One station processing device for reducing model arm connector turnaround

CN224601003UActive Publication Date: 2026-08-07磐安县新悦模特制品有限公司
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Patent Information

Application Number
CN202521847600.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-28
Publication Date
2026-08-07
Estimated Expiration
2035-08-28

AI Technical Summary

Technical Problem

[0003]上述结构的工件在加工时,需要在多个机床上分别进行对应位置的加工,效率低下

Benefits of technology

本实用新型集成了切削钻孔机构、切槽机构和球头部二次切削机构,将传统需多台机床分别完成的车削、钻孔、切槽、球头精修等工序整合到走心机本体上,减少工件在不同设备间的周转时间,大幅提升加工效率,减少人工付出,解决了传统加工方式效率低下、人力成本高的问题;

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the field of machining technology discloses a one-stop processing device for reducing the turnover of model arm connecting piece, including the walking core machine body, be provided with cutting drilling mechanism, cutting mechanism and ball head secondary cutting mechanism on the frame of walking core machine body, cutting drilling mechanism, cutting mechanism and ball head secondary cutting mechanism all are arranged in the spindle discharge port department near walking core machine body, the frame of walking core machine body is installed with feeding mechanism and push mechanism, and feeding mechanism and push mechanism are set up in the spindle feed inlet department near walking core machine body. The utility model integrates cutting drilling mechanism, cutting mechanism and ball head secondary cutting mechanism, will traditional need many machine tools respectively complete turning, drilling, cutting, ball head finishing and so on process integration to walking core machine body, reduce the turnover time of workpiece between different equipment, improve processing efficiency greatly, solved the problem of low efficiency of traditional processing mode.
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Description

Technical Field

[0001] This utility model relates to the field of mannequin accessory processing technology, and in particular to a one-stop processing device for reducing the turnover of mannequin arm connectors. Background Technology

[0002] The mannequin arm connector is used to connect the mannequin's forearm and hind arm to enable arm rotation, such as... Figure 6 As shown, when processing the model arm connector, it is necessary to turn out the ball head and the connecting rod, and then drill mounting holes and cut out connecting grooves on the ball head.

[0003] When processing workpieces with the above structure, the corresponding positions need to be processed on multiple machine tools, which is inefficient.

[0004] To address this, a one-stop processing device is proposed to reduce the turnover of mannequin arm connectors. Utility Model Content

[0005] The purpose of this invention is to provide a one-stop processing device for reducing the turnover of mannequin arm connectors, thereby solving or at least alleviating one or more of the above-mentioned problems and other problems existing in the prior art.

[0006] To achieve the above objectives, the main technical solutions adopted by this utility model include: A one-stop processing device for reducing the turnover of mannequin arm connectors includes a Swiss-type lathe body. The frame of the Swiss-type lathe body is equipped with a cutting and drilling mechanism, a grooving mechanism, and a ball head secondary cutting mechanism. The cutting and drilling mechanism, the grooving mechanism, and the ball head secondary cutting mechanism are all located near the main shaft outlet of the Swiss-type lathe body. The frame of the Swiss Army machine is equipped with a feeding mechanism and a pushing mechanism, which are located near the main shaft feed inlet of the Swiss Army machine.

