Slotting and pattern cutting equipment for lamp box profile

By designing a grooving and cutting equipment for lightbox profiles, the problem of traditional equipment being unable to handle boards of different heights and angles was solved, achieving stable transportation and precise cutting, and improving production efficiency and product quality.

CN224181791UActive Publication Date: 2026-05-01TIANJIN YICAI JINYUAN CNC TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
TIANJIN YICAI JINYUAN CNC TECH CO LTD
Filing Date
2025-05-28
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

Traditional lightbox cutting equipment cannot efficiently handle boards of different heights and angles, resulting in low production efficiency, inconvenient operation, and unstable cutting, which affects product quality and appearance.

Method used

Design a light box profile grooving and cutting device, including a mounting bracket, a pressing component, a conveying component, and a cutting component. The pressing component keeps the material stable, the conveying component enables stable transportation, and the cutting component enables cutting at different angles and depths.

Benefits of technology

It enables stable cutting of boards of different heights and angles, improves production efficiency and cutting accuracy, reduces waste rate, and enhances the decorative effect of the board surface.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a lamp box profile slotting and pattern cutting device, which relates to the technical field of lamp box processing, and comprises a mounting bracket and a pattern cutting piece, three groups of material pressing components are arranged on the mounting bracket, two groups of material pressing components are arranged at the two ends of the mounting bracket, the other group of material pressing component is arranged between the two groups of material pressing components, and the pattern cutting piece is arranged on the mounting bracket. The three sets of material pressing assemblies are all connected with a flower cutting piece, a material conveying assembly and a limiting assembly are arranged on the flower cutting piece, a cutter assembly is installed in the installation support and located on one side of the flower cutting piece, the flower cutting piece comprises a plate, plate grooves are formed in the two sides of the plate, and the plate grooves are connected with the material conveying assembly. Pattern cutting treatment of plates at different angles and different depths is achieved through the cutter assembly, stable conveying of the plates in the cutting process is achieved through the pressing assembly and the conveying assembly, and the plate pattern cutting quality is guaranteed.
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Description

A grooving and cutting device for light box profiles Technical Field

[0001] This utility model relates to the field of light box processing technology, and in particular to a light box profile grooving and cutting equipment. Background Technology

[0002] With the rapid development of the lightbox industry, lightbox products are increasingly widely used in advertising displays and commercial promotions. In the lightbox manufacturing process, material cutting and processing is a crucial step, especially for boards of different shapes, sizes, and materials. Efficient and precise cutting has become a key factor in improving production efficiency and product quality.

[0003] However, traditional lightbox cutting equipment often suffers from low processing efficiency, inconvenient operation, and unstable cutting results when cutting materials of different heights and angles. Most cutting equipment currently on the market can only cut materials of standard thickness, failing to meet the needs of cutting at different heights and depths. This not only results in poor production line flexibility but also limits the fine processing of the material surface decoration, affecting the final product's appearance quality. Furthermore, existing equipment often cannot guarantee the stability of the materials during transportation, leading to inaccurate cutting and even material deformation, increasing the scrap rate.

[0004] To address the aforementioned issues, designing a cutting device capable of adapting to materials of varying heights and angles is crucial. Especially in the lightbox manufacturing industry, material cutting involves more than just simple dimensional adjustments; it also requires decorative cutting to enhance the lightbox's decorative effect and visual impact. Therefore, developing a device capable of cutting materials of different heights while ensuring stable transport and precise cutting during the process has become an essential requirement for technological advancement in the industry. This invention provides a lightbox profile grooving and decorative cutting device. Summary of the Invention

[0005] To address the aforementioned technical problems, this utility model discloses a grooving and cutting device for light box profiles, comprising a mounting bracket and a cutting component. The mounting bracket is equipped with three sets of pressing components, two of which are located at both ends of the mounting bracket, and the third set is located between the two sets of pressing components. All three sets of pressing components are connected to the cutting component. The cutting component is equipped with a material conveying component and a limiting component. A cutting component is installed inside the mounting bracket, and the cutting component is located on one side of the cutting component.

[0006] The cut flower part includes a board, and the board has grooves on both sides;

[0007] The pressing assembly includes a guide post fixing block one, a guide post fixing block two, and a pressing slider. The guide post fixing block one and the guide post fixing block two are symmetrically arranged and are both fixedly mounted on a mounting bracket. Two symmetrically distributed guide posts are arranged between the guide post fixing blocks one and two. The two ends of the guide posts are respectively fixedly mounted on the guide post fixing blocks one and two. The pressing slider is slidably connected to the two guide posts, and one end of the pressing slider is threadedly connected to a perforated handle one.

