Portable automatic forming coil holder equipment

The design of the convenient automatic forming wire frame equipment realizes the automated positioning and transfer of sheet metal, solves the problem of traditional equipment adapting to changes in market demand, improves production efficiency and equipment flexibility, and ensures the stability and precise positioning of sheet metal.

CN223822731UActive Publication Date: 2026-01-23NINGBO KAIRONG NEW ENERGY CO LTD
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Patent Information

Application Number
CN202520591713.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-28
Publication Date
2026-01-23
Estimated Expiration
2035-03-28

AI Technical Summary

Technical Problem

Traditional production equipment struggles to adapt quickly to changing market demands, and manual or semi-automatic operation results in low production efficiency, making it difficult to meet the requirements for precise positioning and efficient processing of boards of different sizes and shapes.

Method used

Design a convenient automatic forming wire frame device, including a frame, a shifting component, an adjusting component, and a driving component. Through the combination of buffer components, gripping components, and limiting blocks, it realizes the automatic positioning, adjustment, and transfer of sheet materials, adapting to sheet materials of different specifications and shapes.

Benefits of technology

It improves the overall efficiency and flexibility of the production line, reduces manual adjustment time, lowers the cost of changing tooling fixtures, ensures the stability and precise positioning of the sheet metal, and enhances the overall speed and quality consistency of the production line.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the field of automation, and provides portable automatic forming coil holder equipment which comprises a rack, a shifting assembly, an adjusting assembly and a driving assembly. Wherein the rack has a length and a width, a supporting frame is arranged in the width direction of the rack, and the supporting frame is used for supporting a plate in a horizontal posture; at least two adjusting assemblies are movably arranged on the displacement assembly, each adjusting assembly can slide in a reciprocating mode in the direction perpendicular to the supporting frame, and each adjusting assembly comprises a grabbing piece and a buffering piece. Compared with the prior art, the utility model has the advantages that the buffer piece is matched with the grabbing piece to flexibly adjust the position of the plate and ensure the stability of the plate, the whole process realizes high automation, the time for manually adjusting and carrying the plate is reduced, the overall efficiency of a production line is improved, and the production cost is reduced. And meanwhile, the displacement assembly is matched to adjust the relative positions of the at least two adjusting assemblies, the application range and flexibility of the equipment are increased, and the cost is reduced.
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Description

Technical Field

[0001] This utility model belongs to the field of automation, specifically relating to a convenient automatic forming wire frame device. Background Technology

[0002] As market demand changes, product types and specifications also change constantly. Traditional production equipment is unable to adapt to these changes quickly, which limits the company's ability to respond to the market and meet customer needs in a timely manner.

[0003] In existing sheet metal processing, the positioning, adjustment, and transfer of sheets typically require manual or semi-automatic methods. Manual operation is not only time-consuming but also slow, especially when dealing with a large volume of sheets. This inefficiency becomes even more pronounced, as operators need to place each sheet in the correct position and make necessary adjustments, which greatly limits the overall throughput of the production line. Furthermore, different tooling fixtures are often required for sheets of different sizes and shapes, increasing production costs and time consumption. In addition to low overall efficiency, it is also difficult to guarantee the precise positioning of each sheet. Utility Model Content

[0004] In view of the above-mentioned shortcomings of the existing technology, the technical problem to be solved by this utility model is to propose a convenient automatic forming wire frame equipment with simple overall structure, high flexibility, high positioning accuracy, and improved overall efficiency of the production line.

[0005] The technical solution adopted by this utility model to solve its technical problem is to propose a convenient automatic forming wireframe device, including a frame, a shifting component, an adjusting component, and a driving component; wherein...

[0006] The frame has a length and a width, and a support frame is provided in the width direction of the frame, the support frame being used to support the plate in a horizontal position;

[0007] At least two adjustment components are movably disposed on the displacement component. Each adjustment component can slide back and forth in a direction perpendicular to the support frame. Each adjustment component includes a gripping component and a buffer component. The plate can rotate relative to the support frame when it moves against the buffer component. When the adjacent sides of the plate are parallel to the length and width of the frame, the gripping component grips and restricts the rotation of the plate.

