Automatic slitting device and method for heat preservation and decoration integrated plate
By designing the automatic slitting device of the thermal insulation decorative integrated plate, the rotational connection between the slide table and the cutter device and the lifting and sliding design, combined with the automatic positioning and conveying functions of the first and second drive components, the problems of low efficiency and poor accuracy of the traditional manual slitting method are solved, and efficient and accurate diversified cutting needs are achieved.
Patent Information
- Application Number
- CN202510242571.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-03
- Publication Date
- 2025-05-23
AI Technical Summary
The slitting method of traditional thermal insulation decorative integrated boards relies on manual operation, and there are problems such as high labor intensity, low efficiency, large cutting errors and single functions of cutting equipment, which cannot meet the diverse cutting needs.
An automatic slitting device for thermal insulation and decorative integrated panels is designed, including a workbench, a cutting device, a driving mechanism and a feeding mechanism. Through the rotating connection between the slide table and the cutter device and the lifting and sliding design, flexible switching of cutting angles and precise control of cutting depth can be achieved. At the same time, the first driving component and the second driving component realize the two-way automatic positioning and conveying of the plate, supporting the continuous processing of complex cutting paths.
It significantly improves processing adaptability and accuracy, reduces manual adjustment steps, improves processing efficiency, reduces manual intervention intensity and risk of sheet surface damage, and ensures production fluency.
Smart Images

Figure CN120023874A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of building material processing equipment, and in particular to an automatic cutting device and method for a thermal insulation decorative integrated panel. Background Art
[0002] In the field of building decoration materials, thermal insulation decorative integrated panels are widely used in various building exterior wall decoration projects due to their good thermal insulation performance and decorative effects; with the rapid development of the construction industry, the demand for thermal insulation decorative integrated panels continues to increase, and higher requirements are also placed on their processing efficiency and processing accuracy.
[0003] The traditional method of slitting thermal insulation decorative integrated panels mainly relies on manual operation, and simple cutting equipment is used for cutting after manual loading. This method has many disadvantages. First, manual loading is labor-intensive and inefficient, and it is difficult to ensure the accuracy of the loading position, which easily leads to cutting errors. Secondly, traditional cutting equipment has a single function and can usually only cut in a single direction, which cannot meet diverse cutting needs. This means that when facing thermal insulation decorative integrated panels with different specifications and shapes, it is necessary to frequently replace cutting equipment or use complex manual secondary processing, which greatly reduces production efficiency and increases production costs. Therefore, the above problems need to be solved urgently. Summary of the invention
[0004] In view of the above-mentioned defects or deficiencies in the prior art, it is desirable to provide an automatic cutting device and method for a thermal insulation decorative integrated panel.
[0005] In a first aspect, the present invention provides an automatic cutting device for a thermal insulation decorative integrated panel, comprising: A workbench extending in a first direction, with independent worktops installed at both ends and a movable groove extending in a second direction formed in the middle; A cutting device, the cutting device is installed in the movable groove through a slide and is rotatably connected to the slide for switching the cutting angle; The slide table is installed on the workbench in a liftable manner, and is used to drive the cutter device to lift in the vertical direction and slide in the second direction; A driving mechanism, wherein the driving mechanism comprises a first driving assembly and a second driving assembly; The first driving assembly is installed below the table and is used to drive the plate to be processed to move along the first direction; The table top is provided with a plurality of strip-shaped holes extending along the first direction and arranged along the second direction for the first driving assembly to dock with the plate; The second driving assembly is installed above the table top and is used to drive the plate to move along the second direction; A loading mechanism, the loading mechanism is located at one end of the workbench along the first direction, and comprises a frame; The frame is provided with a support platform for stacking the plates and a conveying mechanism for conveying the plates; The support platform can be lifted and lowered on the frame to adjust the top layer height of the board; The conveying mechanism is located above the supporting platform and comprises a rotatable roller shaft for contacting with the top surface of the plate and conveying the plate.
[0006] Furthermore, The first drive assembly includes a beam extending along the second direction; The workbench is provided with screw rods for driving the crossbeam at both ends of the crossbeam; The screw rod can be rotatably mounted on the workbench and is threadedly connected to the crossbeam; A matching first threaded hole is provided on the crossbeam corresponding to the screw rod.
