Automatic equipment of feeding, punching, cutting and collecting all-in-one machine

The integrated design and modular cutting device of the automated feeding, punching, cutting and receiving machine solves the adaptability problem of sealing strip processing equipment, realizes efficient and automated processing of sealing strips of various specifications, and improves the overall efficiency and consistency of the production line.

CN223777327UActive Publication Date: 2026-01-09宁海建新自动化设备有限公司
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Patent Information

Application Number
CN202520381592.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-06
Publication Date
2026-01-09
Estimated Expiration
2035-03-06

AI Technical Summary

Technical Problem

Existing sealing strip processing equipment is limited to specific application scenarios and cannot adapt to the processing needs of different products. It also suffers from problems such as long production lines, large footprint, low efficiency in process connection, and poor product consistency.

Method used

Design an automated feeding, punching, cutting and receiving machine that integrates a traction device, a transmission device, a cutting device and a finished product output device. It directly connects to the conveyor track to realize the fully automated transmission of sealing strips, and adopts a detachable modular cutting device to adapt to different processing needs.

Benefits of technology

It significantly reduces the floor space required for production lines, improves processing efficiency and consistency, enables automated processing of products of various specifications, reduces labor costs and positioning errors, and enhances equipment versatility and functional utilization.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses automatic equipment of a feeding, punching, cutting and collecting all-in-one machine, and belongs to the technical field of automatic machining of automobile sealing strips, the automatic equipment comprises a machine table, and a traction device, a transmission device, a cutting device and a finished product output device which are all arranged on the machine table, a conveying track is arranged on the machine table, one end of the conveying track is in butt joint with the transmission device, and the other end of the conveying track is in butt joint with the cutting device; the other end of the conveying rail is in butt joint with the finished product output device, and the cutting device is detachably installed on the conveying rail. A sealing strip to be machined is driven by the traction device to be pulled to the machine table, and the sealing strip located on the machine table is driven by the transmission device to reach the finished product output device through the cutting device. And the detachable modularized cutting device is adopted and can be replaced according to machining requirements, and universal automatic machining of the automobile sealing strip is achieved.
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Description

Technical Field

[0001] This application relates to the field of automatic processing technology for automotive sealing strips, and in particular to an automated equipment for an integrated feeding, punching, cutting and collecting machine. Background Technology

[0002] With the rapid development of industrial automation technology, the manufacturing sector is increasingly demanding efficient and integrated production equipment. In traditional production lines, processes such as material loading, punching, cutting, and unloading typically rely on multiple independent machines to complete in stages. This results in lengthy production lines, large floor space requirements, frequent manual intervention, and problems such as low process integration efficiency and poor product consistency. Especially in the field of sealing strip processing, how to achieve full-process automation, reduce labor costs, and improve processing accuracy has become a pressing technical challenge.

[0003] In the prior art, such as Chinese utility model patent CN207026866U "A Sealing Strip Buckle Assembly Machine", a machine base is disclosed, comprising a rubber strip traction device, a buckle feeding device, a buckle assembly device, a fixed-length cutting device, and a finished product inspection and output device, all mounted on the machine base, and an assembly controller mounted within the machine base. The assembly controller controls and connects the rubber strip traction device, the buckle feeding device, the buckle assembly device, the fixed-length cutting device, and the finished product inspection and output device. The rubber strip traction device and the buckle feeding device respectively output the two components of the sealing strip, namely the rubber strip and the buckle. The buckle assembly device installs the buckle into the buckle mounting hole of the rubber strip. After the buckle is assembled, the rubber strip is cut to a fixed length. The cut rubber strip is then separated into qualified and unqualified products by the finished product inspection and output device. The whole machine can process the rubber strip raw material, which is coiled in a disc shape, into a finished sealing strip that can be directly sold, replacing manual operation and greatly improving production efficiency and reducing labor intensity.

