Double-channel synchronous upward folding box pasting machine
By designing a correction and leveling mechanism in the gluing machine, the misalignment and offset problems of cardboard during processing are solved, achieving precise correction and leveling of the cardboard and improving processing quality and efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JIANGXI CHUANGSHENG PACKAGING MASCH CO LTD
- Filing Date
- 2025-05-23
- Publication Date
- 2026-04-21
AI Technical Summary
In existing carton gluing machines, the direct feeding of cardboard during production can easily cause misalignment and offset, leading to deviations in processing operations and affecting processing quality.
The design includes a correction mechanism and a leveling mechanism, comprising a correction component, a rotation adjustment component, a sliding control component, a leveling roller, and a drive motor. These components precisely correct and level the cardboard, ensuring that the cardboard does not easily deviate when entering the processing channel.
This improves the convenience and accuracy of cardboard correction during the gluing process, reduces errors, and enhances processing quality.
Smart Images

Figure CN224145484U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of box gluing machines, specifically relating to a dual-channel synchronous upward folding box gluing machine. Background Technology
[0002] The existing box gluing machine is the last step in packaging box processing. It folds and glues the printed and die-cut cardboard. The machine gluing replaces the manual gluing method. Moreover, the box gluing machine processes simultaneously through two channels, which doubles the capacity of a single channel, saves 20% of equipment purchase costs, reduces the number of operators, and reduces the footprint of the equipment. The main body of the box gluing machine is suitable for the dual-channel synchronous upward folding operation of standard cartons of size 10-13.
[0003] Existing gluing machines directly feed cardboard into the channel for processing. This direct feeding can easily cause misalignment of some cardboard pieces, resulting in misalignment and displacement. This displacement is difficult to correct, leading to processing errors and even reduced processing quality. Consequently, the gluing machine cannot easily correct cardboard misalignment during production. To address this issue, this invention proposes a dual-channel synchronous upward folding gluing machine. Utility Model Content
[0004] The purpose of this invention is to provide a dual-channel synchronous folding and gluing machine to solve the problem mentioned in the background art that when the cardboard is directly fed into the gluing machine during processing, some cardboard may be misaligned, resulting in misalignment and displacement after entry. This displacement is difficult to correct, thus causing deviations in the processing operation and even reducing the processing quality.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a dual-channel synchronous upward folding box gluing machine, comprising a box gluing machine body, the box gluing machine body including a main seat, the upper surface of the main seat being provided with two processing channels, and the two processing channels being symmetrically arranged, the interior of the processing channels being sequentially provided with a paper receiving mechanism, an upward folding mechanism and a gluing mechanism, a power distribution control cabinet being installed at one end of the front surface of the main seat, and the box gluing machine body also being provided with:
[0006] A correction mechanism, comprising a fixed mounting assembly disposed at the end of the processing channel on the upper surface of the main seat, a correction component disposed inside the fixed mounting assembly, a screw-in adjustment component disposed at the connection between the correction component and the fixed mounting assembly, and a sliding control component disposed on the upper surface of the correction component.
[0007] A leveling mechanism, comprising fixed connecting components disposed on both sides of one end of the upper surface of the main seat, wherein the interior of the two fixed connecting components is provided with leveling components on the upper surface of the main seat, and locking and reinforcing components are provided at the connection between the end of the leveling component and the end of the fixed connecting component.
[0008] Preferably, the fixed installation assembly includes two fixing plates two welded and fixed to the end of the processing channel located on the upper surface of the main seat, and the two fixing plates two are symmetrically arranged.
[0009] Preferably, the correction assembly includes a correction plate disposed on the inner side of the second fixed plate, and anti-friction guide rollers are rolled at equal intervals on the inner surface of the correction plate.
[0010] Preferably, the screw-in adjustment assembly includes an adjusting threaded rod that is threadedly connected inside the fixed plate two. One end of the adjusting threaded rod is welded and fixed with a handwheel, and the other end of the adjusting threaded rod is connected to the outer side of the correction plate through a bearing.
[0011] Preferably, the sliding control assembly includes a control hollow plate welded and fixed to the top of the second fixed plate, and a support slide rod is slidably mounted inside the control hollow plate. The end of the support slide rod is fixed to the upper surface of the correction plate by welding.
[0012] Preferably, the fixed connection assembly includes a first fixed plate welded and fixed to one side of the second fixed plate located at one end of the upper surface of the main seat, and the first fixed plate has a sliding groove inside.
[0013] Preferably, the leveling assembly includes a mounting frame disposed at a connection between two fixed plates, a leveling roller rotating inside the mounting frame, and a drive motor mounted inside one end of the leveling roller located at one end of the mounting frame.
