Waste discharge structure of die-cutting machine

By introducing a waste discharge guide plate with a guide arc surface design into the die-cutting machine, and combining it with a translational sliding component and a rotating shaft, the problem of insufficient adjustability of the waste discharge structure in traditional die-cutting machines is solved, realizing smooth discharge of waste and flexible adjustment of its position, thereby improving production efficiency and product quality.

CN223802702UActive Publication Date: 2026-01-16HUIZHOU WEIXITE TECH CO LTD
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Patent Information

Application Number
CN202520134868.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-21
Publication Date
2026-01-16
Estimated Expiration
2035-01-21

AI Technical Summary

Technical Problem

Traditional die-cutting machines have poor adjustability in their waste removal structure, making it difficult to adapt to diverse production needs. This leads to instability in the waste removal process, affecting production efficiency and product quality.

Method used

The waste discharge guide plate, designed with a curved guide surface, combined with a sliding component and a rotating shaft, enables smooth discharge and position adjustment of waste materials, optimizes the waste discharge angle, and enhances versatility and applicability.

Benefits of technology

It improves the waste removal efficiency and stability of the die-cutting machine, extends the service life of the guide plate, reduces the risk of waste accumulation and blockage, and ensures the efficient operation of the die-cutting process.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model relates to a waste discharge structure of a die-cutting machine, which comprises a bearing table for bearing a material belt, a waste discharge guide plate arranged on the bearing table, a translation sliding part for driving the waste discharge guide plate to slide relative to the bearing table, and a rotating shaft for driving the waste discharge guide plate to rotate relative to the bearing table, and a guide arc surface is arranged on the edge of the waste discharge guide plate. According to the waste discharge structure of the die-cutting machine, the waste discharge guide plate reduces friction and collision of waste materials through the guide cambered surface, so that the waste materials are discharged smoothly, the service life of the waste discharge structure is prolonged, and the waste discharge stability is improved; the position can be flexibly adjusted, and different production requirements can be met; the waste discharging angle is optimized, the blocking risk is reduced, the waste discharging efficiency is improved, and efficient and stable operation of the die-cutting machine is guaranteed.
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Description

TECHNICAL FIELD

[0001] The utility model relates to the field of die cutting machine, specifically, especially relates to a die cutting machine's waste discharge structure. BACKGROUND

[0002] In the field of traditional die cutting machine, the waste discharge structure generally has the problem of poor adjustability. In the face of diversified production needs of different specifications of materials, the traditional waste discharge structure is not up to the task and is difficult to respond flexibly.

[0003] The waste discharge structure of some die cutting machines on the market currently has a certain degree of adjustment ability in the horizontal direction, but this adjustment ability does not fundamentally solve the stability problem in the waste discharge process. In the actual production process, these waste discharge structures are prone to deviation, which not only seriously affects the accuracy of waste discharge, but also greatly restricts production efficiency and product quality, causing many troubles to the production and operation of enterprises. UTILITY MODEL CONTENT

[0004] Therefore, the utility model provides a die cutting machine's waste discharge structure, the waste discharge guide plate reduces the friction collision of waste materials through the guide camber, makes the waste materials smoothly discharge, prolongs the life of itself, improves the waste discharge stability, which is connected with the bearing table through the translational sliding part, can flexibly adjust the position, adapts to different production needs, and can also rotate around the rotating shaft, optimizes the waste discharge angle, reduces the risk of blockage, improves the waste discharge efficiency, and guarantees the efficient and stable operation of the die cutting machine.

[0005] The utility model realizes the purpose through the following technical schemes:

[0006] A waste discharge structure of a die cutting machine, comprising a bearing table for bearing a material belt, a waste discharge guide plate arranged on the bearing table, a translational sliding part for driving the waste discharge guide plate to slide relative to the bearing table, and a rotating shaft for driving the waste discharge guide plate to rotate relative to the bearing table, the edge of the waste discharge guide plate is provided with a guide camber.

