Wire shaping device and wire processing production line
By combining force application with rotary shaping components and modules, the stress release problem at the root of the wire is solved, and the wire shaping effect and yield rate are improved. It is suitable for wires of different diameters and shapes, especially sheathed wires with wire lengths less than 8mm.
Patent Information
- Application Number
- CN202422374228.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-27
- Publication Date
- 2025-09-05
- Estimated Expiration
- 2034-09-27
AI Technical Summary
In the prior art, the root stress cannot be effectively released during wire shaping, resulting in poor plastic surgery effect and low product yield, especially the sheathed wire with wire length less than 8mm is poor in adaptability with other equipment.
The rotary shaping method is adopted to drive the wire to rotate through the shaping components, and the horizontal module and vertical module are combined to apply shaping force in multiple directions to release the stress at the root of the wire and improve the shaping effect.
It improves the yield rate of the wire, reduces the shaping time, and enhances the adaptability with other equipment, especially for sheathed wires with wire lengths below 8mm.
Smart Images

Figure CN223309392U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of connector preparation, and in particular to a wire shaping device and a wire processing production line. Background Art
[0002] After riveting connector terminals, the terminal conductors need to be shaped to ensure smooth insertion into the outer conductor. This shaping method typically applies forces in two perpendicular directions to the wires, failing to relieve stress at the base of the wires. This results in poor shaping and a high rate of product scrap. Utility Model Content
[0003] The present application provides a wire shaping device and a wire processing production line, which release the stress at the root of the wire through rotational shaping to improve product yield.
[0004] The present application provides a wire shaping device, comprising:
[0005] A mounting platform and a first bracket and a second bracket provided on the mounting platform, wherein the mounting platform has a length direction, and the first bracket and the second bracket are provided opposite to each other along the length direction;
[0006] a driving assembly, the driving assembly being arranged on a side of the first bracket away from the second bracket;
[0007] a shaping component, the shaping component being arranged on a side of the second bracket away from the first bracket;
[0008] a transmission assembly, the transmission assembly being located between the first bracket and the second bracket and being connected to the driving assembly and the shaping assembly respectively;
[0009] The shaping assembly is used to receive the wire, and the driving assembly drives the shaping assembly to rotate along the circumferential direction of the transmission assembly through the transmission assembly, so that the shaping assembly drives the wire to rotate.
[0010] The present application also provides a wire processing production line, including the wire shaping device.
[0011] The present application has the following beneficial effects: a wire shaping device of the present application comprises: a mounting platform and a first bracket and a second bracket arranged on the mounting platform, the mounting platform has a length direction, and the first bracket and the second bracket are arranged relative to each other along the length direction; a driving assembly, the driving assembly is arranged on the side of the first bracket away from the second bracket; a shaping assembly, the shaping assembly is arranged on the side of the second bracket away from the first bracket; a transmission assembly, the transmission assembly is located between the first bracket and the second bracket, and is respectively connected to the driving assembly and the shaping assembly; wherein the shaping assembly is used to receive the wire, and the driving assembly drives the shaping assembly to rotate along the circumference of the transmission assembly through the transmission assembly, so that the shaping assembly drives the wire to rotate. The device of the present application adds a rotation action in the process of shaping the wire. By driving the wire to rotate through the shaping assembly, the stress at the root of the wire can be released, and the yield rate is improved. In particular, it can shape sheathed wires with a length of less than 8 mm, improves the adaptability to other equipment, and can effectively reduce the shaping time of the wire. BRIEF DESCRIPTION OF THE DRAWINGS
[0012] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present application. For those skilled in the art, other drawings can be obtained based on these drawings without creative work.