[0014] Preferably, the locking and reinforcing assembly includes a fixed threaded rod welded to both ends of the mounting bracket, the fixed threaded rod passing through the slide groove, and the end of the fixed threaded rod having a fixed nut threadedly rotated on the surface of the fixing plate.
[0015] Compared with the prior art, the beneficial effects of this utility model are:
[0016] By designing a correction mechanism, the correction plate can be easily and stably supported and adjusted to the correction position before use. When the cardboard continues to drive in after leveling, it is directly positioned at the connection between the two correction plates for correction. When the cardboard touches the inner surface of the correction plate, it is less likely to experience friction and obstruction when contacting the anti-friction guide roller. This allows for smooth and accurate correction and entry into the processing channel for operation. Therefore, it is less likely to deviate or cause errors during operation, improving the convenience and accuracy of the cardboard correction process for the gluing machine during production. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the structure of this utility model;
[0018] Figure 2 This is a partial structural diagram of the main seat and processing channel of this utility model;
[0019] Figure 3 This is a partial structural diagram of the fixing plate, leveling roller, and main seat of this utility model;
[0020] Figure 4 This utility model Figure 3 Enlarged structural diagram of section A;
[0021] Figure 5 This utility model Figure 3 Enlarged structural diagram of section B;
[0022] Figure 6 This is a schematic diagram of the mounting frame and leveling roller structure of this utility model;
[0023] In the diagram: 100, Main body of the box gluing machine; 101, Main seat; 1011, Fixing plate one; 1012, Mounting frame; 1013, Drive motor; 1014, Leveling roller; 1015, Fixing threaded rod; 1016, Fixing nut; 102, Processing channel; 103, Paper receiving mechanism; 1031, Fixing plate two; 1032, Correction plate; 1033, Anti-friction guide roller; 1034, Control hollow plate; 1035, Support slide bar; 1036, Handwheel; 1037, Adjusting threaded rod; 104, Upper folding mechanism; 105, Adhesive mechanism; 106, Power distribution control cabinet. Detailed Implementation
[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0025] Please see Figures 1 to 6This utility model provides a technical solution: a dual-channel synchronous upward folding carton gluing machine, including a carton gluing machine body 100. The carton gluing machine body 100 includes a main seat 101. The upper surface of the main seat 101 is provided with two processing channels 102, which are symmetrically arranged. Inside the processing channels 102, a paper receiving mechanism 103, an upward folding mechanism 104, and a gluing mechanism 105 are arranged sequentially. A power distribution control cabinet 106 is installed at one end of the front surface of the main seat 101. During operation, the two processing channels 102 operate in parallel, achieving twice the capacity of a single channel, saving 20% of equipment purchase costs, reducing operators, and reducing the equipment's footprint. The carton gluing machine body 100 is suitable for dual-channel synchronous upward folding operation of standard cartons of sizes 10-13. The carton gluing machine body 100 is also provided with:
[0026] The correction mechanism includes a fixed mounting component located on the upper surface of the main seat 101 at the end of the processing channel 102. A correction component is provided inside the fixed mounting component. A screw-in adjustment component is provided at the connection between the correction component and the fixed mounting component. A sliding control component is provided on the upper surface of the correction component. During the processing operation, the correction mechanism can correct the cardboard of the gluing machine body 100 and guide it into the interior for precise processing, which is less prone to errors.
[0027] In order to facilitate the installation of the correction plate 1032 by means of a fixed installation assembly, in this embodiment, preferably, the fixed installation assembly includes two fixing plates 1031 welded and fixed to the end of the processing channel 102 located on the upper surface of the main seat 101. The two fixing plates 1031 are symmetrically arranged, and the correction plate 1032 can be installed on the inner side of the fixing plates 1031, which facilitates the installation and correction.
[0028] In order to facilitate the paperboard's entry into internal processing operations after being corrected by the correction assembly, in this embodiment, preferably, the correction assembly includes a correction plate 1032 disposed inside the fixed plate 1031. Anti-friction guide rollers 1033 are rolled at equal intervals on the inner surface of the correction plate 1032. The position of the correction plate 1032 can be adjusted so that the paperboard being processed can be corrected by the correction plate 1032 and then enter into precise processing, and the anti-friction guide rollers 1033 can prevent friction and facilitate smooth entry.
[0029] To facilitate the adjustment of the correction plate 1032 to the correction position via the screw-in adjustment assembly, in this embodiment, preferably, the screw-in adjustment assembly includes an adjusting threaded rod 1037 threadedly connected to the inside of the fixed plate 1031. One end of the adjusting threaded rod 1037 is welded and fixed with a handwheel 1036, and the other end of the adjusting threaded rod 1037 is connected to the outside of the correction plate 1032 via a bearing. The handwheel 1036 can be held to drive the adjusting threaded rod 1037 to the threaded connection inside the fixed plate 1031 until the adjusting threaded rod 1037 drives the correction plate 1032 to be screwed in and adjusted to the correction position, thus effectively correcting the deviation.
