Cable terminal processing device

By designing an automated cable termination processing device and utilizing the mechanized control of clamping, stripping, and crimping components, the problems of inconsistent precision and unstable quality caused by manual operation in cable termination manufacturing have been solved, achieving efficient and reliable cable termination processing.

CN120879415APending Publication Date: 2025-10-31HUANENG LANCANG RIVER HYDROPOWER CO LTD
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Patent Information

Application Number
CN202511075637.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-01
Publication Date
2025-10-31

AI Technical Summary

Technical Problem

In existing technologies, cable termination manufacturing relies on manual operation, which leads to inconsistent cable stripping accuracy and unstable crimping quality, affecting the quality and service life of the cable termination.

Method used

Design a cable termination processing device, including a clamping assembly, a stripping assembly, and a crimping assembly. Through mechanized control, realize the automated and high-precision processing of cable terminations. Utilize the adjustable aperture of the clamping assembly, the radial movement and rotary cutting of the stripping assembly, and the precise clamping and crimping of the crimping assembly to ensure the reliability and safety of the cable terminations.

Benefits of technology

It improves the efficiency and quality of cable terminal manufacturing, reduces reliance on manual labor, ensures the reliability and safety of cable terminals, and adapts to the processing needs of cables of different specifications.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a cable terminal processing device. The cable terminal processing device comprises a base, a clamping assembly, a wire stripping assembly and a crimping assembly, the clamping assembly, the wire stripping assembly and the crimping assembly are arranged on the base, the clamping assembly is provided with a clamping hole, the aperture of the clamping hole is adjustable, the wire stripping assembly is provided with a wire stripping hole, the wire stripping hole and the clamping hole are coaxially arranged, the wire stripping assembly is provided with a cutting part, and the cutting part is arranged on the clamping hole. The cutting part can move in the radial direction of the wire stripping hole and can rotate around the axis of the wire stripping hole, the crimping assembly is provided with a clamping part, the clamping part is used for clamping the part, cut off the cable, of the cutting part, and the clamping part can move in the axial direction of the wire stripping hole so that the clamping part can strip off the cut part of the cable. And the clamping part is also used for crimping a terminal of the cable. According to the cable terminal processing device, manual dependence is reduced, and the reliability and safety of the cable terminal are ensured.
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Description

Technical Field

[0001] This invention relates to the field of electrical equipment technology, and in particular to a cable termination processing device. Background Technology

[0002] In the fields of power systems, communication engineering, and industrial automation, cable termination is a crucial step in cable installation and maintenance. The quality of cable termination directly affects the stability of power transmission, the reliability of signal transmission, and the safety of the entire system. Currently, cable termination is typically done manually, including cable stripping, conductor crimping, insulation treatment, and terminal sealing. This manual process is prone to inconsistencies in cable stripping precision and inconsistent crimping quality. Summary of the Invention

[0003] This invention is based on the inventor's discoveries and understanding of the following facts and problems:

[0004] Manual stripping and crimping operations rely on worker experience. Improper operation can easily lead to problems such as damage to the insulation layer and weak crimping, thereby affecting the quality and service life of the cable terminal.

[0005] The present invention aims to at least partially solve one of the technical problems in the related art.

[0006] Therefore, embodiments of the present invention propose a cable termination processing device to achieve automation, high precision and standardization in cable termination processing.

[0007] The cable termination processing device of this invention includes a base and a clamping assembly, a stripping assembly, and a crimping assembly disposed on the base. The clamping assembly has a clamping hole with an adjustable diameter. The stripping assembly has a stripping hole coaxially disposed with the clamping hole. The stripping assembly has a cutting part that is radially movable along the stripping hole and rotatable around the axis of the stripping hole. The crimping assembly has a clamping part for clamping the portion of the cable cut off by the cutting part, and the clamping part is axially movable along the stripping hole to peel off the portion of the cable cut off by the clamping part. The clamping part is also used to crimp the cable terminal.

[0008] The cable termination processing device of this invention reduces reliance on manual labor and ensures the reliability and safety of cable terminations.

[0009] In some embodiments, the clamping assembly includes a first support ring, a first drive member, and a plurality of clamping bodies. The first support ring is disposed on the base, and the clamping bodies are disposed within the first support ring. The clamping bodies are radially movable along the first support ring. The plurality of clamping bodies are arranged at intervals around the axis of the first support ring, and the plurality of clamping bodies together define the clamping hole. The first drive member is connected to the plurality of clamping bodies to drive the plurality of clamping bodies to move synchronously.