[0008] Furthermore, the material handling assembly includes a first robotic arm and a second robotic arm. The first robotic arm is slidably mounted on a mounting bracket, and a first cable chain is fixedly mounted on the first robotic arm. The first cable chain is connected to the mounting bracket. A first slider mounting plate is fixedly mounted at one end of the first robotic arm, and a first guide rail is fixedly mounted on the first slider mounting plate. The first guide rail is fixedly connected to the mounting bracket. A first lead screw nut is fixedly mounted on the first slider mounting plate. The second robotic arm is slidably mounted on the mounting bracket, located at the end of the mounting bracket away from the first robotic arm. A second slider mounting plate is fixedly mounted on the second robotic arm, and a second lead screw nut is fixedly mounted on the second slider mounting plate. A second guide rail is slidably mounted on the second lead screw nut. The second guide rail is fixedly connected to the mounting bracket. A second cable chain is fixedly mounted on the second robotic arm and fixedly connected to the mounting bracket. Both the first and second robotic arms are connected to the sheet metal. The material handling assembly also includes a transmission mechanism connected to the second and first lead screw nuts.

[0009] Furthermore, the transmission mechanism includes a stepper motor, a lead screw pulley, and a lead screw pulley. The stepper motor is fixedly mounted on a mounting bracket. The output end of the stepper motor is connected to the stepper motor pulley via a coupling. The lead screw pulley is connected to the stepper motor pulley via a double-sided toothed synchronous belt. The lead screw pulley is connected to the outer side of the double-sided toothed synchronous belt. A tensioning wheel is provided inside the lead screw pulley. A ball screw is fixedly mounted on the lead screw pulley and connected to the mounting bracket via a bearing. The ball screw is threadedly connected to a lead screw nut. A ball screw is fixedly mounted on the lead screw pulley and connected to the mounting bracket via a bearing. The ball screw is threadedly connected to a lead screw nut.

[0010] Furthermore, the limiting assembly includes two symmetrically distributed limiting components, each including an upper pressure plate and a lower pressure plate. The upper pressure plate is slidably mounted on the mounting bracket. The lower pressure plate and the upper pressure plate are respectively connected to two plate grooves. The cylinder arm of cylinder one is fixedly mounted on the upper pressure plate. An upper pressure plate cylinder mounting plate is fixedly mounted on the cylinder barrel of cylinder one. A guide rail three is slidably mounted on the upper pressure plate cylinder mounting plate. The guide rail three is fixedly mounted on the mounting bracket. A fixing block three is fixedly mounted on the lower pressure plate. The fixing block three is fixedly mounted on the mounting bracket.

[0011] Furthermore, the limiting component also includes a second plum blossom handle, which is threadedly connected to the upper pressure plate cylinder mounting plate.

[0012] Furthermore, the cutter assembly includes a guide rail connecting plate, which is fixedly installed at the bottom of the mounting bracket. Two symmetrically distributed guide rails are fixedly installed on the guide rail connecting plate, and the two guide rails are slidably connected to the head slider mounting plate. A switch baffle is fixedly installed on one side of the head slider mounting plate, and a nut fixing block is fixedly installed on the upper surface of the head slider mounting plate. Three evenly distributed optical axis connecting columns are fixedly installed on the lower surface of the head slider mounting plate, and the three optical axis connecting columns are connected to the lower plate of the head. The cutter assembly also includes a rotation mechanism, a lifting mechanism, a cutting mechanism, and two feed sensor brackets. Photoelectric switch sensors are fixedly installed on both feed sensor brackets, and the two photoelectric switch sensors are used in conjunction with the switch baffle.

[0013] Furthermore, the cutting blade assembly also includes a stepper motor connecting plate, which is fixedly mounted on the bottom of the mounting bracket. A third stepper motor is fixedly mounted on the stepper motor connecting plate. The output end of the third stepper motor is connected to a second stepper motor pulley via a coupling. The second stepper motor pulley is connected to a first synchronous belt, which is connected to the third stepper motor pulley. The third stepper motor pulley is rotatably mounted on the stepper motor connecting plate. A third ball screw is fixedly mounted on the third stepper motor pulley, and the third ball screw is threadedly engaged with a nut fixing block.