[0030] In order to facilitate the sliding adjustment of the stable support of the correction plate 1032 through the sliding control component, in this embodiment, preferably, the sliding control component includes a control hollow plate 1034 welded and fixed to the top of the fixed plate 1031. A support slide rod 1035 slides inside the control hollow plate 1034. The end of the support slide rod 1035 is welded and fixed to the upper surface of the correction plate 1032. When the correction plate 1032 is moved and adjusted, the support slide rod 1035 is driven to slide and control inside the control hollow plate 1034, so that the stable support adjustment of the correction plate 1032 can be adjusted for correction processing.
[0031] The leveling mechanism includes fixed connecting components on both sides of one end of the upper surface of the main seat 101. The two fixed connecting components are equipped with leveling components inside the upper surface of the main seat 101. Locking and reinforcing components are provided at the connection between the end of the leveling component and the end of the fixed connecting component. The leveling mechanism can level the cardboard that has been squeezed during transportation and allow it to enter the internal precision processing operation after the cardboard is transported to the end of the processing equipment.
[0032] In order to facilitate the installation and adjustment of the mounting bracket 1012 by means of a fixed connection assembly, in this embodiment, preferably, the fixed connection assembly includes a fixed plate 1011 welded and fixed to one side of the fixed plate 2 1031 located at one end of the upper surface of the main seat 101. The fixed plate 1011 has a sliding groove inside, which allows the fixed threaded rod 1015 to slide inside the fixed plate 1011, thereby adjusting the height of the mounting bracket 1012 and the leveling roller 1014 by sliding the fixed threaded rod 1015, which facilitates the adjustment, fixed installation and use.
[0033] In order to facilitate the flattening of compressed or deformed cardboard before processing by the leveling assembly, in this embodiment, preferably, the leveling assembly includes a mounting frame 1012 disposed at the connection of two fixed plates 1011. A leveling roller 1014 is rotatably mounted inside the mounting frame 1012. A drive motor 1013 is installed inside one end of the leveling roller 1014 located at one end of the mounting frame 1012. After the leveling roller 1014 is fixedly installed, the drive motor 1013 can drive the leveling roller 1014 to rotate, which facilitates the rotation of the leveling roller 1014 to flatten the compressed cardboard before conveying it to the internal processing for precise processing.
[0034] To facilitate the height adjustment and reinforcement installation of the mounting frame 1012 and the leveling roller 1014 using the locking and reinforcement assembly, in this embodiment, preferably, the locking and reinforcement assembly includes a fixed threaded rod 1015 welded to both ends of the mounting frame 1012. The fixed threaded rod 1015 passes through the slide groove, and the end of the fixed threaded rod 1015 is located on the surface of the fixing plate 1011 with a threaded fixing nut 1016. The fixed threaded rod 1015 can slide inside the slide groove to adjust the height of the mounting frame 1012 and the leveling roller 1014, and the fixed nut 1016 can be threadedly rotated at the end of the fixed threaded rod 1015 for further reinforcement installation.
[0035] The working principle and usage process of this utility model: During processing and production, the main body 100 of the gluing machine is stably placed in the position of use by directly contacting the bottom end of the main seat 101 with the ground. After the main body 100 of the gluing machine is stably placed, two sets of cardboard are arranged from one end of the main seat 101 and enter the processing channel 102 respectively. After entering the cardboard, the cardboard is received through the processing channel 102 and then enters the receiving mechanism 103 to fold the cardboard. After folding the cardboard, it enters the gluing mechanism 105 to glue the folded cardboard. It is convenient to operate simultaneously in the two processing channels 102. Therefore, the two processing channels 102 can operate in parallel, and the production capacity is twice that of a single channel. It saves 20% of the equipment purchase cost, reduces the number of operators, and reduces the footprint of the equipment. The main body 100 of the gluing machine is suitable for the dual-channel synchronous upward folding operation of standard cartons of size 10-13.
[0036] Then, before the main body 100 of the gluing machine enters operation, when the cardboard is transported and placed side by side at the end of the main seat 101 and needs to be operated, the height of the mounting frame 1012 and the leveling roller 1014 is adjusted by sliding the fixed threaded rod 1015 inside the chute, so that the height between the lower surface of the leveling roller 1014 and the surface of the main seat 101 is the thickness of the cardboard. The fixing nut 1016 is rotated at the end of the fixed threaded rod 1015 to fix the mounting frame 1012, so that when the cardboard passes the end surface of the main seat 101 before entering operation, it contacts the leveling roller 1014. The leveling roller 1014 is driven by the drive motor 1013 to level the different heights and convey it forward, so that the cardboard can enter smoothly and be processed easily. This makes the cardboard enter the flat state after processing and less prone to errors after folding, improving the convenience of leveling and the accuracy of processing of the main body 100 of the gluing machine before entering the cardboard.
