A data line welding device

By designing a synchronous rotating disk and synchronous belt structure, the problem of poor synchronization of the feeding equipment caused by power grid fluctuations during the data cable welding process was solved, and stable welding processing was achieved.

CN116921930BActive Publication Date: 2026-05-05XIEXUN ELECTRONICS JI AN
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
XIEXUN ELECTRONICS JI AN
Filing Date
2023-08-07
Publication Date
2026-05-05

AI Technical Summary

Technical Problem

During the data cable soldering process, fluctuations or malfunctions in the power grid voltage can lead to poor synchronization of the feeding equipment, affecting processing efficiency.

Method used

A data cable welding device was designed. The device drives the rotating shaft to rotate the first and second rotating disks synchronously through the drive component. Combined with the synchronous belt and synchronous pulley, it ensures that the wire and the metal connector rotate synchronously. Stable feeding and collection are achieved through electric push rods and push rods.

Benefits of technology

In the event of power grid voltage fluctuations or faults, the synchronization and stability of data cable processing are ensured, thereby improving welding efficiency and equipment reliability.

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Abstract

This invention belongs to the field of circuit manufacturing technology, specifically a data cable welding device, including a support frame; a support base is fixedly connected to the bottom of the support frame; a rotating shaft is rotatably connected inside the support base; the rotation of the rotating shaft is driven by a drive assembly; a first rotating disk and a second rotating disk are fixedly connected to the rotating shaft; the first rotating disk and the second rotating disk are arranged parallel to each other on the rotating shaft; a support plate is fixedly connected to the top of the support frame; the rotating shaft is driven by a drive motor to rotate, and in turn, the first rotating disk and the second rotating disk rotate together, so that the wire and the metal connector can rotate synchronously. This structural design realizes the function of synchronous rotation of the first rotating disk and the second rotating disk, effectively solving the problem that when the power grid voltage fluctuates greatly and is unstable, or when a power grid fault occurs, the feeding equipment is prone to deviation, which leads to the inconvenience of data cable processing.
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Description

Technical Field

[0001] This invention belongs to the field of wire manufacturing technology, specifically a data cable welding device. Background Technology

[0002] A data cable is a wire that connects two electronic products or an electronic product to an external device for data communication and power transmission. Common data cables on the market include USB data cables, SATA data cables, and HDMI data cables. Data cables are an important auxiliary tool in the use of electronic products.

[0003] During the production of data cables, in order to facilitate the use of data cables, it is usually necessary to solder the data cable to the metal interface, making it easier to connect the data cable to the device. There are usually two ways to solder data cables: one is pure manual soldering, in which workers use an electric soldering iron to solder the wire, and the other is to use a soldering machine to solder the wire to the metal interface.

[0004] During the soldering process of data cables, the wires and metal connectors need to be fed synchronously and placed at the corresponding soldering equipment positions. However, the two feeding devices are controlled by different drive devices. When the mains voltage fluctuates greatly and is unstable, or when a mains fault occurs, the two devices may become out of sync, requiring readjustment of the equipment and making the processing of data cables inconvenient.

[0005] Therefore, the present invention provides a data cable soldering device. Summary of the Invention

[0006] In order to overcome the shortcomings of the prior art, at least one technical problem raised in the background art is solved.

[0007] The technical solution adopted by the present invention to solve its technical problem is as follows: A data cable welding device of the present invention includes a support frame; a support base is fixedly connected to the bottom of the support frame; a rotating shaft is rotatably connected inside the support base; the rotation of the rotating shaft is driven by a drive assembly; a first rotating disk and a second rotating disk are fixedly connected to the rotating shaft; the first rotating disk and the second rotating disk are arranged parallel to each other on the rotating shaft; a support plate is fixedly connected to the top of the support frame; a pressure welding device is installed on the top of the support plate; a sliding block is slidably connected inside the second rotating disk; an electric push rod is installed on the side wall of the support frame at the position corresponding to the sliding block; the... The output end of the electric actuator is equipped with a first push rod; a fixed groove is provided on the top of the sliding block, and a clamping block is slidably connected inside the sliding block at the position corresponding to the fixed groove, and a spring is fixedly connected between the side wall of the clamping block and the side wall of the sliding block; multiple pressure plates are rotatably connected in a circular array on the side wall of the first rotating disk; a hinge shaft is fixedly connected to the side wall of the pressure plate, and the hinge shaft is rotatably connected inside the first rotating disk through a torsion spring; a lifting block is fixedly connected to the end of the pressure plate; a spring is connected between the sliding block and the second rotating disk; this effectively solves the problem that deviations are inevitable when controlling the feeding equipment, which makes the processing of data cables inconvenient.

