Cutting, stripping and tinning machine for data line processing

By designing a cutting, stripping and tinning machine for data cable processing and utilizing a servo motor-driven gear transmission and precise positioning device, both ends of the data cable can be tinned simultaneously, solving the problem of low production efficiency caused by traditional one-sided tinning and improving overall production efficiency and operational consistency.

CN223321639UActive Publication Date: 2025-09-09SUZHOU YOUFENG ELECTRONICS CO LTD
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Patent Information

Application Number
CN202422555645.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-22
Publication Date
2025-09-09
Estimated Expiration
2034-10-22

AI Technical Summary

Technical Problem

In the traditional data cable processing process, the tinning process can only be performed on one side, resulting in low production efficiency, adding steps, and affecting overall production efficiency.

Method used

A cutting, stripping and tinning machine for data cable processing has been designed. The data cable is flipped by meshing the driving gear and the driven gear driven by a servo motor. Tinning boxes are symmetrically set at both ends of the mounting part to achieve simultaneous tinning of both ends of the data cable. Combined with the precise positioning of the conductive components and guide grooves, the consistency and efficiency of each operation are ensured.

Benefits of technology

The simultaneous tinning of both ends of the data line is achieved, which reduces the processing steps, improves production efficiency and operation consistency, and ensures precise control of each operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of tin pick-up devices, in particular to a cutting and stripping tin pick-up machine for data line processing, which comprises a mounting base, two groups of supporting pieces are symmetrically arranged in the middle of the top end of the mounting base, a connecting shaft is rotatably arranged in shaft holes coaxially formed in the two groups of supporting pieces, and the connecting shaft is arranged in a mounting piece fixing hole. A driven gear is coaxially arranged on the connecting shaft, the driven gear is in meshing transmission connection with a driving gear, the driving gear is coaxially arranged on a servo motor, the servo motor is arranged on the mounting base, tin dipping boxes are symmetrically arranged at the two ends of the mounting part respectively, a guide groove is formed in the top end of the mounting part, and a conduction assembly is arranged in the guide groove; the two sets of transfer assemblies are arranged on the mounting base correspondingly, and the transfer assemblies are symmetrically arranged at the two ends of the mounting part; the mounting assembly is used for positioning and clamping a plurality of groups of data lines, and the mounting assembly is in sliding connection with the mounting piece guide groove and the transfer assembly; the production efficiency is improved, and the machining procedures are reduced.
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Description

Technical Field

[0001] The utility model relates to the technical field of tinning devices, in particular to a cutting, stripping and tinning machine for processing data lines. Background Art

[0002] With the widespread use of electronic products and the increasing demand for data transmission, data cables, as important accessories connecting various electronic devices, have become particularly important in terms of processing quality and production efficiency. The traditional data cable processing process usually includes multiple steps such as cutting, stripping, and tinning.

[0003] Tinning refers to coating the pins of electronic components with a thin layer of solder to facilitate subsequent soldering operations. The tinning process occurs after the data cable is stripped. The traditional tinning process can only tin the data cable on one side. When tinning the other end, the process is increased, affecting production efficiency. Utility Model Content

[0004] In order to solve the above technical problems, the utility model provides a cutting, stripping and tinning machine for processing data lines, which improves production efficiency and reduces processing steps.

[0005] The utility model is a cutting, stripping and tinning machine for processing data cables, comprising:

[0006] The mounting base has two sets of supporting parts symmetrically arranged in the middle of the top of the mounting base. A connecting shaft is rotatably arranged in the coaxially arranged shaft holes of the two sets of supporting parts. The connecting shaft is arranged in the fixing hole of the mounting part. A driven gear is coaxially arranged on the connecting shaft. The driven gear is meshed with the driving gear for transmission connection. The driving gear is coaxially arranged on the servo motor. The servo motor is arranged on the mounting base. Tinning boxes are symmetrically arranged at both ends of the mounting part. A guide groove is provided on the top of the mounting part, and a conduction component is provided in the guide groove.

[0007] Transfer components, two sets of transfer components are respectively arranged on the mounting base, and the transfer components are symmetrically arranged at both ends of the mounting piece;

[0008] The installation component is used to position and clamp multiple groups of data cables, and the installation component is slidably connected to the installation part guide groove and the transfer component respectively.

