Roller painting color aluminum plate slotting and cutting device

Through the design of roller support components and positioning components, the problem of surface wear of colored aluminum plates during the cutting process is solved, and the rapid positioning and efficient cutting of colored aluminum plates are achieved, which improves processing efficiency.

CN120244079AInactive Publication Date: 2025-07-04HENAN JURUN NEW MATERIAL CO LTD
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Patent Information

Application Number
CN202510506925.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-22
Publication Date
2025-07-04
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing color aluminum plate groove cutting devices are prone to wear on the surface of the aluminum plate when adjusting the position, affecting the processing quality, and the interval between loading and cutting processes is long and the efficiency is low.

Method used

The roller support assembly and positioning assembly are used to cooperate with the mobile frame, and the downward movement of the roller support assembly and the clamping and fixing of the positioning assembly are achieved to quickly adjust and position the color aluminum plate, and the double moving frames work in turn to achieve the simultaneous loading and cutting of the plate.

Benefits of technology

It reduces the surface wear of colored aluminum plates, improves processing efficiency, shortens the feeding and cutting interval time, and improves the efficiency of the processing table.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a grooving and cutting device for a roller-coated color aluminum plate in the technical field of roller-coated color aluminum plate machining, which comprises a machining table, side plates, cutting frames and a cutting mechanism, two roller supporting assemblies are symmetrically arranged on the machining table, two moving frames are connected between the two side plates through moving assemblies, and placing assemblies, rotating rollers and positioning assemblies are arranged on the moving frames. A colored aluminum plate can be rapidly pushed towards the inner side through the roller supporting assembly, the colored aluminum plate is located on the multiple rotating rollers through downward movement of the roller supporting assembly so that the position of the colored aluminum plate in the width direction can be adjusted, the colored aluminum plate can be more rapidly and conveniently moved through supporting of the roller supporting assembly and the rotating rollers, and the production efficiency of the colored aluminum plate is improved. The surface abrasion of the colored aluminum plate during translation is reduced; a colored aluminum plate is clamped and fixed through the upward-moving positioning assembly and the baffle, positioning of the plate is achieved, and the position of the containing assembly can be adjusted through the positioning adjusting assembly. And the two moving frames are arranged, so that plate feeding and cutting can be carried out at the same time.
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Description

Technical Field

[0001] The present invention relates to the technical field of roll-coated colored aluminum plate processing, and specifically relates to a grooving and cutting device for roll-coated colored aluminum plates. Background Art

[0002] During the processing of colored aluminum plates, it is necessary to perform processing such as cleaning, chromating, roll coating, baking, etc., and various color paint coatings are attached to the surface through roll coating treatment. Colored aluminum is widely used in many fields such as aluminum-plastic panels, honeycomb panels, insulation panels, aluminum curtain walls, shutters, rolling shutters, aluminum-magnesium-manganese roofing systems, aluminum ceilings, household appliances, downspouts, etc.

[0003] During the processing of colored aluminum plates, grooving and cutting and other treatments need to be performed according to requirements. An aluminum plate grooving and cutting device with the patent publication number CN222002060U mainly includes a support chassis and a cutting cutter head. A lifting cylinder and a lifting platform are installed at the top of the support chassis. A bidirectional lead screw, a movable block and a positioning frame are arranged inside the lifting platform; through the cooperation of the positioning frame and the fixed pressing plate to abut against the outer surface of the aluminum plate, the effect of facilitating the positioning and support of the aluminum plate during cutting is achieved, the stability of the aluminum plate during placement is improved, and the overall applicability of the lifting platform to aluminum plates of different sizes is enhanced.

[0004] However, when adjusting the position of the aluminum plate in the above device, it is necessary to move and adjust the aluminum plate, and the position where the bottom of the aluminum plate contacts the device is prone to wear and scratches during multiple movements, resulting in a reduction in the surface quality of the aluminum plate and affecting subsequent processing.

[0005] Based on this, the present invention designs a grooving and cutting device for roll-coated colored aluminum plates to solve the above problems. Summary of the Invention

[0006] The purpose of the present invention is to provide a grooving and cutting device for roll-coated colored aluminum plates to solve the problems raised in the above background art.

[0007] To achieve the above purpose, the present invention provides the following technical solutions:

[0008] A grooving and cutting device for roll-coated colored aluminum plates includes a processing table. Vertically arranged side plates are symmetrically fixed on both sides of the top of the processing table, and a cutting frame is commonly fixed above the middle of the two side plates. A cutting mechanism is arranged at the bottom of the cutting frame;

[0009] Horizontal guide grooves are arranged on the inner side surfaces of the side plates. The two guide grooves face each other and commonly slidably connect a moving frame. Both sides of the moving frame are correspondingly connected to the guide grooves through moving components. Roller support components are arranged on both sides of the bottom of the processing table corresponding to the position of each moving frame, and adjusting plates are connected to both sides of the side plates corresponding to the position of the moving frame through first hydraulic expansion rods;

[0010] Two placing components are symmetrically arranged on the moving frame. Each placing component includes two horizontal and parallel placing bases. A positioning and adjusting component is arranged on the moving frame, and the bottoms of multiple placing bases are correspondingly connected to the positioning and adjusting component;

[0011] An L-shaped material blocking frame is fixed on the top of the placing base, and the opening of the material blocking frame faces the outside of the processing table. A baffle is fixed on the inner top of the material blocking frame. A rotating roller is rotatably connected to the position corresponding to the baffle on the placing base, and a positioning component is arranged on the outer side of the rotating roller.