[0007] The waste discharge guide plate can guide the waste to be discharged smoothly, plan the discharge path of the waste, reduce the accumulation of the waste in the die-cutting area, prevent the waste from interfering with the subsequent die-cutting process, greatly improve the die-cutting efficiency and product quality, and the guide arc surface arranged at the edge of the waste discharge guide plate greatly improves the contact and sliding performance between the waste and the guide plate. The guide arc surface can make the waste naturally flow along the arc direction when contacting the guide plate, reducing the friction and collision between the waste and the guide plate, so that the waste is discharged more smoothly. This not only prolongs the service life of the waste discharge guide plate and reduces the wear caused by waste friction, but also further improves the smoothness and stability of the waste discharge, ensuring that the entire die-cutting machine operates efficiently and stably during the waste discharge process. The waste discharge guide plate is connected to the bearing table through the translational slide, which gives the waste discharge guide plate flexible translational ability. The operator can easily adjust the position of the waste discharge guide plate according to the size specifications of different material belts and the die-cutting process requirements, so that it better adapts to diversified production needs, significantly enhancing the versatility and applicability of the waste discharge structure. The rotating shaft allows the waste discharge guide plate to rotate relative to the bearing table, which plays an important role in processing material belts of complex shapes or special die-cutting processes. By rotating the waste discharge guide plate, the discharge angle of the waste can be optimized to ensure that the waste can leave the die-cutting area in the most smooth way, effectively reducing the risk of waste blockage and further improving the waste discharge efficiency.

[0008] Preferably, the waste discharge guide plate comprises a main body part and a slope part, the upper surface and the lower surface of the main body part are parallel, the upper surface and the lower surface of the slope part intersect at the guide arc surface, and the lower surface of the main body part and the lower surface of the slope part are in the same plane and can be tightly attached to the upper surface of the bearing table.

[0009] The parallel design of the upper and lower surfaces of the main body part provides a solid guarantee for the smooth conveying of the material belt on the bearing table. When the material belt moves through the main body part of the waste discharge guide plate on the bearing table, due to its flat and parallel surface characteristics, the material belt can maintain a stable posture and will not fluctuate or deviate due to the uneven surface of the guide plate. This is crucial to ensure die-cutting accuracy, as any small change in the position of the material belt can cause the die-cutting pattern to deviate from the expected result, thereby affecting product quality. This parallel surface design effectively avoids such problems, making the die-cutting process more accurate and reliable.

[0010] The design of the slope portion ingeniously solves the transition problem during the waste discharge process. The guide arc surface formed by the intersection of the upper and lower surfaces of the slope portion is like a well-designed flow channel. When the waste reaches the waste discharge guide plate, the guide arc surface can guide the waste to change direction in a very smooth way, so that it naturally slides down the slope. This design greatly reduces the jamming phenomenon of waste during the discharge process, ensuring that the waste can be continuously and quickly discharged. Compared with the traditional design of straight angle or harsh transition, the guide arc surface significantly reduces the impact force between the waste and the guide plate, not only prolonging the service life of the waste discharge guide plate, but also further improving the smoothness and stability of the waste discharge.

[0011] The lower surface of the main body portion and the lower surface of the slope portion are in the same plane and can closely fit the upper surface of the bearing table, which has multiple advantages. On the one hand, the closely fitting design ensures the sealing between the waste discharge guide plate and the bearing table, effectively preventing waste from leaking from the gap between the waste discharge guide plate and the bearing table, avoiding the accumulation of waste inside the equipment, thereby maintaining the cleanliness of the equipment interior and reducing potential failure risks caused by waste residue. On the other hand, this fitting method enhances the stability of the waste discharge guide plate on the bearing table. During the operation of the die-cutting machine, the transportation of the material belt and the discharge of the waste will generate certain vibrations and impact forces. The close fit between the waste discharge guide plate and the bearing table can better disperse these forces, ensuring that the waste discharge guide plate does not easily shake or shift during operation, and always maintaining its precise position and posture, providing strong support for stable and efficient waste discharge.

[0012] Preferably, the rotating shaft is rotatably connected with the translation slide, and the waste discharge guide plate is fixed to the rotating shaft and rotates synchronously with the rotating shaft.