[0010] In some embodiments, the wire stripping assembly includes a second support ring, a second drive member, a third drive member, and a cutter. The second support ring is rotatably disposed on the base, and the central hole of the second support ring is the wire stripping hole. The second drive member is connected to the second support ring to drive the second support ring to rotate. The third drive member is disposed on the second support ring and is connected to the cutter to drive the cutter to move radially along the second support ring. The third drive member and the cutter constitute the cutting section.

[0011] In some embodiments, the wire stripping assembly further includes a rotating base disposed on the base, and the second support ring is rotatably connected to the rotating base.

[0012] In some embodiments, the wire stripping assembly further includes an external gear ring and a drive gear, the external gear ring being coaxially connected to the second support ring, the drive gear being fitted onto the output shaft of the second drive member, and the drive gear meshing with the external gear ring.

[0013] In some embodiments, the crimping assembly includes a movable base and a fourth driving member. The movable base is movably disposed on the base along the axial direction of the stripping hole. The fourth driving member is connected to the movable base to drive the movable base to move. The clamping portion is disposed on the movable base.

[0014] In some embodiments, the clamping part includes a rotating shaft, a fifth driving member, and two clamping members. The rotating shaft is rotatably disposed on the movable seat. The fifth driving member is connected to the rotating shaft to drive the rotating shaft to rotate. The rotating shaft has two threaded sections spaced apart along its axial direction and with opposite rotation directions. The two clamping members are respectively provided with threaded holes that mate with the two threaded sections. The movable seat is provided with a limiting plate. The limiting plate is provided with a limiting groove. The extending direction of the limiting groove is parallel to the axial direction of the rotating shaft. Parts of the clamping members are slidably fitted into the limiting groove so that the rotating shaft rotates and drives the two clamping members to move closer or further apart.

[0015] In some embodiments, the cable termination processing apparatus further includes a monitoring component connected to the clamping component, the stripping component, and the crimping component, the monitoring component being used to monitor the processing status of the cable termination.

[0016] In some embodiments, the cable termination processing device further includes a control component connected to the monitoring component. The control component is used to receive monitoring data transmitted by the monitoring component. The control component is connected to the clamping component, the stripping component, and the crimping component. The control component is used to adjust the processing status of the cable termination according to the monitoring data. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of a cable terminal processing device according to an embodiment of the present invention.

[0018] Figure label:

[0019] 100-Cable,

[0020] 1-Base

[0021] 2-Clamping assembly, 21-First support ring, 22-First driving component, 23-Clamping body, 201-Clamping hole,

[0022] 3-Wire stripping assembly, 31-Second support ring, 32-Second drive component, 33-Third drive component, 34-Cutter, 35-Rotating seat, 36-External gear ring, 37-Drive gear, 301-Wire stripping hole, 302-Cutting section

[0023] 4-Crimping assembly, 41-Moving seat, 42-Fourth driving component, 43-Rotating shaft, 44-Fifth driving component, 45-Clamping component, 401-Clamping part. Detailed Implementation

[0024] Embodiments of the present invention are described in detail below, examples of which are illustrated in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, and should not be construed as limiting the present invention.

[0025] The cable termination processing apparatus of the present invention is described below with reference to the accompanying drawings.

[0026] like Figure 1 As shown, the cable terminal processing device of this embodiment includes a base 1, a clamping assembly 2, a wire stripping assembly 3, and a crimping assembly 4, which are arranged sequentially from left to right on the base 1.

[0027] The main function of the clamping assembly 2 is to fix the cable 100, providing a stable base for subsequent stripping and crimping operations. The clamping assembly 2 is equipped with a clamping hole 201, the diameter of which is adjustable to accommodate different cable specifications and diameters. The structural design of the clamping hole 201 ensures that the cable 100 will not loosen or shift during processing, providing a stable reference for subsequent operations.

[0028] By adjusting the aperture, different specifications of cables 100 can be accommodated, improving the applicability and flexibility of the device. The robust design of the clamping assembly 2 ensures that the cable 100 is fixed in position during processing, avoiding operational errors caused by cable 100 movement. The adjustable aperture design of the clamping assembly 2 solves the problem of difficulty in fixing cables 100 due to different specifications during manual operation. At the same time, its robust clamping capability provides a precise foundation for subsequent wire stripping and crimping operations, avoiding operational errors caused by cable 100 misalignment.