[0012] Preferably, the moving frame includes a moving box. The two ends of the moving box are slidably connected to the corresponding guide grooves and are correspondingly connected to the moving component. Two moving plates are symmetrically arranged on one side of the end of the moving box close to the processing table. The inner ends of the moving plates are slidably connected to the guide grooves, and the tops are fixedly connected to the moving box through connecting frames. The positioning and adjusting component is located between the outer ends of the two moving plates. There is a notch in the middle of the side wall of the moving box. The ends of the four placing bases pass through the notch and are all slidably connected to the bottom of the inner cavity of the moving box.

[0013] Preferably, the moving component includes a first screw rod threadedly connected to the guide groove. One end of the first screw rod extends out of the guide groove and is connected to a motor. The two sides of the moving box are symmetrically arranged and rotatably connected with first threaded cylinders. The first screw rod is threadedly connected to the corresponding first threaded cylinders. Friction blocks are arranged at the positions corresponding to the first threaded cylinders inside the moving box. A V-shaped card slot is arranged at one end of the friction block close to the first threaded cylinder, and the other end is connected to a fifth hydraulic expansion rod.

[0014] Preferably, the positioning and adjusting component includes a moving groove fixed between the two moving plates. The bottom of the outer section of the placing base is slidably connected to the top end of the moving groove, and an adjusting block is correspondingly fixed at the bottom of the placing base and is slidably connected to the moving groove. A second threaded cylinder is jointly fixed on the two adjusting blocks in the same placing component. A second screw rod is rotatably connected in the moving groove, and one end of the second screw rod extends out of the moving groove and is connected to a motor. The thread directions of the two side sections of the second screw rod are opposite, and the two second threaded cylinders are respectively threadedly connected to the two side sections of the second screw rod.

[0015] Preferably, the positioning component includes a positioning plate located above the placing base, and the positioning plate slides along the vertical direction relative to the placing base. A through groove is arranged in the middle of the positioning plate, and the rotating roller is located in the through groove of the positioning plate. A plurality of rotating shafts are evenly arranged along the length direction below the positioning plate. The rotating shafts are rotatably connected to the placing base, and a rotating gear is fixed in the middle of the rotating shafts, and parallel rotating connecting rods are symmetrically fixed at both ends. The rotating connecting rods are obliquely arranged, and the top ends are rotatably connected to limiting sliders. Limiting sliding grooves are correspondingly arranged at the bottom of the positioning plate, and the limiting sliders are slidably connected to the limiting sliding grooves. A cavity is arranged inside the placing base, and a rotating component is arranged in the placing base and is correspondingly connected to the plurality of rotating gears;

[0016] The rotating assembly includes a moving rod slidably connected to the inside of the placement base. At the position corresponding to each rotating gear on the top of the moving rod, a moving rack is fixed. At the position corresponding to each rotating gear on the top of the placement base, a notch is provided. The bottom of the rotating gear passes through the notch and meshes with the moving rack. One end of the moving rod extends out of the placement base, extends into the moving box, and is fixed with a moving block. A telescopic shaft is horizontally arranged in the moving box. The telescopic shaft passes through a plurality of moving blocks, and telescopic blocks are fixed at the middle and both ends of the telescopic shaft. The telescopic blocks are connected to the inner side wall of the moving box through the fourth hydraulic telescopic rod.

[0017] Preferably, the roller support assembly includes two moving seats symmetrically arranged on the top of the processing table. The moving seats are connected to the corresponding side plates through the second hydraulic telescopic rods. A fixed seat is provided at the middle position corresponding to the two moving seats on the top of the processing table. Above the moving seats and the fixed seat, a lifting seat is connected through a vertical third hydraulic telescopic rod. And a plurality of support rollers are evenly arranged and rotatably connected to the top of each lifting seat. The rotating direction of the support rollers is perpendicular to the rotating direction of the rotating rollers.

[0018] Preferably, the cutting mechanism includes three driving boxes located in the middle and on both sides of the cutting frame. A rectangular lifting frame is provided in the middle below the driving box. The top of the lifting frame is connected to the bottom of the driving box through two symmetrically arranged lifting hydraulic telescopic rods. And a circular saw blade is rotatably connected inside the lifting frame. A driving component is provided inside the driving box. One side of the circular saw blade is coaxially fixed with a first belt pulley, and the first belt pulley is correspondingly connected to the driving component. The driving box located in the middle is fixedly connected to the cutting frame. The driving boxes located on both sides are slidably connected to the cutting frame through a cutting adjustment component.

[0019] Preferably, the driving component includes a driving cylinder rotatably connected to the upper part of the driving box. The two ends of the driving cylinder extend out of the driving box, and a plurality of transmission blocks are evenly fixed inside along the circumferential direction. A driving shaft is rotatably connected to the position corresponding to the driving cylinder on the upper part of the cutting frame. One end of the driving shaft is connected with a motor. The driving shaft passes through the three driving cylinders, and a plurality of transmission grooves are correspondingly arranged evenly along the circumferential direction. And the transmission blocks are slidably connected in the transmission grooves;

[0020] A second belt pulley is fixed on the driving cylinder. Two second guide wheels are symmetrically arranged on both sides below the second belt pulley, and the second guide wheels are rotatably connected to the side wall of the driving box. A moving belt pulley is arranged outside below the second guide wheel. A notch is provided at the position corresponding to the two moving belt pulleys on the bottom of the driving box, and two first guide wheels are symmetrically arranged and rotatably connected in the notch. The first belt pulley, the moving belt pulley and the second belt pulley are connected through a transmission belt, and the first guide wheel and the second guide wheel are in contact with the outer side surface of the transmission belt;

[0021] On both sides of the bottom of the drive box corresponding to the notch positions, spring cylinders are symmetrically fixed. Two spring rods are symmetrically and slidably connected in the spring cylinders, and the inner ends of the spring rods are connected to the middle of the interior of the spring cylinders through springs. The outer ends of the two spring rods on the same side are respectively located outside the corresponding moving belt pulleys, and the outer ends of the spring rods are rotatably connected to the moving belt pulleys.

