Corrugated paper processing and cutting device
The cutting device, which uses a combination of longitudinal and transverse movement mechanisms, solves the problems of waste chip splashing and glass plate smudging during cutting, achieving clean cutting and efficient operation.
Patent Information
- Application Number
- CN202422809370.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-18
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2034-11-18
AI Technical Summary
The flying debris during cutting causes environmental pollution and affects the cutting progress. In addition, the existing equipment requires a glass plate to be sealed, which affects the efficiency of observation and operation.
The system employs a longitudinal and transverse movement mechanism in conjunction with a linkage component to drive the cutting head and the suction nozzle to move synchronously, ensuring that the suction nozzle is always directly below the cutting head to directly suck up waste chips, eliminating the need for a glass plate enclosure.
It effectively reduces waste splashing, keeps corrugated cardboard clean, simplifies the operation process, reduces costs, and improves cutting efficiency.
Smart Images

Figure CN223493405U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of corrugated paper processing technology, and more specifically, to a corrugated paper processing and cutting device. Background Technology
[0002] Corrugated cardboard requires a cutting machine to cut it into specific shapes for assembly. The waste generated during cutting can splash into the external environment, causing pollution, and fall on the cutting path, affecting the cutting progress.
[0003] In response, Chinese patent application number CN202322625991.X discloses a cutting device for corrugated cardboard box processing. This solution mainly uses a dust box to collect the waste generated during cutting, so as to avoid polluting the environment or affecting the cutting progress of the machine. By setting an openable glass plate to isolate and protect the cutting environment for workers, the waste can be prevented from splashing out and can quickly and centrally fall into the dust box below for recycling.
[0004] However, in the process of implementing the technical solutions in the embodiments of this application, the inventors of this utility model discovered that the above-mentioned technology has at least the following technical problems:
[0005] 1. During cutting, shavings will fly everywhere, and the dust box is located under the tabletop, relying on gravity to collect the shavings. Shavings will also accumulate on the corrugated cardboard.
[0006] 2. Using a glass plate to enclose the cutting area affects the observation of the cut, and the glass plate also needs to be operated when loading and unloading corrugated cardboard, which affects efficiency. Utility Model Content
[0007] To overcome the above deficiencies, this application provides a corrugated paper processing and cutting device, which aims to improve the problems mentioned in the background art.
[0008] This application provides a corrugated paper processing and cutting device, including a platform. A longitudinal movement mechanism is provided on the platform, and a transverse movement mechanism A and a transverse movement mechanism B are provided on the longitudinal movement mechanism. The transverse movement mechanism A and the transverse movement mechanism B are respectively located on the upper and lower surfaces of the platform. A rotating cutting head is provided on the transverse movement mechanism A. The platform is hollow. An air suction nozzle is provided on the transverse movement mechanism B. A linkage is provided between the transverse movement mechanism A and the transverse movement mechanism B. The opening of the air suction nozzle slides and fits against the lower surface of the platform. The opening area of the air suction nozzle is larger than the cutting area of the cutting head.
[0009] In one specific implementation, the longitudinal movement mechanism includes a guide rail and a screw. The guide rail is fixedly connected to the platform, the screw is rotatably connected to the platform, a longitudinal movement motor is connected to the upper shaft of the screw, and a slide is threaded onto the screw.
[0010] In the above process, the longitudinal motor drives the screw to rotate, which in turn drives the slide to move along the guide rail, thereby achieving displacement in the longitudinal direction.
[0011] In one specific implementation, the traversing mechanism A includes an electric lifting rod and a crossbeam A, the electric lifting rod being mounted on the slide block, and the crossbeam A being mounted on the lifting end of the electric lifting rod.
[0012] In one specific implementation, a lead screw A is rotatably connected to the crossbeam A, a transverse motor is mounted on the crossbeam A, the output end of the transverse motor is connected to the shaft of the lead screw A, a mounting seat A is slidably connected to the crossbeam A, the mounting seat A is threadedly connected to the lead screw A, and the cutting head is mounted on the mounting seat A.
[0013] In the above implementation process, the electric lifting rod is used to control the height of the cutting head, the transverse motor drives the lead screw A to rotate, and then drives the mounting base A to move laterally. Combined with the longitudinal movement mechanism, the cutting head can move freely within the platform range. In this embodiment, the cutting head uses a slender straight-blade milling cutter to cut the corrugated cardboard at high speed. The cutting surface is small and easily covered by the air suction nozzle. Moreover, this thin blade does not easily disturb the corrugated cardboard, so that the corrugated cardboard can remain stationary when placed flat on the platform.
