Automatic code spraying and detecting device for fireproof plate
By designing an automatic coding and inspection device for fireproof boards, and using exhaust fans and filters to remove dust, the problem of dust on the surface of fireproof boards affecting coding was solved, achieving clear and consistent coding results and product quality control.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-13
- Publication Date
- 2026-03-20
AI Technical Summary
Dust residue on the surface of fireproof boards during assembly line processing affects the coding effect, resulting in messy and uneven coding.
Design an automatic coding and inspection device for fireproof boards. Dust is blown up by an exhaust fan on the mounting frame, and the dust is discharged after passing through a dust collection box and filter. Combined with camera scanning and inspection, the coding quality is ensured.
It effectively removes dust from the surface of the fireproof board, ensuring clear and consistent coding, and improving coding quality and product traceability.
Smart Images

Figure CN224013262U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of fireproof board inkjet printing technology, and in particular to an automatic inkjet printing and detection device for fireproof boards. Background Technology
[0002] Fireproof boards are commonly used in interior decoration, furniture, kitchen cabinets, and other fields. Their production is usually large-scale and assembly-line based. Fireproof boards come in a variety of colors, styles, and specifications, and require inkjet printers to print relevant standard numbers, production batches, dates, specifications, and other information to facilitate product traceability, quality control, and market sales.
[0003] Existing fireproof boards may have a small amount of dust remaining on their surface during assembly line processing, and this dust may affect the printing effect, causing the printing to become messy and uneven.
[0004] Therefore, those skilled in the art have provided an automatic coding and detection device for fireproof boards to solve the problems mentioned in the background art. Utility Model Content
[0005] The purpose of this invention is to address the shortcomings of existing technologies by proposing an automatic marking and inspection device for fireproof boards. When the fireproof board on the conveyor belt moves to the bottom of the vacuum cleaner, multiple exhaust fans on the mounting frame blow up the dust on the surface of the fireproof board. The air carrying the dust then passes through the first air inlet and the second air inlet in sequence, through the dust collection box and the filter, and is finally discharged from the exhaust port. The first air inlet is flush with the conveyor belt, while the second air inlet is at an angle to the conveyor belt. This structural design can better extract the blown-up dust and avoid the adverse effects of dust on the surface of the fireproof board on the marking process.
[0006] To achieve the above objectives, the present invention provides the following technical solution:
[0007] An automatic coding and inspection device for fireproof boards includes a frame. Multiple transmission rollers are rotatably mounted on the top of the frame, and transmission belts are fitted onto the outer ends of the rollers. From left to right, a vacuum cleaner, a scanning frame, and a mounting frame are sequentially mounted on the top of the frame. A camera is mounted at the bottom center of the scanning frame. A coding machine is mounted on the top of the mounting frame. A mounting bracket is mounted on the side of the frame near the scanning frame, and multiple exhaust fans are mounted in the middle of the mounting bracket. A first air inlet is located at the bottom of the vacuum cleaner. A dust collection box is connected to the top of the first air inlet via a main air intake pipe. A filter is installed at the outlet of the dust collection box. A second air inlet is located on one side of the first air inlet and is connected to the main air intake pipe via an air intake branch pipe.
[0008] With the above technical solution, when the fireproof board on the conveyor belt moves to below the vacuum cleaner, the dust on the surface of the fireproof board is blown up by the operation of multiple exhaust fans on the mounting frame. Then, the air carrying dust passes through the first air inlet and the second air inlet in sequence through the dust collection box and the filter, and is finally discharged from the exhaust port. The first air inlet is flush with the conveyor belt, while the second air inlet is at an inclined angle to the conveyor belt. This structural design can better extract the blown dust and avoid the adverse effects of dust on the surface of the fireproof board on the inkjet printing process. The camera scans and detects the surface of the fireproof board after dust removal.
[0009] Furthermore, an exhaust fan is installed above the filter, an exhaust port is provided above the exhaust fan, and a mesh is installed on the top of the exhaust port.
[0010] The above technical solution involves installing an exhaust fan above the filter to facilitate the extraction of dusty air, and providing an exhaust port above the exhaust fan. A mesh screen is installed on top of the exhaust port to facilitate the discharge of filtered air.