[0008] Preferably, an electric push cylinder is fixedly connected to the top of the support base, and the electric push cylinder is located on the side away from the support plate in the rotation direction of the second rotating disk; a second push rod is fixedly connected to the output end of the electric push cylinder; the second push rod is located at the position corresponding to the lifting block; a collection groove is fixedly connected to the top of the support base, and the collection groove is located between the second rotating disk and the electric push cylinder; an arc-shaped plate is fixedly connected to the side wall of the support frame; the arc-shaped plate is located on the side of the support frame closer to the second rotating disk; this makes it easier to remove and collect the data cable.

[0009] Preferably, a positioning block is fixedly connected to the side wall of the sliding block; the positioning block is located on the side of the sliding block away from the first rotating disk; a positioning groove is opened inside the second rotating disk; the positioning block is slidably connected inside the positioning groove; a spring is fixedly connected between the side wall of the positioning block and the side wall of the positioning groove; this can effectively prevent the sliding block from falling off the second rotating disk.

[0010] Preferably, the first rotating disk is internally connected to a synchronous pulley; the synchronous pulley is located at the position of the corresponding pressure plate; the synchronous pulley is located at both ends of the corresponding pressure plate; a synchronous belt is connected between the two synchronous pulleys; the synchronous pulley and the synchronous belt are provided at the bottom of each pressure plate; this can reduce wear between the metal joint and the first rotating disk and the pressure plate.

[0011] Preferably, a support wheel is rotatably connected inside the first rotating disk; the support wheel is disposed between two synchronous pulleys; the support wheel is meshed with the synchronous belt; this can effectively prevent the metal joint from squeezing the synchronous belt, causing deformation of the synchronous belt, and easily leading to contact and friction between the metal joint and the first rotating disk.

[0012] Preferably, a protrusion is fixed to the end of the first push rod; a groove is provided on the side wall of the sliding block; the protrusion and the groove are arranged in a corresponding manner; this makes the first push rod more stable when pushing the sliding block.

[0013] Preferably, an anti-slip pad is fixedly attached to the bottom of the pressure plate; the anti-slip pad is disposed on the side wall of the pressure plate near the first rotating disk; thus, the pressure plate has a better fixing effect on the metal joint.

[0014] Preferably, a positioning rod is fixedly connected inside the positioning groove; a through hole is opened inside the positioning block; the through hole is slidably connected to the positioning rod; making the sliding block slide more stably.

[0015] Preferably, an anti-detachment block is fixed to the end of the rotating shaft; the anti-detachment block is located on the rotating shaft away from the drive assembly; the anti-detachment block contacts the side wall of the support frame; this makes the rotation of the rotating shaft more stable.

[0016] Preferably, a plurality of anti-wear balls are provided between the anti-detachment block and the support frame; the sidewalls of the anti-wear balls are in contact with the sidewalls of the support frame and the anti-detachment block; this can reduce wear between the support frame and the anti-detachment block.

[0017] The beneficial effects of this invention are as follows:

[0018] 1. The data cable welding device of the present invention uses a drive motor to drive a rotating shaft to rotate, which in turn drives a first rotating disk and a second rotating disk to rotate together, so that the wire and the metal connector can rotate synchronously. This structure design realizes the function of enabling the first rotating disk and the second rotating disk to rotate synchronously, effectively solving the problem that when the power grid voltage fluctuates greatly and is unstable, or when a power grid failure occurs, the feeding equipment is prone to deviation, which makes the processing of data cables inconvenient.