[0014] In one specific implementation, the transverse mechanism B includes a crossbeam B and a lead screw B. The crossbeam B is fixedly connected to the slide block, the lead screw B is rotatably connected to the crossbeam B, a mounting seat B is slidably connected to the crossbeam B, the mounting seat B is threadedly connected to the lead screw B, and the suction nozzle is mounted on the mounting seat B.
[0015] In the above process, the rotation of the lead screw B causes the mounting base B to move laterally, and at the same time the longitudinal movement mechanism also moves the crossbeam B longitudinally, so that the air intake can move longitudinally synchronously with the cutting head.
[0016] In one specific implementation, the linkage includes gear A and gear B, with one gear A fixedly connected to each of the lead screw A and the lead screw B, and each gear A meshing with one gear B, and the two gears B being axially connected.
[0017] In one specific implementation, the linkage further includes a prism rod and a prism sleeve, the prism rod and the prism sleeve being movably connected, and a gear B being fixedly connected to the outer ends of the prism rod and the prism sleeve respectively. The prism rod is rotatably connected to the crossbeam A, and the prism sleeve is rotatably connected to the crossbeam B.
[0018] In the above process, the rotation of lead screw A is transmitted synchronously to lead screw B through the meshing of gear A and gear B and the shaft connection between the rib and the sleeve, thereby driving the mounting base B to move synchronously, so that the suction nozzle can move synchronously laterally with the cutting head.
[0019] In one specific implementation, the opening of the air intake is a flared mouth, and the lower end of the air intake is provided with an interface.
[0020] In the above process, the flared mouth is used to expand the suction area, completely covering the cutting area, and can also generate negative pressure adsorption on the corrugated cardboard near the cutting area, which helps to fix the corrugated cardboard on the platform. The connector is connected to an external vacuum cleaner through a hose.
[0021] Compared with the prior art, the beneficial effects of this application are: the longitudinal movement mechanism drives the cutting head and the suction nozzle to move longitudinally in sync, and the transverse movement mechanism B moves transversely in sync with the transverse movement mechanism A through the linkage, so that the suction nozzle is always directly below the cutting head, directly sucking away the waste generated by cutting, effectively reducing the splashing of debris, keeping the corrugated cardboard clean, and eliminating the need to set up a glass plate, reducing costs and simplifying operation. Attached Figure Description
[0022] To more clearly illustrate the technical solutions of the embodiments of this application, the 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 from these drawings without creative effort.
[0023] Figure 1 This is a first-view schematic diagram of the corrugated paper processing and cutting device provided in the embodiments of this application;
[0024] Figure 2 A second-view schematic diagram of the corrugated paper processing and cutting apparatus provided for an embodiment of this application;
[0025] Figure 3 A schematic diagram showing the connection relationship between lead screw A and lead screw B and the linkage component provided in the embodiments of this application.
[0026] In the diagram: 10-Platform; 20-Longitudinal movement mechanism; 21-Guide rail; 22-Screw; 23-Longitudinal movement motor; 24-Slide; 30-Transverse movement mechanism A; 31-Electric lifting rod; 32-Crossbeam A; 33-Lead screw A; 34-Transverse movement motor; 35-Mounting seat A; 40-Transverse movement mechanism B; 41-Crossbeam B; 42-Lead screw B; 43-Mounting seat B; 50-Cutting head; 60-Linkage component; 61-Gear A; 62-Gear B; 63-Rib; 64-Rib sleeve; 70-Suction nozzle. Detailed Implementation
[0027] The technical solutions in the embodiments of this application will now be described with reference to the accompanying drawings.
[0028] Please see Figures 1-3 This application provides a corrugated paper processing and cutting device, including a platform 10, a longitudinal movement mechanism 20, a transverse movement mechanism A30 and a transverse movement mechanism B40, which are respectively located on the upper and lower surfaces of the platform 10. A rotating cutting head 50 is provided on the transverse movement mechanism A30. The platform 10 is hollow. An air suction nozzle 70 is provided on the transverse movement mechanism B40. A linkage 60 is provided between the transverse movement mechanism A30 and the transverse movement mechanism B40. The opening of the air suction nozzle 70 slides and fits against the lower surface of the platform 10. The opening area of the air suction nozzle 70 is larger than the cutting area of the cutting head 50. The longitudinal movement mechanism 20 drives the cutting head 50 and the suction nozzle 70 to move longitudinally in sync. The transverse movement mechanism B40 moves transversely in sync with the transverse movement mechanism A30 through the linkage 60, so that the suction nozzle 70 is always directly below the cutting head 50, directly sucking away the waste generated by cutting. This effectively reduces the splashing of debris, keeps the corrugated cardboard clean, and eliminates the need for a glass plate, reducing costs and simplifying operation.
