Novel anti-sticking material collecting device of folder gluer
By introducing an anti-sticking material collection device into the carton gluing machine, the problem of carton adhesion was solved by utilizing airflow drying and a tipping structure, achieving tight bonding and efficient processing of the cartons.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HUIZHOU DEGANG MASCH CO LTD
- Filing Date
- 2025-05-29
- Publication Date
- 2026-05-01
AI Technical Summary
During the gluing process, cardboard boxes are prone to sticking together because the glue does not cure easily, resulting in reduced processing efficiency.
A novel anti-sticking material collection device for a carton gluing machine has been designed, comprising a gluing assembly, a conveying assembly, a stacking assembly, and a collection assembly. It utilizes airflow drying and a tipping structure to ensure tight adhesion of the carton and prevent sticking.
By drying the glue on the cardboard boxes, the boxes are prevented from sticking together, which improves processing efficiency and product quality.
Smart Images

Figure CN224183883U_ABST
Abstract
Description
A novel anti-sticking material collection device for a box gluing machine Technical Field
[0001] This utility model relates to a novel anti-sticking material collection device for a box gluing machine, belonging to the technical field of box gluing machines. Background Technology
[0002] The application of a box gluing machine is the final step in packaging box processing. It folds and glues the printed and die-cut cardboard into shape. Machine gluing replaces manual gluing, reducing labor costs and improving efficiency. A box gluing machine consists of a paper feeding section, a pre-folding section, a bottom hooking section, a forming section, and a box pressing section. Box gluing machines are categorized by function, such as straight-grafting machines and bottom hooking machines. Most box gluing machines do not have bottom hooking functionality or even pre-folding, while better ones do. Of course, most box gluing machines now have pre-folding. To make bottom hooked boxes, a bottom hooking box gluing machine is necessary. More advanced box gluing machines can also produce hexagonal and irregularly shaped boxes, but these require a glue spraying system and other equipment.
[0003] The working principle of the automatic box gluing machine is as follows: after the power is turned on, the entire conveyor belt starts to move. The die-cut semi-finished paper boxes are placed in the paper feeding position of the box gluing machine. The conveyor belt automatically feeds the single box sheet into the middle section belt according to the paper feeding device set by the paper head frame. If the semi-finished paper box has undergone surface treatment such as lamination or varnishing, after entering the middle section, glue can be applied to the inner edge of the paper box by glue gun. The conveyor belt transports the paper box to the rear box gluing part for pressure packaging.
[0004] A box gluing machine is a device used for gluing paper boxes. During the box gluing process, the glue on the glued packaging boxes may not cure easily, causing the paper boxes to stick together, which will make subsequent processing inconvenient and reduce the processing efficiency of the box gluing machine.
[0005] Therefore, there is an urgent need in the existing technology for a gluing machine technology solution that can prevent paper boxes from sticking together. Summary of the Invention
[0006] In view of the technical problems existing in the prior art, the present invention aims to provide a novel anti-sticking material collection device for a gluing machine that can solve the above problems, both by achieving tight bonding and preventing paper boxes from sticking together.
[0007] This utility model solves the above-mentioned technical problems through the following technical solutions:
[0008] This utility model provides a novel anti-sticking material collection device for a box gluing machine, the novel anti-sticking material collection device for a box gluing machine includes:
[0009] A gluing assembly, wherein a conveying assembly, a stacking assembly, and a collecting assembly are sequentially arranged on one side of the gluing assembly;
[0010] The material collection assembly consists of a box, which is located on one side of the testing frame. A square frame plate is fixedly installed inside the box, and a channel for airflow is formed between the frame plate and the box. The top surface of the frame plate is fitted and connected to the tipping bucket, and the tipping bucket is rotatably connected to one side of the box.
[0011] In this technical solution, the gluing assembly consists of a gluing machine frame and a paper box conveying component. The paper box conveying component is installed at the top of the gluing machine frame and is located on one side of the conveying assembly. The conveying assembly consists of a conveyor frame and a paper box conveyor belt. The top of the conveyor frame is provided with a paper box conveyor belt. The paper box conveyor belt is arranged correspondingly to the paper box conveying component to move the cardboard onto the surface of the paper box conveyor belt.
