Magnetic ring shearing foot clamp

CN224712931UActive Publication Date: 2026-09-04DONGGUAN KAIXIN INTELLIGENT EQUIP CO LTD
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Patent Information

Application Number
CN202522171516.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-13
Publication Date
2026-09-04
Estimated Expiration
2035-10-13

AI Technical Summary

Technical Problem

[0005]本实用新型的目的是解决以上缺陷,提供磁环剪脚夹具,以解决上述背景技术中如何提高磁环电感引脚的夹持定位,以提高夹持定位的适用性和精度,从而增强后续裁切的质量和效率的技术问题

Benefits of technology

[0029] Furthermore, as described above, the lifting plate is equipped with a hopper for discharging materials.

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Abstract

The utility model relates to the magnetic ring shearing foot clamp in the field of magnetic ring clamp, including support station, the middle part of support station is equipped with the installation hole of leading through, the bottom of support station is equipped with the connecting block, is equipped with the pin positioning block for positioning magnetic ring pin on connecting block, the middle part of pin positioning block is provided with the positioning portion, the bottom of support station is equipped with pin arrangement assembly, the bottom of support station is equipped with cutting assembly, is provided with the wire arrangement pusher for wire arrangement on cutting assembly, the bottom of support seat is connected with the lifting plate through the guide piece, is equipped with the pin clamping assembly for clamping magnetic ring pin on the lifting plate, is provided with the clamping positioning plate on the lifting plate, the utility model pin arrangement assembly's movement and cooperate cutting assembly drive wire arrangement pusher to the approach of positioning portion, the combing of magnetic ring pin, through the clamping of pin arrangement assembly and pin clamping assembly to pin, to cooperate the cutting of cutting assembly, further ensure the consistency and production efficiency of magnetic ring pin's cutting shearing foot.
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Description

Technical Field

[0001] This utility model relates to the field of magnetic ring clamps, specifically to magnetic ring clipper clamps. Background Technology

[0002] Magnetic ring lead-cutting fixtures are a key piece of equipment in the field of electronic component manufacturing, widely used in the production of magnetic ring inductors. Their core function is to precisely position and stably clamp the magnetic ring during the lead-cutting process, ensuring that the length, flatness, and perpendicularity of the cut leads meet design requirements, thereby guaranteeing the electrical performance and reliability of the components.

[0003] Existing magnetic ring lead trimming fixtures typically consist of a base, a positioning module, a clamping mechanism, and an adjustment assembly. During use, the operator must manually adjust the positioning module's dimensions according to the magnetic ring specifications (such as outer diameter, bore diameter, and number of leads), and then secure the magnetic ring using the clamping mechanism (such as pneumatic grippers or mechanical clips). Finally, a cutting tool is used to trim the leads.

[0004] However, existing magnetic ring lead-cutting clamps still have certain shortcomings. The positioning module and clamping mechanism are typically designed for specific magnetic ring specifications. When changing product models, the clamping components need to be disassembled and reassembled, or even custom-made clamps are required, leading to high equipment idle rates and increased maintenance costs. Furthermore, existing lead-cutting clamps have poor clamping and positioning effects, resulting in poor lead management for magnetic ring inductors. The resulting accumulated mechanical errors reduce the lead clamping and positioning accuracy, thus affecting the subsequent lead cutting efficiency and precision. Therefore, there is an urgent need for a magnetic ring lead-cutting clamp that improves lead management for magnetic ring inductors to ensure clamping and positioning accuracy and subsequent cutting quality and production efficiency. Utility Model Content

[0005] The purpose of this invention is to address the above-mentioned deficiencies by providing a magnetic ring lead-cutting clamp to solve the technical problem of how to improve the clamping and positioning of magnetic ring inductor leads in the background art, thereby improving the applicability and accuracy of clamping and positioning, and thus enhancing the quality and efficiency of subsequent cutting.