[0007] Furthermore, Liftable plug plates are respectively provided on both sides of the crossbeam corresponding to the strip-shaped holes; The plug plate is driven by a cam and connected to the crossbeam via a mounting seat; The mounting seat is fixedly mounted on the crossbeam, and L-shaped limiting plates are respectively provided on both sides of the plug plate; A slot matching the plugging plate is formed between the limiting plate and the crossbeam, and is used to limit the sliding direction of the plugging plate.
[0008] Furthermore, The cam is rotatably mounted on the mounting seat and is located below the plug board; A matching stepping motor is also provided on the mounting seat corresponding to the cam, for driving the cam to rotate.
[0009] Furthermore, The second driving assembly includes a push plate extending along the first direction and a gantry for mounting the push plate; The number of the gantries is not less than two, and they are respectively connected across the workbench along the second direction; The push plate is connected to the plurality of gantries respectively via screw rods; The two ends of the screw rod are rotatably mounted on the gantry and are threadedly connected with the push plate.
[0010] Furthermore, The height of the push plate from the table top is greater than the thickness of the plate; The push plate is provided with mounting grooves evenly arranged along the first direction on one side close to the workbench; A paddle is eccentrically mounted in the mounting groove and is used for docking with and driving the plate; A matching driving motor is provided on one side of the push plate corresponding to the paddle and is connected to the paddle via a rotating shaft for driving the paddle to rotate.
[0011] Furthermore, The roller shaft is provided with coaxial flow channel holes inside, and the roller surface is provided with adsorption holes arranged in a matrix; One end of the flow channel hole is a closed structure, and the other end is connected to the vacuum generator through a rotary joint; The adsorption hole is a through hole and is communicated with the flow channel hole.
[0012] Furthermore, The number of the rollers includes multiple and they are parallel to each other; A matching mounting frame is provided on the frame body corresponding to the roller shaft; The rollers are rotatably mounted on the mounting frame and are evenly arranged along the first direction.
[0013] Furthermore, The frame is provided with lifting columns at the four corners of the support platform; A linear guide rail is embedded in the lifting column on one side close to the support platform, for sliding connection with the support platform; The support platform is also provided with an extension portion on one side of the lifting column, and the extension portion is provided with a second threaded hole penetrating therethrough; A matching threaded rod is provided on the lifting column corresponding to the second threaded hole, which is used to drive the support platform to move up and down.
[0014] The advantages and positive effects of the present invention are: Through the rotating connection and lifting and sliding design between the slide and the cutter device, this technical solution can flexibly switch the cutting angle and accurately control the cutting depth, meet the diverse cutting needs of plates of different specifications, and significantly improve the processing adaptability and accuracy; at the same time, the cooperation between the first drive component and the second drive component realizes the two-way automatic positioning and transportation of the plates, supports the continuous processing of complex cutting paths, reduces manual adjustment steps, and improves processing efficiency; and the lifting function of the support table can automatically adjust the stacking height of the plates, combined with the roller adsorption and conveying mechanism, to ensure smooth and continuous loading of the plates, reduce the intensity of manual intervention and the risk of plate surface damage, and ensure smooth production.
[0015] Furthermore, the movable slot and independent table design of the workbench, as well as the drive components placed above and below the table, save space and prevent the drive components from interfering with the movement of the plate, thereby enhancing system stability and operational safety. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 A schematic diagram of the structure of an automatic cutting device for thermal insulation decorative integrated panels provided in an embodiment of the present invention; Figure 2 A schematic structural diagram of a first driving assembly of an automatic cutting device for thermal insulation decorative integrated panels provided in an embodiment of the present invention; Figure 3 A schematic diagram of the structure of a second driving assembly of the automatic cutting device for thermal insulation decorative integrated panels provided by an embodiment of the present invention; Figure 4 A schematic structural diagram of a roller of an automatic slitting device for thermal insulation decorative integrated panels provided in an embodiment of the present invention; Figure 5 A schematic structural diagram of a support platform of an automatic cutting device for thermal insulation decorative integrated panels provided in an embodiment of the present invention.