[0012] In this technical solution, the stacking assembly consists of a support and a enclosure. The top of the support is fixedly connected to the enclosure, which has a square hollow structure. The enclosure is set on one side of the conveyor frame. The top and bottom of the enclosure are respectively provided with a loading port and a unloading port, which are located on both sides of the enclosure. The loading port is located on one side of the carton conveyor belt, and the unloading port is located on one side of the detection component. A feeding mechanism is provided below the enclosure.
[0013] In this technical solution, the feeding mechanism consists of two conveying rollers and an anti-slip belt. The two conveying rollers are rotatably connected to the bracket and the inside of the detection frame, respectively. The two conveying rollers are connected by a transmission through the anti-slip belt. The anti-slip belt is set below the enclosure to support the cardboard. Several evenly distributed anti-slip strips are provided on the anti-slip belt. A feeding motor is fixedly installed on the outer wall of the detection frame. The output end of the feeding motor is fixedly connected to one of the conveying rollers.
[0014] In this technical solution, the cardboard conveying mechanism consists of a drive roller and a cardboard conveyor belt. The drive roller is rotatably connected to the inside of the detection frame. The drive rollers are connected to each other through the cardboard conveyor belt. A drive motor is fixedly installed on the detection frame, and the output end of the drive motor is fixedly connected to one of the drive rollers. Several evenly distributed overlapping plates are provided on the surface of the cardboard conveyor belt. The cardboard boxes on the cardboard conveyor belt are placed at an angle on top of the overlapping plates.
[0015] In this technical solution, a first detector is fixedly connected to the side wall of the side plate. The first detector is correspondingly arranged on one side of the discharge mechanism. A crossbar is fixedly connected to the inner wall of the side plate. Several evenly distributed second detectors are provided on the side wall of the crossbar. The crossbar is arranged between the discharge mechanism and the stacking assembly. The second detectors are distributed correspondingly to the discharge port. Both the first detector and the second detector are composed of recognition cameras.
[0016] In this technical solution, the horizontal plate is a bent structure and is set on one side of the swing arm. An electric push rod is fixedly installed inside the horizontal plate. The telescopic end of the electric push rod contacts the side wall of the guide plate. The guide plate is an L-shaped structure and contacts the top of the cardboard box. The side wall of the guide plate is connected to the horizontal plate by several springs.
[0017] In this technical solution, the box body has an inlet and an outlet on both sides. The inlet is located on one side of the cardboard conveyor belt and the inlet and outlet are distributed correspondingly. The box body located below the outlet is fixedly connected to an air inlet, which is composed of a grille. The air inlet is connected to the inside of the frame plate and is located on one side of the hot air blower. An air outlet is fixedly installed at the bottom of the frame plate and is connected to the hot air blower. A guide plate is fixedly connected to the bottom of the box body and is located below the air outlet for guiding hot air.
[0018] In this technical solution, a tilting motor is fixedly installed on the outer wall of the box. The output end of the tilting motor is fixedly connected to the tilting bucket. The tilting bucket has an L-shaped structure, and the corner of the tilting bucket is connected to the tilting motor. One side of the tilting bucket is fitted and connected to the discharge port.
[0019] The technical effects of this utility model are as follows:
[0020] The aforementioned novel anti-sticking material collection device for a carton gluing machine employs a carton gluing assembly to perform the carton gluing operation, a conveying assembly to transport the glued cartons for rapid passage, and a stacking assembly to collect the cartons for convenient batch transport. A material collection assembly is also included for carton storage. Drying of the product is performed inside the material collection assembly to ensure tight adhesion at the glued areas, allowing the glue to cure and preventing sticking between cartons. A tipping bucket is provided for discharging the dried cartons, and the tipping bucket also guides airflow to ensure effective drying. After drying, the rotation of the tipping bucket enables rapid unloading, improving processing efficiency. Attached Figure Description
[0021] Figure 1 is a schematic diagram of the overall three-dimensional structure of a box-gluing machine according to an embodiment of the present invention.
