that, The second cutting component further includes a first transmission device, which is fixedly arranged on the second frame and is used for connecting the first transmission shaft and the third transmission shaft; Wherein, when the first motor drives the first transmission shaft to rotate, the rotation of the first transmission shaft drives the third transmission shaft to rotate through the first transmission device, and the rotation of the third transmission shaft is used to drive the second blade to rotate.

4. The cable stripping device according to claim 1, wherein, The device further includes a distance adjusting device, which includes an adjusting support arm and an adjusting plate. The first end of the adjusting support arm is movably connected to the conveying component, and the second end of the adjusting support arm is movably connected to the adjusting plate; Wherein, the adjusting plate is used to move towards or away from the cable, so as to drive the change of the first angle between the adjusting support arm and the horizontal plane. The angular change of the adjusting support arm in the horizontal direction drives the movement of the conveying component, so that the conveying component moves towards the direction of cable contact. The movement direction of the first connecting piece is perpendicular to the movement direction of the conveying component.

5. The cable stripping device according to claim 1, characterized in that, The cable inlet cylinder includes a cylinder body, a first shaping plate, a second shaping plate and an adjusting device. The first shaping plate and the second shaping plate are arranged inside the cylinder body. The adjusting device is fixedly connected to the cylinder body. The adjusting device is connected to the first shaping plate through a first guide rod passing through the cylinder body, and the adjusting device is connected to the second shaping plate through a second guide rod passing through the cylinder body; Wherein, the adjusting device controls the first guide rod and the second guide rod to move towards or away from the cable. The movement of the first guide rod drives the first shaping plate to move towards or away from the cable, and the movement of the second guide rod drives the second shaping plate to move towards or away from the cable.

6. The cable stripping device according to claim 5, wherein The adjusting device includes a screw rod, a mounting plate and an auxiliary guide rod. A handle is arranged at the first end of the screw rod, and a rotating shaft is arranged at the second end of the screw rod. The screw rod passes through the mounting plate and is fixedly connected to the cylinder body. The mounting plate is movably connected to the first shaping plate and the second shaping plate; Wherein, the rotation of the handle drives the mounting plate to move in the direction of approaching or departing from the cable. The movement of the mounting plate drives the movement of the auxiliary guide rod, so as to drive the change of the second angle between the auxiliary guide rod and the horizontal plane. The movement of the auxiliary guide rod drives the movement of the first guide rod and the second guide rod.

7. The cable stripping device according to claim 5, wherein, A conveying auxiliary structure is arranged on the plate surface of the first shaping plate facing the second shaping plate; A conveying auxiliary structure is arranged on the plate surface of the second shaping plate facing the first shaping plate.

8. The cable stripping device according to claim 1, wherein, The cable stripping device further includes: a third cutting component, which is fixedly arranged on the second frame; The third cutting component includes a sliding bearing plate, a blade control part, a third blade and a third motor. The sliding bearing plate is fixedly connected to the second frame through a third guide rod. The blade control part is arranged on the plate surface of the sliding bearing plate and is connected to the third blade through a fourth guide rod. The third motor is connected to the blade control part; Wherein, when the cable passes through the cable outlet cylinder, the rotation of the third motor is used to drive the rotation of the blade control member, and the rotation of the blade control member drives the third blade to move in a direction close to or away from the cable, so as to cut the cable passing through the cable outlet cylinder.

Citation Information

Patent Citations

  • Cable stripping device

    CN217159132U