[0014] Furthermore, the rotating mechanism includes a stepper motor two and a synchronous belt three. The stepper motor two is fixedly mounted on the lower plate of the machine head. The output end of the stepper motor two is connected to a small pulley five through a coupling. The synchronous belt three is rotatably mounted on the lower plate of the machine head. A rotating shaft is fixedly mounted on the synchronous belt three. The small pulley five and the synchronous belt three are connected through a large pulley. Two symmetrically distributed aluminum shaft seats are fixedly mounted on the rotating shaft. The two aluminum shaft seats are connected together to a lifting rail mounting plate.

[0015] Furthermore, the lifting mechanism includes a stepper motor four and a small pulley two. The stepper motor four is fixedly mounted on the lifting rail mounting plate. The output end of the lifting rail mounting plate is connected to a small pulley one through a coupling. The small pulley two is rotatably mounted on the lifting rail mounting plate. The small pulley one and the small pulley two are connected by a synchronous belt two.

[0016] Furthermore, the cutting mechanism includes a synchronous belt gear plate and a synchronous belt clamping base plate. The synchronous belt gear plate and the synchronous belt clamping base plate are connected to the synchronous belt two by bolts. A guide rail motor connecting plate is fixedly installed on the synchronous belt clamping base plate. A DC motor is fixedly installed on one side of the guide rail motor connecting plate. The output end of the DC motor is connected to a small pulley three through a coupling. A flat belt is connected to the small pulley three. A small pulley four is connected to the flat belt. A saw blade is fixedly installed on the small pulley four. The saw blade is rotatably mounted on a guide rail five. Two symmetrically distributed guide rail sliders are slidably installed on the guide rail five. The two guide rail sliders are fixedly installed on the lifting rail mounting plate.

[0017] The advantages of this utility model compared with the prior art are: this utility model achieves the cutting of boards of different heights through its structure, achieves the cutting of boards at different angles and depths through the cutting blade assembly, and achieves stable transportation of boards during the cutting process through the pressing assembly and the conveying assembly, thus ensuring the quality of the board cutting. Attached Figure Description

[0018] Figure 1 is a schematic diagram of the overall structure of this utility model.

[0019] Figure 2 is a schematic diagram of part of the structure of this utility model.

[0020] Figure 3 is an enlarged schematic diagram of the structure at point A in Figure 2.

[0021] Figure 4 is a schematic diagram of the material conveying component of this utility model.

[0022] Figure 5 is a schematic diagram of the cutter assembly of this utility model.

[0023] Figure 6 is a partial structural diagram of the cutting blade assembly of this utility model.

[0024] Figure 7 is a schematic diagram of the second part of the cutting component of this utility model.

[0025] Figure 8 is a schematic diagram of the third part of the cutting component of this utility model.

[0026] Figure 9 is a schematic diagram of the fourth part of the cutting component of this utility model.

[0027] Reference numerals: 1-Mounting bracket; 2-Pressure assembly; 3-Material conveying assembly; 4-Limiting assembly; 5-Cut piece; 6-Cutter assembly; 201-Guide post fixing block one; 202-Guide post; 203-Pressure slider; 204-Plum blossom handle one; 205-Guide post fixing block two; 301-Robot arm one; 302-Drag chain one; 303-Stepper motor one; 304-Stepper motor pulley one; 305-Tensioner wheel; 306-Double-sided toothed synchronous belt; 307-Lead screw pulley one; 308-Ball screw one; 30 9-Screw nut one; 310-Slider mounting plate one; 311-Ball screw two; 312-Screw nut two; 313-Guide rail one; 314-Guide rail two; 315-Robot arm two; 316-Drag chain two; 317-Screw pulley two; 318-Slider mounting plate two; 401-Upper pressure plate; 402-Petal handle two; 403-Lower pressure plate; 404-Cylinder one; 405-Upper pressure plate cylinder mounting plate; 406-Guide rail three; 407-Fixing block three; 501-Sheet metal; 502-Sheet metal groove; 60 1-Lower plate of the machine head; 602-Optical axis connecting column; 603-Rotating shaft; 604-Stepper motor II; 605-Feed sensor bracket; 606-Photoelectric switch sensor; 607-Switch baffle; 608-Machine head slider mounting plate; 609-Guide rail connecting plate; 610-Guide rail IV; 611-Stepper motor III; 612-Stepper motor pulley II; 613-Synchronous belt I; 614-Stepper motor pulley III; 615-Lifting rail mounting plate; 616-Stepper motor IV; 617-Small pulley I; 618 - Synchronous belt II; 619- Aluminum shaft seat; 620- Small pulley II; 621- Synchronous belt gear plate; 622- Ball screw III; 623- Guide rail motor connecting plate; 624- Nut fixing block; 625- DC motor; 626- Small pulley III; 627- Flat belt; 628- Small pulley IV; 629- Saw blade; 630- Guide rail V; 631- Guide rail slider; 632- Synchronous belt clamping base plate; 633- Small pulley V; 634- Synchronous belt III; 635- Large pulley; 636- Stepper motor connecting plate. Detailed Implementation