[0011] Furthermore, threaded rods are rotatably provided at the center of both sides of the frame, and limit plates are rotatably provided at one end of each of the two threaded rods; a turntable is fixedly provided at one end of each of the two threaded rods.
[0012] With the above technical solution, threaded rods are rotatably installed in the middle of both sides of the frame, and a limit plate is rotatably installed at one end of each threaded rod. By rotating the threaded rods, the limit plate can be moved, which facilitates the limiting of fireproof boards of different widths. This not only improves the stability of the fireproof board on the surface of the transmission belt, but also avoids the situation where the coding position is inconsistent due to the different positions of the fireproof board.
[0013] Furthermore, the inkjet printer is connected to an inkjet header via a power cord. The inkjet header is installed on the bottom side of a fixed frame. Multiple pairs of mounting holes are opened in the middle of one side of the fixed frame, and a pair of fixing bolts are installed on one side of the inkjet header.
[0014] With the above technical solution, the inkjet printer is connected to a print head via a power cord. The print head is installed at the bottom of one side of a fixed frame. Multiple pairs of mounting holes are opened in the middle of one side of the fixed frame. A pair of fixing bolts are installed on one side of the print head. The height of the print head can be adjusted by connecting the pair of fixing bolts to the mounting holes at different heights.
[0015] Furthermore, each of the two limiting plates has a sliding rod integrally provided at both ends on one side, and each sliding rod is slidably connected to the frame;
[0016] With the above technical solution, a sliding rod is integrally set at both ends of one side of the two limiting plates, and each sliding rod is slidably connected to the frame to facilitate the restriction of the movement position of the limiting plates.
[0017] Furthermore, a human-machine interface is installed on one side of the frame, and a drive motor is fixedly installed at one end of one of the outermost transmission rollers;
[0018] Through the above technical solution, a human-machine interface is installed on one side of the frame to facilitate the control of the entire device, and a drive motor is fixedly installed at one end of the outermost transmission roller to facilitate the provision of power support to the transmission mechanism.
[0019] Furthermore, a filter screen is installed on one side of each of the aforementioned exhaust fans;
[0020] The above technical solution involves installing filters on one side of multiple exhaust fans to filter the incoming air and protect the exhaust fans.
[0021] This utility model has the following beneficial effects:
[0022] 1. The automatic coding and detection device for fireproof boards proposed in this utility model, when the fireproof board on the surface of the conveyor belt moves to below the vacuum cleaner, the dust on the surface of the fireproof board is blown up by the operation of multiple exhaust fans on the mounting frame. Then, the air carrying dust passes through the first air inlet and the second air inlet in sequence through the dust collection box and the filter, and is finally discharged from the exhaust port. The first air inlet is flush with the conveyor belt, while the second air inlet is at an inclined angle to the conveyor belt. This structural design can better extract the blown dust and avoid the adverse effects of dust on the surface of the fireproof board on the coding process.
[0023] 2. The automatic coding and detection device for fireproof boards proposed in this utility model has threaded rods rotatably installed in the middle of both sides of the frame. One end of each threaded rod is rotatably equipped with a limit plate. By rotating the threaded rods, the limit plate can be moved, which is convenient for limiting fireproof boards of different widths. This not only improves the stability of the fireproof board on the surface of the transmission belt, but also avoids the situation where the coding position is inconsistent due to the different positions of the fireproof boards. Attached Figure Description
[0024] Figure 1 This is a front axonometric drawing of the automatic coding and detection device for fireproof boards proposed in this utility model;
[0025] Figure 2 This is a cross-sectional view of the automatic coding and detection device for fireproof boards proposed in this utility model;
[0026] Figure 3 This is a rear axonometric drawing of the automatic coding and detection device for fireproof boards proposed in this utility model;
[0027] Figure 4 This is an isometric view of the mounting frame of the automatic coding and detection device for fireproof boards proposed in this utility model.
[0028] Figure 5 This is an isometric view of the limiting plate of the automatic coding and detection device for fireproof boards proposed in this utility model.