[0007] In the one-stop processing device for reducing the turnover of mannequin arm connectors according to the present invention, the cutting and drilling mechanism and the ball head secondary cutting mechanism are respectively arranged on both sides of the main shaft of the Swiss-type machine body. The cutting and drilling mechanism includes a second X-axis electric linear module, and the ball head secondary cutting mechanism includes a fixed base. The second X-axis electric linear module and the fixed base are both fixed on the frame of the Swiss-type machine body. Y-axis electric linear modules are installed on the slide of the second X-axis electric linear module and on the fixed base. The Y-axis electric linear module slide of the cutting and drilling mechanism is respectively equipped with a drilling unit, a cutting unit and a cutting unit; The drilling unit includes a drilling motor and a first slide rail. The first slide rail is fixedly mounted on the slide table of the Y-axis electric linear module on the cutting drilling mechanism. The drilling motor is slidably mounted on the first slide rail via a first slider. A first cylinder is fixedly mounted on the slide table of the Y-axis electric linear module on the cutting drilling mechanism. The piston rod end of the first cylinder is fixedly connected to the bottom of the drilling motor. A ball head secondary cutting unit is provided on the slide table of the Y-axis electric linear module on the fixed base; The cutting unit, the cutting-off unit, and the ball head secondary cutting unit have the same structure. Each of the cutting unit, the cutting-off unit, and the ball head secondary cutting unit includes a second cylinder and a second slide rail. The second cylinder and the second slide rail are both fixed on the slide table of the Y-axis electric linear module. A second slider is slidably mounted on the second slide rail. A tool holder is fixedly mounted on the second slider. A cutting tool is mounted on one end of the tool holder. The piston rod end of the second cylinder is fixedly connected to the bottom of the tool holder.

[0008] In the one-stop processing device for reducing the turnover of mannequin arm connectors according to the present invention, the grooving mechanism includes a first X-axis electric linear module, the first X-axis electric linear module is fixed on the frame of the sliding head machine body, and a cutting machine is fixedly installed on the slide of the first X-axis electric linear module.

[0009] In the one-stop processing device for reducing the turnover of mannequin arm connectors according to the present invention, the feeding mechanism includes a storage rack, the storage rack is inclined, the bottom of the storage rack is formed with a feeding groove communicating with the feed port of the main shaft of the Swiss-type machine body, the lower end of the storage rack is formed with a stepped protrusion, and a through hole is opened on the storage rack. A feeding assembly is provided on the frame of the Swiss-type machine body, the feeding assembly includes a mounting base, the mounting base is fixed on the frame of the Swiss-type machine body, a feeding cylinder is fixedly installed on the mounting base, and a feeding block is fixedly installed at the piston rod end of the feeding cylinder, the feeding block is slidably disposed in the through hole.

[0010] In the one-stop processing device for reducing the turnover of mannequin arm connectors according to the present invention, the feeding trough is arranged in a V-shape.

[0011] In the one-stop processing device for reducing the turnover of mannequin arm connectors according to the present invention, the pushing mechanism includes a pushing electric linear module, the pushing electric linear module is fixed on the frame of the Swiss-type lathe body, a pushing seat is fixedly connected to the slide of the pushing electric linear module, a pushing rod is fixedly connected to the pushing seat, and the pushing rod can push the workpiece in the feeding groove into the main shaft of the Swiss-type lathe body.

[0012] In the one-stop processing device for reducing the turnover of mannequin arm connectors according to the present invention, the top of the spindle box of the Swiss-type lathe body is provided with a positioning component for detecting the workpiece feeding length. The positioning component includes a stand, which is fixed on the spindle box. A lifting cylinder is fixedly installed on the top of the stand. A third slide rail is fixedly connected to the lower end of the stand. A movable seat is slidably installed on the third slide rail via a third slider. A baffle plate is fixedly installed on the movable seat. A pressure sensor is fixedly installed at the lower end of the baffle plate.

[0013] In the one-stop processing device for reducing the turnover of mannequin arm connectors according to the present invention, a PLC controller is fixedly installed on the frame of the Swiss-type lathe body. The Swiss-type lathe body, the cutting and drilling mechanism, the grooving mechanism, the ball head secondary cutting mechanism, the positioning component, the feeding mechanism and the pushing mechanism are all controlled by the PLC controller. The pressure sensor is electrically connected to the PLC controller.