[0009] Furthermore, the conduction component includes a support shaft rotatably arranged in the positioning hole of the mounting member, a threaded column is coaxially arranged on the support shaft, the threaded column is cooperatively connected with the mounting component, a drive motor is coaxially arranged at one end of the support shaft, and the drive motor is arranged on the mounting member.

[0010] Preferably, the installation assembly includes a movable part that is slidably connected to the guide groove of the installation part. The movable part is provided with a positioning part. A plurality of positioning grooves are equidistantly provided on the positioning part. Threaded tubes are symmetrically provided at both ends of the positioning part. Bolts are provided in the threaded inner holes of the threaded tubes. The bolts are rotatably provided in the inner holes of the auxiliary parts. Two groups of auxiliary parts are symmetrically provided at both ends of the clamping part. A limiting groove is provided on the clamping part. The limiting grooves of the clamping part correspond one to one with the positioning grooves of the positioning part.

[0011] Furthermore, a thread groove is provided at the bottom end of the moving part, and the thread groove of the moving part is cooperatively connected with the threaded column.

[0012] Preferably, an adjusting cap is coaxially arranged on the bolt.

[0013] Furthermore, a positioning slide rail is provided in the guide groove of the mounting member, and the positioning slide rail is slidably provided inside the guide hole of the moving member.

[0014] Preferably, the transfer component includes an assembly part arranged at both ends of the mounting part, and the two ends of the assembly part are respectively rotatably arranged on conveying rollers, and conveyor belts are rolled on the two sets of conveying rollers. One set of conveying rollers is coaxially arranged at the output end of the power motor, and the power motor is arranged on the assembly part, and the conveyor belt is in contact with the moving part.

[0015] Furthermore, a lifting piece is provided inside the cavity of the assembly piece, and the conveyor belt is slidably connected to the lifting piece.

[0016] Preferably, a heating component is provided inside the tinning box, and the heating component is used to keep the tin in a molten state.

[0017] Furthermore, guide rails are symmetrically arranged in the groove cavity of the assembly part, and the moving part is slidably connected to the two sets of guide rails.

[0018] Compared with the prior art, the beneficial effects of the present invention are as follows: the mounting part on the connecting shaft is rotatably supported on the mounting base through the support part, multiple groups of data cables are positioned and clamped through the mounting assembly, the data cables are transported to the mounting part through the transfer assembly, and transferred after tinning, the connection position of the mounting assembly and the mounting part is limited through the guide groove, the mounting assembly is driven at the position in the guide groove of the mounting part through the conduction assembly, the servo motor is flipped by the data cable on the mounting part through the engagement of the driving gear and the driven gear, and the data cable is flipped and tinned through the tinning box, and the tinning boxes are symmetrically arranged at both ends of the mounting part so that both ends of the data cable can be tinned, thereby improving the tinning efficiency, and the power output of the servo motor makes the entire rotation process precisely controlled, ensuring the consistency of each operation, improving production efficiency, and reducing processing steps. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 This is a front view structural diagram of the present utility model;

[0020] Figure 2 It is a partial structural diagram of the utility model;

[0021] Figure 3 It is a partial cross-sectional schematic diagram of the utility model;

[0022] Figure 4 It is a schematic diagram of the parts structure of the utility model;

[0023] Markings in the accompanying drawings: 1. Mounting base; 2. Support member; 3. Connecting shaft; 4. Mounting member; 5. Driven gear; 6. Driving gear; 7. Servo motor; 8. Tinning box; 9. Support shaft; 10. Threaded column; 11. Driving motor; 12. Moving member; 13. Positioning member; 14. Threaded pipe; 15. Bolt; 16. Auxiliary member; 17. Clamping member; 18. Adjusting cap; 19. Positioning slide rail; 20. Assembly member; 21. Conveyor roller; 22. Conveyor belt; 23. Power motor; 24. Lifting member; 25. Guide slide rail. DETAILED DESCRIPTION

[0024] The following embodiments are used to illustrate the present invention, but are not intended to limit the scope of the present invention.