[0022] Preferably, the cutting adjustment assembly includes two parallel third screws rotatably connected in the cutting frame. One end of each third screw extends out of the cutting frame and is fixed with a first gear. A second gear is meshed between the two first gears, and the second gear is connected to a motor. The middle parts of the third screws are rotatably connected in the drive boxes at the middle positions. Third threaded cylinders are fixed on the two drive boxes at corresponding positions of the third screws, and the third screws are threadedly connected in the third threaded cylinders. Among them, the thread directions of the two side segments of the third screw are opposite.

[0023] Preferably, a discharge groove is provided in the middle of the processing table. The bottom surface of the discharge groove is symmetric on both sides and slopes downward and outward.

[0024] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0025] 1. Through the roller support assembly of the present invention, the color aluminum plate can be quickly pushed inward, and through the downward movement of the roller support assembly, the color aluminum plate is located on multiple rotating rollers, so that the position of the color aluminum plate in the width direction can be adjusted by the first hydraulic expansion rod and the adjusting plate. During the two adjustment processes, the color aluminum plate is supported by the roller support assembly and the rotating rollers, making the movement of the color aluminum plate faster and more convenient, and reducing the wear on the surface of the color aluminum plate during translation.

[0026] 2. The positioning assembly and the baffle plate that move upward of the present invention clamp and fix the color aluminum plate to achieve the positioning of the plate, and the position of the placement assembly can be adjusted by the positioning adjustment assembly to adapt to plates of different widths or different cutting positions.

[0027] 3. By providing two moving frames in the present invention, while one moving frame moves and cuts the color aluminum plate, the other moving frame feeds the material, so that the two moving frames work alternately, and the feeding and cutting of the plates on the same processing table are carried out simultaneously, shortening the interval time between two plate cuts and improving the processing efficiency. Description of the Drawings

[0028] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0029] Figure 1 Structural schematic diagram of the present invention;

[0030] Figure 2 Structural schematic diagram of the roller support assembly of the present invention;

[0031] Figure 3 Structural schematic diagram of the moving frame of the present invention;

[0032] Figure 4 Structural schematic diagram of the placement assembly of the present invention;

[0033] Figure 5 Structural schematic diagram of the end part of the placement base of the present invention;

[0034] Figure 6 Structural schematic diagram of the interior of the placement base of the present invention;

[0035] Figure 7 is Figure 6 structural schematic diagram at position A in;

[0036] Figure 8 Structural schematic diagram of the bottom of the positioning plate of the present invention;

[0037] Figure 9 Structural schematic diagram of the telescopic shaft of the present invention;

[0038] Figure 10 Structural schematic diagram of the first threaded cylinder of the present invention;

[0039] Figure 11 Structural schematic diagram of the cutting frame of the present invention;

[0040] Figure 12 is Figure 11 structural schematic diagram at position B in;

[0041] Figure 13 Structural schematic diagram of the circular saw blade of the present invention;

[0042] Figure 14 Structural schematic diagram of the interior of the drive box of the present invention;

[0043] Figure 15 Structural schematic diagram of the bottom of the drive box of the present invention.

[0044] In the drawings, the list of components represented by each reference numeral is as follows:

[0045] 100 - processing table, 101 - side plate, 102 - discharge groove, 103 - guide groove, 104 - first screw rod, 105 - adjusting plate, 106 - first hydraulic telescopic rod;

[0046] 200 - Roller support assembly, 201 - Fixed seat, 202 - Movable seat, 203 - Second hydraulic telescopic rod, 204 - Third hydraulic telescopic rod, 205 - Lifting seat, 206 - Support roller;

[0047] 300 - Movable frame, 301 - Movable box, 302 - Connecting frame, 303 - Movable groove, 304 - Movable plate, 305 - Second screw rod, 306 - Fourth hydraulic telescopic rod, 307 - Telescopic block, 308 - Telescopic shaft, 309 - First threaded cylinder, 310 - Friction block, 311 - Fifth hydraulic telescopic rod;

[0048] 400 - Placing assembly, 401 - Placing base, 402 - Material retaining frame, 403 - Baffle, 404 - Rotating roller, 405 - Adjusting block, 406 - Second threaded cylinder;

[0049] 500 - Positioning assembly, 501 - Positioning plate, 502 - Rotating connecting rod, 503 - Rotating shaft, 504 - Rotating gear, 505 - Moving rack, 506 - Moving rod, 507 - Limit slider, 508 - Limit sliding groove, 509 - Moving block;

[0050] 600 - Cutting frame, 601 - Driving box, 602 - Circular saw blade, 603 - Third screw rod, 604 - First gear, 605 - Second gear, 606 - Lifting frame, 607 - Lifting hydraulic telescopic rod, 608 - Third threaded cylinder, 609 - First guide wheel;

[0051] 700 - Driving assembly, 701 - First pulley, 702 - Driving shaft, 703 - Driving cylinder, 704 - Second pulley, 705 - Movable pulley, 706 - Spring rod, 707 - Spring cylinder, 708 - Second guide wheel. Detailed implementation manners

[0052] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0053] Embodiment 1

[0054] Please refer to the accompanying drawings. The present invention provides a technical solution:

[0055] A roller coating color aluminum plate grooving and cutting device includes a processing table 100. Vertically fixed on both sides of the top of the processing table 100 are symmetric side plates 101, and above the middle of the two side plates 101 is jointly fixed a cutting frame 600. A cutting mechanism is provided at the bottom of the cutting frame 600;