[0013] Figure 1 A schematic structural diagram of a wire shaping device in an embodiment of the present application is exemplified;
[0014] Figure 2 An example is shown Figure 1 Front view of
[0015] Figure 3 An example is shown Figure 1 A top view of
[0016] Figure 4 An example is shown Figure 1 A partial enlarged schematic diagram of point A in the middle;
[0017] Figure 5 An example is shown Figure 4 Right view;
[0018] Figure 6 An example is shown Figure 4 Front view of
[0019] Figure markings: 1-installation platform, 11-first bracket, 12-second bracket, 2-drive assembly, 21-motor, 22-coupling, 3-shaping assembly, 31-first connecting part, 32-fixing plate, 321-through slot, 33-bearing plate, 34-horizontal module, 340-shaping slot, 341-first clamping part, 342-second clamping part, 343-first cylinder, 35-vertical module, 351-second cylinder, 352-force-applying part, 36-third cylinder, 4-transmission assembly, 41-transmission shaft, 42-bearing, 5-clamping assembly, 51-second connecting part, 52-clamping claw, 100-wire. DETAILED DESCRIPTION
[0020] The technical solutions in the embodiments of the present application will be clearly and completely described below in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without making creative work are within the scope of protection of the present application. In addition, it should be understood that the specific implementation methods described herein are only used to illustrate and explain the present application, and are not used to limit the present application. In the present application, unless otherwise specified, the directional words used, such as "up", "down", "left", and "right", generally refer to the up, down, left, and right of the device in actual use or working state, specifically the drawing direction in the accompanying drawings.
[0021] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be understood to indicate or imply relative importance or implicitly specify the quantity of the technical features indicated. Thus, features defined as "first" or "second" may explicitly or implicitly include at least one of these features.
[0022] This application provides a wire shaping device and a wire processing production line, which are described in detail below. It should be noted that the order in which the following embodiments are described does not limit the preferred order of the embodiments of this application. Furthermore, in the following embodiments, the description of each embodiment has its own emphasis. For portions not detailed in one embodiment, please refer to the relevant descriptions of other embodiments.
[0023] See also Figures 1 to 6This embodiment provides a wire shaping device, including: a mounting platform 1 and a first bracket 11 and a second bracket 12 arranged on the mounting platform 1, a driving component 2, a shaping component 3 and a transmission component 4; the mounting platform 1 has a length direction X, and the first bracket 11 and the second bracket 12 are arranged opposite to each other along the length direction X; the driving component 2 is arranged on a side of the first bracket 11 away from the second bracket 12; the shaping component 3 is arranged on a side of the second bracket 12 away from the first bracket 11; the transmission component 4 is located between the first bracket 11 and the second bracket 12, and is respectively connected to the driving component 2 and the shaping component 3; wherein the shaping component 3 is used to receive the wire 100, and the driving component 2 drives the shaping component 3 to rotate along the circumferential direction of the transmission component 4 through the transmission component 4, so that the shaping component 3 drives the wire 100 to rotate.
[0024] It is understandable that the wire shaping device incorporates a rotational action in the process of shaping the wire 100. By driving the wire 100 to rotate through the shaping component 3, the stress at the root of the wire can be released, thereby improving the yield rate of the wire preparation. The shaping component 3 can receive the wire and drive the wire to rotate by rotating, thereby achieving the shaping of the wire 100. During the circumferential rotation of the wire 100, the force applied by the shaping component 3 to the wire 100 will be evenly distributed along the circumference direction of the wire 100, which can reduce the stress concentration at the root of the wire 100. By driving the wire 100 to rotate through the shaping component 3, the wire 100 will undergo a slight deformation during the shaping process, and this deformation can help release the stress at the root of the wire. In addition, the drive component 2 is connected to the shaping component 3 through the transmission component 4 to achieve the drive of the shaping component 3, reducing the need for manual intervention, improving production efficiency, and reducing errors caused by human operation. Because the shaping assembly 3 can rotate along the circumference of the transmission assembly 4, the device is suitable for wires of varying diameters and shapes. Whether the wire is round, flat, or otherwise, effective shaping can be achieved by adjusting the rotation angle of the shaping assembly 3. The device's automated operation and efficient shaping method significantly improve the speed and efficiency of wire shaping, particularly for sheathed wires with a length of less than 8 mm. This improves the device's compatibility with other equipment and effectively reduces wire shaping time.