[0006] The objective of this utility model is achieved through the following means:

[0007] A magnetic ring pin clipper includes a support platform with a through mounting hole in the middle. A connecting block is provided at the bottom of the support platform, and a pin positioning block for positioning the magnetic ring pins is provided on the connecting block. A positioning part is provided in the middle of the pin positioning block. A pin tidying assembly is provided at the bottom of the support platform. The pin tidying assembly can move towards the positioning part through the wire clamping end. A cutting assembly is provided at the bottom of the support platform. The cutting assembly can move relative to the pin positioning block for cutting through the cutting end. A wire tidying push block is provided on the cutting assembly. The movement of the cutting assembly towards the pin positioning part can drive the wire tidying push block to move synchronously towards the positioning part, so that the wire tidying push block can push the pins for tidying. The wire tidying push block is connected to the cutting end of the cutting assembly through a moving part. When the wire tidying push block moves towards the positioning part to the limit, the wire tidying push block moves in the opposite direction along the moving part to avoid the wire clamping end.

[0008] The bottom of the support base is connected to a lifting plate via a guide. The lifting plate is equipped with a pin clamping assembly for clamping the magnetic ring pins. The lifting plate is also equipped with a clamping positioning plate. The clamping end of the pin clamping assembly extends toward the clamping positioning plate. The lifting plate can be driven by a lifting drive component to move the pin clamping assembly relative to the pin positioning block.

[0009] Furthermore, as described above, there are two connecting blocks, which are symmetrically installed on the bottom of the support platform, with a gap between them. The two ends of the pin positioning block are respectively connected to one of the connecting blocks.

[0010] The symmetrically distributed connecting block structure forms a stable support, and the gaps provide guiding space for the movement of the cutting components, avoiding structural interference. At the same time, the connection between the two ends of the pin positioning block and the connecting block improves the accuracy and reliability of the magnetic ring pin positioning.

[0011] By setting the pin positioning block, it works in conjunction with the pin organizing component and the wire pushing block, and the pin organizing component completes the clamping and positioning of the pin. The pin positioning block can be used to apply limits to the pin, ensuring the stability and reliability of repeated clamping and positioning of the magnetic ring pin, thereby enhancing the accuracy and efficiency of subsequent cutting.

[0012] Furthermore, as described above, the pin arrangement assembly includes a cable management drive cylinder and a cable management clamp. The cable management drive cylinder is installed at the bottom of the support platform, and the telescopic end of the cable management drive cylinder is connected to the cable management clamp, so that the cable management drive cylinder can drive the cable management clamp to move closer to or away from the positioning part.

[0013] The active movement control of the wire-organizing clamp is achieved by using a cylinder drive, which can precisely adjust the wire organization and effectively arrange the magnetic ring pins to the positioning part, providing a neat pin state for subsequent cutting, improving the wire organization effect and clamping positioning accuracy, thereby enhancing the repeatability and cutting accuracy of the magnetic ring pins and improving the consistency of the magnetic ring pins.

[0014] Furthermore, as described above, the pin arrangement assembly is provided in two sets, and the two sets of pin arrangement assemblies are symmetrically installed on the bottom of the support platform, so that the two sets of pin arrangement assemblies can drive the cable clamping block to move relatively closer or further away from the positioning part through the cable arrangement drive cylinder.

[0015] The symmetrical bidirectional cable management structure forms a balanced clamping and tidying force field, avoiding pin offset or uneven force caused by unilateral cable management, enhancing the adaptability to magnetic ring pins of different specifications. At the same time, bidirectional movement improves cable management efficiency and ensures the uniformity and stability of pin tidying.

[0016] Specifically, the bidirectional pin arrangement component can work with the pin positioning block to clamp and position the four pins of the magnetic ring.

[0017] Furthermore, as described above, the cutting assembly includes a cutting cylinder and a cutter. The cutting cylinder is mounted on the bottom of the support platform, and the telescopic end of the cutting cylinder is connected to the cutter. The cutter extends along the gap between the two connecting blocks toward the pin positioning block, so that the cutting cylinder can drive the cutter to move closer to or away from the pin positioning block.