[0028] It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.

[0029] In the description of this utility model, it should be understood that the terms "center," "longitudinal," "lateral," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicating orientation or positional relationships based on the orientation or positional relationships shown in the accompanying drawings, are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model. Furthermore, the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, features defined with "first," "second," etc., may explicitly or implicitly include one or more of that feature. In the description of this utility model, unless otherwise stated, "a plurality of" means two or more.

[0030] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0031] Example: As shown in Figures 1-9, a light box profile grooving and cutting device includes a mounting bracket 1 and a cutting component 5. The mounting bracket 1 is equipped with three sets of pressing components 2, two sets of pressing components 2 located at both ends of the mounting bracket 1, and the other set of pressing components 2 located between the two sets of pressing components 2. All three sets of pressing components 2 are connected to the cutting component 5. The cutting component 5 is equipped with a conveying component 3 and a limiting component 4, both of which are connected to the mounting bracket 1. A cutting component 6 is installed inside the mounting bracket 1, located on one side of the cutting component 5. The cutting component 5 includes a sheet material 501, with sheet grooves 502 on both sides of the sheet material 501. Through this design, the conveying component 3 is used to transport the sheet material 501, the pressing component 2 and the limiting component 4 are used to restrict the sheet material 501 during transport to prevent it from shaking, and the cutting component 6 is used to cut the sheet material 501.

[0032] The pressing assembly 2 includes a guide post fixing block 1 201, a guide post fixing block 205, and a pressing slider 203. The guide post fixing blocks 1 201 and 205 are symmetrically arranged and are fixedly mounted on the mounting bracket 1. Two symmetrically distributed guide posts 202 are arranged between the guide post fixing blocks 1 and 205, and the two ends of the guide posts 202 are respectively fixedly mounted on the guide post fixing blocks 1 201 and 205. The pressing slider 203 is slidably connected to the two guide posts 202. One end of the pressing slider 203 is threaded with a pendant handle 204. With the above scheme, when the plate 501 needs to be processed, the plate 501 enters between the guide post fixing block 201 and the guide post fixing block 205. The pressing slider 203 contacts the plate 501, and then the pendant handle 204 is turned. The pendant handle 204 contacts the guide post 202, so that the pendant handle 204 and the guide post 202 are in close contact.