[0025] In some embodiments, the direction in which the shaping component 3 drives the wire 100 to rotate can be clockwise or counterclockwise; the angle range in which the shaping component 3 drives the wire 100 to rotate is 0 to 15°.
[0026] In some embodiments, see further Figure 1 、 Figure 2 and Figure 3The mounting platform 1 further has a width direction Y and a height direction Z; the length direction X, the width direction Y, and the height direction Z intersect with each other. It is understood that the length direction X, the width direction Y, and the height direction Z are based on the arrows in the accompanying drawings, and the length direction X, the width direction Y, and the height direction Z may be perpendicular to each other.
[0027] In some embodiments, see further Figure 1 、 Figure 2 and Figure 3 The shaping component 3 includes: a first connecting part 31, the first connecting part 31 is connected to the driving component 2; a fixing plate 32, the fixing plate 32 is connected to the end of the first connecting part 31 away from the driving component 2; a supporting plate 33, the supporting plate 33 is arranged on the side of the fixing plate 32 away from the first connecting part 31, and the supporting plate 33 is used to place the wire 100; a horizontal module 34, the fixing plate 32 has a through slot 321 passing through along the length direction X, and part of the horizontal module 34 passes through the through slot 321 and is located on one side of the supporting plate 33; the horizontal module 34 is used to apply a first shaping force along the width direction Y to the wire 100; a vertical module 35, the vertical module 35 is arranged on the side of the fixing plate 32 away from the first connecting part 31; along the height direction Z, the vertical module 35 is arranged on the side of the horizontal module 34 away from the supporting plate 33; the vertical module 35 is used to apply a second shaping force along the height direction Z to the wire 100.
[0028] It is understandable that the shaping component 3 applies shaping forces along the width direction Y and the height direction Z to the wire 100 through the horizontal module 34 and the vertical module 35, respectively, so that the wire 100 can be shaped in multiple directions, thereby better adjusting the shape and structure of the wire 100. In addition, the horizontal module 34 and the vertical module 35 can adjust and control the shaping force in different directions, and can flexibly adjust the size and direction of the shaping force according to the specific shape and requirements of the wire to achieve a more accurate shaping effect. The fixing plate 32 is used to fix the horizontal module 34 and the vertical module 35, and can concentrate the horizontal module 34 and the vertical module 35 to generate the first shaping force and the second shaping force respectively. The supporting plate 33 is used to place the shaping end of the wire, and can make the first shaping force and the second shaping force act evenly on the wire 100, avoiding the problem of stress concentration or uneven deformation of the wire 100 during the shaping process, thereby ensuring the consistency and stability of the shaping effect. At the same time, the shaping component 3 can apply shaping force in a shorter time and realize rotation through the driving component 2. This high-efficiency shaping process can improve production efficiency, reduce production costs, and ensure the consistency and stability of shaping quality.
[0029] In some embodiments, see further Figure 4 、 Figure 5 and Figure 6The horizontal module 34 has a shaping groove 340. A portion of the support plate 33 can be exposed from the shaping groove 340 along the height direction Z. The vertical module 35 is arranged toward the shaping groove 340 along the height direction Z. The support plate 33 can position the wire 100 within the shaping groove 340. When the wire 100 is positioned within the shaping groove 340, the horizontal module 34 can adjust the size of the shaping groove 340 in the width direction Y to apply a first shaping force to the wire 100. The vertical module 35 can move toward the shaping groove 340 along the height direction Z and contact the wire 100 to apply a second shaping force to the wire 100. It can be understood that through the combined action of the horizontal module 34 and the vertical module 35, the shaping assembly 3 can apply multi-directional shaping forces in the width direction Y and the height direction Z, thereby better adjusting the shape and structure of the wire. According to the specific requirements and shape of the wire 100, the magnitude and direction of the shaping force can be flexibly adjusted to achieve a more precise shaping effect. The design of the shaping groove 340 enables the shaping force to be evenly transmitted to the wire 100. This even force application can avoid stress concentration or uneven deformation of the wire during the shaping process.