[0018] The direct drive between the cutting cylinder and the cutter provides a precise guide path for the cutter's movement, reducing the risk of deviation during the cutting process and improving cutting accuracy. The cutting cylinder drives the cutter to move towards the clamped pin, thereby completing the rapid cutting of the pin.

[0019] Furthermore, as described above, the cutting assembly is provided in two sets, and the two sets of cutting assemblies are symmetrically installed at the bottom of the support platform.

[0020] Specifically, two sets of cutting components are used to cut four pins, thereby improving the efficiency and quality of pin cutting.

[0021] Furthermore, as described above, the cutter is provided with a mounting groove for mounting a movable component. The movable component includes a guide shaft and a movable block. The movable block is coaxially connected to the guide shaft and can reciprocate along the axial direction of the guide shaft. The end of the guide shaft is engaged with the inner wall of the mounting groove. A holding part for engaging the cable management push block is formed on the movable block through the mounting groove, so that the movement of the cutter toward the pin positioning block can drive the cable management push block to move synchronously. The cable management push block is provided with a positioning groove for pairing positioning parts. A limiting part for pairing cable management push blocks is provided on the inner wall of the mounting hole. A pressure plate is provided in the mounting hole.

[0022] When the cable pusher is inserted and paired with the positioning part through the positioning slot, as the cutter continues to move closer to the pin positioning block, the cable pusher moves away from the positioning part along the guide shaft.

[0023] When the cutter finishes cutting the magnetic ring pin, the cutter moves away from the pin positioning block, which can drive the wire pushing block to move synchronously. The limiting part causes the wire pushing block to move in the opposite direction along the guide shaft and reset.

[0024] The sliding connection between the guide shaft and the moving block enables the synchronous movement and reverse avoidance of the wire-sorting push block and the cutter. When the wire-sorting push block moves to the limit, it moves in the opposite direction along the guide shaft to avoid the wire-sorting clamp block, thus avoiding interference between the two and ensuring continuous and efficient coordination of wire sorting and cutting actions, thereby improving the smoothness of the production process.

[0025] Further, as described above, the guide component includes a guide post and a bushing. The bushing is coaxially connected to the guide post. One end of the guide post is connected to the support platform, and the other end of the guide post is connected to a base plate. The lifting plate is connected to the bushing. The lifting drive component is mounted on the base plate, and the telescopic end of the lifting drive component is connected to the lifting plate. The lifting plate is connected to a mounting plate for mounting the clamping positioning plate via a vertical block. A through hole is provided in the middle of the mounting plate. The pin clamping assembly includes a pin clamping cylinder and a clamping block. The telescopic end of the pin clamping cylinder is connected to the clamping block, and the pin clamping cylinder can drive the clamping block to move relative to the clamping positioning plate.

[0026] The cooperation between the guide post and the bushing provides stable guidance for the lifting plate, ensuring the precise movement of the pin clamping assembly relative to the pin positioning block, improving the repeatability of the clamping positioning. At the same time, the lifting plate drives the pin clamping assembly to move upward towards the pin positioning block, and the clamping block cooperates with the clamping positioning plate to clamp the pin, further ensuring the cutting quality and cutting efficiency of the cutting assembly, so as to enhance the consistency of pin cutting.

[0027] Furthermore, as described above, the pin clamping assembly is provided in two sets, with the clamping positioning plate disposed between the two sets of pin clamping assemblies.

[0028] The symmetrically distributed bidirectional clamping structure forms a balanced clamping force field. The clamping positioning plate serves as an intermediate reference to enhance clamping stability and adapt to the clamping requirements of magnetic ring pins of different specifications. For example, the pin clamping and cutting components set on one side can be used to clamp two pins and cut them, while the two sets of symmetrically set pin clamping and cutting components can be used to clamp and cut two or four pins.

[0029] Furthermore, as described above, the lifting plate is equipped with a hopper for discharging materials.

[0030] By integrating a hopper into the lifting plate, the magnetic ring pins after cutting are automatically discharged, while avoiding pin accumulation that may affect subsequent operations. This ensures the continuity of the production process and the cleanliness of the site, and reduces maintenance costs.