[0019] 2. The data cable welding device of the present invention, by setting a rolling synchronous belt between the pressure plate and the first rotating disk, reduces the friction between the metal connector and the pressure plate when the metal connector is placed between the pressure plate and the first rotating disk, thereby achieving the function of reducing wear between the metal connector and the first rotating disk. Attached Figure Description

[0020] The invention will now be further described with reference to the accompanying drawings.

[0021] Figure 1 This is a perspective view of the present invention;

[0022] Figure 2 This is a partial structural schematic diagram of the first rotating disk in this invention;

[0023] Figure 3 This is a partial structural schematic diagram of the pressure plate in this invention;

[0024] Figure 4 This is a partial structural schematic diagram of the second rotating disk in this invention;

[0025] Figure 5 This is a cross-sectional view of the sliding block in this invention;

[0026] Figure 6 This is a partial structural schematic diagram of the rotating shaft in this invention.

[0027] In the diagram: 1. Support frame; 2. Support base; 3. Rotating shaft; 4. First rotating disk; 5. Second rotating disk; 6. Support plate; 7. Sliding block; 8. First push rod; 9. Clamping block; 10. Pressing plate; 101. Anti-slip pad; 102. Hinge shaft; 11. Lifting block; 12. Second push rod; 13. Collection groove; 131. Arc plate; 14. Positioning block; 15. Synchronous pulley; 16. Synchronous belt; 17. Support wheel; 18. Protrusion; 19. Groove; 20. Positioning rod; 21. Anti-detachment block; 22. Anti-wear ball. Implementation

[0028] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments.

[0029] like Figures 1 to 5As shown in the embodiment of the present invention, a data cable welding device includes a support frame 1; a support base 2 is fixedly connected to the bottom of the support frame 1; a rotating shaft 3 is rotatably connected inside the support base 2; the rotation of the rotating shaft 3 is driven by a drive assembly, which may be a servo motor; a first rotating disk 4 and a second rotating disk 5 are fixedly connected to the rotating shaft 3; the first rotating disk 4 and the second rotating disk 5 are arranged parallel to each other on the rotating shaft 3; a support plate 6 is fixedly connected to the top of the support frame 1; a pressure welding device is installed on the top of the support plate 6, which can weld the wires between the cable and the metal connector; a sliding block 7 is slidably connected inside the second rotating disk 5. An electric actuator is installed on the side wall of the support frame 1 at the position corresponding to the sliding block 7; a first push rod 8 is installed at the output end of the electric actuator; a fixing groove is opened on the top of the sliding block 7, and a clamping block 9 is slidably connected to the inside of the sliding block 7 at the position corresponding to the fixing groove, and a spring is fixedly connected between the side wall of the clamping block 9 and the side wall of the sliding block 7; multiple pressure plates 10 are rotatably connected in a circular array on the side wall of the first rotating disk 4; a hinge shaft 102 is fixedly connected to the side wall of the pressure plate 10, and the hinge shaft 102 is rotatably connected to the inside of the first rotating disk 4 through a torsion spring; a lifting block 11 is fixedly connected to the end of the pressure plate 10; a spring is connected between the sliding block 7 and the second rotating disk 5.During operation, when welding wires to metal connectors is required, the wire can be placed inside the top fixing groove of the sliding block 7 on the side of the second rotating disk 5 closest to the support plate 6. This prevents the support frame 1 from obstructing the wire. When the wire is placed inside the sliding block 7, it pushes the clamping block 9. After passing through the clamping block 9, the clamping block 9 pushes and squeezes the wire to fix it. To ensure the fixing effect of the clamping block 9 on the wire, the distance between a pair of clamping blocks 9 needs to be controlled so that the distance between the clamping blocks 9 is less than the diameter of the wire. At the same time, the metal connector can be pushed in through the side of the pressure plate 10 away from the hinge shaft 102. Then, the pressure plate 10 is pushed by the torsion spring, so that the pressure plate 10 squeezes and fixes the metal connector. A lifting block 11 is provided at the end of the pressure plate 10, which makes it easier to push up the pressure plate 10 when the metal connector is placed inside the pressure plate 10. Then, the drive component drives the rotating disk to rotate. The rotating shaft 3 causes the first rotating disk 4 and the second rotating disk 5 to rotate synchronously. Once the second rotating disk 5 reaches the position of the corresponding electric push rod, the electric push rod pushes the sliding block 7 towards the side closer to the first rotating disk 4, allowing the wire to contact the pins of the metal connector. The pins can then be welded using a pressure welding device. After welding, the rotating shaft 3 is driven by a drive assembly, allowing the welded data cable to pass through before subsequent data cables can be welded. The rotating shaft, driven by a drive motor, rotates, causing the first and second rotating disks to rotate together. This design allows the wire and metal connector to rotate synchronously, effectively solving the problem of inconvenient data cable processing caused by deviations in the feeding equipment when the mains voltage fluctuates significantly or when a power grid fault occurs.