[0022] Figure 2 is a partial enlarged structural diagram of point A in Figure 1 of this utility model.
[0023] Figure 3 is a half-sectional structural diagram of a box-gluing machine according to an embodiment of the present invention.
[0024] Figure 4 is a partially enlarged structural diagram of section B in Figure 3 of this utility model.
[0025] Figure 5 is a three-dimensional structural diagram of the internal structure of the material collection component of a box-gluing machine according to an embodiment of the present invention.
[0026] Figure 6 is a partial three-dimensional structural diagram of the tipping bucket of a box-gluing machine according to an embodiment of the present invention.
[0027] Figure 7 is a three-dimensional structural diagram of the detection component of a box-gluing machine according to an embodiment of the present invention.
[0028] Figure 8 is a three-dimensional structural diagram of the gluing component of a gluing machine according to an embodiment of the present invention.
[0029] Figure 9 is a partial three-dimensional structural schematic diagram of a box-gluing machine according to an embodiment of the present invention.
[0030] Figure 10 is a partial three-dimensional structural diagram of the conveying component of a box-gluing machine according to an embodiment of the present invention.
[0031] Figure 11 is a top view of a box-gluing machine according to an embodiment of the present invention.
[0032] Explanation of reference numerals in the attached figures
[0033] 100. Carton gluing assembly; 101. Carton gluing machine frame; 102. Carton conveying components;
[0034] 200. Conveying assembly; 201. Conveyor frame; 202. Carton conveyor belt;
[0035] 300. Stacking assembly; 301. Support frame; 302. Enclosure; 303. Feeding port; 304. Discharging port; 305. Feeding motor; 306. Conveying roller; 307. Anti-slip belt;
[0036] 400. Detection assembly; 401. Detection frame; 402. Side plate; 403. Drive roller; 404. Cardboard conveyor belt; 405. Overlap plate; 406. First detector; 407. Cardboard box; 408. Rotary motor; 409. Swing arm; 410. Suction cup; 411. Horizontal plate; 412. Spring; 413. Guide plate; 414. Electric push rod; 415. Crossbar; 416. Second detector;
[0037] 500. Material collection assembly; 501. Box body; 502. Frame plate; 503. Feed inlet; 504. Hot air blower; 505. Air outlet; 506. Guide plate; 507. Air inlet; 508. Discharge outlet; 509. Tilting motor; 510. Tilting bucket. Detailed Implementation
[0038] The present invention will be further described below with reference to the accompanying drawings and by way of embodiments. However, this description is exemplary and the present invention is not limited to the scope of the embodiments described.
[0039] As shown in Figure 1-11, the anti-sticking material collection device of the novel box-gluing machine includes:
[0040] A gluing assembly 100, wherein a conveying assembly 200, a stacking assembly 300, a detection assembly 400 and a collecting assembly 500 are sequentially arranged on one side of the gluing assembly 100;
[0041] The detection assembly 400 consists of a detection frame 401 and a side plate 402. The side plate 402 is fixedly installed on the inner top wall of the detection frame 401. A cardboard conveying mechanism is provided inside the detection frame 401 and is located below the side plate 402. A discharge mechanism is installed on the inner wall of the side plate 402. The inner wall of the side plate 402 is fixedly connected to a horizontal plate 411. The horizontal plate 411 is located on one side of the discharge mechanism. Both the horizontal plate 411 and the discharge mechanism are located above the cardboard conveying mechanism. A guide plate 413 is rotatably connected to the side wall, and the guide plate 413 is located above the cardboard box 407 placed on the cardboard conveying mechanism; the material collection assembly 500 is composed of a box body 501, which is set on one side of the detection frame 401. A square frame plate 502 is fixedly installed inside the box body 501, and a channel for airflow is formed between the frame plate 502 and the box body 501. The top surface of the frame plate 502 is fitted and connected to the tipping bucket 510, and the tipping bucket 510 is rotatably connected to one side of the box body 501.