[0004] While the aforementioned sealing strip snap-on assembly machine improves efficiency in specific application scenarios, its function is limited to the snap-on installation of sealing strips. Its equipment function is customized and lacks universality, making it difficult to adapt to different product processing needs. Utility Model Content

[0005] The technical problem to be solved by this application is to provide an automated equipment for feeding, punching, cutting and collecting materials, which adopts a detachable and modular cutting device that can be replaced according to processing needs, so as to realize the universal automated processing of automotive sealing strips.

[0006] The technical solution adopted in this application is: an automated equipment for feeding, punching, cutting and collecting materials, including a machine base, a traction device, a transmission device, a cutting device and a finished product output device, all of which are set on the machine base. The machine base is provided with a conveyor track, one end of which is connected to the transmission device and the other end of which is connected to the finished product output device. The cutting device is detachably installed on the conveyor track. The sealing strip to be processed is pulled onto the machine base by the traction device, and the sealing strip located on the machine base is driven by the transmission device through the cutting device to reach the finished product output device.

[0007] Compared with existing technologies, the advantages of this application are as follows: First, it integrates the traction device, transmission device, cutting device, and finished product output device into a single machine, directly connecting them via a conveyor track. This eliminates the redundant layout of traditional separate equipment and significantly reduces the production line's floor space. Simultaneously, the close integration of each process avoids waiting time for material transfer between machines, improving overall processing efficiency. The conveyor track runs from the transmission device to the finished product output device, and with the coordinated control of the traction and transmission devices, it achieves fully automated transmission of the sealing strip from feeding to finished product. No manual adjustment of material position is required during the process, reducing labor costs and avoiding positioning errors caused by manual operation, ensuring processing consistency.

[0008] Secondly, the cutting device features a detachable design, allowing for quick replacement of specialized modules based on the material, thickness, or cutting shape requirements of the sealing strip. This modular design enables a single device to be adapted for processing multiple product specifications, overcoming the limitations of traditional customized equipment and significantly improving the device's versatility.

[0009] Furthermore, the transmission device can precisely control the feeding speed and position of the sealing strip at the cutting station. By replacing manual feeding with mechanical transmission and cooperating with the fixed-point operation of the cutting device, millimeter-level processing accuracy can be achieved, effectively solving the problem of cumulative errors caused by multiple positioning in traditional step-by-step processing.

[0010] Finally, the conveyor track serves as a standardized interface, compatible with additional modules such as drilling and testing equipment. This allows for further expansion of equipment functionality through module installation, meeting process requirements and improving equipment utilization.

[0011] In some embodiments of this application, the traction device is connected to the material tray and the transmission device. The sealing strip to be processed is wound into a disc-shaped structure and placed on the material tray. One end of the sealing strip to be processed is located at the edge of the material tray, and the other end of the sealing strip to be processed is located at the center of the material tray. The material tray is rotatable.

[0012] The material tray features a center-driven and edge-discharge design, which, together with the traction device, guides the sealing strip to unfold spirally, preventing the sealing strip from tangling. The traction device optimizes the conveying path, reduces material bending stress, and ensures that the sealing strip enters the processing stage smoothly.

[0013] In some embodiments of this application, a drive motor is installed at the center of the material tray, the material tray is mounted on a base, and the base is provided with a plurality of rollers evenly distributed in a circumferential direction. The base contacts the material tray through the plurality of rollers; the drive motor drives the material tray to rotate.

[0014] In actual operation, the drive motor can be designed to first reverse to loosen the sealing strip to be processed, and then rotate forward to work with the traction device to transport the sealing strip to be processed. The reverse rotation of the drive motor controls the material tray to loosen, and with the support of the circumferential rollers, the tray material is released smoothly and at a uniform speed. The low-friction design of the base reduces rotational resistance, ensures the stability of long-term continuous feeding, and reduces the risk of material interruption and the frequency of manual intervention.