[0017] The marks in the figure are represented as follows: 100-workbench; 110-movable slot; 120-crossbeam; 121-insert plate; 122-cam; 123-mounting seat; 124-stepping motor; 140-push plate; 141-paddle; 142-drive motor; 150-gantry; 151-screw; 200-cutter device; 210-slide; 300-frame; 310-support table; 320-roller; 321-flow channel hole; 322-adsorption hole; 330-mounting frame; 340-lifting column. DETAILED DESCRIPTION
[0018] In order to enable those skilled in the art to better understand the technical solution of the present invention, the present invention is described in detail below in conjunction with the accompanying drawings. The description in this part is only exemplary and explanatory and should not have any limiting effect on the scope of protection of the present invention.
[0019] First, please refer to Figure 1-Figure 5The present embodiment provides an automatic slitting device for thermal insulation decorative integrated panels, comprising a workbench 100, wherein the workbench 100 extends in a first direction, and has independent table surfaces installed at both ends, respectively, and a movable groove 110 extending in a second direction is formed in the middle; a cutting device 200, wherein the cutting device 200 is installed in the movable groove 110 through a slide 210, and is rotatably connected to the slide 210 for switching cutting angles; the slide 210 is movably installed on the workbench 100, and is used to drive the cutting device 200 to be lifted and lowered in a vertical direction and to slide in the second direction; a driving mechanism, wherein the driving device comprises a first driving component and a second driving component; the first driving component is installed below the table surface, and is used to drive the plate to be processed to be lifted and lowered in the first direction. movement; the table top is provided with a plurality of strip holes extending along the first direction and arranged along the second direction, for the first driving component to dock with the plate; the second driving component is installed above the table top, for driving the plate to move along the second direction; a loading mechanism, the loading mechanism is located at one end of the workbench 100 along the first direction, including a frame 300; the frame 300 is respectively provided with a support table 310 for stacking the plates and a conveying mechanism for conveying the plates; the support table 310 can be lifted and installed on the frame 300, for adjusting the top layer height of the plates; the conveying mechanism is located above the support table 310, and includes a rotatable roller 320, for abutting against and conveying the top surface of the plates.
[0020] In this embodiment, the workbench 100 extends longitudinally, with independent tabletops installed at both ends, and a movable groove 110 extending laterally is formed in the middle; the slide 210 is located in the movable groove 110 and is connected to the workbench 100 through a base; at the same time, a matching fixed seat is provided inside the workbench 100 corresponding to the base, and is connected to the base through an electric lifting rod, so that the slide 210 can be raised and lowered relative to the workbench 100 and can slide in the movable groove 110.
[0021] In this embodiment, a matching guide rod and guide sleeve are provided between the base and the fixed seat; one end of the guide sleeve is sleeved on the guide rod, and the other end is fixedly mounted on the base; and the end of the guide rod away from the guide sleeve is fixedly mounted on the fixed seat.
[0022] In this embodiment, the cutter device 200 is rotatably connected to the slide 210 via a central rotating shaft, and a high-precision bearing is installed on the rotating shaft to ensure that the cutter device 200 can rotate flexibly and switch the cutting angle.
[0023] In this embodiment, the first drive component is installed under the table top. There are multiple strip holes on the table top extending longitudinally and arranged transversely. The edges of the strip holes are chamfered to prevent scratches on the plate. The transmission component of the first drive component is connected to the plate to be processed by passing through the strip holes.
[0024] In this embodiment, the second driving component is installed above the table top, and the driving direction of the plate is perpendicular to the driving direction of the first driving component; at the same time, it is also located on the upper and lower sides of the table top respectively with the first driving component, which can ensure that the plate is driven at the same time without affecting each other.
[0025] In this embodiment, the loading mechanism is located at one end of the workbench 100 along the longitudinal direction. The frame 300 is made by welding technology and has a solid structure. The support table 310 can be raised and lowered on the frame 300, which can be used for temporary storage of plate materials and ensure that the plates on the top layer are always at a specified height, thereby facilitating automatic loading of the plates.
[0026] In a preferred embodiment, the first driving assembly includes a beam 120 extending along the second direction; screw rods for driving the beam 120 are respectively provided at both ends of the workbench 100; the screw rod is rotatably mounted on the workbench 100 and is threadedly connected to the beam 120; a matching first threaded hole is provided on the beam 120 corresponding to the screw rod.