[0056] A horizontal guide groove 103 is provided on the inner side of the side plate 101, and the two guide grooves 103 are opened opposite to each other and are slidably connected to a moving frame 300, and the two sides of the moving frame 300 are correspondingly connected to the guide groove 103 through a moving assembly, and roller support assemblies 200 are provided at the positions corresponding to each moving frame 300 on the two sides of the bottom of the processing table 100, and the positions on both sides of the side plate 101 corresponding to the moving frame 300 are connected to the adjustment plate 105 through the first hydraulic telescopic rod 106;

[0057] Two placement components 400 are symmetrically arranged on the mobile frame 300, each placement component 400 includes two horizontal and mutually parallel placement bases 401, and a positioning adjustment component is arranged on the mobile frame 300, and the bottoms of the multiple placement bases 401 are correspondingly connected to the positioning adjustment components;

[0058] An L-shaped material blocking rack 402 is fixed on the top of the placement base 401, and the opening of the material blocking rack 402 faces the outside of the processing table 100. A baffle 403 is fixed to the inner top of the material blocking rack 402. A rotating roller 404 is rotatably connected to the position of the placement base 401 corresponding to the baffle 403, and a positioning component 500 is provided on the outside of the rotating roller 404.

[0059] When cutting the color aluminum plate, the material is loaded onto the movable frame 300 on one side, and the plate is placed on the corresponding roller support assembly 200, so that the color aluminum plate can be quickly pushed inward and the position is adjusted so that it is located in the placement assembly 400 and the positioning assembly 500; then the position of the roller support assembly 200 is moved downward, so that the color aluminum plate is located on multiple rotating rollers 404, and the adjustment plate 105 is moved inward at the same time through the first hydraulic telescopic rods 106 on both sides, so as to adjust the position of the color aluminum plate in the width direction and center it, and the position adjustment of the color aluminum plate is completed. In the two adjustment processes, the roller support assembly 200 and the rotating roller 404 are used for support, so that the movement of the color aluminum plate is faster and more convenient, and the surface wear of the color aluminum plate during translation is reduced.

[0060] After the position adjustment is completed, the positioning component 500 moves upward to lift the color aluminum plate so that it is out of contact with the rotating roller 404, and then the color aluminum plate is clamped and fixed by the upward positioning component 500 and the baffle 403 to achieve the positioning of the plate; wherein, the position of the placement component 400 can be adjusted by the positioning adjustment component to adapt to plates of different widths or different cutting positions.

[0061] After positioning is completed, the moving frame 300 drives the moving frame 300 and the color aluminum plate thereon to move toward the cutting frame 600 through the moving assembly. When the position of the moving box 301 moves over the cutting frame 600 and the cutting mechanism is located at the end of the color aluminum plate, the cutting mechanism moves down to contact the color aluminum plate, and cuts the color aluminum plate while the color aluminum plate continues to move.

[0062] During the process of loading and moving the color aluminum plate and cutting on one side of the moving frame 300, the moving frame 300 on the other side is disconnected from the moving component. Thus, when the moving component is working, the moving frame 300 stays in place and performs operations such as sheet loading, position adjustment, and positioning. When the moving frame 300 and the sheet that have completed processing return to their positions and start loading, the moving frame 300 that has completed loading is connected to the moving component, enabling the moving component to drive the moving frame 300 and the sheet thereon to move towards the cutting mechanism for cutting processing and the like. In this way, the two moving frames 300 take turns for loading and cutting processing, and the sheet loading and cutting processing on the same processing table 100 are carried out simultaneously, shortening the interval time between two sheet cuttings and improving the processing efficiency.

[0063] Among them, the moving frame 300 includes a moving box 301. Both ends of the moving box 301 are slidably connected to the corresponding guide grooves 103 and are correspondingly connected to the moving component. On one side of the end of the moving box 301 close to the processing table 100, two moving plates 304 are symmetrically arranged. The inner ends of the moving plates 304 are slidably connected to the guide grooves 103, and the tops are fixedly connected to the moving box 301 through a connecting frame 302. And the positioning and adjusting component is located between the outer ends of the two moving plates 304. There is a notch in the middle of the side wall of the moving box 301. The ends of the four placing bases 401 pass through the notch and are all slidably connected to the bottom of the inner cavity of the moving box 301.

[0064] When loading and conveying the color aluminum plate, the moving component makes the moving box 301 drive the moving plates 304, the placing component 400, and the color aluminum plate and the like to move towards the cutting mechanism, and after the cutting is completed, it moves back in the reverse direction to the original position for discharging; when the placing component 400 on one side is loading, the moving box 301 on this side is disconnected from the moving component, so that when the moving component moves, the structures such as the moving box 301 do not move along with it, while the placing component 400 on the other side that has completed loading realizes moving loading through the connection between the moving component and the moving box 301.

[0065] Among them, the moving component includes a first screw rod 104 threadedly connected to the guide groove 103. One end of the first screw rod 104 extends out of the guide groove 103 and is connected to a motor. The two sides of the moving box 301 are symmetrically arranged and rotatably connected with first threaded cylinders 309. The first screw rod 104 is threadedly connected to the corresponding first threaded cylinders 309. At the position corresponding to the first threaded cylinders 309 inside the moving box 301, there are friction blocks 310. One end of the friction block 310 close to the first threaded cylinder 309 is provided with a V-shaped clamping groove, and the other end is connected with a fifth hydraulic expansion rod 311.

[0066] When it is necessary to move one of the movable frames 300, the second hydraulic telescopic rod 203 extends and drives the friction block 310 to move towards the first threaded cylinder 309, pressing the clamping groove of the friction block 310 tightly against the side wall of the first threaded cylinder 309, so that the position of the first threaded cylinder 309 and the movable box 301 is fixed. Then, the motor drives the first screw rod 104 to rotate, and the first threaded cylinder 309 cannot rotate. Therefore, under the action of the thread, the first threaded cylinder 309 drives the movable box 301 to move, and further drives the movable frame 300 to drive the placing assembly 400 and the color aluminum plate, etc. to move; when the movable frame 300 does not need to move, the friction block 310 returns to its position and disengages from the first threaded cylinder 309, and the first threaded cylinder 309 can rotate freely. Therefore, when the first screw rod 104 rotates, the first threaded cylinder 309 will not drive structures such as the movable frame 300 to move.