[0013] The rotatable connection between the rotating shaft and the translation slide greatly improves the flexibility and coordination of the movement of the waste discharge guide plate. The translation slide can drive the waste discharge guide plate to adjust its position in a straight line along the bearing table, adjusting the waste discharge position to adapt to different die-cutting requirements of the material belt. The rotating shaft gives the waste discharge guide plate the ability to rotate, which means that the waste discharge guide plate can not only move in a plane, but also rotate around the rotating shaft. This composite motion allows the waste discharge guide plate to flexibly adjust its position and angle according to various complex die-cutting processes and waste discharge requirements. For example, when processing some irregularly shaped material belts, the waste discharge guide plate can be moved to the appropriate position by the translation slide, and then rotated to the optimal waste discharge angle by the rotating shaft, ensuring that the waste can be discharged from the die-cutting area in the most smooth and efficient path, greatly improving the success rate and efficiency of waste discharge.

[0014] Preferably, the translation sliding part comprises a first sliding seat and a second sliding seat rotatably connected with the rotating shaft, a first sliding rail slidably connected with the first sliding seat, and a second sliding rail slidably connected with the second sliding seat, wherein the first sliding rail and the second sliding rail are arranged in parallel on the bearing table.

[0015] The first sliding seat and the second sliding seat are rotatably connected with the rotating shaft, providing stable and flexible support for the rotating shaft. When the rotating shaft performs a rotating action, the first sliding seat and the second sliding seat can effectively share its weight and torque, ensuring the stability of the rotating process. At the same time, the rotatable connection of the two makes the rotating shaft receive less resistance during operation, smoothly driving the fixed waste guide plate to rotate at multiple angles, and accurately adjusting the angle of the waste guide plate to adapt to different waste discharge requirements. This feature is particularly critical when processing material belt die cutting with complex shapes or special process requirements, greatly improving the accuracy and efficiency of waste discharge.

[0016] The sliding connection design of the first sliding rail with the first sliding seat and the second sliding rail with the second sliding seat provides precise guidance for the translation movement of the waste guide plate. The first sliding rail and the second sliding rail are arranged in parallel on the bearing table, ensuring that the waste guide plate always maintains straight-line motion during translation and does not deviate or shake. This is crucial for ensuring the positioning accuracy of the waste guide plate. During the die cutting production process, different batches of material belts may differ in width, length, or die cutting patterns, and the waste guide plate needs to be accurately positioned according to the actual situation. Through the precise guidance of the first sliding rail and the second sliding rail, the operator can easily move the waste guide plate to the appropriate position, making it perfectly match the die cutting area of the material belt, thereby ensuring that the waste can be accurately discharged along the preset path, effectively avoiding problems such as waste jamming or incomplete waste discharge caused by position deviation of the waste guide plate.

[0017] The parallel arrangement of the first sliding rail and the second sliding rail also enhances the stability and carrying capacity of the entire translation sliding part. During the operation of the die cutting machine, the waste guide plate will be subjected to forces from material belt conveying, waste discharge, and its own movement. The first sliding rail and the second sliding rail jointly bear these forces and evenly distribute them to the bearing table, greatly reducing the stress burden on individual components. This not only prolongs the service life of the first sliding seat, the second sliding seat, and the sliding rails, but also ensures the stability of the entire waste discharge structure during long-term operation, reduces equipment failures caused by component fatigue or damage, and improves the continuity and reliability of production.

[0018] Preferably, the upper surface of the bearing table is excavated with a first groove and a second groove, the first sliding rail is arranged in the first groove, and the second sliding rail is arranged in the second groove, and the lower surface of the waste guide plate can be tightly attached to the upper surface of the bearing table.

[0019] The first groove and the second groove excavated on the upper surface of the waste guide plate can adjust the height of the waste guide plate, so that the lower surface of the waste guide plate can be tightly attached to the upper surface of the bearing table, thereby enhancing the stability of the waste guide plate during the working process. When the die-cutting machine is running at high speed, the conveying of the material belt and the discharge of the waste will generate vibration and impact force. The close attachment of the waste guide plate to the bearing table can effectively disperse these forces, prevent the waste guide plate from displacement or shaking due to vibration, and ensure that it always maintains accurate position and posture, thereby providing a solid guarantee for stable and efficient waste discharge.