[0027] In this embodiment, the crossbeam 120 of the first driving assembly extends in the horizontal direction, and a screw rod that can be rotatably installed is provided at both ends of the crossbeam 120 on the workbench 100. The screw rod is installed on the workbench 100 through a seat bearing, and the seat bearing is fixed to the workbench 100 by bolts to ensure the stability of the screw rod when rotating. The crossbeam 120 is threadedly connected to the screw rod through a first threaded hole, and the threaded hole is processed with high precision to ensure accurate cooperation with the screw rod, so that the crossbeam 120 can move smoothly in the horizontal direction, thereby driving the plate connected to the crossbeam 120 to move in the longitudinal direction.
[0028] In a preferred embodiment, liftable plug plates 121 are respectively provided on both sides of the crossbeam 120 corresponding to the strip holes; the plug plates 121 are driven by a cam 122 and are connected to the crossbeam 120 via a mounting seat 123; the mounting seat 123 is fixedly mounted on the crossbeam 120, and L-shaped limit plates are respectively provided on both sides of the plug plates 121; a slot matching the plug plates 121 is formed between the limit plates and the crossbeam 120 for limiting the sliding direction of the plug plates 121.
[0029] In this embodiment, corresponding strip holes on both sides of the crossbeam 120 are provided with liftable plug plates 121, which are driven by cams 122 and connected to the crossbeam 120 through mounting seats 123. The L-shaped limit plates on both sides of the mounting seats 123 form a slot with the crossbeam 120 to limit the sliding direction of the plug plates 121, and the limit plates are connected to the crossbeam 120 by bolts for easy installation and adjustment. The end of the plug plate 121 that contacts the cam 122 is provided with a roller to reduce wear, and the plug plate 121 is connected to the mounting seat 123 through a guide column to ensure the stability of the lifting process. After the plug plate 121 is raised, it abuts against the side of the plate, thereby driving the plate to move longitudinally.
[0030] In this embodiment, a pad block can also be provided on the plug plate 121 near one end of the cutting device 200; the pad block is located on the side of the plug plate 121 away from the beam 120, and when the plug plate 121 on the other side reaches the limit position, the plug plate 121 on the other side can be switched to cooperate with the pad block for limit output, so that the plate can be completely cut; at the same time, the slot is formed by docking two limit plates, and the pad block can pass through the middle without affecting the limit.
[0031] In a preferred embodiment, the cam 122 is rotatably mounted on the mounting seat 123 and is located below the plug board 121 ; a matching stepping motor 124 is also provided on the mounting seat 123 corresponding to the cam 122 for driving the cam 122 to rotate.
[0032] In this embodiment, the cam 122 is rotatably mounted on the mounting seat 123 and is located below the plug board 121 . The stepping motor 124 on the mounting seat 123 drives the cam 122 to rotate.
[0033] In this embodiment, the stepper motor 124 can accurately control the rotation angle of the cam 122, and then accurately control the lifting height and time of the insert plate 121, so as to meet the conveying requirements of plates of different specifications and improve the adaptability of the equipment to different processing tasks.
[0034] In a preferred embodiment, the second driving assembly includes a push plate 140 extending along the first direction and a gantry 150 for mounting the push plate 140; the number of the gantries 150 is not less than two, which are respectively bridged on the workbench 100 along the second direction; the push plate 140 and the plurality of gantries 150 are connected to each other via screws 151; both ends of the screw 151 are respectively rotatably mounted on the gantry 150 and are threadedly connected to the push plate 140.
[0035] In this embodiment, the push plate 140 of the second driving assembly extends longitudinally and is installed through a gantry 150. There are no less than two gantries 150, which are laterally spanned on the workbench 100. The push plate 140 is connected to multiple gantries 150 through a screw rod 151. Both ends of the screw rod 151 are rotatably installed on the gantry 150 and are threadedly connected to the push plate 140.
[0036] In this embodiment, rotating the screw 151 can adjust the position of the push plate 140, thereby driving the plate to move laterally. The connection method of multiple gantries 150 and screws 151 ensures the stable operation of the push plate 140, making the lateral movement of the plate more stable and reliable, which is conducive to improving cutting accuracy.
[0037] In a preferred embodiment, the height of the push plate 140 from the table surface is greater than the thickness of the plate; the push plate 140 is provided with mounting grooves evenly arranged along the first direction on one side close to the workbench 100; a paddle 141 is eccentrically installed in the mounting groove for docking with and driving the plate; a matching drive motor 142 is provided on one side of the push plate 140 corresponding to the paddle 141, and is connected to the paddle 141 through a rotating shaft for driving the paddle 141 to rotate.