[0015] In some embodiments of this application, the traction device includes a pulley, an inclined guide groove, and a reversing wheel assembly. The pulley is located directly above the material tray and obliquely above the transmission device. The reversing wheel assembly is correspondingly arranged on one side of the transmission device. One end of the sealing strip to be processed passes around the pulley, through the guide groove, and around the reversing wheel assembly in sequence to reach the transmission device.

[0016] The traction device guides the sealing strip smoothly to the transmission device. The inclined guide groove provides directional control, preventing slippage or twisting during transport and improving the reliability of the sealing strip's transport. The arrangement of pulleys, inclined guide grooves, and reversing wheel sets optimizes the transport path, reduces material bending stress, and ensures the sealing strip enters the processing stage flat.

[0017] In some embodiments of this application, the transmission device includes an upper pulley assembly and a lower pulley assembly, with a gap between the upper and lower pulley assemblies for the sealing strip to be processed to pass through. The lower pulley assembly is fixedly mounted on the machine base, and its plane is flush with the top surface of the reversing pulley assembly. This ensures that the sealing strip to be processed can smoothly reach the lower pulley assembly after bypassing the reversing pulley assembly.

[0018] In some embodiments of this application, the transmission device includes two mounting rails, left and right. The upper pulley assembly is mounted on the two mounting rails and connected to a downward cylinder. The downward cylinder drives the upper pulley assembly to move up and down along the mounting rails to adjust the distance between it and the lower pulley assembly. The distance between the upper and lower pulley assemblies can be dynamically adjusted to accommodate sealing strips of different thicknesses.

[0019] In some embodiments of this application, both the upper and lower pulley sets include a driving pulley, a driven pulley, and a transmission belt. The driving pulley and the driven pulley are located at both ends of the transmission belt. The driving pulley is connected to a power drive component, and the power drive component drives the driving pulley, the transmission belt, and the driven pulley to rotate. The two driving pulleys are located in the same vertical column, with the driving pulley located on the side away from the traction device. The two driven pulleys are staggered to the left and right. A detection pressure roller is provided on the side of the upper pulley set near the traction device.

[0020] The staggered layout of the upper and lower pulley sets and the coaxial drive design optimize power transmission efficiency; the drive pulley is far away from the traction side to reduce transmission loss, and the staggered driven pulleys improve friction and transmission stability, making it suitable for high-speed continuous processing.

[0021] The pressure roller can monitor material tension in real time and adjust the pressure accordingly to prevent slippage, ensuring synchronous transmission and accurate processing position. Further settings on the pressure roller can provide real-time feedback on the position and tension of the sealing strip, and adjust the speed and pressure of the transmission pulley accordingly to dynamically compensate for material deformation or slippage. Intelligent closed-loop control improves processing stability and reduces scrap rates and equipment maintenance costs.

[0022] In some embodiments of this application, the conveyor track includes a conveyor belt with two chains arranged on its upper surface. The two chains are arranged one after the other and have a gap to accommodate the sealing strip to be processed. The sealing strip to be processed is located on the conveyor belt and is limited by the two chains.

[0023] The conveyor belt will move the sealing strip to be processed. The conveyor belt is equipped with a double chain limiting structure to constrain the lateral displacement of the sealing strip; the chain spacing is adjustable, which is compatible with the directional conveying of multiple specifications of products, reduces manual correction operations, and improves the level of automation and processing consistency of the whole process.

[0024] In some embodiments of this application, the cutting device includes a mounting base plate, which is detachably mounted on a conveyor rail. The mounting base plate is provided with a mounting slot of an annular structure. A cutting tool is mounted on one side of the mounting base plate, and at least one punching tool assembly is mounted on the other side of the mounting base plate. The punching tool assembly is movably mounted on the mounting base plate through the mounting slot, and the sealing strip to be processed passes through the central axis of the mounting slot.

[0025] The mounting base plate has mounting slots, allowing for easy and convenient adjustment of the drilling tool assembly position, and can quickly adapt to different sealing strip sizes and drilling requirements. This design significantly improves the equipment's versatility, breaking through the limitations of traditional customized equipment.