[0030] In some embodiments, see further Figure 4 、 Figure 5 and Figure 6The horizontal module 34 includes: a first clamping portion 341 and a second clamping portion 342, the first clamping portion 341 and the second clamping portion 342 pass through the through slot 321; the first clamping portion 341 and the second clamping portion 342 are arranged opposite to each other in the width direction Y, and a shaping groove 340 is formed between the first clamping portion 341 and the second clamping portion 342; a first cylinder 343, the first cylinder 343 is arranged on the side of the fixed plate 32 facing the first connecting portion 31, the first cylinder 343 is respectively connected to the first clamping portion 341 and the second clamping portion 342, the first cylinder 343 can drive one of the first clamping portion 341 and the second clamping portion 342 to move toward the other to adjust the size of the shaping groove 340 in the width direction Y. It is understood that the dimension of the shaping groove 340 in the width direction Y can be understood as the distance between the first clamping portion 341 and the second clamping portion 342. Controlled by the first cylinder 343, the first clamping portion 341 and the second clamping portion 342 can be moved within the through-slot 321 along the width direction Y. When a first shaping force is required to be applied to the wire 100, the first cylinder 343 controls the first clamping portion 341 and the second clamping portion 342 to move closer together, reducing the dimension of the shaping groove 340 in the width direction Y until the first clamping portion 341 and the second clamping portion 342 have completed the force application. The first clamping portion 341 and the second clamping portion 342 extend through the through-slot 321, forming the shaping groove 340 therebetween. By clamping the wire 100 within the shaping groove 340, the horizontal module 34 can evenly clamp the wire 100, ensuring that the wire 100 is subjected to a uniform force during the shaping process, thereby avoiding stress concentration or uneven deformation. Through the action of the first cylinder 343, the horizontal module 34 can quickly adjust the size of the shaping groove 340. This efficient adjustment can complete the adjustment of the shaping groove 340 in a relatively short time, improve production efficiency, and ensure the consistency and stability of the shaping quality.
[0031] In some embodiments, see further Figure 4 、 Figure 5 and Figure 6The vertical module 35 includes: a second cylinder 351, which is connected to the fixed plate 32; and a force-applying portion 352, which is connected to the second cylinder 351. The second cylinder 351 can drive the force-applying portion 352 to move in the height direction Z, and the force-applying portion 352 can contact the wire 100 through movement. It can be understood that the vertical module 35 achieves a shaping force on the wire 100 through the combination of the second cylinder 351 and the force-applying portion 352. The second cylinder 351 can drive the force-applying portion 352 to move in the height direction Z, and through contact with the wire 100, it applies a shaping force, thereby shaping the wire 100 in the height direction Z, thereby better adjusting the shape and structure of the wire 100. The second cylinder 351 can control the movement of the force-applying portion 352, thereby achieving precise adjustment of the shaping force. By adjusting the operating parameters of the second cylinder 351, the magnitude and direction of the shaping force can be flexibly controlled to meet the specific requirements and shape of the wire 100, achieving a more precise shaping effect. The force-applying portion 352, through contact with the wire 100, can evenly apply the shaping force. The metal block used in the force-applying portion 352 ensures uniform force application, preventing stress concentration or uneven deformation during the shaping process.
[0032] In some embodiments, see further Figure 4 、 Figure 5 and Figure 6 The shaping assembly 3 further includes a third cylinder 36, which is connected to a side of the fixing plate 32 away from the first connecting portion 31. The third cylinder 36 is also connected to the supporting plate 33. The third cylinder 36 is capable of driving the supporting plate 33 to move along the height direction Z so as to move the wire 100 placed on the supporting plate 33 into the shaping groove 340. It is understood that by providing the third cylinder 36 to control the movement of the supporting plate 33, since the shaping end of the wire on the supporting plate 33 is used to place the wire, the movement of the supporting plate 33 can ensure that the shaping end of the wire 100 is moved into the stressed shaping groove 340.