[0029] The main function of the wire stripping assembly 3 is to strip the outer sheath and insulation layer of the cable 100, creating conditions for subsequent conductor crimping and terminal installation. The wire stripping assembly 3 is provided with a stripping hole 301 and a cutting part 302, which is movable radially along the stripping hole 301 and rotatable around the axis of the stripping hole 301.

[0030] The cutting part 302 can move radially along the stripping hole 301 to adjust the stripping depth; at the same time, the cutting part 302 can rotate around the axis of the stripping hole 301 to complete the annular cutting of the outer sheath and insulation layer of the cable 100. The stripping hole 301 and the clamping hole 201 are coaxially arranged to ensure the consistency of the axis of the stripping operation and avoid stripping errors caused by axis misalignment.

[0031] The wire stripping assembly 3, through precise mechanical control, solves the problem that the wire stripping operation of cable 100 relies on manual labor, which is prone to inconsistent stripping depth or conductor damage due to operational errors. The radial movement and rotary cutting design ensures consistency in stripping depth and position. The stripping hole 301 and the clamping hole 201 are coaxially arranged to avoid conductor damage caused by axial misalignment.

[0032] The radial movement and rotary cutting design allows for precise control of stripping depth and position, preventing damage to the conductor. Mechanized rotary cutting significantly improves stripping efficiency and reduces the time and effort required for manual operations.

[0033] The crimping assembly 4 has a clamping part 401. During the wire stripping process, the clamping part 401 clamps the portion of the cable 100 cut off by the cutting part 302. The clamping part 401 moves to the right so that the clamping part 401 peels off the portion of the cable 100 cut off. At the same time, the clamping part 401 can also be used as a support and fixation for the cable 100, further improving the cutting accuracy of the cutting part 302.

[0034] After stripping the wires, the terminals are fitted onto the cable 100, and the terminals of the cable 100 are crimped using the clamping part 401. This mechanized crimping operation significantly improves crimping efficiency and reduces the time and effort required for manual operation.

[0035] The crimping assembly 4, through its mechanized clamping and crimping design, solves the problem of inconsistent crimping quality caused by manual operation of cable 100 due to inconsistencies in force and position. Precise control of the clamping part 401 ensures consistency in crimping force and position. This mechanized crimping operation ensures reliable electrical connection of the cable 100 terminals and improves the stability of the cable termination.

[0036] The cable termination processing apparatus of this invention significantly improves the efficiency and quality of cable termination manufacturing through the coordinated operation of the clamping assembly 2, the stripping assembly 3, and the crimping assembly 4. The clamping assembly 2, with its adjustable aperture and stable clamping, ensures the fixing accuracy of the cable 100. The stripping assembly 3, through its radial movement and rotary cutting design, achieves high-precision stripping. The crimping assembly 4, through its precise clamping and crimping design, ensures reliable electrical connection of the cable 100 terminals.

[0037] These designs not only solve the problems of inconsistent precision and unstable quality in manual operation, but also significantly improve the efficiency and reliability of cable termination manufacturing, providing an efficient and reliable solution for cable installation and maintenance in the fields of power systems, communication engineering and industrial automation.

[0038] In some embodiments, such as Figure 1 As shown, the clamping assembly 2 includes a first support ring 21, a first driving member 22, and a plurality of clamping bodies 23. The first support ring 21 is disposed on the base 1, and the clamping bodies 23 are disposed within the first support ring 21. The clamping bodies 23 are movable radially along the first support ring 21. The plurality of clamping bodies 23 are arranged at intervals around the axis of the first support ring 21, and the plurality of clamping bodies 23 together define a clamping hole 201. The first driving member 22 is connected to the plurality of clamping bodies 23 to drive the plurality of clamping bodies 23 to move synchronously.

[0039] Multiple clamping bodies 23 are arranged at intervals around the axis of the first support ring 21, which can evenly distribute the clamping force and prevent the cable 100 from deforming or slipping due to uneven force during clamping. The diameter of the clamping hole 201 can be adjusted by moving the clamping bodies 23 radially along the first support ring 21, thus accommodating cables 100 of different diameters. Automated control of the drive mechanism reduces the need for manual adjustment of the clamping hole 201 diameter, improving the overall efficiency of cable termination processing.

[0040] Optionally, the first drive unit 22 may include multiple linear motors, each clamping body 23 is driven by a linear motor, and the operation of multiple linear motors is controlled by a communication bus to ensure that all clamping bodies 23 move synchronously, and to avoid deformation of the clamping hole 201 or displacement of the cable 100 due to asynchronous movement of the clamping bodies 23.