[0029] Please see Figures 1-3 The longitudinal movement mechanism 20 includes a guide rail 21 and a screw 22. The guide rail 21 is fixedly connected to the platform 10, and the screw 22 is rotatably connected to the platform 10. A longitudinal movement motor 23 is shaft-connected to the screw 22, and a slide 24 is threaded onto the screw 22. The longitudinal movement motor 23 drives the screw 22 to rotate, which in turn drives the slide 24 to move along the guide rail 21, thereby achieving longitudinal displacement.
[0030] Please see Figures 1-3The transverse mechanism A30 includes an electric lifting rod 31 and a crossbeam A32. The electric lifting rod 31 is mounted on a slide block 24, and the crossbeam A32 is mounted on the lifting end of the electric lifting rod 31. A lead screw A33 is rotatably connected to the crossbeam A32, and a transverse motor 34 is mounted on the crossbeam A32. The output end of the transverse motor 34 is connected to the shaft of the lead screw A33. A mounting base A35 is slidably connected to the crossbeam A32, and the mounting base A35 is threadedly connected to the lead screw A33. The cutting head 50 is mounted on the mounting base A35. The electric lifting rod 31 is used to control the height of the cutting head 50. The transverse motor 34 drives the lead screw A33 to rotate, which in turn drives the mounting base A35 to move laterally. Combined with the longitudinal movement mechanism 20, the cutting head 50 can move freely within the platform 10. In this embodiment, the cutting head 50 uses a slender straight-blade milling cutter to cut the corrugated cardboard at high speed. The cut surface is small and easily covered by the suction nozzle 70. Moreover, this thin blade does not easily disturb the corrugated cardboard, so that the corrugated cardboard can remain stationary when placed flat on the platform 10.
[0031] Please see Figures 1-3 The transverse movement mechanism B40 includes a crossbeam B41 and a lead screw B42. The crossbeam B41 is fixedly connected to the slide block 24, and the lead screw B42 is rotatably connected to the crossbeam B41. A mounting base B43 is slidably connected to the crossbeam B41, and the mounting base B43 is threadedly connected to the lead screw B42. The suction nozzle 70 is mounted on the mounting base B43. The rotation of the lead screw B42 drives the mounting base B43 to move laterally, and at the same time, the longitudinal movement mechanism 20 also moves the crossbeam B41 longitudinally, so that the suction nozzle 70 can move longitudinally synchronously with the cutting head 50.
[0032] Please see Figures 1-3 The linkage 60 includes gears A61 and B62. Gear A61 is fixedly connected to lead screws A33 and B42 respectively, and each gear A61 meshes with a gear B62. The two gears B62 are axially connected. The linkage 60 also includes a prism rod 63 and a prism sleeve 64. The prism rod 63 and prism sleeve 64 are movably connected, and a gear B62 is fixedly connected to the outer end of each. The prism rod 63 is rotatably connected to the crossbeam A32, and the prism sleeve 64 is rotatably connected to the crossbeam B41. The rotation of lead screw A33 is synchronously transmitted to lead screw B42 through the meshing of gears A61 and B62 and the axial connection between prism rod 63 and prism sleeve 64, thereby driving the mounting base B43 to move synchronously laterally. This allows the suction nozzle 70 to move laterally synchronously with the cutting head 50. The prism rod 63 and prism sleeve 64 maintain the axial connection under the action of the electric lifting rod 31.
[0033] Please see Figures 1-3The suction nozzle 70 has a flared opening and an interface at its lower end. The flared opening is used to expand the suction area, completely covering the cutting area, and can also generate negative pressure to adsorb the corrugated cardboard near the cutting area, which helps to fix the corrugated cardboard on the platform 10. The connector is connected to an external vacuum cleaner via a hose.