[0033] In some embodiments, the specific shaping process is as follows: after the wire 100 is placed on the supporting plate 33, the third cylinder 36 drives the supporting plate 33 to move toward the shaping groove 340 until the supporting plate 33 contacts the first clamping portion 341 and the second clamping portion 342. At this time, the shaping end of the wire 100 can be located in the shaping groove 340, and the force-applying portion 352 of the vertical module 35 moves toward the shaping groove 340 under the control of the second cylinder 351 until the force-applying portion 352 contacts the wire 100. At this time, the force-applying portion 352 and the supporting plate 33 cooperate with each other to clamp the wire 100 to complete the application of the second shaping force; then , the first cylinder 343 controls the first clamping part 341 and the second clamping part 342 to move in the width direction Y until the first cylinder 343 controls the first clamping part 341 and the second clamping part 342 to contact the force-applying part 352. At this time, the first clamping part 341 and the second clamping part 342 apply a first shaping force, and the first shaping force is transmitted to the wire through the force-applying part 352 to complete the application of the first shaping force; finally, under the working condition of maintaining the application of the first shaping force and the second shaping force, the driving component 2 drives the shaping component 3 to rotate circumferentially, and the shaping component 3 further drives the stressed wire 100 to rotate, thereby completing the rotational shaping.
[0034] It should be noted that during the shaping process, the order of applying the first shaping force and the second shaping force is not limited to the above method. The two can be swapped as long as the force is evenly distributed. Rotational shaping needs to be performed after the first shaping force and the second shaping force are applied simultaneously.
[0035] In some embodiments, Figure 1 The device's shaping method involves applying a second shaping force to the conductor 100, then applying the first shaping force, and finally applying rotation. At this point, the maximum dimension of the force-applying portion 352 in the width direction Y must be smaller than the maximum dimension of the shaping slot 340 in the width direction Y. This ensures that the force-applying portion 352 can be located within the shaping slot 340 and interact with the support plate 33 to achieve shaping of the conductor 100.
[0036] In some embodiments, see further Figure 1 and Figure 2 , further comprising: a clamping assembly 5, which is disposed on the mounting platform 1 and located on the side of the shaping assembly 3 away from the second bracket 12. The clamping assembly 5 is used to secure the wire 100 when the wire 100 is located in the shaping groove 340. Furthermore, the clamping assembly 5 includes a second connecting portion 51, which is connected to the mounting platform 1; and a clamping jaw 52, which is connected to the side of the second connecting portion 51 away from the mounting platform 1. The wire 100 can pass through the clamping jaw 52, and the clamping jaw 52 is used to clamp the wire 100 when the wire 100 passes through.
[0037] As will be appreciated, the clamping assembly 5 is located on the side of the shaping assembly 3 away from the second bracket 12 and is used to secure the wire 100 while it is within the shaping slot 340. The clamping jaws 52 can clamp the wire 100, ensuring that it remains in a stable position during the shaping process, preventing it from moving or deviating from the desired position. The clamping jaws 52 allow the wire 100 to pass through, accommodating wires of varying diameters and shapes.