[0026] In some embodiments of this application, the finished product output device includes an output component and a sizing tray arranged in front of the output component. The processed sealing strip enters the output component, and the output component pushes the sealing strip into the sizing tray.

[0027] The neat and orderly arrangement of cut products simplifies the manual sorting process and improves the efficiency of material collection and the neatness of finished product stacking.

[0028] Based on common knowledge in the field, the above-described embodiments can be combined arbitrarily. Attached Figure Description

[0029] The present application will be described in further detail below with reference to the accompanying drawings and preferred embodiments. However, those skilled in the art will understand that these drawings are drawn only for the purpose of explaining the preferred embodiments and therefore should not be construed as limiting the scope of the present application. Furthermore, unless specifically indicated, the drawings are only schematic representations of the composition or structure of the described objects and may contain exaggerated depictions, and the drawings are not necessarily drawn to scale.

[0030] Figure 1 This is a schematic diagram of the structure of this application;

[0031] Figure 2 The traction device in this application;

[0032] Figure 3 The transmission device in this application;

[0033] Figure 4 This is a schematic diagram of the structure at the transfer track in this application;

[0034] Figure 5 This is a schematic diagram of the finished product output device in this application.

[0035] The specific explanations of the reference numerals in the attached drawings are as follows: 1. Machine base; 2. Transmission device; 3. Cutting device; 4. Finished product output device; 5. Conveyor track; 6. Mounting base plate; 7. Mounting slot; 8. Sealing strip to be processed; 9. Cutting tool; 10. Drilling tool set; 24. Outlet assembly; 25. Sorting tray; 29. ​​Traction device; 30. Material tray; 32. Base; 34. Pulley; 35. Inclined guide groove; 36. Reversing wheel set; 37. Upper pulley set; 38. Lower pulley set; 39. Mounting slide rail; 40. Downward cylinder; 41. Driving wheel; 42. Driven wheel; 43. Transmission belt; 45. Detection pressure roller; 46. Conveyor belt; 47. Chain. Detailed Implementation

[0036] The present application will now be described in detail with reference to the accompanying drawings.

[0037] To make the objectives, technical solutions, and advantages of this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the scope of this application.

[0038] Automated equipment integrating feeding, punching, cutting, and collecting, Example 1, such as... Figure 1As shown, the system includes a machine base 1, a traction device 29, a transmission device 2, a cutting device 3, and a finished product output device 4, all mounted on the machine base 1. A conveyor track 5 is installed on the machine base 1, with one end of the conveyor track 5 connecting to the transmission device 2 and the other end connecting to the finished product output device 4. This eliminates the redundant layout of traditional separate equipment, significantly reducing the production line's footprint. Simultaneously, the close integration of each process avoids waiting time for material transfer between devices, improving overall processing efficiency. The conveyor track 5 runs through the transmission device 2 to the finished product output device 4, and in conjunction with the coordinated control of the traction and transmission devices 2, it achieves fully automated transmission of the sealing strip from feeding to finished product. During the process, no manual adjustment of the material position is required, reducing labor costs and avoiding positioning errors caused by manual operation, ensuring processing consistency.

[0039] The cutting device 3 is detachably mounted on the conveyor track 5, allowing for quick replacement of dedicated modules according to the material, thickness, or cutting shape requirements of the sealing strip. This modular design enables a single device to be adapted to process multiple product specifications, breaking through the limitations of traditional customized equipment and significantly improving the equipment's versatility. The conveyor track 5 serves as a standardized interface, compatible with additional modules such as drilling and inspection units, further expanding the equipment's functionality through modular installation to meet process requirements and improve equipment utilization.

[0040] The sealing strip 8 to be processed is pulled onto the machine table 1 by the traction device 29. The sealing strip on the machine table 1 is then driven by the transmission device 2 through the cutting device 3 to the finished product output device 4. The transmission device 2 can precisely control the feeding speed and position of the sealing strip at the cutting station. By replacing manual feeding with mechanical transmission, and in conjunction with the fixed-point operation of the cutting device 3, millimeter-level processing accuracy can be achieved, effectively solving the problem of cumulative errors caused by multiple positioning in traditional step-by-step processing.