[0030] like Figure 1As shown, an electric push cylinder is fixedly connected to the top of the support base 2. This electric push cylinder is positioned on the side of the second rotating disk 5 that is away from the support plate 6 in the direction of rotation. A second push rod 12 is fixedly connected to the output end of the electric push cylinder. The second push rod 12 is positioned at the corresponding position of the lifting block 11. A collection groove 13 is fixedly connected to the top of the support base 2. This collection groove 13 is positioned between the second rotating disk 5 and the electric push cylinder. An arc-shaped plate 131 is fixedly connected to the side wall of the support frame 1. The arc-shaped plate 131 is positioned on the side of the support frame 1 closest to the second rotating disk 5. During operation, after the data cable is soldered... The second rotating disk 5 can drive the clamping plate 10 holding the data cable to move to the position of the corresponding electric push cylinder. Then, the electric push cylinder pushes the second push rod 12, which pushes the lifting block 11, thereby unfolding the clamping plate 10 and separating the metal connector of the data cable from the clamping plate 10. After that, the second rotating disk 5 needs to be driven to rotate, and the arc plate 131 pushes the wire on the second rotating disk 5, which can push the wire out between the clamping blocks 9, thereby separating the wire from the fixing groove. The soldered data cable can then fall into the collection groove 13, making the removal and collection of the data cable more convenient.

[0031] like Figures 4 to 5 As shown, a positioning block 14 is fixedly connected to the side wall of the sliding block 7; the positioning block 14 is located on the side of the sliding block 7 away from the first rotating disk 4; a positioning groove is opened inside the second rotating disk 5; the positioning block 14 is slidably connected inside the positioning groove; a spring is fixedly connected between the side wall of the positioning block 14 and the side wall of the positioning groove; during operation, when the sliding block 7 slides inside the second rotating disk 5, the positioning groove restricts the positioning block 14, which can reduce the tilting of the sliding block 7 during the sliding process, thereby making the sliding of the sliding block 7 more stable. At the same time, the positioning groove restricts the positioning block 14, which can effectively prevent the sliding block 7 from falling off the second rotating disk 5.

[0032] like Figures 2 to 3 As shown, a synchronous wheel 15 is rotatably connected inside the first rotating disk 4; the synchronous wheel 15 is located at the position corresponding to the pressure plate 10; the synchronous wheel 15 is located at both ends of the corresponding pressure plate 10; a synchronous belt 16 is connected between the two synchronous wheels 15; the synchronous wheel 15 and the synchronous belt 16 are provided at the bottom of each pressure plate 10; during operation, when the metal connector is placed between the first rotating disk 4 and the pressure plate 10, the synchronous belt 16 on the first rotating disk 4 can reduce the friction between the metal connector and the first rotating disk 4 and the pressure plate 10, thereby reducing the wear between the metal connector and the first rotating disk 4 and the pressure plate 10.

[0033] like Figure 3As shown, a support wheel 17 is rotatably connected inside the first rotating disk 4; the support wheel 17 is disposed between two synchronous pulleys 15; the support wheel 17 is meshed with the synchronous belt 16; during operation, by setting the support wheel 17 between the two synchronous pulleys 15, the synchronous belt 16 can be supported, so that the synchronous belt 16 has less deformation when squeezed, thereby effectively avoiding the metal joint from squeezing the synchronous belt 16, causing the synchronous belt 16 to deform, and easily causing the metal joint to come into contact and rub against the first rotating disk 4.