[0041] Alternatively, to reduce costs, the first support ring 21 and multiple clamping bodies 23 can together form a structure similar to the aperture of a camera, and the first driving component 22 can consist of a motor and a transmission gear set, with the aperture of the clamping hole 201 adjusted by a single motor. This single-motor drive design reduces the number of mechanical parts, lowers the failure rate, and improves the reliability of the device.

[0042] In some embodiments, such as Figure 1 As shown, the wire stripping assembly 3 includes a second support ring 31, a second drive member 32, a third drive member 33, and a cutter 34. The second support ring 31 is rotatably mounted on the base 1, and its central hole is a wire stripping hole 301. The second drive member 32 is connected to the second support ring 31 to drive the second support ring 31 to rotate. The third drive member 33 is mounted on the second support ring 31 and is connected to the cutter 34 to drive the cutter 34 to move radially along the second support ring 31. The third drive member 33 and the cutter 34 constitute a cutting section 302.

[0043] The second driving component 32 can be a motor, which drives the rotation of the second support ring 31. Driven by the second driving component 32, the second support ring 31 can rotate around the axis of the cable 100, enabling the cutter 34 to perform a ring cut, ensuring that the outer sheath and insulation layer are uniformly peeled off.

[0044] The third driving component 33 can be a cylinder, which drives the cutter 34 to move radially. The third driving component 33 drives the cutter 34 to move radially along the second support ring 31, which can adjust the cutting depth of the cutter 34 to adapt to cables 100 of different specifications, ensure consistent stripping depth, and avoid damage to the conductor.

[0045] The second drive unit 32 and the third drive unit 33 respectively control the rotation of the second support ring 31 and the radial movement of the cutter 34. Through precise control, the accuracy and consistency of the wire stripping operation are ensured, and the processing quality is improved.

[0046] Optionally, such as Figure 1 As shown, the wire stripping assembly 3 also includes a rotating seat 35, an external gear ring 36, and a drive gear 37. The rotating seat 35 is disposed on the base 1, and the second support ring 31 is rotatably connected to the rotating seat 35. The external gear ring 36 is coaxially connected to the second support ring 31, and the drive gear 37 is fitted onto the output shaft of the second drive member 32, and the drive gear 37 meshes with the external gear ring 36.

[0047] The rotating seat 35 provides a stable rotational support for the second support ring 31. The external toothed ring 36 and the drive gear 37 are meshed to ensure that the rotation of the second support ring 31 is accurate and reliable, avoiding stripping quality problems caused by transmission errors.

[0048] By using automated motors and cylinders, manual operation is reduced, wire stripping efficiency is improved, and efficient automation of cable termination processing is achieved.

[0049] In some embodiments, such as Figure 1 As shown, the crimping assembly 4 includes a movable base 41 and a fourth driving member 42. The movable base 41 is movably disposed on the base 1 along the axial direction of the stripping hole 301. The fourth driving member 42 is connected to the movable base 41 to drive the movable base 41 to move. The clamping part 401 is disposed on the movable base 41.

[0050] The fourth driving component 42 can be a cylinder, which drives the moving seat 41 to move left and right. During the wire stripping process, the clamping part 401 clamps the cut portion of the cable 100, and the moving seat 41 moves to the right to strip the cut portion of the cable 100. During the crimping process, the movement of the moving seat 41 adjusts the position of the clamping part 401 corresponding to the terminal, which can accommodate terminals of different lengths, improving the versatility and flexibility of the device.

[0051] Optionally, such as Figure 1 As shown, the clamping part 401 includes a rotating shaft 43, a fifth driving member 44, and two clamping members 45. The rotating shaft 43 is rotatably mounted on the movable base 41, and the fifth driving member 44 is connected to the rotating shaft 43 to drive the rotating shaft 43 to rotate. The rotating shaft 43 has two threaded sections arranged axially at intervals and with opposite directions of rotation. The two clamping members 45 are each provided with threaded holes that mate with the two threaded sections. The movable base 41 is provided with a limiting plate, which has a limiting groove extending parallel to the axial direction of the rotating shaft 43. Parts of the clamping members 45 are slidably fitted into the limiting groove, so that the rotating shaft 43 rotates, and under the limiting action of the limiting groove, the two clamping members 45 are driven to move closer or further apart.

[0052] The fifth driving component 44 can be a motor, the output shaft of which is directly connected to the rotating shaft 43 so that the motor drives the rotating shaft 43 to rotate, thereby causing the two clamping components 45 to move closer to each other to clamp the cable 100 or crimp terminal, and the two clamping components 45 to move away from each other to release the cable 100 or terminal.