[0008] A drive assembly is mounted on the frame, and the output end of the drive assembly is connected to the shifting assembly. The drive assembly is used to move the plate material gripped by the gripper along the length of the support frame to the outside of the frame.

[0009] In the aforementioned convenient automatic forming wireframe equipment, the buffer component includes:

[0010] The fixed block is provided with a plurality of sliding plates on the displacement component, and the fixed block is detachably connected to the sliding plates.

[0011] A buffer column extends through the fixed block, and a buffer head is formed at the end of the buffer column. The buffer head is used to move against the plate.

[0012] An elastic element is disposed between the sliding plate and the buffer head, and the elastic element allows the buffer head to extend and retract along the axial direction of the buffer column.

[0013] In the aforementioned portable automatic wire frame forming device, the gripping component includes:

[0014] Mounting seats are symmetrically arranged on the side wall of the sliding plate, and a guide cavity is formed between two adjacent mounting seats;

[0015] The first clamping block and the second clamping block are connected to the mounting base with connecting shafts located at the top and bottom of the guide cavity, respectively. The first clamping block and the second clamping block are connected to the connecting shafts at different positions so that they can grip the plate when they approach each other.

[0016] In the aforementioned convenient automatic forming wire frame equipment, a fixed seat is also provided on the sliding plate, and a limit block is provided on the fixed seat. The limit block is used to limit the distance between the plate and the sliding plate.

[0017] In the aforementioned convenient automatic forming wire frame equipment, the distance between the limiting block and the sliding plate is less than the distance between the buffer head and the sliding plate.

[0018] In the aforementioned convenient automatic forming wire frame equipment, the shifting component includes a support platform and a drive rail. The lower end of the support platform is connected to the output end of the drive mechanism, and the upper end is connected to a mounting frame. The drive rail is mounted on the mounting frame, and the sliding plate is connected to the drive end of the drive rail.

[0019] In the aforementioned convenient automatic forming wire frame equipment, the driving component includes a sliding block and a transmission component. A guide rail is provided on the frame, the sliding block is movably engaged with the guide rail, and the support platform is detachably connected to the top of the sliding block. The output end of the transmission component is connected to the sliding block and is used to drive the plate after it has been clamped by the first clamping block and the second clamping block to move along the length direction of the guide rail.

[0020] In the aforementioned convenient automatic forming wire frame equipment, the transmission component includes:

[0021] A drive unit is provided on the frame, and the drive unit is detachably connected to the mounting plate.

[0022] A reducer having an input end and an output end is disposed on both sides of the drive member. The input end is connected to the output end of the drive member via a coupling and a rotating shaft. The output end is connected to a rotating rod, and a sliding block is movably sleeved on the rotating rod.

[0023] In the aforementioned convenient automatic forming wire frame equipment, an extension plate is formed at the bottom periphery of the frame, and rolling wheels are movably arranged inside the extension plate.

[0024] In the aforementioned convenient automatic forming wire frame equipment, an adjusting column is movably connected to the frame, and a support foot is connected to the bottom end of the adjusting column. The support foot can restrict the rotation of the rolling wheel when it is in contact with the ground.

[0025] Compared with the prior art, the present invention has the following beneficial effects:

[0026] (1) The present invention provides a convenient automatic forming wire frame equipment. Through the use of buffer components and gripping components, the position of the plate can be flexibly adjusted and its stability ensured. The whole process is highly automated, reducing the time for manual adjustment and handling of the plate, and improving the overall efficiency of the production line. At the same time, the equipment can be adjusted to adjust the relative position of at least two adjustment components in conjunction with the shifting components, so that the equipment can be automatically adjusted according to different specifications and types of plates, which greatly increases the applicability and flexibility of the equipment and reduces the cost of changing different tooling.