[0034] like Figure 5 As shown, a protrusion 18 is fixedly connected to the end of the first push rod 8; a groove 19 is provided on the side wall of the sliding block 7; the protrusion 18 and the groove 19 are arranged correspondingly; during operation, when the electric push rod pushes the sliding block 7 through the first push rod 8, the contact area between the first push rod 8 and the sliding block 7 is larger due to the engagement of the protrusion 18 and the groove 19, thereby making the first push rod 8 push the sliding block 7 more stably.

[0035] like Figure 3 As shown, an anti-slip pad 101 is fixedly attached to the bottom of the pressure plate 10; the anti-slip pad 101 is disposed on the side wall of the pressure plate 10 near the first rotating disk 4; during operation, when the metal joint is pressed and fixed by the pressure plate 10, the anti-slip pad 101 contacts the metal joint, which increases the roughness between the pressure plate 10 and the metal joint, thereby increasing the friction between the pressure plate 10 and the metal joint, and making the fixing effect of the pressure plate 10 on the metal joint better.

[0036] like Figures 4 to 5 As shown, a positioning rod 20 is fixedly connected inside the positioning groove; a through hole is opened inside the positioning block 14; the through hole is slidably connected to the positioning rod 20; during operation, when the sliding block 7 slides, the positioning rod 20 restricts the through hole, which makes the sliding block 7 less prone to tilting during the sliding process, making the sliding of the sliding block 7 more stable.

[0037] like Figure 1 and Figure 6 As shown, an anti-detachment block 21 is fixedly connected to the end of the rotating shaft 3; the anti-detachment block 21 is located at a position away from the drive assembly of the rotating shaft 3; the anti-detachment block 21 contacts the side wall of the support frame 1; during operation, when the rotating shaft 3 rotates inside the support frame 1, the anti-detachment block 21 blocks the rotating shaft 3, which can effectively prevent the support frame 1 from shaking during the rotation of the rotating shaft 3, thus preventing the rotating shaft 3 from detaching from the support frame 1. At the same time, the restriction of the anti-detachment block 21 by the support frame 1 can reduce the tilting of the rotating shaft 3 during rotation, thereby making the rotation of the rotating shaft 3 more stable.

[0038] like Figure 6 As shown, a plurality of anti-wear balls 22 are provided between the anti-detachment block 21 and the support frame 1; the sidewalls of the anti-wear balls 22 are in contact with the sidewalls of the support frame 1 and the anti-detachment block 21; during operation, as the rotating shaft 3 rotates, by providing anti-wear balls 22 between the support frame 1 and the anti-detachment block 21, the sliding friction between the support frame 1 and the anti-detachment block 21 can be changed into rolling friction during the rotation of the rotating shaft 3, which can reduce the friction between the support frame 1 and the anti-detachment block 21, thereby reducing the wear between the support frame 1 and the anti-detachment block 21.

[0039] During operation, when welding wires to metal connectors is required, the wire can be placed inside the top fixing groove of the sliding block 7 on the side of the second rotating disk 5 closer to the support plate 6. This prevents the support frame 1 from obstructing the wire. When the wire is placed inside the sliding block 7, it pushes the clamping block 9. After passing through the clamping block 9, the clamping block 9 pushes and squeezes the wire to fix it. To ensure the fixing effect of the clamping block 9 on the wire, the distance between a pair of clamping blocks 9 needs to be controlled so that the distance between the clamping blocks 9 is less than the diameter of the wire. At the same time, the metal connector can be pushed in through the side of the pressure plate 10 away from the hinge shaft 102. Then, the pressure plate 10 is pushed by the torsion spring, so that the pressure plate 10 squeezes and fixes the metal connector. A lifting block 11 is provided at the end of the pressure plate 10, which makes it easier to push the pressure plate 10 up when the metal connector is placed inside the pressure plate 10. Then, the drive assembly drives the rotating shaft 3. The rotation allows the first rotating disk 4 and the second rotating disk 5 to rotate synchronously. After the second rotating disk 5 rotates to the position of the corresponding electric push rod, the electric push rod pushes the sliding block 7 to slide towards the side closer to the first rotating disk 4, thereby making the wire contact the pins of the metal connector. Then, the pins can be welded by a pressure welding device. After welding, the rotating shaft 3 can be driven by the drive component to rotate, allowing the welded data cable to pass through and the subsequent data cable to continue welding processing. The rotating shaft 3 is driven by the drive motor to rotate, and the first rotating disk 4 and the second rotating disk 5 rotate together through the rotating shaft 3. The structural design that allows the wire and the metal connector to rotate synchronously realizes the function of synchronous rotation of the first rotating disk 4 and the second rotating disk 5. It effectively solves the problem that when the grid voltage fluctuates greatly and is unstable, or when there is a grid failure, the feeding equipment is prone to deviation, which makes the processing of data cables inconvenient.