[0031] The beneficial effects of this utility model are as follows: The wire-cleaning end of the pin-arranging component can move closer to the positioning part, and in conjunction with the cutting component, the wire-pushing block moves closer to the positioning part, which can sort out the magnetic ring pins, improve the wire-arranging effect, and provide a regular pin arrangement clamping state for subsequent cutting. The reverse movement of the wire-pushing block avoids the pin-arranging component from clamping and positioning the magnetic ring pins, improving the clamping and positioning accuracy of the magnetic ring pins. Furthermore, the bottom of the support base is connected to the lifting plate through the guide component, and the lifting drive component drives the lifting plate to move the pin-cleaning component relative to the pin positioning block, so that the clamping end and the clamping and positioning plate clamp the pins of the magnetic ring. At this time, the cutting component moves towards the pin positioning block to cut, which can improve the clamping and positioning accuracy and cutting quality of the pins, thereby further ensuring the cutting consistency and production efficiency of the magnetic ring pins. Attached Figure Description

[0032] Figure 1 This is a top-view perspective view of this embodiment;

[0033] Figure 2 This is a perspective view of this embodiment from a low angle;

[0034] Figure 3 This is a structural breakdown diagram of this embodiment;

[0035] Figure 4 for Figure 3 A magnified view of part A in the diagram;

[0036] Figure 5 This is a cross-sectional view of this embodiment;

[0037] Figure 6 This is a partial explosion diagram of this embodiment;

[0038] Figure 7 This is a schematic diagram of the cutting usage state in this embodiment;

[0039] Figure 8 for Figure 7 A magnified view of part B in the diagram;

[0040] The reference numerals in the figure are as follows: 1-Support platform, 2-Mounting hole, 3-Connecting block, 4-Pin positioning block, 5-Positioning part, 6-Cable pushing block, 7-Lifting plate, 8-Clamping positioning plate, 9-Lifting drive component, 10-Cable driving cylinder, 11-Cable clamping block, 12-Cutting cylinder, 13-Cutter, 14-Mounting groove, 15-Guide shaft, 16-Moving block, 17-Clamping part, 18-Positioning groove, 19-Limiting part, 20-Pressure plate, 21-Placement hole, 22-Guide column, 23-Shaft sleeve, 24-Upright block, 25-Mounting plate, 26-Through hole, 27-Pin clamping cylinder, 28-Clamping block, 29-Hopper, 30-Base plate. Detailed Implementation

[0041] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments.

[0042] To make the technical problem to be solved, the technical solution and the beneficial effects of this utility model clearer, the following describes the solution in further detail with reference to the accompanying drawings and embodiments.

[0043] It should be understood that the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", and "outer" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this scheme and simplifying the description, and do not 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 application.

[0044] In this embodiment, refer to Figures 1-7 The specific implementation of the magnetic ring pin clipper includes a support platform 1, with a through mounting hole 2 in the middle of the support platform 1. A connecting block 3 is provided at the bottom of the support platform 1, and a pin positioning block 4 for positioning the magnetic ring pins is provided on the connecting block 3. A positioning part 5 is provided in the middle of the pin positioning block 4. Two sets of pin organizing components are provided at the bottom of the support platform 1. The two sets of pin organizing components can move closer to the positioning part 5 through the wire clamping end. Two sets of cutting components are provided at the bottom of the support platform 1. The two sets of cutting components can move relative to the pin positioning block 4 for cutting through the cutting end. Each set of cutting components is provided with a wire pushing block 6 for wire organizing. The movement of the cutting components toward the pin positioning part 5 can drive the wire pushing block 6 to move synchronously toward the positioning part 5, so that the wire pushing block 6 can push the pins for organizing. The wire pushing block 6 is connected to the cutting end of the cutting component through a moving part. When the wire pushing block 6 moves toward the positioning part 5 to the limit, the wire pushing block 6 moves in the opposite direction along the moving part to avoid the wire clamping block 11.