[0027] (2) The distance that the buffer column moves relative to the sliding plate is effectively limited by the limiting block, which prevents the elastic element from being damaged due to overload of compression and extends its service life.

[0028] (3) The design of the support feet and rolling wheels can not only make the equipment easy to move to any position, but also ensure its stability when in use, thus providing a guarantee for the smoothness and stability of the equipment operation. Attached Figure Description

[0029] Figure 1 This is a perspective view of this application;

[0030] Figure 2 This is a schematic diagram of the installation structure of the shifting component, the adjusting component, and the driving component;

[0031] Figure 3 This is a schematic diagram of the overall structure of the adjustment component;

[0032] Figure 4 yes Figure 1 A magnified view of section A in the image.

[0033] In the diagram, 1 is the frame; 10 is the support frame; 11 is the guide rail; 12 is the mounting plate; 13 is the extension plate; 130 is the roller; 14 is the adjusting column; and 140 is the support foot.

[0034] 2. Shifting assembly; 20. Sliding plate; 21. Support platform; 22. Mounting bracket; 23. Drive rail;

[0035] 3. Adjustment component; 30. Gripping component; 300. Mounting base; 301. Guide cavity; 302. First clamping block; 303. Second clamping block; 304. Connecting shaft; 31. Buffer component; 310. Fixing block; 311. Buffer column; 312. Buffer head; 32. Fixing base; 320. Limiting block;

[0036] 4. Drive assembly; 40. Sliding block; 41. Transmission component; 410. Drive component; 411. Reducer; 412. Coupling; 413. Shaft. Detailed Implementation

[0037] The following are specific embodiments of the present invention, which are described in conjunction with the accompanying drawings. However, the present invention is not limited to these embodiments.

[0038] It should be noted that all directional indicators (such as up, down, left, right, front, back, etc.) in this utility model embodiment are only used to explain the relative positional relationship and movement of each component in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indicator will also change accordingly.

[0039] like Figures 1 to 4 As shown, this utility model discloses a convenient automatic forming wire frame device, including a frame 1, a shifting component 2, an adjusting component 3, and a driving component 4. The frame 1 has a length (L) and a width (W), and a support frame 10 is provided in the width direction of the frame 1. The support frame 10 is used to support the sheet metal in a horizontal position. At least two adjusting components 3 are movably arranged on the shifting component 2. Each adjusting component 3 can slide back and forth in a direction perpendicular to the support frame 10. Each adjusting component 3 includes a gripping element 30 and a buffer element 31. The sheet metal can rotate relative to the support frame 10 when it moves against the buffer element 31. When the adjacent sides of the sheet metal are parallel to the length and width of the frame 1, the gripping element 30 grips and restricts the rotation of the sheet metal. The driving component 4 is disposed on the frame 1, and its output end is connected to the shifting component 2. It is used to drive the sheet metal gripped by the gripping element 30 to move along the length direction of the support frame 10 to outside the frame 1.

[0040] This embodiment is mainly designed to achieve automated position adjustment and conveying of plates of different specifications. Specifically, for example... Figures 1 to 3As shown, firstly, the board to be processed is placed on the support frame 10 (an external robotic arm can be used). The surface of the support frame 10 is higher than the upper surface of the frame 1 to ensure that the board is in a horizontal position. Since the board is placed at a certain degree of inclination (due to its own weight), the worker can adjust the position of at least two adjustment components 3 using the shifting component 2 according to the actual size and shape of the board (four adjustment components 3 are used in this embodiment, but two adjustment components 3 can also be used; the number can be adjusted according to the actual situation). This ensures that each adjustment component 3 is evenly distributed on the same side of the board. This method can quickly adapt to boards of different sizes and shapes without frequent changes of tooling fixtures, greatly enhancing the efficiency of the equipment. The automated operation is highly flexible. As the drive mechanism moves the shifting component 2 and the adjusting component 3 towards the plate simultaneously, the buffer component 31 generates a squeezing force when it comes into contact with the plate. This provides a cushioning effect while also forcing the plate to rotate relative to the support frame 10 within a certain range. This allows for adjustment of the plate's angle, ensuring that adjacent sides are parallel to the length and width of the frame 1 (i.e., the right-angled sides of the plate and the right-angled sides of the frame 1 are aligned). After adjustment, the gripping component 30 holds the plate in place to prevent further rotation or tilting. With further drive from the drive mechanism, the gripped plate moves smoothly outward along the length of the support frame 10 until it is moved to the designated position or the next processing step. Therefore, the automated plate positioning, adjustment, and transfer process in this embodiment reduces manual intervention, significantly improves the speed and continuity of the entire processing, and thus enhances the overall efficiency of the production line.