[0014] This utility model has at least the following beneficial effects: This utility model integrates a cutting and drilling mechanism, a grooving mechanism, and a ball head secondary cutting mechanism, integrating the turning, drilling, grooving, and ball head finishing processes that traditionally require multiple machine tools to complete separately into the body of the Swiss-type lathe. This reduces the turnaround time of the workpiece between different equipment, greatly improves processing efficiency, reduces labor input, and solves the problems of low efficiency and high labor costs in traditional processing methods. The entire process is completed in one clamping, avoiding positioning errors caused by multiple clampings; the positioning component precisely controls the workpiece feeding length through the baffle plate and pressure sensor, and works in conjunction with the PLC controller to coordinate the control of each mechanism, ensuring the consistency of processing dimensions and improving product accuracy; The feeding mechanism achieves automatic feeding through the storage rack and feeding cylinder. The pushing mechanism automatically sends the workpiece into the spindle. Positioning, processing, cutting and other processes are all automatically coordinated by the PLC controller, reducing manual intervention, making it suitable for mass production and reducing labor costs. Attached Figure Description

[0015] The accompanying drawings, which are included to provide a further understanding of this application and form part of this application, illustrate exemplary embodiments and are used to explain this application, but do not constitute an undue limitation of this application. In the drawings: Figure 1 This is a front view structural diagram of the present invention; Figure 2 This is a schematic diagram of the cutting and drilling mechanism of this utility model; Figure 3 This is a schematic diagram of the positioning component of this utility model; Figure 4This is a schematic diagram of the feeding mechanism of this utility model; Figure 5 This is a schematic diagram of the feeding mechanism of this utility model from another perspective; Figure 6 This is a schematic diagram of the structure of the arm connector in the prior art.

[0016] Explanation of icon numbers: 1. Swiss-type lathe body; 2. Cutting and drilling mechanism; 201. Second X-axis electric linear module; 202. Y-axis electric linear module; 203. Drilling motor; 2031. First cylinder; 2032. First slide rail; 204. Tool holder; 2041. Cutting tool; 2042. Second cylinder; 2043. Second slide rail; 3. Grooving mechanism; 301. First X-axis electric linear module; 302. Cutting machine; 4. Fixed base; 5. PLC controller; 6. Positioning assembly; 601. Stand; 602. Third slide rail; 6 03. Moving seat; 604. Baffle plate; 605. Pressure sensor; 606. Lifting cylinder; 7. Feeding mechanism; 701. Storage rack; 7011. Through hole; 7012. Feeding chute; 702. Step protrusion; 703. Feeding assembly; 7031. Mounting seat; 7032. Feeding cylinder; 7033. Feeding block; 8. Push electric linear module; 801. Pushing seat; 802. Pushing rod; 9. Arm connector; 901. Connecting rod part; 902. Ball head; 903. Mounting hole; 904. Connecting groove. Detailed Implementation

[0017] The following will describe in detail the implementation of this application with reference to the accompanying drawings and embodiments, so that the implementation process of how this application uses technical means to solve technical problems and achieve technical effects can be fully understood and implemented accordingly.

[0018] Please refer to Figures 1 to 6 As shown, an embodiment of this utility model provides a one-stop processing device for reducing the turnover of mannequin arm connectors, including a Swiss-type lathe body 1. The frame of the Swiss-type lathe body 1 is provided with a cutting and drilling mechanism 2, a grooving mechanism 3, and a ball head secondary cutting mechanism. The cutting and drilling mechanism 2, the grooving mechanism 3, and the ball head secondary cutting mechanism are all located near the main shaft outlet of the Swiss-type lathe body 1. The frame of the Swiss-type lathe body 1 is equipped with a feeding mechanism 7 and a pushing mechanism. The feeding mechanism 7 and the pushing mechanism are located near the main shaft inlet of the Swiss-type lathe body 1.

[0019] The main body 1 of the Swiss-type lathe provides the foundation for the spindle rotation, and the spindle drives the workpiece to rotate. The feeding mechanism 7 is responsible for storing the workpiece to be processed and conveying it to the push position. The pushing mechanism pushes the workpiece into the spindle from the spindle feed port. When the workpiece rotates with the spindle to the discharge port, the cutting and drilling mechanism 2, the grooving mechanism 3 and the ball head secondary cutting mechanism sequentially or in coordination perform cutting, drilling, grooving and ball head secondary cutting on the workpiece, realizing multi-process processing of the arm connector on the same machine.