[0038] In some embodiments, see further Figure 1 , Figure 2 and Figure 3 The drive assembly 2 includes a motor 21 and a coupling 22 connected in sequence along the length direction X. The coupling 22 is located between the motor 21 and the first bracket 11. The transmission assembly 4 includes a transmission shaft 41 and a bearing 42. The transmission shaft 41 passes through the first bracket 11 and is connected to the motor 21 through the coupling 22. The bearing 42 is located between the transmission shaft 41 and the first bracket 11 and is connected to the transmission shaft 41 and the first bracket 11 respectively. The end of the transmission shaft 41 away from the coupling 22 passes through the second bracket 12 and is connected to the first connecting portion 31. It can be understood that the drive assembly 2 is powered by the motor 21 and the coupling 22, and the transmission assembly 4 is driven by the transmission shaft 41 and the bearing 42. This can effectively transmit the power of the motor 21 to the transmission shaft 41, improve transmission efficiency, and ensure efficient operation of the shaping process. To further ensure smooth drive, a reducer can also be provided between the motor 21 and the coupling 22. The coupling 22 is located between the motor 21 and the first bracket 11 and is connected to the motor 21 through the coupling 22. The transmission shaft 41 passes through the first bracket 11 and is connected to the motor 21 through the coupling 22. This is enough to maintain a stable connection between the transmission shaft and the motor, avoid loosening or falling off during the transmission process, and ensure the stability and reliability of the transmission. The bearing 42 is arranged between the transmission shaft 41 and the first bracket 11, and is connected to the transmission shaft 41 and the first bracket 11 respectively. This can provide support and fixation for the transmission shaft 41, reduce vibration and friction during the transmission process, and extend the service life of the transmission shaft 41 and the bearing 42. The end of the transmission shaft 41 away from the coupling 22 passes through the second bracket 12 and is connected to the first connecting part 31. This can maintain a stable connection between the transmission shaft and the first connecting part 31, ensuring the accurate position and stability of the transmission shaft during the shaping process.
[0039] In some embodiments, the present application also provides a wire processing production line, including the aforementioned wire shaping device. It is understood that the wire shaping device can be used as a necessary device for a processing step in a wire processing production line, effectively reducing wire shaping time, effectively relieving stress at the base of the sheathed wire, and improving the yield rate of wire production.
[0040] It can be understood that the meanings of the terms in the embodiments of the present application are the same. For the content that is not described in detail in a certain embodiment, the specific implementation details can refer to the descriptions in other embodiments. The example descriptions and technical effects shown in the aforementioned embodiments can all be implemented accordingly. For the repeated parts, this embodiment will not go into details.
[0041] The above is a detailed introduction to the wire shaping device and wire processing production line provided by the present application. Specific examples are used in this article to illustrate the principles and implementation methods of the present application. The description of the above embodiments is only used to help understand the method of the present application and its core idea; at the same time, for general technical personnel in this field, based on the ideas of the present application, there will be changes in the specific implementation methods and application scope. In summary, the content of this specification should not be understood as limiting the present application.
Claims
1. A wire shaping device, characterized in that: include: A mounting platform (1) and a first bracket (11) and a second bracket (12) arranged on the mounting platform (1), wherein the mounting platform (1) has a length direction (X), and the first bracket (11) and the second bracket (12) are arranged relative to each other along the length direction (X); A drive assembly (2), the drive assembly (2) being arranged on a side of the first bracket (11) away from the second bracket (12); a shaping component (3), the shaping component (3) being arranged on a side of the second bracket (12) away from the first bracket (11); a transmission assembly (4), the transmission assembly (4) being located between the first bracket (11) and the second bracket (12), and being connected to the driving assembly (2) and the shaping assembly (3) respectively; The shaping component (3) is used to receive a wire (100), and the driving component (2) drives the shaping component (3) to rotate along the circumference of the transmission component (4) through the transmission component (4), so that the shaping component (3) drives the wire (100) to rotate.
2. The wire shaping device according to claim 1, characterized in that The installation platform (1) further has a width direction (Y) and a height direction (Z); the length direction (X), the width direction (Y) and the height direction (Z) intersect in pairs; The shaping component (3) comprises: a first connecting portion (31), the first connecting portion (31) being connected to the driving assembly (2); a fixing plate (32), the fixing plate (32) being connected to an end of the first connecting portion (31) away from the driving assembly (2); a carrying plate (33), the carrying plate (33) being arranged on a side of the fixing plate (32) away from the first connecting portion (31), the carrying plate (33) being used for placing the wire (100); A horizontal module (34), the fixing plate (32) having a through slot (321) extending along the length direction (X), a portion of the horizontal module (34) passing through the through slot (321) and located on one side of the supporting plate (33); the horizontal module (34) is used to apply a first shaping force along the width direction (Y) to the wire (100); A vertical module (35) is provided on a side of the fixing plate (32) away from the first connecting portion (31); along the height direction (Z), the vertical module (35) is provided on a side of the horizontal module (34) away from the supporting plate (33); the vertical module (35) is used to apply a second shaping force along the height direction (Z) to the wire (100).