[0041] Example 2, as Figures 1 to 5 As shown, the traction device 29 is connected to the material tray 30 and the transmission device 2. The sealing strip 8 to be processed is coiled into a disc shape and placed on the material tray 30. One end of the sealing strip 8 to be processed is located at the edge of the material tray 30, and the other end is located at the center of the material tray 30. The material tray 30 is rotatable. The center drive and edge discharge design of the material tray 30, together with the traction device 29, guides the sealing strip to unfold spirally, avoiding the sealing strip from getting tangled. The traction device 29 optimizes the conveying path, reduces the bending stress of the material, and ensures that the sealing strip enters the processing stage flat.

[0042] A drive motor is installed at the center of the material tray 30, which is mounted on a base 32. The base 32 has multiple rollers evenly distributed circumferentially, and these rollers contact the material tray 30. The drive motor rotates the material tray 30. In actual operation, the drive motor can be designed to first reverse to loosen the sealing strip 8 to be processed, and then rotate forward to cooperate with the traction device 29 to transport the sealing strip 8. The reverse rotation of the drive motor controls the loosening of the material tray 30, which, combined with the support of the circumferential rollers, achieves a smooth and uniform release of the material. The low-friction design of the base 32 reduces rotational resistance, ensuring stable long-term continuous feeding and reducing the risk of material breakage and the frequency of manual intervention.

[0043] The traction device 29 includes a pulley 34, an inclined guide groove 35, and a reversing wheel assembly 36. The pulley 34 is located directly above the material tray 30 and diagonally above the transmission device 2. The reversing wheel assembly is correspondingly arranged on one side of the transmission device 2. One end of the sealing strip 8 to be processed passes around the pulley 34, through the guide groove, and around the reversing wheel assembly 36 to reach the transmission device 2. The traction device 29 guides the sealing strip to smoothly transition to the transmission device 2. The inclined guide groove 35 provides directional limiting, preventing side slippage or twisting during conveying and improving the reliability of the sealing strip conveying. The arrangement of the pulley 34, inclined guide groove 35, and reversing wheel assembly 36 optimizes the conveying path, reduces material bending stress, and ensures that the sealing strip enters the processing stage flat.

[0044] The transmission device 2 includes an upper pulley assembly 37 and a lower pulley assembly 38. A gap exists between the upper pulley assembly 37 and the lower pulley assembly 38 for the sealing strip 8 to be processed to pass through. The lower pulley assembly 38 is fixedly mounted on the machine base 1, and its plane is flush with the top surface of the reversing pulley assembly 36. This ensures that the sealing strip 8 to be processed can smoothly reach the lower pulley assembly 38 after passing around the reversing pulley assembly 36.

[0045] The transmission device 2 includes two mounting slide rails 39 on the left and right sides. The upper pulley assembly 37 is mounted on the two mounting slide rails 39. The upper pulley assembly 37 is connected to a downward cylinder 40. When the downward cylinder 40 operates, it drives the upper pulley assembly 37 to move up and down along the mounting slide rails 39 to adjust the distance between it and the lower pulley assembly 38. The distance between the upper and lower pulley assemblies 38 can be dynamically adjusted to accommodate sealing strips of different thicknesses.

[0046] Both the upper pulley assembly 37 and the lower pulley assembly 38 include a driving pulley 41, a driven pulley 42, and a transmission belt 43. The driving pulley 41 and the driven pulley 42 are located at opposite ends of the transmission belt 43. The driving pulley 41 is connected to a power drive component, which drives the driving pulley 41, the transmission belt 43, and the driven pulley 42 to rotate. The two driving pulleys 41 are located on the same vertical column, with the driving pulley 41 positioned away from the traction device 29. The two driven pulleys 42 are staggered left and right. A detection pressure roller 45 is provided on the side of the upper pulley assembly 37 closest to the traction device. The staggered layout and coaxial drive design of the upper and lower pulley assemblies 38 optimize power transmission efficiency. The driving pulley 41 being away from the traction side reduces transmission loss, and the staggered driven pulleys 42 improve friction and transmission stability, adapting to high-speed continuous processing.