[0020] Specifically, in this embodiment, the cutting and drilling mechanism 2 and the ball head secondary cutting mechanism are respectively arranged on both sides of the main shaft of the Swiss-type lathe body 1. The cutting and drilling mechanism 2 includes a second X-axis electric linear module 201, and the ball head secondary cutting mechanism includes a fixed base 4. Both the second X-axis electric linear module 201 and the fixed base 4 are fixed on the frame of the Swiss-type lathe body 1. Y-axis electric linear modules 202 are installed on the slide of the second X-axis electric linear module 201 and on the fixed base 4. A drilling unit, a cutting unit, and a cutting-off unit are respectively arranged on the slide of the Y-axis electric linear module 202 on the cutting and drilling mechanism 2. The drilling unit includes a drilling motor 203 and a first slide rail 2032. The first slide rail 2032 is fixedly installed on the slide of the Y-axis electric linear module 202 on the cutting and drilling mechanism 2. The drilling motor 203 is slidably installed on the first slide rail 2032 through a first slider. On the Y-axis electric linear module 202 of the cutting and drilling mechanism 2, a first cylinder 2031 is fixedly mounted on the slide table. The piston rod end of the first cylinder 2031 is fixedly connected to the bottom of the drilling motor 203. A ball head secondary cutting unit is provided on the slide table of the Y-axis electric linear module 202 on the fixed base 4. The cutting unit, the cutting unit and the ball head secondary cutting unit have the same structure. The cutting unit, the cutting unit and the ball head secondary cutting unit all include a second cylinder 2042 and a second slide rail 2043. The second cylinder 2042 and the second slide rail 2043 are both fixed on the slide table of the Y-axis electric linear module 202. A second slider is slidably mounted on the second slide rail 2043. A tool holder 204 is fixedly mounted on the second slider. A cutting tool 2041 is mounted on one end of the tool holder 204. The piston rod end of the second cylinder 2042 is fixedly connected to the bottom of the tool holder 204.

[0021] The second X-axis electric linear module 201 drives the Y-axis electric linear module 202 of the cutting and drilling mechanism 2 to move along the X-axis. The Y-axis electric linear module 202 on the fixed base 4 can move independently along the Y-axis to adjust the machining position together. During drilling, the first cylinder 2031 pushes the drilling motor 203 to move along the first slide rail 2032, driving the drill bit to drill a hole in the workpiece. During cutting, parting, and secondary cutting of the ball head, the second cylinder 2042 pushes the tool holder 204 to move along the second slide rail 2043, so that the cutting tool 2041 contacts the workpiece and cooperates with the spindle rotation to complete the corresponding machining process.

[0022] In this embodiment, the grooving mechanism 3 includes a first X-axis electric linear module 301, which is fixed on the frame of the Swiss-type lathe body 1. A cutting machine 302 is fixedly installed on the slide of the first X-axis electric linear module 301.

[0023] The first X-axis electric linear module 301 drives the cutting machine 302 to move along the X-axis direction. The cutting machine 302 starts to perform grooving on the workpiece, thereby forming the connecting groove 904 of the arm connector 9.

[0024] In this embodiment, the feeding mechanism 7 includes a storage rack 701, which is inclined. The bottom of the storage rack 701 is formed with a feeding groove 7012 that communicates with the feed port of the main shaft of the Swiss Army machine body 1. The lower end of the storage rack 701 is formed with a stepped protrusion 702. A through hole 7011 is provided on the storage rack 701. A feeding assembly 703 is provided on the frame of the Swiss Army machine body 1. The feeding assembly 703 includes a mounting base 7031, which is fixed on the frame of the Swiss Army machine body 1. A feeding cylinder 7032 is fixedly installed on the mounting base 7031. A feeding block 7033 is fixedly installed at the end of the piston rod of the feeding cylinder 7032. The feeding block 7033 is slidably disposed in the through hole 7011.

[0025] During loading, the loading cylinder 7032 drives the loading block 7033 to slide along the through hole 7011, lifting the workpiece on the stepped protrusion 702 upwards and over the stepped protrusion 702. Under its own weight, the workpiece falls into the feeding groove 7012, preparing for subsequent pushing to the spindle.