[0038] In this embodiment, the height of the push plate 140 from the table surface is greater than the thickness of the plate, and a mounting groove evenly arranged along the longitudinal direction is provided on the side close to the workbench 100, and a paddle 141 is eccentrically installed in the groove. A driving motor 142 on one side of the push plate 140 is connected to the paddle 141 through a rotating shaft to drive it to rotate.
[0039] In this embodiment, the paddle 141 rotates under the drive of the driving motor 142. The eccentric installation enables it to generate greater thrust on the plate during rotation, thereby enhancing the pushing effect. The driving motor 142 facilitates the control of the rotation of the paddle 141 to meet the pushing requirements of different plates.
[0040] In a preferred embodiment, the interior of the roller shaft 320 is provided with a coaxial flow channel hole 321, and the roller surface is provided with adsorption holes 322 arranged in a matrix; one end of the flow channel hole 321 is a closed structure, and the other end is connected to the vacuum generator through a rotary joint; the adsorption hole 322 is a through hole and is connected to the flow channel hole 321.
[0041] In this embodiment, a coaxial flow channel hole 321 is provided inside the roller 320, and adsorption holes 322 arranged in a matrix are provided on the roller surface. One end of the flow channel hole 321 is a closed structure and is sealed by a welding process. The other end is connected to the vacuum generator through a rotary joint. The rotary joint adopts a mechanical seal structure with good sealing performance to ensure a stable vacuum environment. The adsorption hole 322 is connected to the flow channel hole 321. When the vacuum generator is working, negative pressure is generated in the flow channel hole 321 and the adsorption hole 322 to adsorb the plate, which facilitates the roller 320 to transport the plate.
[0042] In a preferred embodiment, the number of the rollers 320 includes multiple ones, which are parallel to each other; a matching mounting frame 330 is provided on the frame body 300 corresponding to the rollers 320; the rollers 320 can be rotatably mounted on the mounting frame 330 and are evenly arranged along the first direction.
[0043] In this embodiment, a plurality of rollers 320 parallel to each other are evenly arranged in the longitudinal direction and can be rotatably mounted through the mounting frame 330 on the frame body 300. Rolling bearings are mounted at the journals at both ends of the rollers 320, and the rolling bearings are mounted in the bearing seats of the mounting frame 330. The bearing seats and the mounting frame 330 are connected by bolts, and the mounting frame 330 is fixed to the frame body 300 by welding or bolting to ensure the stable operation of the rollers 320.
[0044] In a preferred embodiment, the frame 300 is provided with lifting columns 340 at the four corners of the support platform 310; a linear guide rail is embedded in the lifting column 340 on the side close to the support platform 310 for sliding connection with the support platform 310; the support platform 310 is also provided with an extension portion on one side of the lifting column 340, and a second threaded hole is penetrated through the extension portion; a matching threaded rod is provided on the lifting column 340 corresponding to the second threaded hole for driving the support platform 310 to rise and fall.
[0045] In this embodiment, the frame 300 is provided with lifting columns 340 at the four corners of the support platform 310. The lifting columns 340 are embedded with linear guide rails near the side of the support platform 310. The linear guide rails are fixed to the lifting columns 340 by bolts and are slidably connected to the support platform 310 by a slider. The connection is firm and the sliding is smooth. A second threaded hole is provided on the extension part of one side of the support platform 310. The threaded rod on the lifting column 340 matches with the lifting column 340 to drive the support platform 310 to rise and fall. One end of the threaded rod is rotatably connected to the top of the lifting column 340 through a thrust ball bearing, and the other end passes through the second threaded hole. By rotating the threaded rod, the support platform 310 can be smoothly raised and lowered along the linear guide rail.
[0046] In a preferred embodiment, an auxiliary moving mechanism is also provided inside the table top; the auxiliary moving mechanism is located between two adjacent shaped holes, and includes a micro motor and a driving member; wherein the driving member is eccentrically installed inside the table top, and can rise to the top of the table top by rotating, thereby lifting and translating the plate; the micro motor is connected to the mounting shaft of the driving member through a reduction head, and is used to drive the driving member to rotate.