[0041] The buffer component 31 includes: a fixed block 310, on which a plurality of sliding plates 20 are provided, and the fixed block 310 is detachably connected to the sliding plates 20; a buffer post 311, which movably passes through the fixed block 310, and a buffer head 312 is formed at the end of the buffer post 311, which is used to movably abut against the plate; and an elastic element, which is disposed between the sliding plates 20 and the buffer head 312, and the elastic element allows the buffer head 312 to extend and retract along the axial direction of the buffer post 311.

[0042] Furthermore, such as Figure 2 and Figure 3As shown, each sliding plate 20 is provided with at least two buffer members 31. Since the plate placed on the support frame 10 is in an inclined position, as the buffer member 31 gradually approaches the plate, one of the buffer heads 312 will inevitably contact the plate beforehand. Since the buffer head 312 moves through the fixed block 310 via the buffer post 311, it can adapt to plates of different thicknesses and shapes. As the buffer head 312 continues to apply pressure to the plate, the buffer head 312 will extend and retract along the axis of the buffer post 311 under the action of the elastic member (not shown in the figure). The buffer head 312 and the elastic element work together to provide a soft "protection" during the contact process with the sheet material, avoiding damage to the sheet material that may be caused by direct hard contact. This is especially important for materials with sensitive surfaces, ensuring that the sheet material can be positioned smoothly under appropriate pressure. The buffer head 312 at another location gently presses against the side wall of the sheet material, and the right-angled edges of the sheet material are aligned with the right-angled edges of the length and width of the frame 1. This indicates that the sheet material has been adjusted to the required posture, and finally, it is gripped and fixed by the gripper 30, ensuring the stability of the sheet material during the pushing process. It should be noted that the elastic element in this embodiment can be replaced by other elastic devices such as compression springs or return springs.

[0043] The sliding plate 20 is also provided with a fixed seat 32, and a limit block 320 is provided on the fixed seat 32. The limit block 320 is used to limit the distance between the plate and the sliding plate 20.

[0044] Preferably, such as Figure 3 As shown, in this embodiment, the fixed base 32 can be detachably connected to the sliding plate 20 via screws, bolts, or other connecting components. The overall operation is simple, facilitating quick disassembly when the limiting block 320 needs maintenance or replacement, thus ensuring the lifespan of the equipment. The presence of the limiting block 320 effectively prevents accidents or equipment damage caused by excessive movement of the sheet metal. Especially when handling heavier or larger sheet metal, the limiting block 320 provides additional safety and reduces operational risks; it also ensures that each sheet metal can be precisely positioned in the same location, which is crucial for subsequent processing steps (such as cutting and welding) and helps improve product quality consistency.

[0045] More preferably, such as Figure 3As shown, the distance between the limiting block 320 and the sliding plate 20 is less than the distance between the buffer head 312 and the sliding plate 20. In other words, the device can provide appropriate buffer space for plates of different thicknesses using the elastic element in the initial stage (the time when the buffer head 312 moves against the plate). This increases the operational flexibility when handling various plates. Even for thicker plates, there is enough buffer space before reaching the limit to avoid damage caused by direct hard contact, thus protecting the quality of the plate surface. At the same time, the limiting block 320 provides additional safety protection, preventing frequent damage to the elastic element due to excessive compression, and effectively improving the accuracy of plate positioning.