[0026] The feeding trough 7012 is V-shaped.

[0027] The V-shaped feed trough 7012 uses the inclined surfaces on both sides to fit the outer circle of the workpiece, forming a stable support and positioning for the cylindrical workpiece, preventing the workpiece from shifting or rolling during the feeding process, and ensuring that the pushing mechanism can accurately push the workpiece into the spindle.

[0028] In this embodiment, the pushing mechanism includes a pushing electric linear module 8, which is fixed on the frame of the Swiss Army machine body 1. A pushing seat 801 is fixedly connected to the slide of the pushing electric linear module 8, and a pushing rod 802 is fixedly connected to the pushing seat 801. The pushing rod 802 can push the workpiece in the feeding groove 7012 into the main shaft of the Swiss Army machine body 1.

[0029] The pusher electric linear module 8 drives the slide table to move, which in turn drives the pusher seat 801 and the pusher rod 802 to move synchronously. The pusher rod 802 extends into the feeding groove 7012 and pushes the workpiece along the feeding groove 7012 toward the main shaft feed port of the Swiss Army machine body 1. Finally, the workpiece is pushed into the main shaft, completing the final step of feeding.

[0030] In this embodiment, a positioning component 6 for detecting the feeding length of the workpiece is provided on the top of the spindle box of the Swiss-type machine body 1. The positioning component 6 includes a stand 601, which is fixed on the spindle box. A lifting cylinder 606 is fixedly installed on the top of the stand 601. A third slide rail 602 is fixedly connected to the lower end of the stand 601. A movable seat 603 is slidably installed on the third slide rail 602 via a third slider. A baffle plate 604 is fixedly installed on the movable seat 603. A pressure sensor 605 is fixedly installed on the lower end of the baffle plate 604.

[0031] The stand 601 provides an installation base for the positioning component 6; the lifting cylinder 606 drives the moving seat 603 to rise and fall along the third slide rail 602, which in turn moves the baffle plate 604 to the main shaft outlet to block the workpiece; when the workpiece is pushed to contact the baffle plate 604, the pressure sensor 605 detects the pressure signal and reports that the workpiece has been delivered to the set length, thus achieving accurate detection and positioning of the feeding length.

[0032] In this embodiment, a PLC controller 5 is fixedly installed on the frame of the Swiss-type headstock body 1. The Swiss-type headstock body 1, the cutting and drilling mechanism 2, the grooving mechanism 3, the ball head secondary cutting mechanism, the positioning component 6, the feeding mechanism 7, and the pushing mechanism are all controlled by the PLC controller 5. The pressure sensor 605 is electrically connected to the PLC controller 5.

[0033] As the core control unit, PLC controller 5 receives the detection signal from pressure sensor 605 and coordinates the spindle operation of Swiss-type lathe body 1, the machining action of cutting and drilling mechanism 2, the grooving operation of grooving mechanism 3, the secondary machining of ball head secondary cutting mechanism, the positioning detection of positioning component 6, the feeding action of feeding mechanism 7 and the pushing action of pushing mechanism according to preset program, so as to realize the automated, precise and coordinated operation of the entire processing process.

[0034] Working principle: The cylindrical workpiece to be processed slides down to the stepped protrusion 702 at the lower end of the storage rack 701 under the influence of gravity. The stepped protrusion 702 limits the number of workpieces that slide down at a time, ensuring that only one workpiece enters the loading position at a time. The PLC controller 5 issues a command to start the loading assembly 703: the loading cylinder 7032 drives the loading block 7033 to slide upward along the through hole 7011, lifting the workpiece on the stepped protrusion 702 and making it pass over the protrusion. Under its own weight, the workpiece falls into the V-shaped feeding groove 7012. The V-shaped groove, through its inclined surfaces on both sides, fits against the outer circle of the workpiece, achieving stable support and automatic centering of the workpiece.