[0045] The bottom of the support base is connected to a lifting plate 7 via a guide. The lifting plate 7 is provided with two sets of pin clamping assemblies that are arranged opposite each other and used to clamp the magnetic ring pins. The lifting plate 7 is provided with a clamping positioning plate 8. The clamping end of the pin clamping assembly extends toward the clamping positioning plate 8. The lifting plate 7 can drive the pin clamping assembly to move relative to the pin positioning block 4 through the driving of the lifting drive 9.

[0046] Two connecting blocks 3 are provided, and the two connecting blocks 3 are symmetrically installed on the bottom of the support platform 1. A gap is formed between the two connecting blocks 3, and the two ends of the pin positioning block 4 are respectively connected to one of the connecting blocks 3.

[0047] The symmetrically distributed connecting blocks 3 form a stable support structure, and the gaps provide guiding space for the movement of the cutting components, avoiding structural interference. At the same time, the connection between the two ends of the pin positioning block 4 and the connecting block 3 improves the accuracy and reliability of the magnetic ring pin positioning.

[0048] By setting the pin positioning block 4, it works in conjunction with the pin organizing component and the wire pushing block 6 to push the pins. The pin organizing component completes the clamping and positioning of the pins, so that the pin positioning block 4 can be used to apply limits to the pins, ensuring the stability and reliability of repeated clamping and positioning of the magnetic ring pins, thereby enhancing the accuracy and efficiency of subsequent cutting.

[0049] The pin arrangement assembly includes a cable management drive cylinder 10 and a cable management clamp 11. The cable management drive cylinder 10 is mounted on the bottom of the support platform 1, and its telescopic end is connected to the cable management clamp 11, allowing the cable management drive cylinder 10 to drive the cable management clamp 11 to move closer to or away from the positioning part 5. The cable management clamp 11 has guide grooves for matet pin positioning blocks 4.

[0050] The active movement control of the wire-arranging clamp 11 is achieved by the cylinder drive, which can accurately adjust the wire arrangement and effectively organize the magnetic ring pins to the positioning part 5, providing a neat pin state for subsequent cutting, improving the wire arrangement effect and clamping positioning accuracy, thereby enhancing the repeatability and cutting accuracy of the magnetic ring pins and improving the consistency of the magnetic ring pins.

[0051] Specifically, in this embodiment, two sets of pin arrangement components are provided, and the two sets of pin arrangement components are symmetrically installed on the bottom of the support platform 1, so that the two sets of pin arrangement components can drive the cable clamping block 11 to move relatively closer or further away from the positioning part 5 through the cable arrangement drive cylinder 10.

[0052] Specifically, the bidirectional pin arrangement component can work with the pin positioning block 4 to clamp and position the four pins of the magnetic ring.

[0053] The cutting assembly includes a cutting cylinder 12 and a cutter 13. The cutting cylinder 12 is installed at the bottom of the support platform 1, and the telescopic end of the cutting cylinder 12 is connected to the cutter 13. The cutter 13 extends along the gap between the two connecting blocks 3 toward the pin positioning block 4, so that the cutting cylinder 12 can drive the cutter 13 to move closer to or away from the pin positioning block 4.

[0054] The direct drive between the cutting cylinder 12 and the cutter 13 provides a precise guide path for the movement of the cutter 13, reducing the risk of deviation during the cutting process and improving the cutting accuracy. The cutting cylinder 12 drives the cutter 13 to move towards the clamped pin to complete the rapid cutting of the pin.

[0055] Specifically, the wire guide pusher 6 is connected to the cutter 13 via a moving component. As the cutter 13 moves towards the pin positioning block 4, it synchronously pushes the pins for secondary alignment. When the wire guide pusher 6 reaches its limit position, the moving component performs a reverse avoidance action to prevent motion interference with the wire guide clamp 11. The two sets of cutting components are suitable for cutting four pins, improving the efficiency and quality of pin cutting.