[0020] Preferably, the first sliding seat is provided with a first through hole with variable aperture, and the aperture of the first through hole is adjusted by a first locking block to lock the rotating shaft. The second sliding seat is provided with a second through hole with variable aperture, and the aperture of the second through hole is adjusted by a second locking block to lock the rotating shaft.

[0021] The first through hole and the second through hole with variable aperture make it easier to install the rotating shaft, and the aperture is adjusted by the first locking block and the second locking block to lock the rotating shaft, thereby providing reliable and stable fixation for the rotating shaft.

[0022] Preferably, the upper surface of the waste guide plate is attached with an auxiliary adhesive.

[0023] The auxiliary adhesive can further enhance the connection stability of the waste guide plate and the surrounding components. During the operation of the die-cutting machine, the waste guide plate will be subjected to various forces generated by the conveying of the material belt, the discharge of the waste, and the movement of the waste guide plate itself. These forces may cause the waste guide plate to displace or shake. The auxiliary adhesive tightly connects the waste guide plate and the surrounding related components together through its own adhesion, effectively resisting these external forces, and ensuring that the waste guide plate always maintains accurate working position. This is crucial for ensuring the guiding function of the waste guide plate. Only when the waste guide plate is stable and immobile, can the waste be accurately guided along the predetermined path, thereby improving the accuracy and stability of waste discharge, and reducing problems such as waste jamming or incoherent waste discharge caused by the position change of the waste guide plate.

[0024] Preferably, the auxiliary adhesive is located on both sides of the waste guide plate.

[0025] The auxiliary adhesive pieces are arranged on both sides of the waste discharge guide plate, further optimizing its function and effect. The two sides of the waste discharge guide plate are areas that frequently contact the material belt and waste material, and are also the positions that are most susceptible to displacement or gap formation due to force. By arranging auxiliary adhesive pieces on both sides, the connection and sealing of these key positions can be targetedly strengthened. During the material belt conveying process, the auxiliary adhesive pieces on both sides of the waste discharge guide plate can better constrain the waste discharge guide plate, preventing it from moving due to the friction and drag force of the material belt, and ensuring that the waste discharge guide plate always maintains consistency with the movement direction of the material belt, thereby more accurately guiding the waste discharge.

[0026] Preferably, the auxiliary adhesive pieces are adhered to the upper surface of the slope portion and the upper surface of the bearing table.

[0027] The auxiliary adhesive pieces are adhered to the upper surface of the slope portion and the upper surface of the bearing table, enhancing the connection strength between the waste discharge guide plate and the bearing table.

[0028] The beneficial effects of the present utility model compared to the prior art are:

[0029] The waste discharge structure of the die-cutting machine can guide the waste to be discharged smoothly, plan the discharge path of the waste, reduce the accumulation of the waste in the die-cutting area, prevent the waste from interfering with the subsequent die-cutting process, greatly improve the die-cutting efficiency and product quality, and the guide arc surface arranged at the edge of the waste discharge guide plate greatly improves the contact and sliding performance between the waste and the guide plate. The guide arc surface can make the waste naturally flow along the arc direction when contacting the guide plate, reducing the friction and collision between the waste and the guide plate, thereby being discharged more smoothly. This not only prolongs the service life of the waste discharge guide plate and reduces wear caused by waste friction, but also further improves the smoothness and stability of the waste discharge, ensuring that the entire die-cutting machine operates efficiently and stably during the waste discharge process. The waste discharge guide plate and the bearing table are connected through a translational slide, giving the waste discharge guide plate flexible translational capability. The operator can easily adjust the position of the waste discharge guide plate according to the size specifications of different material belts and die-cutting process requirements, making it better adapt to diversified production needs and significantly enhancing the versatility and applicability of the waste discharge structure. The rotating shaft allows the waste discharge guide plate to rotate relative to the bearing table, playing an important role in processing complex-shaped material belts or special die-cutting processes. By rotating the waste discharge guide plate, the discharge angle of the waste can be optimized to ensure that the waste can leave the die-cutting area in the most smooth way, effectively reducing the risk of waste blockage and further improving the waste discharge efficiency. BRIEF DESCRIPTION OF DRAWINGS

[0030] To more clearly illustrate the technical solutions of the embodiments of this application, the accompanying drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this application and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.