[0035] After the material is fed, the PLC controller 5 triggers the pushing mechanism: the electric linear module 8 drives the slide table to move, causing the pushing seat 801 and pushing rod 802 to extend into the feeding groove 7012 simultaneously, pushing the workpiece along the groove towards the main shaft feed port of the Swiss-type machine body 1, and finally pushing it into the main shaft. At the same time, the positioning component 6 is activated: the lifting cylinder 606 drives the moving seat 603 to descend along the third slide rail 602, causing the baffle plate 604 to move to the main shaft discharge port. When the workpiece is pushed to contact the baffle plate 604, the pressure sensor 605 detects the pressure signal and feeds it back to the PLC controller 5. The controller confirms that the workpiece feeding length meets the standard, then stops pushing and controls the piston rod of the lifting cylinder 606 to reset.

[0036] When the spindle is started to rotate, the second X-axis electric linear module 201 and the Y-axis electric linear module 202 of the cutting and drilling mechanism 2 work together to adjust the position of the cutting unit. The second cylinder 2042 pushes the tool holder 204 to move along the second slide rail 2043, so that the cutting tool 2041 contacts the rotating workpiece and completes the cutting of the connecting rod 901 and the ball head 902.

[0037] The Y-axis electric linear module 202 on the fixed base 4 adjusts the position of the secondary cutting unit of the ball head, and the second cylinder 2042 pushes the cutting tool 2041 to contact the ball head of the workpiece, thus completing the finishing machining of the ball head 902 in conjunction with the rotation of the spindle. When the spindle stops, the drilling unit is positioned to the machining position by the second X-axis electric linear module 201 and the Y-axis electric linear module 202. The first cylinder 2031 pushes the drilling motor 203 to feed along the first slide rail 2032, driving the drill bit to drill the mounting hole 903 on the workpiece. After drilling is completed, the first cylinder 2031 drives the drilling motor 203 to reset.

[0038] The first X-axis electric linear module 301 drives the cutting machine 302 to move along the X-axis to the workpiece to be processed position. The cutting machine 302 starts to cut grooves on the rotating workpiece to form a connecting groove 904.

[0039] After all processing steps are completed, the cutting unit of the cutting and drilling mechanism 2 is positioned by the Y-axis electric linear module 202, and the second cylinder 2042 pushes the cutting tool 2041 to feed, cutting the finished workpiece off the bar stock. After cutting, the pushing mechanism returns to the initial position, and at the same time triggers the loading mechanism 7 to start the loading process of the next workpiece, entering a new processing cycle.

[0040] The entire process is fully automated through PLC controller 5. The actions of each mechanism are precisely coordinated according to the preset program and sensor signals, which meets the requirements of high precision and high efficiency mass production of the arm connector.

[0041] It should be noted that PLC controller 5 uses a Siemens S7-300 series PLC controller, and pressure sensor 605 uses a PTG501 series micro pressure sensor.

[0042] The foregoing description illustrates and describes several preferred embodiments of the present invention. However, as previously stated, it should be understood that the present invention is not limited to the forms disclosed herein and should not be construed as excluding other embodiments. It can be used in various other combinations, modifications, and environments, and can be altered within the scope of the present invention's conception through the foregoing teachings or related technical or knowledge. Any modifications and variations made by those skilled in the art that do not depart from the spirit and scope of the present invention should be within the protection scope of the appended claims.

Claims

1. A one-stop processing device for reducing the turnover of mannequin arm connectors, characterized in that, The system includes a Swiss-type headstock body, on which a cutting and drilling mechanism, a grooving mechanism, and a ball head secondary cutting mechanism are provided. The cutting and drilling mechanism, the grooving mechanism, and the ball head secondary cutting mechanism are all located near the main shaft outlet of the Swiss-type headstock body. The frame of the Swiss Army machine is equipped with a feeding mechanism and a pushing mechanism, which are located near the main shaft feed inlet of the Swiss Army machine.