[0056] The cutter 13 has a mounting groove 14 for mounting a movable component. The movable component includes a guide shaft 15 and a moving block 16. The moving block 16 is coaxially connected to the guide shaft 15 and can reciprocate along the axial direction of the guide shaft 15. The end of the guide shaft 15 is engaged with the inner wall of the mounting groove 14. The moving block 16 has a holding part 17 for holding the cable management push block 6 through the mounting groove 14, so that the movement of the cutter 13 toward the pin positioning block 4 can drive the cable management push block 6 to move synchronously. The cable management push block 6 has a positioning groove 18 for matching the positioning part 5. The inner wall of the mounting hole 2 has a limiting part 19 for matching the cable management push block 6. A pressure plate 20 is provided in the mounting hole 2. The pressure plate 20 has a placement hole 21. The pressure plate 20 is fixedly connected to the connecting block 3 by bolts passing through the pin positioning block 4.

[0057] When the cable pusher 6 is inserted and paired with the positioning part 5 through the positioning groove 18, as the cutter 13 continues to move closer to the pin positioning block 4, the cable pusher 6 moves away from the positioning part 5 along the guide shaft 15. When the cutter 13 finishes cutting the magnetic ring pin, the cutter 13 moves away from the pin positioning block 4, which can drive the cable pusher 6 to move synchronously. The limiting part 19 causes the cable pusher 6 to move back to its original position along the guide shaft 15.

[0058] The sliding connection between the guide shaft 15 and the moving block 16 enables the synchronous movement and reverse avoidance of the wire-arranging push block 6 and the cutter 13. When the wire-arranging push block 6 moves to the limit, it moves in the opposite direction along the guide shaft 15 to avoid the wire-arranging clamp block 11, thus avoiding interference between the two and ensuring continuous and efficient coordination of wire arrangement and cutting actions, thereby improving the smoothness of the production process.

[0059] Specifically, the pressure plate 20 prevents the cable management push block 6 and the cable management clamp block 11 from detaching from the mounting hole 2, so that the cable management push block 6 and the cable management clamp block 11 are positioned between the pressure plate 20 and the connecting block 3, ensuring the linear reciprocating movement of the cable management push block 6 and the cable management clamp block 11 and preventing them from jumping or deviating.

[0060] The guide component includes a guide post 22 and a bushing 23. The bushing 23 is coaxially connected to the guide post 22. One end of the guide post 22 is connected to the support platform 1, and the other end of the guide post 22 is connected to the base plate 30. The lifting plate 7 is connected to the bushing 23. The lifting drive component 9 is installed on the base plate 30, and the telescopic end of the lifting drive component 9 is connected to the lifting plate 7. The lifting plate 7 is connected to the mounting plate 25 for mounting the clamping positioning plate 8 through the upright block 24. The mounting plate 25 has a through hole 26 in the middle. The pin clamping assembly includes a pin clamping cylinder 27 and a clamping block 28. The telescopic end of the pin clamping cylinder 27 is connected to the clamping block 28, and the pin clamping cylinder 27 can drive the clamping block 28 to move relative to the clamping positioning plate 8.

[0061] The cooperation between the guide post 22 and the bushing 23 provides a stable guide for the lifting plate 7, ensuring the precise movement of the pin clamping assembly relative to the pin positioning block 4, improving the repeatability of the clamping positioning. At the same time, the lifting plate 7 drives the pin clamping assembly to move upward towards the pin positioning block 4, and the clamping block 28 cooperates with the clamping positioning plate 8 to clamp the pin, further ensuring the cutting quality and cutting efficiency of the cutting assembly, so as to enhance the consistency of pin cutting.

[0062] The pin clamping assembly is provided in two sets, and the clamping positioning plate 8 is disposed between the two sets of pin clamping assemblies.

[0063] The symmetrically distributed bidirectional clamping structure forms a balanced clamping force field. The clamping positioning plate 8 serves as an intermediate reference to enhance clamping stability and adapt to the clamping requirements of magnetic ring pins of different specifications. For example, the pin clamping and cutting components set on one side can be used to clamp two pins and cut them, while the two sets of symmetrically arranged pin clamping and cutting components can be used for clamping and cutting two or four pins.