[0029] Legend:
[0030] 1. Frame; 2. Drive roller; 3. Drive belt; 4. Drive motor; 5. Vacuum cleaner; 6. First air inlet; 7. Main air inlet pipe; 8. Dust collection box; 9. Filter; 10. Exhaust fan; 11. Exhaust port; 12. Second air inlet; 13. Inlet branch pipe; 14. Scanner; 15. Camera; 16. Mounting bracket; 17. Inkjet printer; 18. Printing nozzle; 19. Human-machine interface; 20. Threaded rod; 21. Limiting plate; 22. Slide rod; 23. Mounting bracket; 24. Exhaust fan; 25. Filter screen; 26. Mounting hole; 27. Fixing bolt. Detailed Implementation
[0031] 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.
[0032] Reference Figure 1-5This utility model provides an embodiment of an automatic coding and inspection device for fireproof boards, comprising a frame 1. Multiple transmission rollers 2 are rotatably mounted on the top of the frame 1, and transmission belts 3 are fitted around the outer ends of the multiple transmission rollers 2. From left to right, a vacuum cleaner 5, a scanning frame 14, and a fixing frame 16 are sequentially mounted on the top of the frame 1. A camera 15 is mounted at the bottom center of the scanning frame 14. A coding machine 17 is mounted on the top of the fixing frame 16. A mounting frame 23 is mounted on the side of the frame 1 near the scanning frame 14. Multiple exhaust fans 24 are mounted in the middle of the mounting frame 23. A first air inlet 6 is opened at the bottom of the vacuum cleaner 5. A dust collection box 8 is connected to the top of the first air inlet 6 via an air intake pipe 7. A filter 9 is installed at the outlet of the dust collection box 8. A second air inlet 12 is provided on the side. The second air inlet 12 is connected to the main air inlet 7 through the air inlet branch pipe 13. When the fireproof plate on the surface of the transmission belt 3 moves to the bottom of the vacuum cleaner 5, the dust on the surface of the fireproof plate is blown up by the operation of multiple exhaust fans on the mounting bracket 23. Then, the air with dust passes through the first air inlet 6 and the second air inlet 12 in sequence through the dust collection box 8 and the filter 9, and is finally discharged from the exhaust port 11. The first air inlet 6 is flush with the transmission belt 3, while the second air inlet 12 is at an inclined angle to the transmission belt 3. This structural design can better extract the blown dust and avoid the adverse effects of dust on the surface of the fireproof plate on the inkjet printing process. The camera 15 is used to scan and detect the surface of the fireproof plate after dust removal.
[0033] An exhaust fan 10 is installed above the filter 9, and an exhaust port 11 is provided above the exhaust fan 10. A mesh is installed on the top of the exhaust port 11. The exhaust fan 10 is installed above the filter 9 to facilitate the extraction of air containing dust. An exhaust port 11 is provided above the exhaust fan 10, and a mesh is installed on the top of the exhaust port 11 to facilitate the discharge of filtered air. Threaded rods 20 are rotatably installed on the middle of both sides of the frame 1. A limit plate 21 is rotatably installed at one end of each threaded rod 20. A turntable is fixedly installed at one end of each threaded rod 20. Threaded rods 20 are rotatably installed on the middle of both sides of the frame 1. The threaded rods 20 have a limit plate 21 rotatably mounted at one end. Rotating the threaded rods 20 controls the movement of the limit plate 21, facilitating the limiting of fireproof boards of different widths. This not only improves the stability of the fireproof board on the transmission belt 3 surface but also prevents inconsistent coding positions due to different fireproof board positions. The coding machine 17 is connected to a printing pad 18 via a power cord. The printing pad 18 is installed on the bottom side of one side of the fixed frame 16. Multiple pairs of mounting holes 26 are opened in the middle of one side of the fixed frame 16. A pair of fixing bolts 27 are installed on one side of the printing pad 18. 7. A spray dock 18 is connected via a power cord. The spray dock 18 is installed at the bottom of one side of the fixed frame 16. Multiple pairs of mounting holes 26 are formed in the middle of one side of the fixed frame 16. A pair of fixing bolts 27 are installed on one side of the spray dock 18. The height of the spray dock 18 can be adjusted by connecting the pair of fixing bolts 27 to the mounting holes 26 at different height positions. Sliding rods 22 are integrally provided at both ends of one side of each of the two limiting plates 21. Each sliding rod 22 is slidably connected to the frame 1. A sliding connection is used to facilitate the restriction of the movement position of the limit plate 21. A human-machine interface 19 is installed on one side of the frame 1. A drive motor 4 is fixedly installed at one end of the outermost transmission roller 2. The human-machine interface 19 is installed on one side of the frame 1 to facilitate the control of the entire device. A drive motor 4 is fixedly installed at one end of the outermost transmission roller 2 to facilitate the power support for the transmission mechanism. A filter screen 25 is installed on one side of each of the multiple exhaust fans 24 to filter the incoming air and protect the exhaust fans 24.
