Automatic magnet arranging device for honeycomb paperboard
Patent Information
- Application Number
- CN202522144655.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-11
- Publication Date
- 2026-09-18
- Estimated Expiration
- 2035-10-11
AI Technical Summary
[0002]蜂窝纸板,被广泛应用于纸包装、家具、建材等行业,蜂窝产品多元化已成为蜂窝行业发展的一个趋势,而目前,蜂窝纸板采用了不同的拼装封住方式,有涂胶、有内置磁铁磁扣实现等方式,对于内置磁铁磁扣的方式,为了提供生产效率,在装入蜂窝纸板之前需要排料排列,现阶段此类磁铁排料大多数采用人工手动排列,需要较多的人工在简易生产线上进行排列筛选,周期长,效率低,磁铁人工排料的速度赶不上蜂窝纸板在上料机上料的速度,导致生产物料效率不匹配的情况,因此,有必要提出一种蜂窝纸板自动排磁铁设备
[0012] The beneficial effects of this utility model are as follows: the reciprocating motion of the pushing cylinder drives the first pushing block to move within the first and second dropping troughs, pushing the magnets that have entered the first and second dropping troughs into the discharge trough. When the magnets entering the discharge trough are arranged sequentially under the action of the second pushing block driven by the discharge cylinder through the drive rod, they are ready to enter the next assembly process. This structure can solve the problem of manually arranging and screening magnets, ensuring that the magnets are neatly discharged before entering the assembly equipment. Most importantly, it matches the production efficiency of both the magnet material and the honeycomb panel material, shortening the cycle time of manual material discharge and improving the overall production efficiency of honeycomb panels, thereby increasing production capacity.
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Figure CN224767807U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of honeycomb paper core processing equipment, and in particular to an automatic magnet-arranging device for honeycomb paperboard. Background Technology
[0002] Honeycomb paperboard is widely used in industries such as paper packaging, furniture, and building materials. The diversification of honeycomb products has become a trend in the development of the honeycomb industry. At present, honeycomb paperboard adopts different assembly and sealing methods, such as gluing and built-in magnetic snap fasteners. For the built-in magnetic snap fastener method, in order to improve production efficiency, the materials need to be arranged before being loaded into the honeycomb paperboard. At present, most of these magnetic materials are arranged manually, which requires a lot of manpower to arrange and screen on simple production lines. The cycle is long and the efficiency is low. The speed of manual magnetic material arrangement cannot keep up with the speed of honeycomb paperboard feeding machine, resulting in a mismatch between production material efficiency and efficiency. Therefore, it is necessary to propose an automatic magnetic arrangement equipment for honeycomb paperboard. Utility Model Content
[0003] The purpose of this invention is to provide an automatic magnet-sorting device for honeycomb cardboard, so as to solve the problems mentioned in the background art.
[0004] To achieve the above objectives, this utility model provides the following technical solution: An automatic magnet-dispensing device for honeycomb cardboard includes a machine base and a machine frame. The machine base and the machine frame are fixedly connected by bolts. A first stop bar, a second stop bar, a third stop bar, and a fourth stop bar are arranged adjacently at equal intervals on the machine base. A first discharge chute, a discharge chute, and a second discharge chute are formed between the adjacent first stop bars, second stop bars, third stop bars, and fourth stop bars. A first push block is movably installed above the first stop bars and fourth stop bars at their outer adjacent positions via positioning blocks. The end of the first push block is provided with a first push block that is perpendicular to the first stop bars and fourth stop bars and movably reciprocates into the first discharge chute and the second discharge chute. Mounting seats for fixing the discharge mechanism are installed on the second stop bars and third stop bars.
[0005] As a further technical solution of this utility model, the discharge mechanism includes a discharge cylinder that is fixedly connected to the mounting base by bolts and suspended directly above the discharge trough, and a second push block that is driven and connected to one side of the power output end of the discharge cylinder by a drive rod. The second push block is located in the discharge trough and reciprocates under the drive of the discharge cylinder.
[0006] As a further technical solution of this utility model, the first and fourth stop bars are symmetrically equipped with material blocking blocks, and the material blocking blocks are provided with grooves below them for the first push block to reciprocate.
[0007] As a further technical solution of this utility model, a baffle plate is connected between the baffle limiting blocks symmetrically arranged on both sides. The lowermost end face of the baffle plate is in contact with the uppermost end face of the third and fourth baffle bars. A material outlet is opened on the side of the baffle plate near the discharge trough.
[0008] As a further technical solution of this utility model, the first, second, third and fourth stop bars are all provided with bolt holes at equal intervals for bolt connection, and the first, second, third and fourth stop bars are fixedly connected to the equipment base by bolts.
[0009] As a further technical solution of this utility model, a support is provided on one side of the machine base of the equipment, and a pushing cylinder connected to the first pushing block is provided on the support.