[0040] After the data cable is soldered, the second rotating disk 5 can drive the clamping plate 10 holding the data cable to move to the position of the corresponding electric push cylinder. Then, the electric push cylinder pushes the second push rod 12, which pushes the lifting block 11, thereby unfolding the clamping plate 10 and separating the metal connector of the data cable from the clamping plate 10. Then, the second rotating disk 5 needs to be driven to rotate, and the arc plate 131 pushes the wire on the second rotating disk 5, which can push the wire out between the clamping blocks 9, thereby separating the wire from the fixing groove. The soldered data cable can then fall into the collection groove 13, making the removal and collection of the data cable more convenient.

[0041] When the sliding block 7 slides inside the second rotating disk 5, the positioning groove restricts the positioning block 14, which makes the sliding block 7 less prone to tilting during the sliding process, thus making the sliding of the sliding block 7 more stable. At the same time, the positioning groove restricts the positioning block 14, which effectively prevents the sliding block 7 from falling off the second rotating disk 5.

[0042] When the metal connector is placed between the first rotating disk 4 and the pressure plate 10, the friction between the metal connector and the first rotating disk 4 and the pressure plate 10 can be reduced by setting a synchronous belt 16 on the first rotating disk 4, thereby reducing the wear between the metal connector and the first rotating disk 4 and the pressure plate 10.

[0043] By setting a support wheel 17 between the two synchronous pulleys 15, the synchronous belt 16 can be supported, so that the synchronous belt 16 has less deformation when it is squeezed. This can effectively prevent the metal joint from squeezing the synchronous belt 16, causing deformation of the synchronous belt 16, and easily causing the metal joint to come into contact and rub against the first rotating disk 4.

[0044] When the electric actuator pushes the sliding block 7 through the first push rod 8, the engagement of the protrusion 18 and the groove 19 increases the contact area between the first push rod 8 and the sliding block 7, thereby making the first push rod 8 push the sliding block 7 more stably.

[0045] When the metal joint is pressed and fixed by the pressure plate 10, the anti-slip pad 101 contacts the metal joint, which makes the roughness between the pressure plate 10 and the metal joint greater, thereby increasing the friction between the pressure plate 10 and the metal joint, and making the fixing effect of the pressure plate 10 on the metal joint better.

[0046] As the sliding block 7 slides, the positioning rod 20 restricts the through hole, which makes the sliding block 7 less prone to tilting and makes the sliding of the sliding block 7 more stable.

[0047] When the rotating shaft 3 rotates inside the support frame 1, the anti-detachment block 21 blocks the rotating shaft 3, which can effectively prevent the support frame 1 from shaking during the rotation of the rotating shaft 3, thus preventing the rotating shaft 3 from detaching from the support frame 1. At the same time, the restriction of the anti-detachment block 21 by the support frame 1 can reduce the tilting of the rotating shaft 3 during rotation, thereby making the rotation of the rotating shaft 3 more stable.

[0048] During the rotation of the rotating shaft 3, by setting anti-wear balls 22 between the support frame 1 and the anti-detachment block 21, the sliding friction between the support frame 1 and the anti-detachment block 21 can be changed into rolling friction, which can reduce the friction between the support frame 1 and the anti-detachment block 21, thereby reducing the wear between the support frame 1 and the anti-detachment block 21.

[0049] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of the present invention is defined by the appended claims and their equivalents.