[0034] Working principle: When the fireproof plate on the surface of the transmission belt 3 moves to below the vacuum cleaner 5, the dust on the surface of the fireproof plate is blown up by the operation of multiple exhaust fans on the mounting frame 23. Then, the air carrying dust passes through the first air inlet 6 and the second air inlet 12 in sequence through the dust collection box 8 and the filter 9, and is finally discharged from the exhaust port 11. The first air inlet 6 is flush with the transmission belt 3, while the second air inlet 12 is at an inclined angle to the transmission belt 3. This structural design can better extract the blown dust and avoid the adverse effects of dust on the surface of the fireproof plate on the inkjet printing process. Threaded rods 20 are rotatably installed in the middle of both sides of the frame 1. A limit plate 21 is rotatably installed at one end of each threaded rod 20. By rotating the threaded rods 20, the limit plate 21 can be moved to facilitate the limiting of fireproof plates of different widths. This not only improves the stability of the fireproof plate on the surface of the transmission belt 3, but also avoids the situation where the inkjet printing position is inconsistent due to different positions of the fireproof plate.
[0035] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. An automatic coding and inspection device for fireproof boards, comprising a frame (1), characterized in that: The top of the frame (1) is rotatably equipped with multiple drive rollers (2), and the outer ends of the multiple drive rollers (2) are fitted with drive belts (3). From left to right, a vacuum cleaner (5), a scanning frame (14) and a fixing frame (16) are installed on the top of the frame (1). A camera (15) is installed at the bottom center of the scanning frame (14). A coding machine (17) is installed on the top of the fixing frame (16). A mounting bracket (23) is installed on the side of the frame (1) near the scanning frame (14). The mounting bracket (23) has multiple exhaust fans (24) installed in the middle. The vacuum cleaner (5) has a first air inlet (6) at the bottom. The top of the first air inlet (6) is connected to a dust collection box (8) via an air intake pipe (7). The air outlet of the dust collection box (8) is equipped with a filter (9). A second air inlet (12) is opened on one side of the first air inlet (6). The second air inlet (12) is connected to the air intake pipe (7) via an air intake branch pipe (13).
2. The automatic coding and detection device for fireproof boards according to claim 1, characterized in that: An exhaust fan (10) is installed above the filter (9), and an exhaust port (11) is opened above the exhaust fan (10). A mesh is installed on the top of the exhaust port (11).
3. The automatic coding and detection device for fireproof boards according to claim 1, characterized in that: Both sides of the frame (1) are rotatably provided with threaded rods (20), one end of each threaded rod (20) is rotatably provided with a limit plate (21), and one end of each threaded rod (20) is fixedly provided with a turntable.
4. The automatic coding and detection device for fireproof boards according to claim 1, characterized in that: The inkjet printer (17) is connected to an inkjet header (18) via a power cord. The inkjet header (18) is installed on the bottom side of a fixed frame (16). Multiple pairs of mounting holes (26) are opened in the middle of one side of the fixed frame (16). A pair of fixing bolts (27) are installed on one side of the inkjet header (18).
5. The automatic coding and detection device for fireproof boards according to claim 3, characterized in that: Each of the two limiting plates (21) has a sliding rod (22) integrally provided at both ends on one side, and each sliding rod (22) is slidably connected to the frame (1).
6. The automatic coding and detection device for fireproof boards according to claim 1, characterized in that: A human-machine interface (19) is installed on one side of the frame (1), and a drive motor (4) is fixedly installed at one end of the outermost transmission roller (2).
7. The automatic coding and detection device for fireproof boards according to claim 1, characterized in that: Each of the multiple exhaust fans (24) has a filter (25) installed on one side.