3. The wire shaping device according to claim 2, characterized in that The horizontal module (34) has a shaping groove (340), a portion of the carrier plate (33) can be exposed from the shaping groove (340) along the height direction (Z), and the vertical module (35) is arranged toward the shaping groove (340) along the height direction (Z); the carrier plate (33) can make the wire (100) be located in the shaping groove (340), and when the wire (100) is located in the shaping groove (340), the horizontal module (34) can adjust the size of the shaping groove (340) in the width direction (Y) to apply the first shaping force to the wire (100), and the vertical module (35) can move toward the shaping groove (340) along the height direction (Z) and contact the wire (100) to apply the second shaping force to the wire (100).
4. The wire shaping device according to claim 3, characterized in that The horizontal module (34) includes: a first clamping portion (341) and a second clamping portion (342), wherein the first clamping portion (341) and the second clamping portion (342) pass through the through slot (321); the first clamping portion (341) and the second clamping portion (342) are arranged opposite to each other in the width direction (Y), and the shaping slot (340) is formed between the first clamping portion (341) and the second clamping portion (342); A first cylinder (343) is provided on a side of the fixing plate (32) facing the first connecting portion (31), and the first cylinder (343) is connected to the first clamping portion (341) and the second clamping portion (342) respectively. The first cylinder (343) can drive one of the first clamping portion (341) and the second clamping portion (342) to move toward the other, so as to adjust the size of the shaping groove (340) in the width direction (Y).
5. The wire shaping device according to claim 3, characterized in that The vertical module (35) comprises: a second cylinder (351), the second cylinder (351) being connected to the fixing plate (32); A force applying part (352) is connected to the second cylinder (351), and the second cylinder (351) can drive the force applying part (352) to move along the height direction (Z), and the force applying part (352) can contact the wire (100) through the movement.
6. The wire shaping device according to claim 3, characterized in that The shaping component (3) further comprises: A third cylinder (36) is connected to a side of the fixing plate (32) away from the first connecting portion (31), and the third cylinder (36) is connected to the supporting plate (33). The third cylinder (36) can drive the supporting plate (33) to move along the height direction (Z) so that the wire (100) placed on the supporting plate (33) moves into the shaping groove (340).
7. The wire shaping device according to claim 3, characterized in that Also includes: A clamping assembly (5) is provided on the mounting platform (1) and is located on a side of the shaping assembly (3) away from the second bracket (12), and the clamping assembly (5) is used to fix the wire (100) when the wire (100) is located in the shaping groove (340).
8. The wire shaping device according to claim 7, characterized in that The clamping assembly (5) comprises: a second connecting portion (51), the second connecting portion (51) being connected to the mounting platform (1); A clamping jaw (52) is connected to a side of the second connecting portion (51) away from the mounting platform (1), the wire (100) can pass through the clamping jaw (52), and the clamping jaw (52) is used to clamp the wire (100) when the wire (100) passes through.
9. The wire shaping device according to claim 2, characterized in that The drive assembly (2) comprises a motor (21) and a coupling (22) connected in sequence along the length direction (X), and the coupling (22) is located between the motor (21) and the first bracket (11); The transmission assembly (4) includes a transmission shaft (41) and a bearing (42); the transmission shaft (41) passes through the first bracket (11) and is connected to the motor (21) through the coupling (22); the bearing (42) is provided between the transmission shaft (41) and the first bracket (11) and is respectively connected to the transmission shaft (41) and the first bracket (11); One end of the transmission shaft (41) away from the coupling (22) passes through the second bracket (12) and is connected to the first connecting portion (31).
10. A wire processing production line, characterized in that: The invention comprises the wire shaping device according to any one of claims 1 to 9.