[0047] The pressure roller 45 can monitor material tension in real time and adjust the pressure accordingly to prevent slippage, ensuring synchronous transmission and accurate processing position. The pressure roller 45 is further equipped to provide real-time feedback on the position and tension of the sealing strip, and adjust the speed and pressure of the drive belt 43 accordingly to dynamically compensate for material deformation or slippage. Intelligent closed-loop control improves processing stability and reduces scrap rate and equipment maintenance costs.

[0048] The conveyor track 5 includes a conveyor belt 46, on the upper surface of which are two chains 47 arranged one after the other with a spacing sufficient to accommodate the sealing strip 8 to be processed. The sealing strip 8 is located on the conveyor belt 46 and is limited by the two chains 47. The conveyor belt 46 will move the sealing strip 8. The conveyor belt 46, combined with the double chain 47 limiting structure, constrains the lateral displacement of the sealing strip; the spacing of the chains 47 is adjustable, compatible with the directional conveying of multiple product specifications, reducing manual correction operations, and improving the level of automation and processing consistency of the entire process.

[0049] The cutting device 3 includes a mounting base plate 6, which is detachably mounted on the conveyor rail 5. The mounting base plate 6 has an annular mounting slot 7. A cutting blade 9 is mounted on one side of the mounting base plate 6, and at least one punching blade assembly 10 is mounted on the other side. The punching blade assembly 10 is movably mounted on the mounting base plate 6 through the mounting slot 7, and the sealing strip 8 to be processed passes through the central axis of the mounting slot 7. The mounting slot 7 on the mounting base plate 6 allows for easy and convenient adjustment of the position of the punching blade assembly 10, quickly adapting to different sealing strip sizes and punching requirements. This design significantly improves the equipment's versatility, overcoming the limitations of traditional customized equipment.

[0050] The finished product output device 4 includes an output component 24 and a sizing tray 25 positioned in front of the output component 24. After processing, the sealing strip enters the output component 24, and the output component 24 pushes the sealing strip into the sizing tray 25. The sizing tray 25 neatly collects the cut products, simplifying the manual sorting process and improving material receiving efficiency and the neatness of finished product stacking.

[0051] The rest of the contents of Example 2 are the same as those of Example 1.

[0052] The present application has been described in detail above. Specific examples have been used to illustrate the principles and implementation methods of the present application. The descriptions of the embodiments above are only for the purpose of helping to understand the present application and its core ideas. It should be noted that those skilled in the art can make several improvements and modifications to the present application without departing from the principles of the present application, and these improvements and modifications also fall within the protection scope of the claims of the present application.

Claims

1. An automated equipment integrating feeding, punching, cutting, and collecting, characterized in that: The machine includes a machine base (1), a traction device (29), a transmission device (2), a cutting device (3), and a finished product output device (4), all of which are installed on the machine base (1). A conveyor track (5) is provided on the machine base (1). One end of the conveyor track (5) is connected to the transmission device (2), and the other end of the conveyor track (5) is connected to the finished product output device (4). The cutting device (3) is detachably installed on the conveyor track (5). The sealing strip (8) to be processed is pulled to the machine base (1) by the traction device (29). The sealing strip located on the machine base (1) is driven by the transmission device (2) through the cutting device (3) to reach the finished product output device (4).

2. The automated feeding, punching, cutting, and collecting machine according to claim 1, characterized in that, The traction device (29) is connected to the material tray (30) and the transmission device (2). The sealing strip (8) to be processed is coiled into a disc shape and placed on the material tray (30). One end of the sealing strip (8) to be processed is located at the edge of the material tray (30), and the other end of the sealing strip (8) to be processed is located at the center of the material tray (30). The material tray (30) can be rotatably set.