[0064] The lifting plate 7 is equipped with a hopper 29 for discharging materials. By integrating the hopper 29 on the lifting plate 7, the cutting of the magnetic ring pins is automatically discharged, while avoiding pin accumulation that may affect subsequent operations, ensuring the continuity of the production process and the cleanliness of the site, and reducing maintenance costs.

[0065] Specifically, in this embodiment, the pin positioning block 4 is arranged in a cross shape.

[0066] The specific operating principle in this embodiment is as follows:

[0067] The magnetic ring inductor is installed on the placement hole 21 of the pressure plate 20, so that the four pins of the magnetic ring inductor extend through the placement hole 21 to the mounting hole 2. The four pins are distributed around the cross-shaped pin positioning block 4. The wire management drive cylinder 10 drives the wire management clamping block 11 to move closer to the positioning part 5. At the same time, the cutting cylinder 12 drives the cutter 13 to move closer to the positioning part 5. When the positioning groove 18 of the wire management push block 6 is paired with the positioning part 5, the positioning part 5 applies a limit to the wire management push block 6, so that the wire management push block 6 can move along the moving part direction under the continued push of the cutter 13, so that its positioning groove 18 is disengaged from the positioning part 5. At this time, the wire management drive cylinder 10 drives the wire management clamping block 11 to complete the clamping of the pins.

[0068] The lifting drive unit 9 drives the lifting plate 7 to move the pin clamping cylinder 27 closer to the pin positioning block 4, so that the pin clamping cylinder 27 drives the clamping block 28 to move towards the clamping positioning plate 8 to clamp the end of the pin. At this time, the cutting cylinder 12 pushes the cutter 13 to complete the cutting of the pin, releases the clamping of the pin, and allows the cut pin to fall into the hopper 29 for collection.

[0069] The wire-clamping end of the pin-arranging assembly can move closer to the positioning part 5, and in conjunction with the cutting assembly, the wire-arranging push block 6 moves closer to the positioning part 5. This can organize the pin direction of the magnetic ring, and the reverse movement of the wire-arranging push block 6 avoids the pin-arranging assembly from clamping and positioning the magnetic ring pins, thus improving the accuracy of the magnetic ring pin clamping and positioning. In addition, the pin clamping cylinder 27 and the clamping and positioning plate 8 clamp the pins of the magnetic ring, which can improve the pin clamping and positioning accuracy and cutting quality, further ensuring the consistency of the cutting and trimming of the magnetic ring pins and production efficiency.

[0070] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the present utility model in any way. Although the present utility model has been disclosed above with reference to a preferred embodiment, it is not intended to limit the present utility model. Any person skilled in the art can make some changes or modifications to the above-disclosed technical content to create equivalent embodiments without departing from the scope of the present utility model. Any simple modifications, equivalent changes, and modifications made to the above embodiments based on the present utility model without departing from the scope of the present utility model shall fall within the scope of the present utility model.

Claims

1. A magnetic ring shear clamp, comprising a support platform, wherein a through mounting hole is provided in the middle of the support platform, characterized in that: The bottom of the support platform is provided with a connecting block, and the connecting block is provided with a pin positioning block for positioning the magnetic ring pin. The pin positioning block is provided with a positioning part in the middle. The bottom of the support platform is provided with a pin tidying assembly. The pin tidying assembly can move closer to the positioning part through the wire clamping end. The bottom of the support platform is provided with a cutting assembly. The cutting assembly can move relative to the pin positioning block for cutting through the cutting end. The cutting assembly is provided with a wire tidying push block for tidying the wire. The movement of the cutting assembly closer to the pin positioning part can drive the wire tidying push block to move synchronously towards the positioning part, so that the wire tidying push block can push the pin for tidying. The wire tidying push block is connected to the cutting end of the cutting assembly through a moving part. When the wire tidying push block moves to the positioning part to the limit, the wire tidying push block moves in the opposite direction along the moving part to avoid the wire clamping end. The bottom of the support base is connected to a lifting plate via a guide. The lifting plate is equipped with a pin clamping assembly for clamping the magnetic ring pins. The lifting plate is also equipped with a clamping positioning plate. The clamping end of the pin clamping assembly extends toward the clamping positioning plate. The lifting plate can be driven by a lifting drive component to move the pin clamping assembly relative to the pin positioning block.