[0053] Two opposing threads on the rotating shaft 43 engage with two clamping members 45. Rotation of the rotating shaft 43 causes the clamping members 45 to move closer or further apart, ensuring reliable clamping and crimping of the cable 100 terminals and improving the stability of the electrical connection. The crimping assembly 4 is automated through the driving of the fourth driving member 42 and the fifth driving member 44, reducing the need for manual operation.

[0054] In some embodiments, the cable termination processing apparatus further includes a monitoring component (not shown in the figure), which is connected to the clamping component 2, the stripping component 3 and the crimping component 4, and is used to monitor the processing status of the cable termination.

[0055] For example, the monitoring component uses sensors to monitor the clamping status of the clamping component 2, the stripping depth and position of the wire stripping component 3, and the crimping force and position of the crimping component 4.

[0056] The clamping status monitoring of clamping component 2 utilizes a pressure sensor to monitor the clamping force, ensuring that cable 100 is securely clamped without damage. Real-time monitoring of the clamping force prevents excessive clamping force from deforming cable 100 or insufficient clamping force from causing cable 100 to slip.

[0057] The wire stripping assembly 3 monitors the stripping depth and position. A displacement sensor or encoder monitors the movement position and cutting depth of the wire stripping tool to ensure the accuracy of the wire stripping operation and avoid damage to the conductor due to excessive cutting or incomplete stripping of the insulation layer due to insufficient cutting.

[0058] The crimping force and position monitoring of the crimping assembly 4, and the force sensor monitoring the pressure during crimping, ensure a reliable connection between the terminal and the conductor of the cable 100, and prevent poor contact due to insufficient crimping force or deformation of the terminal due to excessive force.

[0059] Furthermore, the cable terminal processing device also includes a control component (not shown in the figure). The control component is connected to the monitoring component and is used to receive monitoring data transmitted by the monitoring component. The control component is connected to the clamping component 2, the stripping component 3, and the crimping component 4. The control component is used to adjust the processing status of the cable terminal according to the monitoring data.

[0060] The control component acquires real-time data from pressure, displacement, and force sensors from the monitoring component. The acquired data is processed and compared with preset standard parameters (such as clamping force, stripping depth, and crimping force) to determine whether the current processing status meets the requirements.

[0061] For example, the control logic of clamping component 2 can increase the clamping force if it detects that the clamping force is lower than the set value, ensuring that the cable 100 is firmly clamped; if the clamping force exceeds the set value, the control component will reduce the clamping force to prevent damage to the cable 100. By monitoring the clamping position data fed back by the component, the control component ensures that the axis of the clamping hole 201 is aligned with the axis of the cable 100, avoiding processing errors caused by misalignment.

[0062] The control logic of the wire stripping assembly 3 uses a displacement sensor to monitor the movement position of the wire stripping cutter. If the stripping depth is insufficient, the control assembly increases the cutting depth; if the stripping depth exceeds a set value, the control assembly reduces the cutting depth to avoid damaging the conductor. It also monitors the rotation path of the cutter to ensure that the stripping operation is performed uniformly along the axis of the cable 100, preventing incomplete insulation stripping due to path deviation.

[0063] The control logic of crimping assembly 4 uses a force sensor to monitor the pressure during crimping. If the crimping force is insufficient, the control assembly increases the pressure; if the crimping force is excessive, the control assembly reduces the pressure to prevent terminal deformation. It also monitors the crimping position to ensure that the terminal is aligned with the conductor of cable 100, avoiding poor contact due to positional misalignment.

[0064] The control components coordinate the sequence of clamping, stripping, and crimping to ensure the continuity of the processing flow. For example, after stripping is completed, the system automatically switches to the crimping stage. If any abnormal condition is detected (such as insufficient clamping force), the control components will trigger an alarm and suspend or adjust the processing flow according to a preset emergency procedure.

[0065] The control component uses a proportional-integral-derivative (PID) control algorithm to adjust the clamping force, stripping depth, and crimping force based on real-time monitoring data, ensuring the stability and accuracy of the processing. The control strategy is dynamically adjusted according to changes in parameters during processing (such as different specifications of cable 100), improving the system's adaptability and robustness.

[0066] The control components display real-time monitoring data, processing status, and alarm information through a user interface, facilitating operator monitoring. Operators can manually adjust control parameters or intervene in the processing through the user interface, providing flexibility and controllability.