[0033] Material handling assembly 3 includes a first robotic arm 301 and a second robotic arm 315. The first robotic arm 301 is slidably mounted on the mounting bracket 1. A drag chain 302 is fixedly mounted on the first robotic arm 301 and connected to the mounting bracket 1. A slider mounting plate 310 is fixedly mounted on one end of the first robotic arm 301. A guide rail 313 is fixedly mounted on the slider mounting plate 310 and fixedly connected to the mounting bracket 1. A lead screw nut 309 is fixedly mounted on the slider mounting plate 310. The second robotic arm 315 is slidably mounted on the mounting bracket 1, located at the end of the mounting bracket 1 away from the first robotic arm 301. A slider mounting plate 318 is fixedly mounted on the second robotic arm 315. The material handling assembly 3 includes a lead screw nut 312, on which a guide rail 314 is slidably mounted. The guide rail 314 is fixedly connected to the mounting bracket 1. A drag chain 316 is fixedly mounted on a robotic arm 315, which is also fixedly connected to the mounting bracket 1. Both robotic arms 301 and 315 are connected to the plate 501. The material handling assembly 3 also includes a transmission mechanism connected to the lead screw nut 312 and the lead screw nut 309. The transmission mechanism includes a stepper motor 303, a lead screw pulley 307, and a lead screw pulley 317. The stepper motor 303 is fixedly mounted on the mounting bracket 1. The output end of the stepper motor 303 is connected to a stepper motor pulley 304 via a coupling. The lead screw pulley 307 is connected to the stepper motor pulley 304. 304 is connected via a double-sided toothed synchronous belt 306. A second screw pulley 317 is connected to the outer side of the double-sided toothed synchronous belt 306. A tensioning wheel 305 is installed inside the second screw pulley 317. A first ball screw 308 is fixedly mounted on the first screw pulley 307. The first ball screw 308 is connected to the mounting bracket 1 via a bearing and is threadedly connected to the first screw nut 309. A second ball screw 311 is fixedly mounted on the second screw pulley 317. The second ball screw 311 is connected to the mounting bracket 1 via a bearing and is threadedly connected to the second screw nut 312. The rotation directions of the second ball screw 311 and the first ball screw 308 are opposite. Using this scheme, when the sheet metal 501 needs to be transported, the first stepper motor 303 is started. The output of stepper motor 303 drives stepper motor pulley 304 to rotate via a coupling. Stepper motor pulley 304 drives lead screw pulley 307 and lead screw pulley 317 to rotate. Lead screw pulley 307 drives lead screw nut 309 via ball screw 308. Lead screw pulley 317 drives lead screw nut 312 via ball screw 311. Lead screw nut 312 drives robot arm 315 via slider mounting plate 318. Lead screw nut 309 drives robot arm 301 via slider mounting plate 310. Robot arm 301 and robot arm 315 can move closer together or apart. When robot arm 301 and robot arm 315 are close together or apart, only robot arm 301 or robot arm 315 works.The sheet metal 501 is transported by the alternating operation of robotic arms 301 (1) and 315 (2).

[0034] Limiting component 4 includes two symmetrically distributed limiting components, each including an upper pressure plate 401 and a lower pressure plate 403. The upper pressure plate 401 is slidably mounted on the mounting bracket 1. The lower pressure plate 403 and the upper pressure plate 401 are respectively connected to two plate grooves 502. The cylinder arm of cylinder 404 is fixedly mounted on the upper pressure plate 401. An upper pressure plate cylinder mounting plate 405 is fixedly mounted on the cylinder barrel of cylinder 404. A guide rail 406 is slidably mounted on the upper pressure plate cylinder mounting plate 405. The guide rail 406 is fixedly mounted on the mounting bracket 1. A fixing block 403 is fixedly mounted on the lower pressure plate 403. 07. Fixing block 3 407 is fixedly installed on mounting bracket 1. The limiting component also includes plum blossom handle 2 402. The plum blossom handle 2 402 is threadedly connected to the upper pressure plate cylinder mounting plate 405. Through the above scheme, cylinder 1 404 is started. The cylinder arm of cylinder 1 404 drives the upper pressure plate 401 to move. The upper pressure plate 401 moves to directly above the plate 501. The lower pressure plate 403 is inserted into a plate groove 502 on the plate 501. The upper pressure plate cylinder mounting plate 405 slides on guide rail 3 406, so that the upper pressure plate 401 is inserted into another plate 501 on the plate 501.

[0035] The cutter assembly 6 includes a guide rail connecting plate 609, which is fixedly installed at the bottom of the mounting bracket 1. Two symmetrically distributed guide rails 610 are fixedly installed on the guide rail connecting plate 609. The two guide rails 610 are slidably connected to the head slider mounting plate 608. A switch baffle 607 is fixedly installed on one side of the head slider mounting plate 608. A nut fixing block 624 is fixedly installed on the upper end face of the head slider mounting plate 608. Three evenly distributed optical axis connecting columns 602 are fixedly installed on the lower end face of the head slider mounting plate 608. The three optical axis connecting columns 602 are connected to the head lower plate 601. The cutter assembly 6 also includes a rotation mechanism, a lifting mechanism, a cutting mechanism, and two feed sensor brackets 605. Photoelectric switch sensors 606 are fixedly installed on both feed sensor brackets 605. The two photoelectric switch sensors 606 are used in conjunction with the switch baffle 607.

[0036] The cutter assembly 6 also includes a stepper motor connecting plate 636, which is fixedly installed at the bottom of the mounting bracket 1. A third stepper motor 611 is fixedly installed on the stepper motor connecting plate 636. The output end of the third stepper motor 611 is connected to a second stepper motor pulley 612 via a coupling. The second stepper motor pulley 612 is connected to a first synchronous belt 613. The first synchronous belt 613 is connected to a third stepper motor pulley 614. The third stepper motor pulley 614 is rotatably mounted on the stepper motor connecting plate 636. A third ball screw 622 is fixedly installed on the third stepper motor pulley 614. The third ball screw 622 is threadedly engaged with a nut fixing block 624.