[0025] like Figures 1 to 4 As shown, the data line processing cutting, stripping and tinning machine of the present invention comprises:

[0026] The mounting base 1 has two sets of support members 2 symmetrically arranged in the middle of the top of the mounting base 1. A connecting shaft 3 is rotatably arranged in the coaxially arranged shaft holes of the two sets of support members 2. The connecting shaft 3 is arranged in the fixing hole of the mounting member 4. A driven gear 5 is coaxially arranged on the connecting shaft 3. The driven gear 5 is meshed with the driving gear 6 for transmission connection. The driving gear 6 is coaxially arranged on the servo motor 7. The servo motor 7 is arranged on the mounting base 1. Tinning boxes 8 are symmetrically arranged at both ends of the mounting member 4. A guide groove is provided at the top of the mounting member 4, and a conduction component is provided in the guide groove.

[0027] Transfer components, two groups of transfer components are respectively arranged on the mounting base 1, and the transfer components are symmetrically arranged at both ends of the mounting member 4;

[0028] The mounting assembly is used to position and clamp multiple groups of data cables, and the mounting assembly is slidably connected to the guide groove of the mounting part 4 and the transfer assembly respectively; the mounting part 4 on the connecting shaft 3 is rotatably supported on the mounting base 1 through the support part 2, and multiple groups of data cables are positioned and clamped through the mounting assembly, and the data cables are transported to the mounting part 4 and transferred after tinning through the transfer assembly. The connection position of the mounting assembly and the mounting part 4 is limited through the guide groove, and the mounting assembly is driven by the position in the guide groove of the mounting part 4 through the conduction assembly. The active gear 6 is engaged with the driven gear 5, so that the servo motor 7 is flipped by the data cable on the mounting part 4, and tinned through the tinning box 8 through the flipping of the data cable. The tinning boxes 8 are symmetrically arranged at both ends of the mounting part 4 so that both ends of the data cable can be tinned, thereby improving the tinning efficiency. The power output of the servo motor 7 makes the entire rotation process precisely controlled, ensuring the consistency of each operation, improving production efficiency, and reducing processing procedures.

[0029] like Figures 1 to 4 As shown, as a preferred solution, the conduction component includes a support shaft 9 rotatably set in the positioning hole of the mounting member 4, and a threaded column 10 is coaxially set on the support shaft 9, and the threaded column 10 is connected to the mounting component. A drive motor 11 is coaxially set at one end of the support shaft 9, and the drive motor 11 is set on the mounting member 4; by setting a rotating support shaft 9 in the positioning hole of the mounting member 4 and coaxially setting a threaded column 10 on the support shaft 9, such a structural design can provide accurate and smooth linear motion for the mounting component. When the drive motor 11 is working, it will drive the support shaft 9 to rotate, and then make the threaded column 10 produce linear motion, which helps to ensure that the mounting component can move accurately in the guide groove, thereby realizing the rotation in and out of the mounting component, so that the tinning process can be carried out continuously. Since the threaded connection has a self-locking characteristic, after the drive stops, the mounting component will remain in the current position and will not move accidentally due to external force.