3. The automated feeding, punching, cutting, and collecting machine according to claim 2, characterized in that, A drive motor is installed at the center of the material tray (30). The material tray (30) is mounted on the base (32). The base (32) is provided with multiple rollers evenly distributed in the circumferential direction. The base (32) contacts the material tray (30) through the multiple rollers. The drive motor drives the material tray (30) to rotate.

4. The automated feeding, punching, cutting, and collecting machine according to claim 1, characterized in that, The traction device (29) includes a pulley (34), an inclined guide groove (35), and a reversing wheel group (36). The pulley (34) is located directly above the material tray (30) and obliquely above the transmission device (2). The reversing wheel group (36) is correspondingly arranged on one side of the transmission device (2). One end of the sealing strip (8) to be processed passes around the pulley (34), through the guide groove, and around the reversing wheel group (36) to reach the transmission device (2).

5. The automated feeding, punching, cutting, and collecting machine according to claim 1, characterized in that, The transmission device (2) includes an upper pulley group (37) and a lower pulley group (38). There is a gap between the upper pulley group (37) and the lower pulley group (38) for the sealing strip (8) to be processed to pass through. The lower pulley group (38) is fixedly installed on the machine base (1). The plane of the lower pulley group (38) is flush with the top surface of the reversing wheel group (36).

6. The automated feeding, punching, cutting, and collecting machine according to claim 5, characterized in that, The transmission device (2) includes two mounting slide rails (39) on the left and right. The upper pulley assembly (37) is mounted on the two mounting slide rails (39). The upper pulley assembly (37) is connected to the downward cylinder (40). The downward cylinder (40) drives the upper pulley assembly (37) to move up and down along the mounting slide rails (39) to adjust the distance between it and the lower pulley assembly (38).

7. The automated feeding, punching, cutting, and collecting machine according to claim 6, characterized in that, The upper pulley group (37) and the lower pulley group (38) both include a driving pulley (41), a driven pulley (42) and a transmission belt (43). The driving pulley (41) and the driven pulley (42) are located at the two ends of the transmission belt (43). The driving pulley (41) is connected to the power drive component. The power drive component drives the driving pulley (41), the transmission belt (43) and the driven pulley (42) to rotate. The two driving pulleys (41) are located on the same vertical column. The driving pulley (41) is located on the side away from the traction device (29). The two driven pulleys (42) are staggered to the left and right. The upper pulley group (37) is provided with a detection pressure roller (45) on the side close to the traction device.

8. The automated feeding, punching, cutting, and collecting machine according to claim 1, characterized in that, The conveyor track (5) includes a conveyor belt (46), and two chains (47) are provided on the upper surface of the conveyor belt (46). The two chains (47) are arranged in front and behind and have a gap to accommodate the sealing strip (8) to be processed. The sealing strip (8) to be processed is located on the conveyor belt (46) and is limited by the two chains (47).

9. The automated feeding, punching, cutting, and collecting machine according to claim 1, characterized in that, The cutting device (3) includes a mounting base plate (6), which is detachably mounted on the conveying track (5). The mounting base plate (6) is provided with a mounting slot (7) with a circular structure. A cutting tool (9) is mounted on one side of the mounting base plate (6), and at least one punching tool group (10) is mounted on the other side of the mounting base plate (6). The punching tool group (10) is movably mounted on the mounting base plate (6) through the mounting slot (7). The sealing strip (8) to be processed passes through the central axis of the mounting slot (7).

10. The automated feeding, punching, cutting, and collecting machine according to claim 1, characterized in that, The finished product output device (4) includes an output component (24) and a sizing plate (25) arranged in front of the output component (24). After processing, the sealing strip enters the output component (24), and the output component (24) pushes the sealing strip into the sizing plate (25).

Citation Information

Patent Citations

  • Sealing strip buckle kludge

    CN207026866U