[0037] The rotating mechanism includes a stepper motor 604 and a synchronous belt 634. The stepper motor 604 is fixedly mounted on the lower plate 601 of the machine head. The output end of the stepper motor 604 is connected to a small pulley 633 via a coupling. The synchronous belt 634 is rotatably mounted on the lower plate 601 of the machine head. A rotating shaft 603 is fixedly mounted on the synchronous belt 634. The small pulley 633 and the synchronous belt 634 are connected by a large pulley 635. Two symmetrically distributed aluminum bearing seats 619 are fixedly mounted on the rotating shaft 603. The two aluminum bearing seats 619 are connected to a lifting rail mounting plate 615.

[0038] The lifting mechanism includes a stepper motor 616 and a small pulley 620. The stepper motor 616 is fixedly mounted on the lifting rail mounting plate 615. The output end of the lifting rail mounting plate 615 is connected to a small pulley 617 via a coupling. The small pulley 620 is rotatably mounted on the lifting rail mounting plate 615. The small pulley 617 and the small pulley 620 are connected by a synchronous belt 618.

[0039] The cutting mechanism includes a synchronous belt gear plate 621 and a synchronous belt clamping base plate 632. The synchronous belt gear plate 621 and the synchronous belt clamping base plate 632 are connected to the synchronous belt 618 by bolts. A guide rail motor connecting plate 623 is fixedly installed on the synchronous belt clamping base plate 632. A DC motor 625 is fixedly installed on one side of the guide rail motor connecting plate 623. The output end of the DC motor 625 is connected to a small pulley 626 via a coupling. A flat belt 627 is connected to the small pulley 626. A small pulley 628 is connected to the flat belt 627. A saw blade 629 is fixedly installed on the small pulley 628. The saw blade 629 is rotatably mounted on a guide rail 630. Two symmetrically distributed guide rail sliders 631 are slidably installed on the guide rail 630. The two guide rail sliders 631 are fixedly installed on the lifting rail mounting plate 615.

[0040] With the above scheme, when it is necessary to cut the board 501, stepper motor 3 611 is started. The output end of stepper motor 3 611 drives stepper motor pulley 2 612 to rotate through a coupling. Stepper motor pulley 2 612 drives stepper motor pulley 3 614 to rotate through synchronous belt 1 613. Stepper motor pulley 3 614 drives nut fixing block 624 to move through a thread. Nut fixing block 624 drives the head slider mounting plate 608 to slide on guide rail 4 610. The switch baffle 607 on the head slider mounting plate 608 cooperates with two photoelectric switch sensors 606 to prevent the head slider mounting plate 608 from moving too far. At this time, the cutting mechanism approaches the board 501, and DC motor 625 is started. The output end of DC motor 625 drives small pulley 3 626 to rotate through a coupling. Small pulley 3 626 drives small pulley 4 628 to rotate through flat belt 627. Small pulley 4 628 drives saw blade 629 to rotate. Stepper motor 4 (616) is started. The output of stepper motor 4 (616) drives small pulley 1 (617) to rotate via a coupling. Small pulley 1 (617) drives small pulley 2 (620) to rotate via synchronous belt 2 (618). Synchronous belt 2 (618) is driven by synchronous belt gear plate 621 and synchronous belt pressing base plate 632. Synchronous belt pressing base plate 632 drives guide rail 5 (630) to move up and down via guide rail motor connecting plate 623. Small pulley 2 (620) drives saw blade 629 to move up and down. The rotating saw blade 629 cuts the board 501. When angle adjustment is required, stepper motor 2 (604) is started. The output of stepper motor 2 (604) drives small pulley 5 (633) to rotate via a coupling. Small pulley 5 (633) drives synchronous belt 3 (634) to rotate via large pulley 635. Synchronous belt 3 (634) drives lifting rail mounting plate 615 to rotate via two aluminum shaft seats 619. Lifting rail mounting plate 615 drives the cutting mechanism to move.

[0041] The above embodiments only illustrate one or more implementations of this utility model, and their descriptions are relatively specific and detailed, but they should not be construed as limiting the scope of this utility model. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the appended claims.