[0030] like Figures 1 to 4As shown, as a preferred solution, the mounting assembly includes a moving member 12 that is slidably connected to the guide groove of the mounting member 4, the moving member 12 is provided with a positioning member 13, and a plurality of positioning grooves are equidistantly provided on the positioning member 13, and threaded tubes 14 are symmetrically provided at both ends of the positioning member 13, and bolts 15 are provided in the threaded inner hole of the threaded tube 14. The bolts 15 are rotatably provided in the inner hole of the auxiliary member 16, and the two groups of auxiliary members 16 are symmetrically provided at both ends of the clamping member 17, and a limiting groove is provided on the clamping member 17. The limiting groove of the clamping member 17 corresponds one to one with the positioning groove of the positioning member 13, and a threaded groove is provided at the bottom end of the moving member 12. The threaded groove of the moving member 12 is matched with the threaded column 10, and an adjusting cap 18 is coaxially provided on the bolt 15. A positioning slide rail 19 is provided in the guide groove of the mounting member 4, and the positioning slide rail 19 is slidably provided inside the guide hole of the moving member 12; by arranging the positioning member 1 on the moving member 12 3. In addition, multiple groups of positioning grooves are equidistantly arranged on the positioning member 13, which can achieve precise clamping of the data line. The design of the threaded tube 14 and the bolt 15 provides a reliable fixing method for the clamping member 17. The adjusting cap 18 coaxially arranged on the bolt 15 is convenient for the operator to manually adjust the position of the clamping member 17. The threaded groove arranged at the bottom end of the movable member 12 is connected with the threaded column 10, so that the entire installation assembly can slide smoothly in the guide groove. The coordinated work of the installation assembly, the guide groove and the transfer assembly realizes the fully automatic operation from data line transportation, positioning to tinning process. By arranging a positioning slide rail 19 in the guide groove of the mounting member 4 and making the slide rail cooperate with the guide hole of the movable member 12, the linear motion of the movable member 12 in the guide groove is ensured to be more precise. This design reduces the offset and shaking during the movement and improves the position accuracy during data line processing.

[0031] like Figures 1 to 4As shown, as a preferred embodiment, the transfer component includes an assembly 20 arranged at both ends of the mounting member 4, and the two ends of the assembly 20 are respectively rotatably arranged on the conveying rollers 21, and a conveyor belt 22 is rolled on the two sets of conveying rollers 21, and a group of conveying rollers 21 is coaxially arranged at the output end of the power motor 23, and the power motor 23 is arranged on the assembly 20. The conveyor belt 22 is in contact with the moving member 12, and a lifting member 24 is provided inside the cavity of the assembly 20. The conveyor belt 22 and the lifting member 24 are slidably connected. The guide rails 25 are symmetrically provided in the groove cavity of the assembly 20, and the moving member 12 is slidably connected with the two sets of guide rails 25. The guide rails 25 are coaxially arranged on the same plane with the positioning rail 19; by arranging the assembly 20 at both ends of the mounting member 4 and equipping The conveyor roller 21 and the conveyor belt 22, the transfer assembly can efficiently transport the installation assembly from one workstation to another. The power motor 23 directly drives the conveyor roller 21, ensuring the smoothness and continuity of the conveying process, thereby improving the overall production efficiency. The guide slide rails 25 symmetrically arranged in the groove cavity of the assembly part 20 are slidably connected to the moving part 12. At the same time, the guide slide rails 25 and the positioning slide rails 19 in the guide groove of the installation part 4 are coaxially arranged in the same plane. This design ensures the linear movement of the moving part 12 during the transfer process, reduces deviation and shaking, and the conveyor belt 22 is in contact and connection with the moving part 12, so that the data cable can be automatically transmitted without human intervention. The design of the lifting part 24 provides additional support for the conveyor belt 22.

[0032] like Figures 1 to 4 As shown, as a preferred solution, a heating component is provided inside the tinning box 8, and the heating component is used to keep the tin in a molten state; by providing a heating component inside the tinning box 8, the tin can be kept in a stable molten state, preventing the tin liquid from being oxidized or evaporated due to excessively high temperature, and preventing it from solidifying due to excessively low temperature.

[0033] like Figures 1 to 4 As shown, as a preferred solution, its working process is as follows:

[0034] The mounting assembly of the data cable to be processed is placed on the conveyor belt 22 of the transfer assembly, and is smoothly transported to the mounting assembly 4 through the conveyor belt 22. When the data cable reaches the specified position, the moving part 12 slides on the positioning slide rail 19 in the guide groove and is accurately moved to the predetermined position through the action of the threaded column 10. Then the driving motor 11 stops rotating, and the servo motor 7 starts, and drives the connecting shaft 3 to rotate through the meshing transmission of the active gear 6 and the driven gear 5, so that the mounting assembly 4 and the data cable thereon are flipped together. The data cable flips to the top of the tinning box 8, and the mounting assembly 4 continues to flip so that the data cable contacts the tin liquid to complete the tinning operation. Then the servo motor 7 drives the mounting assembly 4 to rotate in the opposite direction and perform the same tinning work on the other side of the data cable. After that, the mounting assembly 4 is restored to its initial position, and then the driving motor 11 continues to start, and the threaded column 10 cooperates with the threaded groove of the moving part 12 to transport the data cable on the mounting assembly to the transfer assembly on the other side.