[0067] Among them, the positioning and adjusting assembly includes a moving groove 303 fixed between two moving plates 304. The bottom of the outer section of the placing base 401 is slidably connected to the top of the moving groove 303, and an adjusting block 405 is correspondingly fixed to the bottom of the placing base 401. The adjusting block 405 is slidably connected in the moving groove 303. A second threaded cylinder 406 is jointly fixed on two adjusting blocks 405 in the same placing assembly 400. A second screw rod 305 is rotatably connected in the moving groove 303, and one end of the second screw rod 305 extends out of the moving groove 303 and is connected to a motor. The thread directions on both sides of the second screw rod 305 are opposite, and the two second threaded cylinders 406 are respectively threadedly connected to both side sections of the second screw rod 305.

[0068] When it is necessary to adjust the positions of the two placing assemblies 400, the motor drives the second screw rod 305 to rotate, and through the opposite threads on both sides, the two threaded cylinders drive the corresponding adjusting blocks 405 to move inward or outward simultaneously, and further drive the two placing assemblies 400 to move inward or outward simultaneously, realizing the position adjustment of structures such as the placing assembly 400 and the positioning assembly 500, so as to adapt to color aluminum plates of different sizes.

[0069] Among them, the positioning component 500 includes a positioning plate 501 located above the placement base 401, and the positioning plate 501 slides vertically relative to the placement base 401. A through groove is provided in the middle of the positioning plate 501, and the rotating roller 404 is located in the through groove of the positioning plate 501. A plurality of rotating shafts 503 are evenly provided along the length direction below the positioning plate 501. The rotating shafts 503 are rotatably connected to the placement base 401, and a rotating gear 504 is fixed in the middle of the rotating shaft 503, and parallel rotating connecting rods 502 are symmetrically fixed at both ends. The rotating connecting rods 502 are inclined, and the top ends are rotatably connected with limiting sliders 507. A limiting sliding groove 508 is correspondingly provided at the bottom of the positioning plate 501, and the limiting sliders 507 are slidably connected in the limiting sliding groove 508. A cavity is provided inside the placement base 401, and a rotating component is provided in the placement base 401, and the rotating component is correspondingly connected to a plurality of rotating gears 504;

[0070] The rotating component includes a moving rod 506 slidably connected inside the placement base 401. A moving rack 505 is fixed at the top of the moving rod 506 corresponding to the position of each rotating gear 504. A notch is provided at the top of the placement base 401 corresponding to the position of each rotating gear 504. The bottom of the rotating gear 504 passes through the notch and meshes with the moving rack 505. One end of the moving rod 506 extends out of the placement base 401, extends into the moving box 301, and is fixed with a moving block 509. A telescopic shaft 308 is horizontally provided in the moving box 301. The telescopic shaft 308 passes through a plurality of moving blocks 509, and telescopic blocks 307 are fixed in the middle and at both ends of the telescopic shaft 308. The telescopic blocks 307 are connected to the inner side wall of the moving box 301 through the fourth hydraulic telescopic rod 306.

[0071] When the positioning and adjusting component adjusts the position of the placement base 401, the moving rod 506 and the moving block 509 move along the length direction of the telescopic shaft 308 accordingly. When it is necessary to rotate the rotating gear 504, the telescopic block 307 drives the telescopic shaft 308 to move through the fourth hydraulic telescopic rod 306, so that the moving rod 506 and the moving rack 505 move relative to the rotating gear 504, and drive structures such as the rotating gear 504 and the rotating connecting rod 502 to rotate. The positioning plate 501 can only slide vertically. Therefore, when the rotating connecting rod 502 rotates, the limiting slider 507 moves accordingly. At the same time, the limiting slider 507 moves along the limiting sliding groove 508, thereby jacking up the positioning plate 501. The positioning plate 501 moves up to contact the bottom of the color aluminum plate and moves it up. Then, the color aluminum plate is clamped and fixed by the positioning plate 501 and the baffle 403 for subsequent cutting treatment.

[0072] Among them, the positioning plate 501 can slide vertically relative to the placement base 401, and one end of the positioning plate 501 can be slidably connected to the vertical side wall of the material blocking frame 402, which can be realized by setting vertical guiding structures at both ends.

[0073] Example Two

[0074] The structure of this embodiment is basically the same as that of Example One. The difference lies in that the roller support assembly 200 includes two moving seats 202 symmetrically arranged on the top of the processing table 100. The moving seats 202 are connected to the corresponding side plates 101 through the second hydraulic expansion rods 203. A fixed seat 201 is provided at the middle position corresponding to the two moving seats 202 on the top of the processing table 100. Above the moving seats 202 and the fixed seat 201, a lifting seat 205 is connected through a vertical third hydraulic expansion rod 204. And a plurality of support rollers 206 are evenly arranged and rotatably connected to the top of each lifting seat 205. The rotation direction of the support rollers 206 is perpendicular to the rotation direction of the rotating rollers 404.