[0031] Figure 1 This is a structural diagram of the waste discharge structure of a die-cutting machine according to an embodiment of the present invention.

[0032] Figure 2 This is a side view of the waste discharge structure of a die-cutting machine according to an embodiment of the present invention.

[0033] Figure 3 for Figure 2 A magnified view of region A in the middle. Detailed Implementation

[0034] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. The components of the embodiments of this application described and shown in the accompanying drawings can generally be arranged and designed in various different configurations.

[0035] Therefore, the following detailed description of the embodiments of this application provided in the accompanying drawings is not intended to limit the scope of the claimed application, but merely to illustrate selected embodiments of the application. All other embodiments obtained by those skilled in the art based on the embodiments of this application without inventive effort are within the scope of protection of this application.

[0036] It should be noted that similar reference numerals and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures. In the description of the embodiments of this application, it should be understood that the terms "upper," "lower," "left," "right," "vertical," "horizontal," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the figures, or the orientation or positional relationship commonly used when the product of this application is in use, or the orientation or positional relationship commonly understood by those skilled in the art. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.

[0037] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other.

[0038] The technical solutions in the application will be described below with reference to the drawings.

[0039] The embodiment provides a waste discharge structure of a die-cutting machine, which comprises a bearing table 100 for bearing a material belt, a waste discharge guide plate 200 arranged on the bearing table 100, a translation sliding part 300 for driving the waste discharge guide plate 200 to slide relative to the bearing table 100, and a rotating shaft 400 for driving the waste discharge guide plate 200 to rotate relative to the bearing table 100, and an edge of the waste discharge guide plate 200 is provided with a guide arc surface 201.

[0040] The waste discharge guide plate 200 can guide the waste to be discharged smoothly, plan the discharge path of the waste, reduce the accumulation of the waste in the die-cutting area, prevent the waste from interfering with the subsequent die-cutting process, greatly improve the die-cutting efficiency and product quality, and the guide arc surface 201 arranged at the edge of the waste discharge guide plate 200 greatly improves the contact and sliding performance between the waste and the guide plate. The guide arc surface 201 can make the waste naturally flow along the arc direction when contacting the guide plate, reduce the friction and collision between the waste and the guide plate, and thus be discharged more smoothly. This not only prolongs the service life of the waste discharge guide plate 200 and reduces the wear caused by the friction of the waste, but also further improves the smoothness and stability of the waste discharge, ensuring that the waste discharge process of the entire die-cutting machine runs efficiently and stably. The waste discharge guide plate 200 and the bearing table 100 are connected through the translation sliding part 300, which gives the waste discharge guide plate 200 flexible translation capability. The operator can easily adjust the position of the waste discharge guide plate 200 according to the size specifications of different material belts and the die-cutting process requirements, so that the waste discharge guide plate 200 can better adapt to diversified production needs, significantly enhancing the universality and applicability of the waste discharge structure. The rotating shaft 400 allows the waste discharge guide plate 200 to rotate relative to the bearing table 100, which plays an important role in processing material belts with complex shapes or special die-cutting processes. By rotating the waste discharge guide plate 200, the discharge angle of the waste can be optimized to ensure that the waste can leave the die-cutting area in the most smooth way, effectively reducing the risk of waste blockage and further improving the waste discharge efficiency.

[0041] In the embodiment, the waste discharge guide plate 200 comprises a main body part 210 and a slope part 220, the upper surface and the lower surface of the main body part 210 are parallel, the upper surface and the lower surface of the slope part 220 intersect at the guide arc surface 201, and the lower surface of the main body part 210 and the lower surface of the slope part 220 are on the same plane and can be tightly attached to the upper surface of the bearing table 100.

[0042] The parallel design of the upper and lower surfaces of the main body 210 provides a solid guarantee for the smooth conveying of the material belt on the bearing table 100. When the material belt moves through the main body 210 of the waste discharge guide plate 200 on the bearing table 100, due to its flat and parallel surface characteristics, the material belt can maintain a stable posture and will not fluctuate or deviate due to the unevenness of the guide plate surface. This is crucial for ensuring die-cutting accuracy, as any slight change in the position of the material belt can cause the die-cutting pattern to deviate from the expected result, thereby affecting product quality. This parallel surface design effectively avoids such problems, making the die-cutting process more accurate and reliable.