[0042] The gluing assembly 100 consists of a gluing machine frame 101 and a paper box conveying component 102. The paper box conveying component 102 is installed at the top of the gluing machine frame 101 and is located on one side of the conveying assembly 200. The conveying assembly 200 consists of a conveying frame 201 and a paper box conveyor belt 202. The top of the conveying frame 201 is provided with a paper box conveyor belt 202. The paper box conveyor belt 202 is arranged correspondingly to the paper box conveying component 102 to move the cardboard onto the surface of the paper box conveyor belt 202.
[0043] In this technical solution, the paper box conveying component 102 is used for conveying the paperboard. During the conveying process, the conveyor belt on the paper box conveying component 102 starts to move, placing the die-cut semi-finished paper box 407 at the paper feeding position of the gluing machine. The conveyor belt automatically feeds the single box sheet into the middle section belt conveyor according to the paper feed check set by the paper stop head frame, and conveys the paper box 407 to the rear gluing part for pressure packaging. When passing through the gluing component, the gluing operation is completed. After gluing, the paperboard moves to the conveyor frame 201, and the paperboard is conveyed by the paper box conveyor belt 202.
[0044] The stacking assembly 300 consists of a support 301 and a enclosure 302. The top of the support 301 is fixedly connected to the square hollow enclosure 302. The enclosure 302 is located on one side of the conveyor frame 201. The top and bottom of the enclosure 302 are respectively provided with a loading port 303 and a discharging port 304, located on opposite sides of the enclosure 302. The loading port 303 is located on one side of the cardboard conveyor belt 202, and the discharging port 304 is located on one side of the detection assembly 400. A feeding mechanism is located below the enclosure 302. It consists of two conveyor rollers 306 and two anti-slip belts 307. The two conveyor rollers 306 are rotatably connected to the bracket 301 and the internal structure of the testing frame 401, respectively. The two conveyor rollers 306 are connected by transmission through the anti-slip belts 307. The anti-slip belts 307 are set below the enclosure 302 to support the cardboard. The anti-slip belts 307 are provided with several evenly distributed anti-slip strips. A feeding motor 305 is fixedly installed on the outer wall of the testing frame 401. The output end of the feeding motor 305 is fixedly connected to one of the conveyor rollers 306.
[0045] In this technical solution, cardboard is conveyed from the loading port 303 to the inside of the enclosure 302 via the cardboard conveyor belt 202. The enclosure 302 is stably supported by the bracket 301, and the cardboard is stacked inside the enclosure 302 so that the bottom cardboard falls onto the anti-slip belt 307 for support. After the conveying is completed, the feeding motor 305 is started. When the feeding motor 305 drives the conveying roller 306 to rotate, the protective belt is driven. The anti-slip belt 307 drives the bottom cardboard to move out from the unloading port 304. At this time, the cardboard above is blocked by the enclosure 302, realizing the sequential conveying of cardboard. After the bottom cardboard moves out, the cardboard above falls, thus realizing the continuous movement of individual cardboard, so that the cardboard is conveyed from the protective belt to the cardboard conveying mechanism on the inspection frame 401.
[0046] The cardboard conveying mechanism consists of a drive roller 403 and a cardboard conveyor belt 404. The drive roller 403 is rotatably connected to the inside of the detection frame 401. The drive rollers 403 are connected to each other via the cardboard conveyor belt 404. A drive motor is fixedly installed on the detection frame 401, and the output end of the drive motor is fixedly connected to one of the drive rollers 403. Several evenly distributed overlapping plates 405 are provided on the surface of the cardboard conveyor belt 404. The cardboard boxes 407 on the cardboard conveyor belt 404 are placed at an angle on the top of the overlapping plates 405. A first detector 406 is fixedly connected to the side wall of the side plate 402. The first detector 406 is correspondingly arranged on one side of the discharge mechanism. A crossbar 415 is fixedly connected to the inner wall of the side plate 402. Several evenly distributed second detectors 416 are provided on the side wall of the crossbar 415. The crossbar 415 is arranged between the discharge mechanism and the stacking assembly 300. The second detectors 416 are correspondingly distributed with the discharge port 304. Both the first detector 406 and the second detector 416 are composed of recognition cameras.