[0075] When loading the color aluminum plate, the middle lifting seat 205 is located between the two placing assemblies 400, and the side lifting seats 205 are located between the two placing bases 401 in the same placing assembly 400. And the height position of the support rollers 206 is higher than that of the rotating rollers 404. Thus, when loading the color aluminum plate, the material plate can be placed on the tops of the plurality of support rollers 206 and pushed inward so that the color aluminum plate can be smoothly moved into the plurality of placing assemblies 400. Then the third hydraulic expansion rod 204 drives the lifting seat 205 and the support rollers 206 to move downward, making the height of the support rollers 206 lower than that of the rotating rollers 404, so that the color aluminum plate falls onto the plurality of rotating rollers 404 for subsequent adjustment of the positions of both sides of the color aluminum plate.

[0076] When the placing assembly 400 adjusts its position, the second hydraulic expansion rod 203 is used to drive the structure on the moving work to move, so that the lifting seat 205 and the support rollers 206 on the moving seat 202 can always be located inside the placing assembly 400.

[0077] Example Three

[0078] The structure of this embodiment is basically the same as that of Example One. The difference lies in that the cutting mechanism includes three drive boxes 601 located in the middle and on both sides of the cutting frame 600. A rectangular lifting frame 606 is provided in the middle below the drive box 601. The top of the lifting frame 606 is connected to the bottom of the drive box 601 through two symmetrically arranged lifting hydraulic expansion rods 607. And a circular saw blade 602 is rotatably connected inside the lifting frame 606. A drive assembly 700 is provided inside the drive box 601. A first belt pulley 701 is coaxially fixed on one side of the circular saw blade 602, and the first belt pulley 701 is correspondingly connected to the drive assembly 700. The drive box 601 located in the middle is fixedly connected to the cutting frame 600, and the drive boxes 601 located on both sides are slidably connected to the cutting frame 600 through the cutting adjustment assembly.

[0079] When processing color aluminum plates such as grooving and cutting, the moving box 301 and structures such as color aluminum plates are moved to the cutting mechanism, and the circular saw blade 602 is located between the moving box 301 and the end of the color aluminum plate. Then, the lifting hydraulic telescopic rod 607 is used to drive the lifting frame 606 to drive the circular saw blade 602 to move downward, so that the position of the circular saw blade 602 corresponds to that of the color aluminum plate. At the same time, the driving component 700 drives the first pulley 701 and the circular saw blade 602 to rotate, so as to perform operations such as grooving and cutting on the color aluminum plate during the movement of the color aluminum plate; when cutting color aluminum plates of different sizes or cutting at different width positions on the color aluminum plate, the positions of the two driving boxes 601 and the circular saw blades 602 thereon are adjusted through the cutting adjustment component, so that the cutting process is more flexible.

[0080] Among them, the cutting adjustment component includes two parallel third screw rods 603 rotatably connected to the cutting frame 600. One end of the third screw rod 603 extends out of the cutting frame 600 and is fixed with a first gear 604. A second gear 605 is engaged between the two first gears 604. The second gear 605 is connected to a motor. The middle of the third screw rod 603 is rotatably connected to the driving box 601 at the middle position. Third thread cylinders 608 are fixed at the positions corresponding to the third screw rods 603 on the two driving boxes 601, and the third screw rods 603 are threadedly connected to the third thread cylinders 608. Among them, the thread directions of the two side segments of the third screw rod 603 are opposite.

[0081] When adjusting the positions of the two driving boxes 601 and the circular saw blades 602, the two third screw rods 603 are rotated through the drive of the motor and the transmission of the first gear 604 and the second gear 605. Then, the third thread cylinder 608 drives the driving box 601 to move, so that the two driving boxes 601 move inward or outward simultaneously, realizing the adjustment of the positions of the two driving boxes 601.

[0082] Embodiment Four

[0083] The structure of this embodiment is basically the same as that of Embodiment Three. The difference is that the driving component 700 includes a driving cylinder 703 rotatably connected to the upper part of the driving box 601. The two ends of the driving cylinder 703 extend out of the driving box 601, and a plurality of transmission blocks are uniformly fixed inside along the circumferential direction. A driving shaft 702 is rotatably connected to the upper part of the cutting frame 600 corresponding to the position of the driving cylinder 703. One end of the driving shaft 702 is connected to a motor. The driving shaft 702 passes through the three driving cylinders 703, and a plurality of transmission grooves are uniformly arranged along the circumferential direction, and the transmission blocks are slidably connected to the transmission grooves;

[0084] A second pulley 704 is fixed on the driving cylinder 703. On both sides below the second pulley 704, second guide pulleys 708 are symmetrically arranged, and the second guide pulleys 708 are rotatably connected to the side wall of the driving box 601. On the outer sides below the second guide pulleys 708, moving pulleys 705 are arranged. At the position between the two moving pulleys 705 corresponding to the bottom of the driving box 601, there is a notch, and two first guide pulleys 609 are symmetrically arranged and rotatably connected in the notch. The first pulley 701, the moving pulleys 705 and the second pulley 704 are connected by a transmission belt, and the first guide pulleys 609 and the second guide pulleys 708 are in contact with the outer side surface of the transmission belt;

[0085] On both sides corresponding to the notch at the bottom of the driving box 601, spring cylinders 707 are symmetrically fixed. In the spring cylinders 707, two spring rods 706 are symmetrically slidably connected, and the inner ends of the spring rods 706 are connected to the middle inside of the spring cylinders 707 through springs. The outer ends of the two spring rods 706 on the same side are respectively located outside the corresponding moving pulleys 705, and the outer ends of the spring rods 706 are rotatably connected to the moving pulleys 705.

[0086] When the disk saw blade 602 works, the driving shaft 702 is rotated by the motor, and through the action of the transmission slot and the transmission block, the driving cylinder 703 drives the second pulley 704 to rotate, and then through structures such as the transmission belt, the first pulley 701 drives the disk saw blade 602 to rotate for cutting work; when adjusting the positions of the two driving boxes 601, the driving cylinder 703 moves along the driving shaft 702 and is connected to the driving shaft 702 through the transmission block and the transmission slot, so as to ensure subsequent driving and transmission work.