Claims

1. A grooving and cutting device for light box profiles, characterized in that: The device includes a mounting bracket (1) and a flower-cutting component (5). The mounting bracket (1) is equipped with three sets of pressing components (2), two of which are located at either end of the mounting bracket (1), and the third set is located between the two sets. All three sets of pressing components (2) are connected to the flower-cutting component (5). The flower-cutting component (5) is equipped with a material conveying component (3) and a limiting component (4). A cutting component (6) is installed inside the mounting bracket (1) and is located on one side of the flower-cutting component (5). The flower-cutting component (5) includes a sheet material (501), and sheet grooves (502) are provided on both sides of the sheet material (501). The pressing component (2) includes a guide post fixing mechanism. Block 1 (201), guide post fixing block 2 (205) and pressure slider (203). The guide post fixing block 1 (201) and guide post fixing block 2 (205) are symmetrically arranged. The guide post fixing block 1 (201) and guide post fixing block 2 (205) are both fixedly installed on the mounting bracket (1). Two symmetrically distributed guide posts (202) are arranged between the guide post fixing block 1 (201) and guide post fixing block 2 (205). The two ends of the guide posts (202) are respectively fixedly installed on the guide post fixing block 1 (201) and guide post fixing block 2 (205). The pressure slider (203) is slidably connected to the two guide posts (202). One end of the pressure slider (203) is threadedly connected to a plum blossom handle 1 (204).

2. The light box profile grooving and cutting equipment as described in claim 1, characterized in that: The material handling assembly (3) includes a first robotic arm (301) and a second robotic arm (315). The first robotic arm (301) is slidably mounted on the mounting bracket (1). A drag chain (302) is fixedly mounted on the first robotic arm (301) and connected to the mounting bracket (1). A slider mounting plate (310) is fixedly mounted on one end of the first robotic arm (301). A guide rail (313) is fixedly mounted on the slider mounting plate (310) and fixedly connected to the mounting bracket (1). A lead screw nut (309) is fixedly mounted on the slider mounting plate (310). The second robotic arm (315) is slidably mounted on the mounting bracket (1) and is located on the mounting bracket. (1) At the end away from the first robot (301), the second robot (315) is fixedly mounted with a slider mounting plate (318), the second slider mounting plate (318) is fixedly mounted with a lead screw nut (312), the second lead screw nut (312) is slidably mounted with a guide rail (314), the second guide rail (314) is fixedly connected to the mounting bracket (1), the second robot (315) is fixedly mounted with a drag chain (316), the drag chain (316) is fixedly connected to the mounting bracket (1), the first robot (301) and the second robot (315) are both connected to the plate (501), the material conveying component (3) also includes a transmission mechanism, the transmission mechanism is connected to the second lead screw nut (312) and the first lead screw nut (309).

3. The light box profile grooving and cutting equipment as described in claim 2, characterized in that: The transmission mechanism includes a stepper motor (303), a lead screw pulley (307), and a lead screw pulley (317). The stepper motor (303) is fixedly mounted on the mounting bracket (1). The output end of the stepper motor (303) is connected to the stepper motor pulley (304) via a coupling. The lead screw pulley (307) and the stepper motor pulley (304) are connected via a double-sided toothed synchronous belt (306). The lead screw pulley (317) is connected to the outer side of the double-sided toothed synchronous belt (306). 17) A tensioning wheel (305) is provided inside. A ball screw (308) is fixedly installed on the first screw pulley (307). The first ball screw (308) is connected to the mounting bracket (1) through a bearing. The first ball screw (308) is threadedly connected to the first screw nut (309). A second ball screw (311) is fixedly installed on the second screw pulley (317). The second ball screw (311) is connected to the mounting bracket (1) through a bearing. The second ball screw (311) is threadedly connected to the second screw nut (312).

4. The light box profile grooving and cutting equipment as described in claim 3, characterized in that: The limiting component (4) includes two sets of symmetrically distributed limiting components. The limiting components include an upper pressure plate (401) and a lower pressure plate (403). The upper pressure plate (401) is slidably mounted on the mounting bracket (1). The lower pressure plate (403) and the upper pressure plate (401) are respectively connected to two plate grooves (502). The cylinder arm of cylinder one (404) is fixedly mounted on the upper pressure plate (401). The cylinder barrel of cylinder one (404) is fixedly mounted on the upper pressure plate cylinder mounting plate (405). The guide rail three (406) is slidably mounted on the upper pressure plate cylinder mounting plate (405). The guide rail three (406) is fixedly mounted on the mounting bracket (1). The fixing block three (407) is fixedly mounted on the lower pressure plate (403). The fixing block three (407) is fixedly mounted on the mounting bracket (1).