[0047] In this embodiment, when the position of the plate exceeds the travel range of the driving mechanism, the plate can be first moved into the travel range by the auxiliary moving mechanism and then driven by the driving mechanism.
[0048] In a second aspect, the present invention provides a method of use, comprising the following steps: S100, stacking the plates to be processed on the support table 310, and adjusting the support table 310 to raise or lower the plates so that the plates on the top layer are at a specified height; S110, start the feeding mechanism to transport the plate on the top layer of the support table 310 to the workbench 100; S200, determining that the plate needs to be cut in a first direction; S210, start the slide 210 to move the cutter device 200 to the designated cutting position, and adjust the cutting direction of the cutter device 200; S220, start the second driving assembly to push the plate against the positioning surface of the edge of the workbench; 100; to form positioning and limit; S230, start the first driving assembly to push the plate toward the cutting device; 200; cut, and then reverse drive the remaining plate to reset; S240, repeating operations S220-S230; S300, determining that the plate needs to be cut in the second direction; S310, start the slide table; 210; lower the cutting device; 200; to the bottom of the table; S320, start the second driving device to push the plate against the positioning surface of the edge of the workbench; 100, to form positioning and limit; S330, starting the first driving device to transport the plate to a designated position; S340, first drive the cutting device; 200; rise and cut through the plate, then drive the cutting device; 200; cut along the second direction; S350, drive the cutter device; 200; descend and reset; S360, repeat operations S330-S350.
[0049] This article uses specific examples to illustrate the principles and implementation methods of the present invention. The description of the above embodiments is only used to help understand the method of the present invention and its core ideas. The above is only a preferred implementation method of the present invention. It should be pointed out that due to the limitations of textual expression, there are objectively infinite specific structures. For ordinary technicians in this technical field, without departing from the principles of the present invention, several improvements, modifications or changes can be made, and the above technical features can be combined in an appropriate manner; these improvements, modifications, changes or combinations, or the direct application of the inventive concept and technical solution to other occasions without improvement, should be regarded as the protection scope of the present invention.
Claims
1. An automatic cutting device for thermal insulation decorative integrated panels, characterized in that: include: A workbench (100), the workbench (100) extending in a first direction, with independent worktops installed at both ends, and a movable groove (110) extending in a second direction formed in the middle; A cutting device (200), the cutting device (200) being installed in the movable groove (110) via a slide table (210) and being rotatably connected to the slide table (210) for switching a cutting angle; The slide table (210) is installed on the workbench (100) in a liftable manner, and is used to drive the cutter device (200) to be lifted and lowered in the vertical direction and to slide in the second direction; A driving mechanism, wherein the driving mechanism comprises a first driving assembly and a second driving assembly; The first driving assembly is installed below the table and is used to drive the plate to be processed to move along the first direction; The table top is provided with a plurality of strip-shaped holes extending along the first direction and arranged along the second direction for the first driving assembly to dock with the plate; The second driving assembly is installed above the table top and is used to drive the plate to move along the second direction; A loading mechanism, the loading mechanism is located at one end of the workbench (100) along the first direction, and comprises a frame (300); The frame (300) is provided with a support platform (310) for stacking the plates and a conveying mechanism for conveying the plates; The support platform (310) is installed on the frame (300) in a liftable manner, and is used to adjust the height of the top layer of the plate; The conveying mechanism is located above the support platform (310) and comprises a rotatable roller (320) for contacting with the top surface of the plate and conveying the plate.
2. The automatic cutting device for thermal insulation decorative integrated panels according to claim 1 is characterized in that: The first driving assembly comprises a beam (120) extending along the second direction; Screw rods for driving the cross beam (120) are respectively provided at both ends of the cross beam (120) on the workbench (100); The screw rod is rotatably mounted on the workbench (100) and is threadably connected to the crossbeam (120); A matching first threaded hole is provided on the crossbeam (120) corresponding to the threaded rod.
3. The automatic cutting device for thermal insulation decorative integrated panels according to claim 2 is characterized in that: Liftable plug plates (121) are respectively provided on both sides of the crossbeam (120) corresponding to the strip-shaped holes; The inserting plate (121) is driven by a cam (122) and is connected to the crossbeam (120) via a mounting seat (123); The mounting seat (123) is fixedly mounted on the crossbeam (120), and L-shaped limiting plates are respectively provided on both sides corresponding to the plug plate (121); A slot matching the inserting plate (121) is formed between the limiting plate and the crossbeam (120) and is used to limit the sliding direction of the inserting plate (121).