[0067] In the description of this invention, it should be understood that the terms "center," "longitudinal," "lateral," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," "counterclockwise," "axial," "radial," and "circumferential" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this invention and simplifying the description, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.

[0068] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this invention, "a plurality of" means at least two, such as two, three, etc., unless otherwise explicitly specified.

[0069] In this invention, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection, an electrical connection, or a connection that allows communication between them; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components, unless otherwise explicitly limited. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.

[0070] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can mean that the first feature is in direct contact with the second feature, or that the first feature is in indirect contact with the second feature through an intermediate medium. Furthermore, "above," "over," and "on top" of the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.

[0071] In this invention, the terms "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., refer to a specific feature, structure, material, or characteristic described in connection with that embodiment or example, which is included in at least one embodiment or example of the invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of different embodiments or examples.

[0072] Although embodiments of the present invention have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting the present invention. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of the present invention.

Claims

1. A cable termination processing device, characterized in that, The device includes a base and a clamping assembly, a stripping assembly, and a crimping assembly disposed on the base. The clamping assembly has a clamping hole with an adjustable diameter. The stripping assembly has a stripping hole coaxially arranged with the clamping hole. The stripping assembly has a cutting portion that is radially movable along the stripping hole and rotatable around the axis of the stripping hole. The crimping assembly has a clamping portion for clamping the portion of the cable cut off by the cutting portion, and the clamping portion is axially movable along the stripping hole to peel off the portion of the cable cut off by the clamping portion. The clamping portion is also used to crimp the terminals of the cable.

2. The cable termination processing device according to claim 1, characterized in that, The clamping assembly includes a first support ring, a first driving member, and a plurality of clamping bodies. The first support ring is disposed on the base, and the clamping bodies are disposed within the first support ring. The clamping bodies are movable radially along the first support ring. The plurality of clamping bodies are arranged at intervals around the axis of the first support ring, and the plurality of clamping bodies together define the clamping hole. The first driving member is connected to the plurality of clamping bodies to drive the plurality of clamping bodies to move synchronously.

3. The cable termination processing device according to claim 1, characterized in that, The wire stripping assembly includes a second support ring, a second drive member, a third drive member, and a cutter. The second support ring is rotatably disposed on the base, and the central hole of the second support ring is the wire stripping hole. The second drive member is connected to the second support ring to drive the second support ring to rotate. The third drive member is disposed on the second support ring and is connected to the cutter to drive the cutter to move radially along the second support ring. The third drive member and the cutter constitute the cutting part.

4. The cable termination processing device according to claim 3, characterized in that, The wire stripping assembly also includes a rotating seat, which is disposed on the base, and the second support ring is rotatably connected to the rotating seat.

5. The cable termination processing device according to claim 3, characterized in that, The wire stripping assembly also includes an external gear ring and a drive gear. The external gear ring is coaxially connected to the second support ring, and the drive gear is fitted onto the output shaft of the second drive component, meshing with the external gear ring.

6. The cable termination processing device according to claim 1, characterized in that, The crimping assembly includes a movable base and a fourth driving member. The movable base is movably disposed on the base along the axial direction of the stripping hole. The fourth driving member is connected to the movable base to drive the movable base to move. The clamping part is disposed on the movable base.

7. The cable termination processing device according to claim 6, characterized in that, The clamping part includes a rotating shaft, a fifth driving member, and two clamping members. The rotating shaft is rotatably mounted on the movable seat. The fifth driving member is connected to the rotating shaft to drive the rotating shaft to rotate. The rotating shaft has two threaded sections arranged axially at intervals and with opposite directions of rotation. The two clamping members are respectively provided with threaded holes that mate with the two threaded sections. The movable seat is provided with a limiting plate, and the limiting plate is provided with a limiting groove. The extending direction of the limiting groove is parallel to the axial direction of the rotating shaft. Parts of the clamping members are slidably fitted into the limiting groove so that the rotating shaft rotates and drives the two clamping members to move closer or further apart.

8. The cable termination processing apparatus according to any one of claims 1-7, characterized in that, It also includes a monitoring component connected to the clamping component, the stripping component and the crimping component, the monitoring component being used to monitor the processing status of the cable terminal.

9. The cable termination processing device according to claim 8, characterized in that, It also includes a control component connected to the monitoring component. The control component is used to receive monitoring data transmitted by the monitoring component. The control component is connected to the clamping component, the stripping component, and the crimping component. The control component is used to adjust the processing status of the cable terminal according to the monitoring data.