2. The one-stop processing device for reducing the turnover of mannequin arm connectors according to claim 1, characterized in that: The cutting and drilling mechanism and the ball head secondary cutting mechanism are respectively arranged on both sides of the main shaft of the Swiss-type machine body. The cutting and drilling mechanism includes a second X-axis electric linear module, and the ball head secondary cutting mechanism includes a fixed base. The second X-axis electric linear module and the fixed base are both fixed on the frame of the Swiss-type machine body. Y-axis electric linear modules are installed on the slide of the second X-axis electric linear module and on the fixed base. The Y-axis electric linear module slide of the cutting and drilling mechanism is respectively equipped with a drilling unit, a cutting unit and a cutting unit; The drilling unit includes a drilling motor and a first slide rail. The first slide rail is fixedly mounted on the slide table of the Y-axis electric linear module on the cutting drilling mechanism. The drilling motor is slidably mounted on the first slide rail via a first slider. A first cylinder is fixedly mounted on the slide table of the Y-axis electric linear module on the cutting drilling mechanism. The piston rod end of the first cylinder is fixedly connected to the bottom of the drilling motor. A ball head secondary cutting unit is provided on the slide table of the Y-axis electric linear module on the fixed base; The cutting unit, the cutting-off unit, and the ball head secondary cutting unit have the same structure. Each of the cutting unit, the cutting-off unit, and the ball head secondary cutting unit includes a second cylinder and a second slide rail. The second cylinder and the second slide rail are both fixed on the slide table of the Y-axis electric linear module. A second slider is slidably mounted on the second slide rail. A tool holder is fixedly mounted on the second slider. A cutting tool is mounted on one end of the tool holder. The piston rod end of the second cylinder is fixedly connected to the bottom of the tool holder.

3. The one-stop processing device for reducing the turnover of mannequin arm connectors according to claim 1, characterized in that: The grooving mechanism includes a first X-axis electric linear module, which is fixed on the frame of the Swiss-type lathe body, and a cutting machine is fixedly installed on the slide of the first X-axis electric linear module.

4. The one-stop processing device for reducing the turnover of mannequin arm connectors according to claim 1, characterized in that: The feeding mechanism includes a storage rack, which is inclined. The bottom of the storage rack is formed with a feeding groove that communicates with the feed port of the main shaft of the Swiss Army machine body. The lower end of the storage rack is formed with a stepped protrusion. A through hole is opened on the storage rack. A feeding assembly is provided on the frame of the Swiss Army machine body. The feeding assembly includes a mounting base, which is fixed on the frame of the Swiss Army machine body. A feeding cylinder is fixedly installed on the mounting base. A feeding block is fixedly installed at the piston rod end of the feeding cylinder. The feeding block is slidably disposed in the through hole.

5. The one-stop processing device for reducing the turnover of mannequin arm connectors according to claim 4, characterized in that: The feeding trough is V-shaped.

6. The one-stop processing device for reducing the turnover of mannequin arm connectors according to claim 4, characterized in that: The pushing mechanism includes a pushing electric linear module, which is fixed on the frame of the Swiss-type lathe body. A pushing seat is fixedly connected to the slide of the pushing electric linear module, and a pushing rod is fixedly connected to the pushing seat. The pushing rod can push the workpiece in the feeding groove into the main shaft of the Swiss-type lathe body.

7. The one-stop processing device for reducing the turnover of mannequin arm connectors according to claim 1, characterized in that: The top of the spindle housing of the Swiss-type machine body is provided with a positioning component for detecting the workpiece feeding length. The positioning component includes a stand, which is fixed on the spindle housing. A lifting cylinder is fixedly installed on the top of the stand. A third slide rail is fixedly connected to the lower end of the stand. A movable seat is slidably installed on the third slide rail via a third slider. A baffle plate is fixedly installed on the movable seat. A pressure sensor is fixedly installed at the lower end of the baffle plate.

8. The one-stop processing device for reducing the turnover of mannequin arm connectors according to claim 7, characterized in that: A PLC controller is fixedly installed on the frame of the Swiss-type headstock. The Swiss-type headstock, the cutting and drilling mechanism, the grooving mechanism, the ball head secondary cutting mechanism, the positioning component, the feeding mechanism, and the pushing mechanism are all controlled by the PLC controller. The pressure sensor is electrically connected to the PLC controller.