[0043] The design of the slope part 220 cleverly solves the transition problem during waste discharge. The guide arc surface 201 formed by the intersection of the upper and lower surfaces of the slope part 220 is like a well-designed flow channel. When the waste reaches the waste discharge guide plate 200, the guide arc surface 201 can guide the waste to change direction in a very smooth way, so that it naturally slides down the slope. This design greatly reduces the jamming phenomenon of waste during discharge, ensuring that waste can be continuously and quickly discharged. Compared with traditional designs with right angles or harsh transitions, the guide arc surface 201 significantly reduces the impact force between the waste and the guide plate, not only prolonging the service life of the waste discharge guide plate 200, but also further improving the smoothness and stability of waste discharge.

[0044] The lower surface of the main body 210 and the lower surface of the slope part 220 are in the same plane and can tightly fit with the upper surface of the bearing table 100, which has multiple advantages. On the one hand, the tightly fitting design ensures the sealing between the waste discharge guide plate 200 and the bearing table 100, effectively preventing waste from leaking from the gap between the waste discharge guide plate 200 and the bearing table 100, avoiding the accumulation of waste inside the equipment, thereby maintaining the cleanliness of the equipment and reducing potential malfunctions caused by waste residue. On the other hand, this fitting method enhances the stability of the waste discharge guide plate 200 on the bearing table 100. During the operation of the die-cutting machine, the conveying of the material belt and the discharge of the waste will produce certain vibrations and impact forces. The tight fitting of the waste discharge guide plate 200 and the bearing table 100 can better disperse these forces, ensuring that the waste discharge guide plate 200 does not easily shake or shift during work, and always maintains its precise position and posture, providing strong support for stable and efficient waste discharge.

[0045] In this embodiment, the rotating shaft 400 is rotationally connected with the translation slide 300, and the waste discharge guide plate 200 is fixed to the rotating shaft 400 and rotates synchronously with the rotating shaft 400.

[0046] The rotation connection between the rotation shaft 400 and the translation slider 300 greatly improves the flexibility and coordination of the movement of the waste guide plate 200. The translation slider 300 can drive the waste guide plate 200 to adjust its position in a straight line along the bearing table 100, and adjust the position of the waste to adapt to the die-cutting needs of different material belts. The rotation shaft 400 gives the waste guide plate 200 the ability to rotate on this basis, which means that the waste guide plate 200 can not only move in a plane, but also rotate around the rotation shaft 400. This compound movement allows the waste guide plate 200 to adjust its position and angle flexibly according to various complex die-cutting processes and waste discharge requirements. For example, when processing some irregularly shaped material belts, the waste guide plate 200 can be moved to the appropriate position by the translation slider 300, and then rotated to the best waste discharge angle by the rotation shaft 400, thereby ensuring that the waste can be discharged from the die-cutting area in the most smooth and efficient path, greatly improving the success rate and efficiency of waste discharge.

[0047] In this embodiment, the translation slider 300 includes a first sliding seat 310 and a second sliding seat 320 rotatably connected with the rotation shaft 400, a first sliding rail 330 slidably connected with the first sliding seat 310, and a second sliding rail 340 slidably connected with the second sliding seat 320. The first sliding rail 330 and the second sliding rail 340 are arranged in parallel on the bearing table 100.

[0048] The first sliding seat 310 and the second sliding seat 320 are rotatably connected with the rotation shaft 400, providing stable and flexible support for the rotation shaft 400. When the rotation shaft 400 rotates, the first sliding seat 310 and the second sliding seat 320 can effectively share its weight and torque, ensuring the stability of the rotation process. At the same time, the rotation connection between the two makes the rotation shaft 400 receive less resistance during operation, and can smoothly drive the fixed waste guide plate 200 to rotate at multiple angles, accurately adjusting the angle of the waste guide plate 200 to adapt to different waste discharge requirements. This feature is particularly critical when processing complex-shaped or special-process material belt die-cutting, greatly improving the accuracy and efficiency of waste discharge.