[0087] When adjusting the height position of the disk saw blade 602, the first pulley 701 moves accordingly, and the moving wheels automatically adjust their positions under the action of the springs and the spring rods 706, so that the transmission belt always remains taut to ensure the progress of the transmission work, and the contact area between the transmission belt and the first pulley 701, the second pulley 704 and the moving pulleys 705 is increased through the first guide pulleys 609 and the second guide pulleys 708 to improve the transmission stability.

[0088] Embodiment Five

[0089] The structure of this embodiment is basically the same as that of Embodiment One, except that a discharge groove 102 is provided in the middle of the processing table 100. The bottom surface of the discharge groove 102 is symmetric on both sides and slopes downward and outward, so that the waste materials and trimming materials generated during processing fall into the discharge groove 102 and are discharged outward along the inclined surfaces on both sides of the bottom for recycling.

[0090] In the description of this specification, the descriptions referring to terms such as "one embodiment", "example", "specific example", etc. mean that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described may be combined in any one or more embodiments or examples in a suitable manner.

[0091] The preferred embodiments of the present invention disclosed above are only used to help explain the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the invention to the specific embodiments described. Obviously, many modifications and variations can be made according to the content of this specification. These embodiments are selected and specifically described in this specification in order to better explain the principles and practical applications of the present invention, so that those skilled in the art can understand and utilize the present invention well. The present invention is only limited by the claims and their full scope and equivalents.

Claims

1. A grooving and cutting device for roll-coated colored aluminum plates, comprising a processing table (100). On both sides of the top of the processing table (100), vertical side plates (101) are symmetrically fixed. Above the middle of the two side plates (101), a cutting frame (600) is jointly fixed. A cutting mechanism is provided at the bottom of the cutting frame (600), and it is characterized in that: On the inner side surfaces of the side plates (101), horizontal guide grooves (103) are provided. The openings of the two guide grooves (103) face each other, and a moving frame (300) is jointly slidably connected. The two sides of the moving frame (300) are correspondingly connected to the guide grooves (103) through moving components. At the positions corresponding to each moving frame (300) on both sides of the bottom of the processing table (100), roller support components (200) are provided. And at the positions corresponding to the two sides of the moving frame (300) on the side plates (101), adjusting plates (105) are connected through first hydraulic telescopic rods (106); On the moving frame (300), two placing components (400) are symmetrically provided. Each placing component (400) includes two horizontal and parallel placing bases (401). A positioning and adjusting component is provided on the moving frame (300), and the bottoms of the multiple placing bases (401) are correspondingly connected to the positioning and adjusting component; On the top of the placing base (401), an L-shaped material retaining frame (402) is fixed. The opening of the material retaining frame (402) faces the outside of the processing table (100). At the inner top of the material retaining frame (402), a baffle (403) is fixed. At the position corresponding to the baffle (403) on the placing base (401), a rotating roller (404) is rotatably connected. And a positioning component (500) is provided on the outer side of the rotating roller (404).

2. The grooving and cutting device for roll-coated color aluminum plates according to claim 1, characterized in that: The moving frame (300) includes a moving box (301). The two ends of the moving box (301) are slidably connected in the corresponding guide grooves (103) and are correspondingly connected to the moving components. On one side of the end of the moving box (301) close to the processing table (100), two moving plates (304) are symmetrically provided. The inner ends of the moving plates (304) are slidably connected in the guide grooves (103), and the tops are fixedly connected to the moving box (301) through connecting frames (302). And the positioning and adjusting component is located between the outer ends of the two moving plates (304). There is a notch in the middle of the side wall of the moving box (301). The ends of the four placing bases (401) pass through the notch and are all slidably connected to the bottom of the inner cavity of the moving box (301).

3. The slitting and cutting device for roll-coated colored aluminum plates according to claim 2, wherein: The moving component includes a first screw rod (104) threadedly connected to the guiding groove (103). One end of the first screw rod (104) extends out of the guiding groove (103) and is connected to a motor. First threaded cylinders (309) are symmetrically arranged and rotatably connected to both sides of the moving box (301). The first screw rod (104) is threadedly connected to the corresponding first threaded cylinders (309). Friction blocks (310) are provided inside the moving box (301) at positions corresponding to the first threaded cylinders (309). A V-shaped clamping groove is provided at one end of the friction block (310) close to the first threaded cylinder (309), and a fifth hydraulic expansion rod (311) is connected to the other end.

4. The slitting and cutting device for roll-coated colored aluminum plates according to claim 2, wherein: The positioning and adjusting component includes a moving groove (303) fixed between two moving plates (304). The outer bottom section of the placing base (401) is slidably connected to the top end of the moving groove (303), and an adjusting block (405) is correspondingly fixed to the bottom of the placing base (401). The adjusting block (405) is slidably connected to the moving groove (303). A second threaded cylinder (406) is jointly fixed on two adjusting blocks (405) in the same placing component (400). A second screw rod (305) is rotatably connected to the moving groove (303). One end of the second screw rod (305) extends out of the moving groove (303) and is connected to a motor. The thread directions of the two side sections of the second screw rod (305) are opposite, and the two second threaded cylinders (406) are respectively threadedly connected to the two side sections of the second screw rod (305).