[0047] In this technical solution, when the drive motor drives the drive roller 403 to rotate, it drives the cardboard conveyor belt 404 to rotate synchronously, thereby realizing the continuous conveying of the cardboard. When the cardboard is conveyed on the anti-slip belt 307 and the cardboard conveyor belt 404, the glue position of the cardboard box 407 is detected by the second detector 416 on the crossbar 415 and the first detector 406 on the side plate 402. During the conveying process, the cardboard box 407 overlaps on the overlap plate 405 of the cardboard conveyor belt 404, so that the cardboard box 407 is stacked at an angle, which is convenient for detection by the detector and facilitates the subsequent conveying of the cardboard box 407.
[0048] The feeding mechanism consists of a swing arm 409, which is rotatably connected to the inner wall of the side plate 402. A rotary motor 408 is fixedly installed on the outer side of the side plate 402, and the output end of the rotary motor 408 is fixedly connected to the swing arm 409. The swing arm 409 has a U-shaped structure, and multiple suction cups 410 are fixedly connected to the far end of the swing arm 409. The swing arm 409 has a bent structure and is positioned above the cardboard conveyor belt 404. The horizontal plate 411 has a bent structure and is positioned on one side of the swing arm 409. An electric push rod 414 is fixedly installed inside the horizontal plate 411. The telescopic end of the electric push rod 414 contacts the side wall of the guide plate 413. The guide plate 413 has an L-shaped structure and contacts the top of the cardboard box 407. The side wall of the guide plate 413 is connected to the horizontal plate 411 by several springs 412.
[0049] In this technical solution, the rotary motor 408 is electrically connected to the detector. When the recognition camera detects that the glue content at the gluing position is too low, leading to problems such as cracking at the gluing position, the detector sends an electrical signal to the controller of the rotary motor 408. This controller causes the rotary motor 408 to rotate, driving the swing arm 409 to rotate. The swing arm 409 then drives the suction cup 410 to adhere to the surface of the uppermost cardboard box 407. Using the negative pressure of the suction cup 410, the cardboard box 407 is adsorbed. The swing arm 409 then rotates in the opposite direction to remove the cardboard box 407 from the cardboard conveyor belt 404 for use in... The separation of non-conforming products is performed. At the same time, in order to solve the problem of incomplete stacking that may occur when cardboard boxes 407 come into contact, that is, when the swing rod 409 comes into contact with a non-conforming cardboard box 407, the impact force generated will push the other cardboard boxes 407 to tilt. At this time, when the cardboard box 407 passes through the guide plate 413, the guide plate 413 limits the cardboard box 407 to ensure that the height of the tilted stacked cardboard boxes 407 remains consistent. Furthermore, the electric push rod 414 extends and contacts the guide plate 413, causing the guide plate 413 to rotate around the horizontal plate 411, thereby adjusting the angle of the guide plate 413 to control its height.
[0050] The box body 501 has an inlet 503 and an outlet 508 on both sides. The inlet 503 is located on one side of the cardboard conveyor belt 404, and the inlet 503 and outlet 508 are correspondingly distributed. An air inlet 507 is fixedly connected to the box body 501 below the outlet 508. The air inlet 507 is composed of a grille and communicates with the interior of the frame plate 502, and is located on one side of the hot air blower 504. An air outlet 505 is fixedly installed at the bottom of the frame plate 502. The air outlet 505 is connected to the hot air blower 504. A guide plate 506 is fixedly connected to the bottom of the housing 501. The guide plate 506 is located below the air outlet 505 to guide the hot air. A tilting motor 509 is fixedly installed on the outer wall of the housing 501. The output end of the tilting motor 509 is fixedly connected to the tilting bucket 510. The tilting bucket 510 has an L-shaped structure, and the corner of the tilting bucket 510 is connected to the tilting motor 509. One side of the tilting bucket 510 is fitted and connected to the discharge port 508.