5. The light box profile grooving and cutting equipment as described in claim 4, characterized in that: The limiting component also includes a second plum blossom handle (402), which is threadedly connected to the upper pressure plate cylinder mounting plate (405).

6. The light box profile grooving and cutting equipment as described in claim 5, characterized in that: The cutter assembly (6) includes a guide rail connecting plate (609), which is fixedly installed at the bottom of the mounting bracket (1). Two symmetrically distributed guide rails (610) are fixedly installed on the guide rail connecting plate (609). The two guide rails (610) are slidably connected to the head slider mounting plate (608). A switch baffle (607) is fixedly installed on one side of the head slider mounting plate (608). A nut fixing block (624) is fixedly installed on the upper surface of the head slider mounting plate (608). The lower end face of the machine head slider mounting plate (608) is fixedly mounted with three evenly distributed optical axis connecting columns (602). The three optical axis connecting columns (602) are connected to the machine head lower plate (601). The cutter assembly (6) also includes a rotation mechanism, a lifting mechanism, a cutting mechanism, and two feed sensor brackets (605). Photoelectric switch sensors (606) are fixedly mounted on the two feed sensor brackets (605). The two photoelectric switch sensors (606) are used in conjunction with the switch baffle (607).

7. The light box profile grooving and cutting equipment as described in claim 6, characterized in that: The cutter assembly (6) also includes a stepper motor connecting plate (636), which is fixedly installed at the bottom of the mounting bracket (1). A third stepper motor (611) is fixedly installed on the third stepper motor (636). The output end of the third stepper motor (611) is connected to a second stepper motor pulley (612) via a coupling. The second stepper motor pulley (612) is connected to a first synchronous belt (613). The first synchronous belt (613) is connected to a third stepper motor pulley (614). The third stepper motor pulley (614) is rotatably mounted on the third stepper motor (636). A third ball screw (622) is fixedly installed on the third stepper motor pulley (614). The third ball screw (622) is threadedly engaged with a nut fixing block (624).

8. The light box profile grooving and cutting equipment as described in claim 7, characterized in that: The rotating mechanism includes a second stepper motor (604) and a third synchronous belt (634). The second stepper motor (604) is fixedly mounted on the lower plate (601) of the machine head. The output end of the second stepper motor (604) is connected to a fifth small pulley (633) via a coupling. The third synchronous belt (634) is rotatably mounted on the lower plate (601) of the machine head. A rotating shaft (603) is fixedly mounted on the third synchronous belt (634). The fifth small pulley (633) and the third synchronous belt (634) are connected via a large pulley (635). Two symmetrically distributed aluminum bearing seats (619) are fixedly mounted on the rotating shaft (603). The two aluminum bearing seats (619) are connected together to a lifting rail mounting plate (615).

9. The light box profile grooving and cutting equipment as described in claim 8, characterized in that: The lifting mechanism includes a stepper motor (616) and a small pulley (620). The stepper motor (616) is fixedly mounted on the lifting rail mounting plate (615). The output end of the lifting rail mounting plate (615) is connected to a small pulley (617) via a coupling. The small pulley (620) is rotatably mounted on the lifting rail mounting plate (615). The small pulley (617) and the small pulley (620) are connected by a synchronous belt (618).

10. The light box profile grooving and cutting equipment as described in claim 9, characterized in that: The cutting mechanism includes a synchronous belt gear plate (621) and a synchronous belt clamping base plate (632). The synchronous belt gear plate (621) and the synchronous belt clamping base plate (632) are connected to the synchronous belt (618) by bolts. A guide rail motor connecting plate (623) is fixedly installed on the synchronous belt clamping base plate (632). A DC motor (625) is fixedly installed on one side of the guide rail motor connecting plate (623). The output end of the DC motor (625) is connected to a small belt through a coupling. Wheel three (626), a flat belt (627) is connected to the small pulley three (626), a small pulley four (628) is connected to the flat belt (627), a saw blade (629) is fixedly installed on the small pulley four (628), the saw blade (629) is rotatably installed on the guide rail five (630), and two symmetrically distributed guide rail sliders (631) are slidably installed on the guide rail five (630), and the two guide rail sliders (631) are fixedly installed on the lifting rail mounting plate (615).