Claims

1. A data cable soldering device, characterized in that: The system includes a support frame (1); a support base (2) is fixedly connected to the bottom of the support frame (1); a rotating shaft (3) is rotatably connected inside the support base (2); the rotation of the rotating shaft (3) is driven by a drive assembly; a first rotating disk (4) and a second rotating disk (5) are fixedly connected to the rotating shaft (3); the first rotating disk (4) and the second rotating disk (5) are arranged parallel to each other on the rotating shaft (3); a support plate (6) is fixedly connected to the top of the support frame (1); a pressure welding device is installed on the top of the support plate (6); a sliding block (7) is slidably connected inside the second rotating disk (5); an electric actuator is installed on the side wall of the support frame (1) at the position corresponding to the sliding block (7). The electric actuator has a first push rod (8) installed at its output end; a fixed groove is provided on the top of the sliding block (7), and a clamping block (9) is slidably connected to the inside of the sliding block (7) at the position corresponding to the fixed groove, and a spring is fixedly connected between the side wall of the clamping block (9) and the side wall of the sliding block (7); multiple pressure plates (10) are rotatably connected in a circular array on the side wall of the first rotating disk (4); a hinge shaft (102) is fixedly connected to the side wall of the pressure plate (10), and the hinge shaft (102) is rotatably connected to the inside of the first rotating disk (4) through a torsion spring; a lifting block (11) is fixedly connected to the end of the pressure plate (10); a spring is connected between the sliding block (7) and the second rotating disk (5); An electric push cylinder is fixedly connected to the top of the support base (2), and the electric push cylinder is located on the side away from the support plate (6) in the rotation direction of the second rotating disk (5); a second push rod (12) is fixedly connected to the output end of the electric push cylinder; the second push rod (12) is located at the position corresponding to the lifting block (11); a collection groove (13) is fixedly connected to the top of the support base (2), and the collection groove (13) is located between the second rotating disk (5) and the electric push cylinder; an arc plate (131) is fixedly connected to the side wall of the support frame (1); the arc plate (131) is located on the side of the support frame (1) close to the second rotating disk (5); A positioning block (14) is fixedly connected to the side wall of the sliding block (7); the positioning block (14) is located on the side of the sliding block (7) away from the first rotating disk (4); a positioning groove is opened inside the second rotating disk (5); the positioning block (14) is slidably connected inside the positioning groove; a spring is fixedly connected between the side wall of the positioning block (14) and the side wall of the positioning groove. The first rotating disk (4) is internally connected to a synchronous wheel (15); the synchronous wheel (15) is located at the position of the corresponding pressure plate (10); the synchronous wheel (15) is located at both ends of the corresponding pressure plate (10); a synchronous belt (16) is connected between the two synchronous wheels (15); the synchronous wheel (15) and the synchronous belt (16) are provided at the bottom of each pressure plate (10).

2. The data cable soldering device according to claim 1, characterized in that: The first rotating disk (4) is internally connected to a support wheel (17); the support wheel (17) is located between two synchronous pulleys (15); the support wheel (17) is meshed with the synchronous belt (16).

3. The data cable soldering device according to claim 1, characterized in that: The end of the first push rod (8) is fixed with a protrusion (18); the side wall of the sliding block (7) is provided with a groove (19); the protrusion (18) and the groove (19) are arranged in a corresponding manner.

4. The data cable soldering device according to claim 1, characterized in that: An anti-slip pad (101) is fixedly attached to the bottom of the pressure plate (10); the anti-slip pad (101) is disposed on the side wall of the pressure plate (10) near the first rotating disk (4).

5. The data cable soldering device according to claim 1, characterized in that: A positioning rod (20) is fixedly connected inside the positioning groove; a through hole is opened inside the positioning block (14); the through hole is slidably connected to the positioning rod (20).

6. The data cable soldering device according to claim 1, characterized in that: An anti-detachment block (21) is fixed to the end of the rotating shaft (3); the anti-detachment block (21) is located at a position away from the drive assembly on the rotating shaft (3); the anti-detachment block (21) is in contact with the side wall of the support frame (1).

7. The data cable soldering device according to claim 6, characterized in that: Multiple anti-wear balls (22) are provided between the anti-detachment block (21) and the support frame (1); the sidewalls of the anti-wear balls (22) are in contact with the sidewalls of the support frame (1) and the anti-detachment block (21).

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