[0049] The sliding connection design of the first sliding rail 330 and the first sliding seat 310, and the second sliding rail 340 and the second sliding seat 320 provides precise guidance for the translational movement of the waste guide plate 200. The first sliding rail 330 and the second sliding rail 340 are arranged in parallel on the bearing table 100. This parallel layout ensures that the waste guide plate 200 always maintains straight-line motion during translation and cannot deviate or sway. This is crucial for ensuring the positioning accuracy of the waste guide plate 200. During the die-cutting production process, different batches of material belts may differ in width, length, or die-cutting patterns, and the waste guide plate 200 needs to be accurately positioned according to the actual situation. Through the precise guidance of the first sliding rail 330 and the second sliding rail 340, the operator can easily move the waste guide plate 200 to the appropriate position, making it perfectly match the die-cutting area of the material belt, thereby ensuring that the waste can be accurately discharged along the preset path, effectively avoiding problems such as waste jamming or incomplete waste discharge caused by the positional deviation of the waste guide plate 200.

[0050] The parallel arrangement of the first sliding rail 330 and the second sliding rail 340 also enhances the stability and carrying capacity of the entire translational slider 300. During the operation of the die-cutting machine, the waste guide plate 200 will be subjected to forces from material belt conveying, waste discharge, and its own movement. The first sliding rail 330 and the second sliding rail 340 jointly bear these forces and evenly distribute them to the bearing table 100, greatly reducing the stress burden on individual components. This not only prolongs the service life of the first sliding seat 310, the second sliding seat 320, and the sliding rails, but also ensures the stability of the entire waste discharge structure during long-term operation, reduces equipment failures caused by component fatigue or damage, and improves the continuity and reliability of production.

[0051] In this embodiment, the upper surface of the bearing table 100 is excavated with a first recess 110 and a second recess 120, the first sliding rail 330 is arranged in the first recess 110, and the second sliding rail 340 is arranged in the second recess 120. The lower surface of the waste guide plate 200 can be tightly attached to the upper surface of the bearing table 100.

[0052] The first recess 110 and the second recess 120 excavated on the upper surface of the bearing table 100 can adjust the height of the waste guide plate 200, so that the lower surface of the waste guide plate 200 can be tightly attached to the upper surface of the bearing table 100, enhancing the stability of the waste guide plate 200 during operation. When the die-cutting machine is running at high speed, the conveying of the material belt and the discharge of the waste will generate vibration and impact force. The close fit of the waste guide plate 200 and the bearing table 100 can effectively disperse these forces, prevent the waste guide plate 200 from shifting or swaying due to vibration, and ensure that it always maintains precise position and posture, providing a solid guarantee for stable and efficient waste discharge work.

[0053] In the embodiment, the first sliding seat 310 is provided with a first through hole 311 with variable aperture, and the aperture of the first through hole 311 is adjusted by the first locking block 410 to lock the rotating shaft 400. The second sliding seat 320 is provided with a second through hole with variable aperture, and the aperture of the second through hole is adjusted by the second locking block 420 to lock the rotating shaft 400.

[0054] The first through hole 311 and the second through hole with variable aperture make it easier to install the rotating shaft 400, and the aperture is adjusted by the first locking block 410 and the second locking block 420 to lock the rotating shaft 400, thereby providing reliable and stable fixation of the rotating shaft 400.

[0055] In the embodiment, the upper surface of the waste guide plate 200 is attached with an auxiliary adhesive member 500.

[0056] The auxiliary adhesive member 500 can further enhance the connection stability of the waste guide plate 200 and the surrounding components. During the operation of the die-cutting machine, the waste guide plate 200 will be subjected to various forces from the material belt conveying, waste discharge, and its own movement, which may cause the waste guide plate 200 to shift or sway. The auxiliary adhesive member 500 tightly connects the waste guide plate 200 with the surrounding related components through its own adhesion, effectively resisting these external forces and ensuring that the waste guide plate 200 always remains in the precise working position. This is crucial for ensuring the guiding function of the waste guide plate 200, and only when the waste guide plate 200 is stable and immobile can the waste be accurately guided along the predetermined path, thereby improving the accuracy and stability of waste discharge and reducing problems such as waste jamming or uneven waste discharge caused by the position change of the waste guide plate 200.