[0034] The working principle of this corrugated paper processing and cutting device is as follows: The suction nozzle 70 and the cutting head 50, driven by the transverse movement mechanism A30 and the longitudinal movement mechanism 20, cut the corrugated cardboard within the platform 10. Simultaneously, the rotation of the lead screw A33 is transmitted synchronously to the lead screw B42 through the meshing of gear A61 and gear B62 and the shaft connection between the rib rod 63 and the rib sleeve 64. This drives the mounting base B43 to move synchronously laterally, allowing the suction nozzle 70 to move laterally synchronously with the cutting head 50. The air nozzle 70 is always positioned below the cutting position of the cutting head 50, directly sucking away the waste and preventing it from splashing. In summary, the longitudinal movement mechanism 20 drives the cutting head 50 and the air nozzle 70 to move longitudinally in sync, while the transverse movement mechanism B40 moves transversely in sync with the transverse movement mechanism A30 via the linkage 60. This ensures that the air nozzle 70 is always directly below the cutting head 50, directly sucking away the waste generated during cutting. This effectively reduces the splashing of debris, keeps the corrugated cardboard clean, eliminates the need for a glass plate, reduces costs, and simplifies operation.
[0035] The above are merely embodiments of this application and are not intended to limit the scope of protection of this application. Various modifications and variations can be made to this application by those skilled in the art. Any modifications, improvements, or equivalent substitutions made within the spirit and principles of this application should be included within the scope of protection of this application. 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.
Claims
1. A corrugated paper processing and cutting device, characterized in that, The system includes a platform (10), on which a longitudinal movement mechanism (20) is provided. The longitudinal movement mechanism (20) is provided with a transverse movement mechanism A (30) and a transverse movement mechanism B (40). The transverse movement mechanism A (30) and the transverse movement mechanism B (40) are located on the upper and lower surfaces of the platform (10), respectively. A rotating cutting head (50) is provided on the transverse movement mechanism A (30). The platform (10) is hollow. An air suction nozzle (70) is provided on the transverse movement mechanism B (40). A linkage component (60) is provided between the transverse movement mechanism A (30) and the transverse movement mechanism B (40). The opening of the air suction nozzle (70) slides and fits against the lower surface of the platform (10). The opening area of the air suction nozzle (70) is larger than the cutting area of the cutting head (50).
2. The corrugated paper processing and cutting device according to claim 1, characterized in that, The longitudinal movement mechanism (20) includes a guide rail (21) and a screw (22). The guide rail (21) is fixedly connected to the platform (10), and the screw (22) is rotatably connected to the platform (10). A longitudinal movement motor (23) is shaft-connected to the screw (22), and a slide block (24) is threaded onto the screw (22).
3. The corrugated paper processing and cutting device according to claim 2, characterized in that, The transverse mechanism A (30) includes an electric lifting rod (31) and a crossbeam A (32). The electric lifting rod (31) is mounted on the slide (24), and the crossbeam A (32) is mounted on the lifting end of the electric lifting rod (31).
4. The corrugated paper processing and cutting device according to claim 3, characterized in that, A lead screw A (33) is rotatably connected to the crossbeam A (32), a transverse motor (34) is mounted on the crossbeam A (32), the output end of the transverse motor (34) is connected to the shaft of the lead screw A (33), a mounting seat A (35) is slidably connected to the crossbeam A (32), the mounting seat A (35) is threadedly connected to the lead screw A (33), and the cutting head (50) is mounted on the mounting seat A (35).
5. The corrugated paper processing and cutting device according to claim 4, characterized in that, The transverse mechanism B (40) includes a crossbeam B (41) and a lead screw B (42). The crossbeam B (41) is fixedly connected to the slide block (24), and the lead screw B (42) is rotatably connected to the crossbeam B (41). A mounting seat B (43) is slidably connected to the crossbeam B (41), and the mounting seat B (43) is threadedly connected to the lead screw B (42). The suction nozzle (70) is mounted on the mounting seat B (43).
6. The corrugated paper processing and cutting device according to claim 5, characterized in that, The linkage (60) includes gear A (61) and gear B (62). A gear A (61) is fixedly connected to each of the lead screw A (33) and the lead screw B (42). Each gear A (61) meshes with a gear B (62). The two gears B (62) are axially connected.
7. The corrugated paper processing and cutting device according to claim 6, characterized in that, The linkage (60) also includes a prism rod (63) and a prism sleeve (64). The prism rod (63) and the prism sleeve (64) are movably connected. The outer ends of the prism rod (63) and the prism sleeve (64) are respectively fixedly connected to a gear B (62). The prism rod (63) is rotatably connected to the crossbeam A (32), and the prism sleeve (64) is rotatably connected to the crossbeam B (41).
8. The corrugated paper processing and cutting device according to claim 7, characterized in that, The opening of the air intake (70) is a flared mouth, and the lower end of the air intake (70) is provided with an interface.
Citation Information
Patent Citations
Cutting device for corrugated carton processing
CN221113010U