[0051] In this technical solution, the tested cardboard box 407 is conveyed from the cardboard conveyor belt 404 to the collecting assembly 500. At this time, the rapid transmission of the cardboard conveyor belt 404 moves the cardboard box 407 into the box 501. The cardboard box 407 enters from the feed inlet 503 and falls into the tipping hopper 510. Simultaneously, the hot air blower 504 is activated, allowing outside air to enter through the air inlet 507 and exit downwards through the air outlet 505. The hot air exiting through the air outlet 505 is then guided by the guide plate 506, causing the high-temperature gas to be transported from bottom to top, allowing the hot air to pass through both sides of the frame plate 502. After side flow, hot air is discharged from the inlet 503. At this time, the hot air passes through the cardboard box 407, achieving heating and curing of the glue application area. At this time, the other side of the tipping bucket 510 blocks the outlet 508 to ensure that the hot air passes through the cardboard box 407, improving drying efficiency. After the cardboard box 407 is dried, the tilting motor 509 is started. When the tilting motor 509 drives the tipping bucket 510 to rotate, the cardboard box 407 inside the tipping bucket 510 is tilted, allowing the cardboard box 407 to be discharged from the outlet 508 for subsequent operations, improving the processing efficiency of the cardboard box 407.
[0052] Furthermore, multiple overlapping plates 405 are arranged for placing multiple sets of paper boxes 407. When conveying paper boxes 407 inside the enclosure 302, multiple paper boxes 407 are conveyed at a time and then the conveyor stops, so that multiple paper boxes 407 remain on an overlapping plate 405. At this time, the cardboard conveyor belt 404 conveys multiple paper boxes 407 into the box 501. After the tipping bucket 510 rotates and returns to its position, the paper boxes 407 inside the enclosure 302 continue to be conveyed, realizing continuous processing of paper boxes 407.
[0053] The present invention has been described in detail above with reference to specific embodiments. However, those skilled in the art will understand that the present invention is not limited to the above embodiments, and various changes or modifications can be made to these embodiments. Regardless of any changes in shape or structure, all such changes should fall within the protection scope of the present invention without departing from its principles and essence. The protection scope of the present invention is defined by the appended claims.
Claims
1. A novel anti-sticking material collection device for a box-gluing machine, characterized in that, The anti-sticking material collection device of the novel box gluing machine includes: a box gluing assembly (100), on one side of which a conveying assembly (200), a stacking assembly (300) and a material collection assembly (500) are arranged in sequence; the material collection assembly (500) is composed of a box body (501), the box body (501) is arranged on one side of the detection frame (401), a square frame plate (502) is fixedly installed inside the box body (501), a channel for airflow is formed between the frame plate (502) and the box body (501), the top surface of the frame plate (502) is fitted and connected to the tipping bucket (510), and the tipping bucket (510) is rotatably connected to one side of the box body (501).
2. The anti-sticking material collection device of the novel box-gluing machine as described in claim 1, characterized in that: The gluing assembly (100) consists of a gluing machine frame (101) and a paper box conveying component (102). The paper box conveying component (102) is installed at the top of the gluing machine frame (101) and is located on one side of the conveying assembly (200). The conveying assembly (200) consists of a conveying frame (201) and a paper box conveyor belt (202). The top of the conveying frame (201) is provided with a paper box conveyor belt (202). The paper box conveyor belt (202) is arranged correspondingly to the paper box conveying component (102) to move the cardboard to the surface of the paper box conveyor belt (202).
3. The anti-sticking material collection device of the novel box-gluing machine as described in claim 1, characterized in that: The stacking assembly (300) consists of a support (301) and a enclosure (302). The top of the support (301) is fixedly connected to the square hollow enclosure (302). The enclosure (302) is set on one side of the conveyor frame (201). The top and bottom of the enclosure (302) are respectively provided with a loading port (303) and a discharging port (304). The loading port (303) and the discharging port (304) are respectively located on both sides of the enclosure (302). The loading port (303) is located on one side of the carton conveyor belt (202), and the discharging port (304) is located on one side of the detection assembly (400). A feeding mechanism is provided below the enclosure (302).