[0046] The gripper 30 includes: a mounting base 300 symmetrically arranged on the side wall of the sliding plate 20, with a guide cavity 301 formed between two adjacent mounting bases 300; a first clamping block 302 and a second clamping block 303; and connecting shafts 304 located at the top and bottom of the guide cavity 301 respectively connected inside the mounting base 300. The first clamping block 302 and the second clamping block 303 are connected to the connecting shafts 304 at different positions so that the first clamping block 302 and the second clamping block 303 can grip the plate when they approach each other.

[0047] Continue to refer to Figure 2 and Figure 3 When the plate on the support frame 10 is adjusted to the required posture with the cooperation of the buffer head 312 and the limiting block 320, the first clamping block 302 and the second clamping block 303, which were originally in an open posture, can extend into the upper and lower ends of the plate respectively under the continuous drive of the drive mechanism. At this time, the control system (not shown in the figure) can make the first clamping block 302 and the second clamping block 303 rotate relative to the mounting base 300 around the axis of the connecting shaft 304. Finally, as they approach each other, they apply an appropriate clamping force to the plate, ensuring that the plate remains stable throughout the transportation process. This dual clamping mechanism (clamping blocks at the top and bottom) ensures that the plate has higher stability when it is gripped, reducing the risk of plate deformation or damage caused by uneven force at a single point, which is especially important when handling thinner or more fragile materials. At the same time, this design allows the distance between the first clamping block 302 and the second clamping block 303 to be flexibly adjusted according to the specific size of the plate. This increases the adaptability of the equipment to different types and specifications of plates, and can meet diverse production needs without frequent tool changes. Preferably, during the process of the first clamping block 302 and the second clamping block 303 moving closer or further apart, the structure of the guide cavity 301 and the connecting shaft 304 helps to disperse the force and reduce local wear. While ensuring accurate and stable clamping of the plate, it also extends the service life of key components and reduces maintenance costs.

[0048] The shifting assembly 2 includes a support platform 21 and a drive rail 23. The lower end of the support platform 21 is connected to the output end of the drive mechanism, and the upper end is connected to a mounting bracket 22. The drive rail 23 is mounted on the mounting bracket 22, and the sliding plate 20 is connected to the drive end of the drive rail 23.

[0049] Furthermore, such as Figure 1 and Figure 2 As shown, when dealing with plates of different specifications and shapes, the sliding plate 20 can be precisely adjusted in position under the action of the drive rail 23. Specifically, since the sliding plate 20 is connected to the drive end of the drive rail 23, it can move back and forth very flexibly along the length of the drive rail 23, thereby adjusting the position of the buffer head 312 and the limit block 320 on each adjustment component 3 relative to the plate. This allows for quick adaptation to the adjustment needs of plates of different sizes and shapes without the need to change equipment or tooling fixtures, increasing the versatility and flexibility of the equipment. It should be noted that the drive rail 23 in this embodiment works on the same principle as the linear guide rail commonly used in machinery, and will not be described in detail here. Of course, this driving method is not limited to the one in this embodiment; a ball screw structure can also be used as an alternative.

[0050] The drive assembly 4 includes a sliding block 40 and a transmission component 41. A guide rail 11 is provided on the frame 1. The sliding block 40 is movably engaged with the guide rail 11, and a support platform 21 is detachably connected to the top of the sliding block 40. The output end of the transmission component 41 is connected to the sliding block 40 and is used to drive the plate after it has been clamped by the first clamping block 302 and the second clamping block 303 to move along the length direction of the guide rail 11.

[0051] More preferably, since the support platform 21 is connected to the sliding block 40, and the moving direction of the sliding block 40 is parallel to the length direction of the support frame 10, when the sliding block 40 moves along the guide rail 11, it can drive the plate clamped and fixed by the two clamping blocks to move together. In this process, the design of the guide rail 11 ensures that the sliding block 40 can move smoothly and accurately along the predetermined route, thereby realizing the precise transfer of the plate.