[0035] The cutting, stripping and tinning machine for processing data cables of the present invention has common mechanical installation, connection or setting methods, and any method that can achieve beneficial effects can be implemented.

[0036] The above is only a preferred embodiment of the present invention. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the technical principles of the present invention. These improvements and modifications should also be regarded as the scope of protection of the present invention.

Claims

1. Cutting, stripping and tinning machine for data line processing, characterized by: include: The mounting base has two groups of support members symmetrically arranged in the middle of the top of the mounting base, and a connecting shaft is rotatably arranged in the coaxially arranged shaft holes of the two groups of support members, and the connecting shaft is arranged in the fixing hole of the mounting member. A driven gear is coaxially arranged on the connecting shaft, and the driven gear is meshed with the driving gear for transmission connection. The driving gear is coaxially arranged on the servo motor, and the servo motor is arranged on the mounting base. Tinning boxes are symmetrically arranged at both ends of the mounting member, and a guide groove is provided at the top of the mounting member, and a conduction component is provided in the guide groove; Transfer components, two groups of transfer components are respectively arranged on the mounting base, and the transfer components are symmetrically arranged at both ends of the mounting member; The installation component is used for positioning and clamping multiple groups of data cables, and the installation component is slidingly connected to the installation part guide groove and the transfer component respectively.

2. The data line processing cutting, stripping and tinning machine according to claim 1, characterized in that: The conduction component includes a support shaft rotatably arranged in a positioning hole of the mounting member, a threaded column is coaxially arranged on the support shaft, the threaded column is cooperatively connected with the mounting component, a drive motor is coaxially arranged at one end of the support shaft, and the drive motor is arranged on the mounting member.

3. The data line processing cutting, stripping and tinning machine according to claim 1, characterized in that: The mounting assembly includes a moving part that is slidably connected to the guide groove of the mounting part, the moving part is provided with a positioning part, and a plurality of positioning grooves are equidistantly provided on the positioning part. Threaded tubes are symmetrically provided at both ends of the positioning part, and bolts are provided in the threaded inner holes of the threaded tubes. The bolts are rotatably provided in the inner hole of the auxiliary part. Two groups of auxiliary parts are symmetrically provided at both ends of the clamping part, and a limiting groove is provided on the clamping part. The limiting grooves of the clamping part correspond one to one with the positioning grooves of the positioning part.

4. The data line processing cutting, stripping and tinning machine according to claim 3, characterized in that: The bottom end of the moving part is provided with a thread groove, and the thread groove of the moving part is matched with the thread column for connection.

5. The data line processing cutting, stripping and tinning machine according to claim 3, characterized in that: An adjusting cap is coaxially arranged on the bolt.

6. The data line processing cutting, stripping and tinning machine according to claim 3, characterized in that: A positioning slide rail is provided in the guide groove of the mounting member, and the positioning slide rail is slidably provided inside the guide hole of the moving member.

7. The data line processing cutting, stripping and tinning machine according to claim 3, characterized in that: The transfer component includes an assembly part arranged at both ends of the mounting part, and the two ends of the assembly part are respectively rotatably arranged on the conveying rollers. Conveyor belts are rolled on the two groups of conveying rollers. One group of conveying rollers is coaxially arranged at the output end of the power motor. The power motor is arranged on the assembly part, and the conveyor belt is in contact with the moving part.

8. The data line processing cutting, stripping and tinning machine according to claim 7, characterized in that: A lifting piece is provided inside the cavity of the assembly piece, and the conveyor belt is slidably connected with the lifting piece.

9. The data line processing cutting, stripping and tinning machine according to claim 1, characterized in that: A heating component is provided inside the tinning box, and the heating component is used to keep the tin in a molten state.

10. The data line processing cutting, stripping and tinning machine according to claim 7, characterized in that: The groove cavity of the assembly part is symmetrically provided with guide rails, and the moving part is slidably connected with the two groups of guide rails.