4. The automatic cutting device for thermal insulation decorative integrated panels according to claim 3 is characterized in that: The cam (122) is rotatably mounted on the mounting seat (123) and is located below the plug plate (121); A matching stepping motor (124) is also provided on the mounting seat (123) corresponding to the cam (122) for driving the cam (122) to rotate.
5. The automatic cutting device for thermal insulation decorative integrated panels according to claim 4 is characterized in that: The second driving assembly comprises a push plate (140) extending along the first direction and a gantry (150) for mounting the push plate (140); The number of the gantries (150) is no less than two, and they are respectively straddled on the workbench (100) along the second direction; The push plate (140) and the plurality of gantries (150) are connected via screw rods (151) respectively; Both ends of the screw rod (151) are rotatably mounted on the gantry (150) and are threadedly connected to the push plate (140).
6. The automatic cutting device for thermal insulation decorative integrated panels according to claim 5, characterized in that: The height of the push plate (140) from the table surface is greater than the thickness of the plate; A side of the push plate (140) close to the workbench (100) is provided with mounting grooves evenly arranged along the first direction; A paddle (141) is eccentrically mounted in the mounting groove and is used for docking with and driving the plate; A matching driving motor (142) is provided on one side of the push plate (140) corresponding to the paddle (141), and is connected to the paddle (141) via a rotating shaft, for driving the paddle (141) to rotate.
7. The automatic cutting device for thermal insulation decorative integrated panels according to claim 6, characterized in that: The roller shaft (320) is provided with coaxial flow channel holes (321) inside, and the roller surface is provided with adsorption holes (322) arranged in a matrix; One end of the flow channel hole (321) is a closed structure, and the other end is connected to the vacuum generator via a rotary joint; The adsorption hole (322) is a through hole, and is connected to the flow channel hole (321).
8. The automatic cutting device for thermal insulation decorative integrated panels according to claim 7, characterized in that: The rollers (320) include a plurality of rollers (320) which are parallel to each other; A matching mounting frame (330) is provided on the frame body (300) corresponding to the roller shaft (320); The rollers (320) are rotatably mounted on the mounting frame (330) and are evenly arranged along the first direction.
9. The automatic cutting device for thermal insulation decorative integrated panels according to claim 8, characterized in that: The frame (300) is provided with lifting columns (340) at the four corners of the support platform (310); A linear guide rail is embedded in the lifting column (340) on one side close to the support platform (310), and is used for being slidably connected to the support platform (310); The support platform (310) is further provided with an extension portion on one side of the lifting column (340), and the extension portion is provided with a penetrating second threaded hole; A matching threaded rod is provided on the lifting column (340) corresponding to the second threaded hole, and is used to drive the support platform (310) to move up and down.
10. A method for using the automatic cutting device for thermal insulation decorative integrated panels according to claim 9, comprising the following steps: S100, stacking the plates to be processed on the support table (310), and adjusting the support table (310) to move up and down so that the plates on the top layer are at a specified height; S110, starting the loading mechanism to transport the plate located on the top layer of the support table (310) to the workbench (100); S200, determining that the plate needs to be cut in a first direction; S210, starting the slide 210 to move the cutting device (200) to a designated cutting position, and adjusting the cutting direction of the cutting device (200); S220, starting the second driving assembly to push the plate against the positioning surface at the edge of the workbench (100) to form a positioning and limiting position; S230, starting the first driving assembly to first push the plate toward the cutting device (200) for cutting, and then reversely driving the remaining plate to reset; S240, repeating operations S220-S230; S300, determining that the plate needs to be cut in the second direction; S310, starting the slide table (210) to lower the cutting device (200) to below the table surface; S320, starting the second driving device to push the plate against the positioning surface at the edge of the workbench (100) to form a positioning and limiting position; S330, starting the first driving device to transport the plate to a designated position; S340, first driving the cutting device (200) to rise and cut through the plate, and then driving the cutting device (200) to cut along a second direction; S350, driving the cutting device (200) to descend and reset; S360, repeat operations S330-S350.