[0052] The transmission component 41 includes: a drive component 410, on which a mounting plate 12 is provided, and the drive component 410 is detachably connected to the mounting plate 12; a reducer 411 having an input end and an output end, which is provided on both sides of the drive component 410, the input end being connected to the output end of the drive component 410 via a coupling 412 and a rotating shaft 413, the output end being connected to a rotating rod, and a sliding block 40 being movably sleeved on the rotating rod.

[0053] More preferably, the drive unit 410 can be activated upon receiving a signal that the plate is placed on the support frame 10. The drive unit 410 is connected to the reducer 411 via the coupling 412 and the rotating shaft 413, which not only enhances the overall rigidity and stability of the system but also reduces wear caused by mechanical vibration or impact, extending the equipment's service life. It is precisely because of the rotational torque of the rotating shaft 413 that the reducer 411 can drive the rotating rod (not shown in the figure) to rotate through the adjusted rotational torque. Since the sliding block 40 is movably fitted onto the rotating rod, the rotational motion of the rotating rod is converted into the linear movement of the sliding block 40 along the guide rail 11, ultimately achieving stable conveying of the plate. In this process, the design of the reducer 411 ensures a smoother and more precise power transmission from the drive unit 410 to the rotating rod. By adjusting the rotational speed and torque, the sliding block 40 can move along the guide rail 11 at the optimal speed and force, improving the accuracy and stability of the plate transfer. It should be noted that the working principle of converting the rotational motion of the rotating rod into the reciprocating linear motion of the sliding block 40 in this embodiment is the same as the driving method and principle of the ball screw in machinery, and will not be described in detail here.

[0054] More preferably, such as Figure 4 As shown, an extension plate 13 is formed at the bottom periphery of the frame 1, and a roller 130 is movably mounted within the extension plate 13. Notably, the roller 130 can be installed and removed from the extension plate 13 via connecting pins, greatly facilitating timely maintenance or replacement when the roller 130 experiences wear or damage. The design of the roller 130 significantly improves the overall mobility of the equipment, making it relatively easy to adjust the position of large and heavy equipment. This is particularly important for companies that frequently need to rearrange production lines, greatly reducing downtime and increasing flexibility.

[0055] More preferably, such as Figure 4 As shown, an adjusting column 14 is movably connected to the frame 1, and a support foot 140 is connected to the bottom end of the adjusting column 14. The design of the support foot 140 provides stable support after the equipment reaches the designated position, effectively preventing accidental movement caused by the presence of the rollers 130. This greatly improves the safety and reliability of the equipment during operation. It should be noted that the adjusting column 14 and the frame 1 can be connected by threads, or a locking pin (not shown in the figure) can be used to lock the adjusted adjusting column 14. Thus, the switching mechanism between the rollers 130 and the support foot 140 simplifies the handling and fixing of the equipment, reduces the time and complexity of manual adjustment, improves work efficiency, and allows operators to complete the position adjustment of the equipment without complicated tools or skills.

[0056] It should be noted that the driving component 410 in this embodiment can be replaced by other driving devices such as stepper motors and servo motors.

[0057] It should be noted that in this utility model, the use of terms such as "first," "second," and "a" is for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include at least one of those features. In the description of this utility model, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly defined. The terms "connection," "fixed," etc., should be interpreted broadly. For example, "fixed" can mean a fixed connection, a detachable connection, or an integral part; it can mean a mechanical connection or an electrical connection; it can mean a direct connection or an indirect connection through an intermediate medium; it can mean the internal communication of two elements or the interaction between two elements, unless otherwise explicitly defined. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0058] Furthermore, the technical solutions of the various embodiments of this utility model can be combined with each other, but only if they are based on the ability of those skilled in the art to implement them. When the combination of technical solutions is contradictory or cannot be implemented, it should be considered that such combination of technical solutions does not exist and is not within the scope of protection claimed by this utility model.