[0057] In the embodiment, the auxiliary adhesive member 500 is located on both sides of the waste guide plate 200.

[0058] By placing the auxiliary adhesive member 500 on both sides of the waste guide plate 200, its function and effect are further optimized. The two sides of the waste guide plate 200 are areas that frequently come into contact with the material belt and waste, and are also the most susceptible to displacement or gap formation due to force. By placing the auxiliary adhesive member 500 on both sides, the connection and sealing of these critical parts can be targetedly strengthened. During the material belt conveying process, the auxiliary adhesive member 500 on both sides of the waste guide plate 200 can better constrain the waste guide plate 200, preventing it from moving due to the friction and drag force of the material belt, and ensuring that the waste guide plate 200 always maintains consistency with the movement direction of the material belt, thereby more accurately guiding the waste discharge.

[0059] In the embodiment, the auxiliary adhesive member 500 is attached to the upper surface of the slope portion 220 and the upper surface of the bearing table 100.

[0060] The auxiliary bonding piece 500 is bonded with the upper surface of the slope part 220 and the upper surface of the bearing table 100, thereby enhancing the connection strength between the waste discharge guide plate 200 and the bearing table 100.

[0061] The end of the rotating shaft 400 is connected with a handle 430.

[0062] Although the embodiments of the present application have been shown and described, it is to be understood that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present application, and the scope of the present application is defined by the appended claims and their equivalents.

Claims

1. A waste removal structure of a die cutting machine, characterized by, The device comprises a bearing table for bearing a material belt, a waste discharge guide plate arranged on the bearing table, a translation slide for driving the waste discharge guide plate to slide relative to the bearing table, and a rotation shaft for driving the waste discharge guide plate to rotate relative to the bearing table, and the edge of the waste discharge guide plate is provided with a guide camber.

2. The waste removal structure of a die cutting machine according to claim 1, characterized in that, The waste discharge guide plate comprises a main body and a slope part, the upper surface and the lower surface of the main body are parallel, the upper surface and the lower surface of the slope part intersect at the guide camber, the lower surface of the main body and the lower surface of the slope part are in the same plane and can be tightly attached to the upper surface of the bearing table.

3. The waste removal structure of the die cutting machine according to claim 1, characterized in that, The rotation shaft is rotationally connected with the translation slide, the waste discharge guide plate is fixed on the rotation shaft and rotates synchronously with the rotation shaft.

4. The waste removal structure of the die cutting machine according to claim 1, characterized in that, The translation slide comprises a first slide seat and a second slide seat rotationally connected with the rotation shaft, a first slide rail slidingly connected with the first slide seat, and a second slide rail slidingly connected with the second slide seat, and the first slide rail and the second slide rail are arranged in parallel on the bearing table.

5. The waste removal structure of a die cutting machine according to claim 4, wherein The upper surface of the bearing table is provided with a first groove and a second groove, the first slide rail is arranged in the first groove, the second slide rail is arranged in the second groove, and the lower surface of the waste discharge guide plate can be tightly attached to the upper surface of the bearing table.

6. The waste removal structure of the die cutting machine according to claim 4, wherein, The first slide seat is provided with a first through hole with a variable aperture, and the aperture of the first through hole is adjusted by a first locking block to lock the rotation shaft.

7. The waste removal structure of the die cutting machine according to claim 4, wherein The second slide seat is provided with a second through hole with a variable aperture, and the aperture of the second through hole is adjusted by a second locking block to lock the rotation shaft.

8. The waste removal structure of a die cutting machine according to claim 1, characterized in that, The upper surface of the waste discharge guide plate is attached with an auxiliary adhesive.

9. The waste removal structure of a die cutting machine according to claim 8, characterized in that, The auxiliary adhesive is located on both sides of the waste discharge guide plate.

10. The waste removal structure of the die cutting machine according to claim 8, characterized in that, The auxiliary adhesive is adhered to the upper surface of the slope part and the upper surface of the bearing table.