4. The anti-sticking material collection device of the novel box-gluing machine as described in claim 3, characterized in that: The feeding mechanism consists of two conveying rollers (306) and two anti-slip belts (307). The two conveying rollers (306) are rotatably connected to the bracket (301) and the internal structure of the testing frame (401), respectively. The two conveying rollers (306) are connected by transmission through the anti-slip belts (307). The anti-slip belts (307) are set below the enclosure (302) for supporting the cardboard. The anti-slip belts (307) are provided with several evenly distributed anti-slip strips. The outer wall of the testing frame (401) is fixedly installed with a feeding motor (305). The output end of the feeding motor (305) is fixedly connected to one of the conveying rollers (306).
5. The anti-sticking material collection device of the novel box-gluing machine as described in claim 1, characterized in that: The testing frame (401) is equipped with a cardboard conveying mechanism, which consists of a drive roller (403) and a cardboard conveyor belt (404). The drive roller (403) is rotatably connected to the inside of the testing frame (401). The drive rollers (403) are connected to each other through the cardboard conveyor belt (404). A drive motor is fixedly installed on the testing frame (401), and the output end of the drive motor is fixedly connected to one of the drive rollers (403). Several evenly distributed overlapping plates (405) are provided on the surface of the cardboard conveyor belt (404). The cardboard boxes (407) on the cardboard conveyor belt (404) are placed at an angle on the top of the overlapping plates (405).
6. The anti-sticking material collection device for the novel box-gluing machine as described in claim 3, characterized in that: The detection component (400) consists of a detection frame (401) and a side plate (402). A first detector (406) is fixedly connected to the side wall of the side plate (402). The first detector (406) is correspondingly arranged on one side of the discharge mechanism. A crossbar (415) is fixedly connected to the inner wall of the side plate (402). A number of evenly distributed second detectors (416) are provided on the side wall of the crossbar (415). The crossbar (415) is arranged between the discharge mechanism and the stacking component (300). The second detectors (416) are distributed correspondingly to the discharge port (304). Both the first detector (406) and the second detector (416) are composed of recognition cameras.
7. The anti-sticking material collection device for the novel box-gluing machine as described in claim 6, characterized in that: The inner wall of the side plate (402) is fixedly connected to the horizontal plate (411). The horizontal plate (411) is a bent structure and is located on one side of the swing rod (409). An electric push rod (414) is fixedly installed inside the horizontal plate (411). The telescopic end of the electric push rod (414) contacts the side wall of the guide plate (413). The guide plate (413) is an L-shaped structure and contacts the top of the paper box (407). The side wall of the guide plate (413) is connected to the horizontal plate (411) by several springs (412).
8. The anti-sticking material collection device of the novel box-gluing machine as described in claim 1, characterized in that: The box body (501) has an inlet (503) and an outlet (508) on both sides respectively. The inlet (503) is located on one side of the cardboard conveyor belt (404), and the inlet (503) and outlet (508) are distributed correspondingly. The box body (501) located below the outlet (508) is fixedly connected to an air inlet (507). The air inlet (507) is composed of a grille, and the air inlet (507) is connected to the inside of the frame plate (502) and is located on one side of the hot air blower (504). An air outlet (505) is fixedly installed at the bottom of the frame plate (502), and the air outlet (505) is connected to the hot air blower (504). A guide plate (506) is fixedly connected at the bottom of the box body (501), and the guide plate (506) is located below the air outlet (505) for guiding hot air.
9. The anti-sticking material collection device for the novel box-gluing machine as described in claim 1, characterized in that: A tilting motor (509) is fixedly installed on the outer wall of the box (501). The output end of the tilting motor (509) is fixedly connected to the tilting bucket (510). The tilting bucket (510) has an L-shaped structure, and the corner of the tilting bucket (510) is connected to the tilting motor (509). One side of the tilting bucket (510) is fitted and connected to the discharge port (508).