[0059] The specific embodiments described herein are merely illustrative examples illustrating the spirit of this utility model. Those skilled in the art to which this utility model pertains may make various modifications or additions to the described specific embodiments or use similar methods to substitute them, without departing from the spirit of this utility model or exceeding the scope defined by the appended claims.

Claims

1. A convenient automatic forming wire frame device, characterized in that, It includes a rack, a shifting assembly, an adjustment assembly, and a drive assembly; among which, The frame has a length and a width, and a support frame is provided in the width direction of the frame, the support frame being used to support the plate in a horizontal position; At least two adjustment components are movably disposed on the displacement component. Each adjustment component can slide back and forth in a direction perpendicular to the support frame. Each adjustment component includes a gripping component and a buffer component. The plate can rotate relative to the support frame when it moves against the buffer component. When the adjacent sides of the plate are parallel to the length and width of the frame, the gripping component grips and restricts the rotation of the plate. A drive assembly is mounted on the frame, and the output end of the drive assembly is connected to the shifting assembly. The drive assembly is used to move the plate material gripped by the gripper along the length of the support frame to the outside of the frame.

2. The convenient automatic forming wire frame equipment according to claim 1, characterized in that, The buffer includes: The fixed block is provided with a plurality of sliding plates on the displacement component, and the fixed block is detachably connected to the sliding plates. A buffer column extends through the fixed block, and a buffer head is formed at the end of the buffer column. The buffer head is used to move against the plate. An elastic element is disposed between the sliding plate and the buffer head, and the elastic element allows the buffer head to extend and retract along the axial direction of the buffer column.

3. The convenient automatic forming wire frame equipment according to claim 2, characterized in that, The grabber includes: Mounting seats are symmetrically arranged on the side wall of the sliding plate, and a guide cavity is formed between two adjacent mounting seats; The first clamping block and the second clamping block are connected to the mounting base with connecting shafts located at the top and bottom of the guide cavity, respectively. The first clamping block and the second clamping block are connected to the connecting shafts at different positions so that they can grip the plate when they approach each other.

4. The convenient automatic forming wire frame equipment according to claim 2, characterized in that, The sliding plate is also provided with a fixed seat, and the fixed seat is provided with a limit block, which is used to limit the distance between the plate and the sliding plate.

5. A convenient automatic forming wire frame equipment according to claim 4, characterized in that, The distance between the limiting block and the sliding plate is less than the distance between the buffer head and the sliding plate.

6. The convenient automatic forming wire frame equipment according to claim 3, characterized in that, The displacement assembly includes a support platform and a drive rail. The lower end of the support platform is connected to the output end of the drive assembly, and the upper end is connected to a mounting bracket. The drive rail is mounted on the mounting bracket, and the sliding plate is connected to the drive end of the drive rail.

7. A convenient automatic forming wire frame device according to claim 6, characterized in that, The drive assembly includes a sliding block and a transmission component. A guide rail is provided on the frame. The sliding block is movably engaged with the guide rail, and the support platform is detachably connected to the top of the sliding block. The output end of the transmission component is connected to the sliding block and is used to drive the plate after it has been clamped by the first clamping block and the second clamping block to move along the length direction of the guide rail.

8. A convenient automatic forming wire frame equipment according to claim 7, characterized in that, The transmission component includes: A drive unit is provided on the frame, and the drive unit is detachably connected to the mounting plate. A reducer having an input end and an output end is disposed on both sides of the drive member. The input end is connected to the output end of the drive member via a coupling and a rotating shaft. The output end is connected to a rotating rod, and a sliding block is movably sleeved on the rotating rod.

9. A convenient automatic forming wire frame device according to claim 1, characterized in that, An extension plate is formed at the bottom periphery of the frame, and a rolling wheel is movably disposed within the extension plate.

10. A convenient automatic forming wire frame device according to claim 9, characterized in that, An adjusting column is movably connected to the frame, and a support foot is connected to the bottom end of the adjusting column. The support foot can restrict the rotation of the rolling wheel when it is in contact with the ground.