[0010] As a further technical solution of this utility model, the pushing cylinder pushes the first pushing block to move for a stroke equal to the width of the first and second dropping grooves.
[0011] As a further technical solution of this utility model, the bottom of the equipment frame is provided with L-shaped shock-absorbing feet.
[0012] The beneficial effects of this utility model are as follows: the reciprocating motion of the pushing cylinder drives the first pushing block to move within the first and second dropping troughs, pushing the magnets that have entered the first and second dropping troughs into the discharge trough. When the magnets entering the discharge trough are arranged sequentially under the action of the second pushing block driven by the discharge cylinder through the drive rod, they are ready to enter the next assembly process. This structure can solve the problem of manually arranging and screening magnets, ensuring that the magnets are neatly discharged before entering the assembly equipment. Most importantly, it matches the production efficiency of both the magnet material and the honeycomb panel material, shortening the cycle time of manual material discharge and improving the overall production efficiency of honeycomb panels, thereby increasing production capacity. Attached Figure Description
[0013] Figure 1 This is a schematic diagram of the structure of this utility model.
[0014] Figure 2 This is a schematic diagram of the equipment mechanism of this utility model.
[0015] Figure 3 This is a schematic diagram of the material discharge mechanism of this utility model.
[0016] The components include: 1. Equipment base; 2. Equipment frame; 3. L-shaped shock-absorbing foot; 4. First stop bar; 5. Second stop bar; 6. Third stop bar; 7. Fourth stop bar; 8. First material drop chute; 9. Discharge chute; 10. Second material drop chute; 11. Support; 12. Pushing cylinder; 13. Positioning block; 14. Discharge cylinder; 15. First push block; 16. Mounting base; 17. Drive rod; 18. Second push block; 19. Baffle plate; 20. Material passage; 21. Baffle limit block; 22. Screw hole; 23. First push bar; 24. Groove. Detailed Implementation
[0017] The embodiments of this utility model will now be described in conjunction with the accompanying drawings and preferred embodiments.
[0018] Please see Figure 1 — Figure 3As shown, an automatic magnet-removing device for honeycomb cardboard includes a machine base 1 and a machine frame 2. The machine base 1 and the machine frame 2 are fixedly connected by bolts. A first stop bar 4, a second stop bar 5, a third stop bar 6, and a fourth stop bar 7 are arranged adjacently at equal intervals on the machine base 1. A first discharge chute 8, a discharge chute 9, and a second discharge chute 10 are formed sequentially between the adjacent first stop bars 4, 2, 5, 3, 6, and 4. A first push block 15 is movably installed above the first stop bars 4, 2, 5, 3, 6, and 7 via a positioning block 13 at the outer adjacent locations of the first stop bars 4 and 4. The end of block 15 is provided with a first pusher 23 that is perpendicular to the first stop bar 4 and the fourth stop bar 7 and reciprocates into the first discharge trough 8 and the second discharge trough 10. Mounting seats 16 for fixing the discharge mechanism are installed on the second stop bar 5 and the third stop bar 6. The discharge mechanism includes a discharge cylinder 14 fixed to the mounting seat 16 by bolts and suspended directly above the discharge trough 9, and a second pusher 18 driven by a drive rod 17 to one side of the power output end of the discharge cylinder 14. The second pusher 18 is located in the discharge trough 9 and reciprocates under the drive of the discharge cylinder 14. The first stop bar 4 and the fourth stop bar 7 are both... The equipment is equipped with a material stop block 21. A groove 24 is provided below the material stop block 21 to allow the first push bar 23 to reciprocate. A baffle plate 19 is symmetrically arranged on both sides of the material stop block 21 and connected between them. The lowermost end face of the baffle plate 19 contacts the uppermost end face of the third baffle bar 6 and the fourth baffle bar 7. A material outlet 20 is provided on the side of the baffle plate 19 near the discharge trough 9. During equipment operation, the worker places magnets into the first discharge trough 8, the discharge trough 9, and the second discharge trough 10 formed by the first baffle bar 4, the second baffle bar 5, the third baffle bar 6, and the fourth baffle bar 7, and then activates the discharge cylinder 14 and the push cylinder 12. The reciprocating motion of the push cylinder 12... The first pusher 15 moves within the first and second material discharge troughs 8 and 10, pushing the magnets that have entered the first and second material discharge troughs 8 and 10 into the discharge trough 9. The magnets in the discharge trough 9 are then arranged sequentially by the second pusher 18 driven by the discharge cylinder 14 via the drive rod 17, awaiting entry into the next assembly process. This structure solves the previous problem of manually arranging and screening magnets, ensuring neat discharge before they enter the assembly equipment. Most importantly, it matches the production efficiency of both the magnet material and the honeycomb panel material, shortening the manual material discharge cycle time and improving the overall production efficiency of the honeycomb panels, thereby increasing production capacity.