5. The grooving and cutting device for roll-coated color aluminum plates according to claim 1, wherein: The positioning component (500) includes a positioning plate (501) located above the placing base (401), and the positioning plate (501) slides vertically relative to the placing base (401). A through groove is provided in the middle of the positioning plate (501), and the rotating roller (404) is located in the through groove of the positioning plate (501). A plurality of rotating shafts (503) are evenly provided along the length direction below the positioning plate (501). The rotating shafts (503) are rotatably connected to the placing base (401), and a rotating gear (504) is fixed in the middle of the rotating shaft (503), and parallel rotating connecting rods (502) are symmetrically fixed at both ends. The rotating connecting rods (502) are inclined, and a limiting slider (507) is rotatably connected to the top end. A limiting sliding groove (508) is correspondingly provided at the bottom of the positioning plate (501), and the limiting slider (507) is slidably connected to the limiting sliding groove (508). A cavity is provided inside the placing base (401), and a rotating component is provided in the placing base (401), and the rotating component is correspondingly connected to a plurality of rotating gears (504); The rotating assembly includes a moving rod (506) slidably connected to the inside of the placement base (401). At the position corresponding to each rotating gear (504) on the top of the moving rod (506), a moving rack (505) is fixed. At the position corresponding to each rotating gear (504) on the top of the placement base (401), a notch is provided. The bottom of the rotating gear (504) passes through the notch and meshes with the moving rack (505). One end of the moving rod (506) extends out of the placement base (401), extends into the moving box (301), and is fixed with a moving block (509). A telescopic shaft (308) is horizontally arranged in the moving box (301). The telescopic shaft (308) passes through a plurality of moving blocks (509), and telescopic blocks (307) are fixed in the middle and at both ends of the telescopic shaft (308). The telescopic blocks (307) are connected to the inner side wall of the moving box (301) through fourth hydraulic telescopic rods (306).

6. The slitting and cutting device for roll-coated colored aluminum plates according to claim 1, wherein: The roller support assembly (200) includes two moving seats (202) symmetrically arranged on the top of the processing table (100). The moving seats (202) are connected to the corresponding side plates (101) through second hydraulic telescopic rods (203). A fixed seat (201) is provided at the middle position corresponding to the two moving seats (202) on the top of the processing table (100). Above the moving seats (202) and the fixed seat (201), a lifting seat (205) is connected through a vertical third hydraulic telescopic rod (204). And a plurality of support rollers (206) are evenly arranged and rotatably connected to the top of each lifting seat (205).

7. The grooving and cutting device for roll-coated color aluminum plates according to claim 1, wherein: The cutting mechanism includes three drive boxes (601) located in the middle and on both sides of the cutting frame (600). In the middle of the lower part of the drive box (601), a rectangular lifting frame (606) is provided. The top of the lifting frame (606) is connected to the bottom of the drive box (601) through two symmetrically arranged lifting hydraulic telescopic rods (607). And a circular saw blade (602) is rotatably connected inside the lifting frame (606). A drive assembly (700) is provided inside the drive box (601). On one side of the circular saw blade (602), a first belt pulley (701) is coaxially fixed, and the first belt pulley (701) is correspondingly connected to the drive assembly (700). The drive box (601) located in the middle is fixedly connected to the cutting frame (600), and the drive boxes (601) located on both sides are slidably connected to the cutting frame (600) through a cutting adjustment assembly.

8. The grooving and cutting device for roll-coated color aluminum plates according to claim 7, characterized in that: The drive assembly (700) includes a drive cylinder (703) rotatably connected to the upper part of the drive box (601). The two ends of the drive cylinder (703) extend out of the drive box (601), and a plurality of transmission blocks are evenly fixed inside along the circumferential direction. At the position corresponding to the drive cylinder (703) on the upper part of the cutting frame (600), a drive shaft (702) is rotatably connected. One end of the drive shaft (702) is connected to a motor. The drive shaft (702) passes through three drive cylinders (703), and a plurality of transmission grooves are correspondingly evenly provided along the circumferential direction, and the transmission blocks are slidably connected in the transmission grooves; A second pulley (704) is fixed on the driving cylinder (703). Two second guide pulleys (708) are symmetrically arranged on both sides below the second pulley (704), and the second guide pulleys (708) are rotatably connected to the side wall of the driving box (601). A moving pulley (705) is arranged outside the lower sides of the second guide pulleys (708). A notch is provided at the bottom of the driving box (601) corresponding to the position between the two moving pulleys (705), and two first guide pulleys (609) are symmetrically arranged and rotatably connected in the notch. The first pulley (701), the moving pulley (705) and the second pulley (704) are connected by a transmission belt, and the first guide pulley (609) and the second guide pulley (708) are in contact with the outer side surface of the transmission belt; Spring cylinders (707) are symmetrically fixed at both sides of the bottom of the driving box (601) corresponding to the notch. Two spring rods (706) are symmetrically and slidably connected in the spring cylinders (707), and the inner ends of the spring rods (706) are connected to the middle inside of the spring cylinders (707) through springs. The outer ends of the two spring rods (706) on the same side are respectively located outside the corresponding moving pulley (705), and the outer ends of the spring rods (706) are rotatably connected to the moving pulley (705).

9. The grooving and cutting device for roll-coated color aluminum plates according to claim 7, wherein: The cutting adjustment assembly includes two parallel third screw rods (603) rotatably connected in the cutting frame (600). One end of the third screw rod (603) extends out of the cutting frame (600) and is fixed with a first gear (604). A second gear (605) is meshed between the two first gears (604), and the second gear (605) is connected with a motor. The middle of the third screw rod (603) is rotatably connected in the driving box (601) at the middle position. Third threaded cylinders (608) are fixed at the positions corresponding to the third screw rods (603) on the driving boxes (601) on both sides, and the third screw rods (603) are threadedly connected in the third threaded cylinders (608).

10. The grooving and cutting device for roll-coated color aluminum plates according to any one of claims 1 to 9, characterized in that: A discharge groove (102) is provided in the middle of the processing table (100). The bottom surface of the discharge groove (102) is symmetric on both sides and slopes downward and outward.

Citation Information

Patent Citations

  • Aluminum plate slotting and cutting device

    CN222002060U