2. The magnetic ring shear clamp according to claim 1, characterized in that: Two connecting blocks are provided, and the two connecting blocks are symmetrically installed on the bottom of the support platform, with a gap between the two connecting blocks. The two ends of the pin positioning block are respectively connected to one of the connecting blocks.

3. The magnetic ring shear clamp according to claim 1, characterized in that: The pin arrangement assembly includes a cable management drive cylinder and a cable management clamp. The cable management drive cylinder is installed at the bottom of the support platform, and the telescopic end of the cable management drive cylinder is connected to the cable management clamp, so that the cable management drive cylinder can drive the cable management clamp to move closer to or away from the positioning part.

4. The magnetic ring shear clamp according to claim 3, characterized in that: The pin arrangement assembly is provided in two sets, and the two sets of pin arrangement assemblies are symmetrically installed at the bottom of the support platform, so that the two sets of pin arrangement assemblies can drive the cable clamping block to move relatively closer or further away from the positioning part through the cable arrangement drive cylinder.

5. The magnetic ring shear clamp according to claim 2, characterized in that: The cutting assembly includes a cutting cylinder and a cutter. The cutting cylinder is installed at the bottom of the support platform, and the telescopic end of the cutting cylinder is connected to the cutter. The cutter extends along the gap between the two connecting blocks toward the pin positioning block, so that the cutting cylinder can drive the cutter to move closer to or away from the pin positioning block.

6. The magnetic ring shear clamp according to claim 5, characterized in that: The cutting assembly is provided in two sets, and the two sets of cutting assemblies are symmetrically installed at the bottom of the support platform.

7. The magnetic ring shear clamp according to claim 5, characterized in that: The cutter has a mounting groove for mounting a movable component. The movable component includes a guide shaft and a movable block. The movable block is coaxially connected to the guide shaft and can reciprocate along the axial direction of the guide shaft. The end of the guide shaft is engaged with the inner wall of the mounting groove. A holding part for holding the cable management push block is formed on the movable block through the mounting groove, so that the movement of the cutter towards the pin positioning block can drive the cable management push block to move synchronously. The cable management push block has a positioning groove for matching positioning parts. A limiting part for matching cable management push blocks is formed on the inner wall of the mounting hole. A pressure plate is provided in the mounting hole. When the cable pusher is inserted and paired with the positioning part through the positioning groove, as the cutter continues to move closer to the pin positioning block, the cable pusher moves away from the positioning part along the guide shaft. When the cutter finishes cutting the magnetic ring pin, the cutter moves away from the pin positioning block, which can drive the wire pushing block to move synchronously. The limiting part causes the wire pushing block to move in the opposite direction along the guide shaft and reset.

8. The magnetic ring clipper according to any one of claims 1-7, characterized in that: The guide component includes a guide post and a bushing. The bushing is coaxially connected to the guide post. One end of the guide post is connected to the support platform, and the other end of the guide post is connected to the base plate. The lifting plate is connected to the bushing. The lifting drive component is mounted on the base plate, and the telescopic end of the lifting drive component is connected to the lifting plate. The lifting plate is connected to a mounting plate for mounting the clamping positioning plate via a vertical block. A through hole is opened in the middle of the mounting plate. The pin clamping assembly includes a pin clamping cylinder and a clamping block. The telescopic end of the pin clamping cylinder is connected to the clamping block, and the pin clamping cylinder can drive the clamping block to move relative to the clamping positioning plate.

9. The magnetic ring clipper according to any one of claims 1-7, characterized in that: The pin clamping assembly is provided in two sets, and the clamping positioning plate is disposed between the two sets of pin clamping assemblies.

10. The magnetic ring shear clamp according to claim 8, characterized in that: The lifting plate is equipped with a hopper for discharging materials.