[0019] Furthermore, the first stop bar 4, the second stop bar 5, the third stop bar 6, and the fourth stop bar 7 are all provided with bolt holes 22 at equal intervals for bolt connection. The first stop bar 4, the second stop bar 5, the third stop bar 6, and the fourth stop bar 7 are fixedly connected to the equipment base 1 by bolts. The first stop bar 4, the second stop bar 5, the third stop bar 6, and the fourth stop bar 7 are tightly fixed to the equipment base 1, preventing loosening under the long-term action of the pushing cylinder 12 and the discharging cylinder 14, and reducing the occurrence of machine downtime for maintenance.
[0020] Preferably, a support 11 is provided on one side of the equipment platform 1, and a pushing cylinder 12 connected to the first pushing block 15 is provided on the support 11. The pushing cylinder 12 pushes the first pushing block 15 to move at a distance equal to the width of the first dropping groove 8 and the second dropping groove 10, ensuring uniform movement distance. This allows the first pushing block 15 to push the magnets in the first dropping groove 8 and the second dropping groove 10 into the discharge groove 9 without interfering with the first stop bar 4, the second stop bar 5, the third stop bar 6 and the fourth stop bar 7, and without causing collisions with the equipment.
[0021] Furthermore, the bottom of the equipment frame 2 is provided with L-shaped shock-absorbing feet 3. The L-shaped shock-absorbing feet 3 can significantly reduce the vibration of the equipment frame 2 caused by the movement of the discharge cylinder 14 and the push cylinder 12, thereby improving the stability of the equipment.
[0022] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of this invention is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of equivalents of the claims be included within this invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
[0023] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. An automatic magnet-sorting device for honeycomb cardboard, comprising a machine base (1) and a machine frame (2), wherein the machine base (1) and the machine frame (2) are fixedly connected by bolts, and a first stop bar (4), a second stop bar (5), a third stop bar (6) and a fourth stop bar (7) are arranged adjacent to each other at equal intervals on the machine base (1), characterized in that, The first stop bar (4), the second stop bar (5), the third stop bar (6) and the fourth stop bar (7) are arranged at equal intervals to form a first material drop trough (8), a discharge trough (9) and a second material drop trough (10). The first stop bar (4) and the fourth stop bar (7) are movably installed on the outer side of the first stop bar (4) and the fourth stop bar (7) by a positioning block (13) and a first push block (15) is suspended above the first stop bar (4), the second stop bar (5), the third stop bar (6) and the fourth stop bar (7). The end of the first push block (15) is provided with a first push strip (23) that is perpendicular to the first stop bar (4) and the fourth stop bar (7) and moves back and forth into the first material drop trough (8) and the second material drop trough (10). The second stop bar (5) and the third stop bar (6) are equipped with mounting seats (16) for fixing the discharge mechanism.
2. An apparatus for automatically aligning magnets with honeycomb paperboard according to claim 1, wherein The discharge mechanism includes a discharge cylinder (14) that is fixedly connected to the mounting base (16) by bolts and suspended directly above the discharge trough (9), and a second push block (18) that is driven and connected to one side of the power output end of the discharge cylinder (14) by a drive rod (17). The second push block (18) is located in the discharge trough (9) and reciprocates under the drive of the discharge cylinder (14).
3. The automatic magnet-sorting device for honeycomb paperboard according to claim 1, characterized in that, Both the first stop bar (4) and the fourth stop bar (7) are symmetrically equipped with material blocking blocks (21), and a groove (24) is provided below the material blocking block (21) for the first push bar (23) to reciprocate.
4. An apparatus for automatically aligning magnets with honeycomb paperboard as set forth in claim 3, wherein, A baffle plate (19) is connected between the baffle limit blocks (21) symmetrically arranged on both sides. The bottom end face of the baffle plate (19) is in contact with the top end face of the third baffle (6) and the fourth baffle (7). A material outlet (20) is opened on the side of the baffle plate (19) near the discharge groove (9).
5. An apparatus for automatically aligning magnets with honeycomb paperboard as set forth in claim 1, wherein, The first stop bar (4), the second stop bar (5), the third stop bar (6) and the fourth stop bar (7) are provided with bolt holes (22) at equal intervals for bolt connection. The first stop bar (4), the second stop bar (5), the third stop bar (6) and the fourth stop bar (7) are fixedly connected to the equipment base (1) by bolts.
6. An apparatus for automatically aligning magnets with honeycomb paperboard as set forth in claim 1, wherein, A support (11) is provided on one side of the equipment base (1), and a pusher cylinder (12) connected to the first pusher block (15) is provided on the support (11).
7. An apparatus for automatically aligning magnets with honeycomb paperboard as set forth in claim 6, wherein, The pusher cylinder (12) pushes the first pusher block (15) to move for a stroke equal to the width of the first drop trough (8) and the second drop trough (10).
8. An apparatus for automatically aligning magnets with honeycomb paperboard as set forth in claim 1, wherein, The bottom of the equipment frame (2) is provided with L-shaped shock-absorbing feet (3).