[0037] Finally, before using the main body 100 of the gluing machine, the handwheel 1036 drives the adjusting threaded rod 1037 to connect with the threaded connection inside the fixed plate 1031. When the adjusting threaded rod 1037 is screwed in and moved, it drives the correction plate 1032 to the correction position. At the same time, when the correction plate 1032 moves, it drives the support slide rod 1035 to slide inside the control hollow plate 1034, which facilitates the stable support and adjustment of the correction plate 1032 to the correction position. When the cardboard continues to be driven in after the leveling process, it is directly placed at the connection between the two correction plates 1032 for correction. When the cardboard touches the inner surface of the correction plate 1032, it is less likely to cause friction and obstruction when contacting the anti-friction guide roller 1033. It can smoothly and accurately enter the processing channel 102 for operation. Therefore, it is not easy to deviate and cause errors during operation, which improves the convenience and accuracy of the main body 100 of the gluing machine in entering the cardboard for correction during processing.
[0038] Although embodiments of the present invention have been shown and described (see the detailed description above), it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A dual-channel synchronous upward folding box gluing machine, comprising a box gluing machine body (100), the box gluing machine body (100) comprising a main seat (101), the upper surface of the main seat (101) being provided with two processing channels (102), and the two processing channels (102) being symmetrically arranged, the interior of the processing channel (102) being sequentially provided with a paper receiving mechanism (103), an upward folding mechanism (104) and a gluing mechanism (105), and a power distribution control cabinet (106) being installed at one end of the front surface of the main seat (101), characterized in that: The main body (100) of the box-gluing machine is also provided with: The correction mechanism includes a fixed mounting assembly located on the upper surface of the main seat (101) at the end of the processing channel (102). A correction assembly is provided inside the fixed mounting assembly. A screw adjustment assembly is provided at the connection between the correction assembly and the fixed mounting assembly. A sliding control assembly is provided on the upper surface of the correction assembly. The leveling mechanism includes fixed connection components on both sides of one end of the upper surface of the main seat (101). The interior of the two fixed connection components is provided with leveling components on the upper surface of the main seat (101). Locking and reinforcing components are provided at the connection between the end of the leveling component and the end of the fixed connection component.
2. The dual lane synchronous tucking machine of claim 1, wherein: The fixed installation assembly includes two fixing plates (1031) welded and fixed to the upper surface of the main seat (101) at the end of the processing channel (102), and the two fixing plates (1031) are symmetrically arranged.
3. The dual lane synchronous tucking machine of claim 2, wherein: The correction assembly includes a correction plate (1032) disposed inside the fixed plate (1031), and anti-friction guide rollers (1033) are rolled at equal intervals on the inner surface of the correction plate (1032).
4. The dual lane synchronous tucking machine of claim 3, wherein: The advance adjustment assembly includes an adjustment threaded rod (1037) that is threadedly connected inside the fixed plate (1031). One end of the adjustment threaded rod (1037) is welded and fixed with a handwheel (1036), and the other end of the adjustment threaded rod (1037) is connected to the outside of the correction plate (1032) through a bearing.
5. The dual lane synchronous tucking machine of claim 3, wherein: The sliding control assembly includes a control hollow plate (1034) welded and fixed to the top of the fixed plate (1031). A support slide rod (1035) slides inside the control hollow plate (1034). The end of the support slide rod (1035) is fixed to the upper surface of the correction plate (1032) by welding.
6. The dual lane synchronous tucking machine of claim 1, wherein: The fixed connection assembly includes a fixed plate (1011) welded and fixed to one side of the fixed plate (1031) at one end of the upper surface of the main seat (101), and the fixed plate (1011) has a sliding groove inside.
7. The dual lane synchronous tucking machine of claim 6, wherein: The leveling assembly includes a mounting frame (1012) disposed at the connection of two fixed plates (1011), a leveling roller (1014) rotating inside the mounting frame (1012), and a drive motor (1013) installed at the end of the leveling roller (1014) located inside one end of the mounting frame (1012).
8. The dual-channel synchronous upward folding gluing machine according to claim 7, characterized in that: The locking and reinforcing assembly includes a fixed threaded rod (1015) welded to both ends of the mounting bracket (1012). The fixed threaded rod (1015) passes through the slide groove, and the end of the fixed threaded rod (1015) is located on the surface of the fixing plate (1011) with a fixed nut (1016) threaded on it.