Laser synchronous cutting device for producing cellular board
By designing the automatic slide and push functions in the honeycomb plate laser synchronous cutting device, the problems of incoherent production processes and inefficient in the prior art are solved, and a more efficient sheet cutting and production process is achieved.
Patent Information
- Application Number
- CN202510513744.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-23
- Publication Date
- 2025-06-06
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During the multiple transverse and vertical cutting processes, existing honeycomb plate laser synchronous cutting devices need to frequently drive mechanical equipment to remove small pieces of cutting boards, resulting in inconsistent production processes and inefficient efficiency.
A laser synchronous cutting device is designed, and the cutting assembly is used to tilt the feeding table to automatically slide down the small plate; at the same time, the feeding assembly is used to automatically push the remaining plate to the cutting position to ensure the continuity of the cutting process.
Through the automatic slide and push functions, the production efficiency is significantly improved, the tedious process of manual material collection is avoided, and the continuity and efficiency of the cutting process are ensured.
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Figure CN120095367A_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of plate cutting and specifically relates to a laser synchronous cutting device for producing honeycomb plates. Background Art
[0002] Honeycomb panel is a panel made of two thinner panels firmly bonded to both sides of a thicker honeycomb core material, also known as honeycomb sandwich structure. The laser synchronous cutting device for honeycomb panels is a professional production equipment that integrates high-precision laser cutting technology and advanced synchronous control system. The device uses a high-energy laser beam to quickly and accurately cut honeycomb panel materials, and at the same time ensures precise synchronous movement between the laser cutting head and the material through a synchronous control system to achieve efficient and high-quality cutting operations.
[0003] After the honeycomb panels are produced, they often need to be cut horizontally and vertically multiple times to form multiple smaller honeycomb panels. After each cross-cut and vertical cut, additional mechanical equipment needs to be driven to remove the small honeycomb panels that have been cut and move the remaining parts of the honeycomb panels to the cutting position to wait for the next cutting, resulting in an incoherent overall production process and low production efficiency.
[0004] To this end, the present invention provides a laser synchronous cutting device for producing honeycomb panels. Summary of the invention
[0005] In order to make up for the deficiencies of the prior art: solve at least one technical problem raised in the background technology.
[0006] The technical solution adopted by the present invention to solve its technical problems is: a laser synchronous cutting device for producing honeycomb panels described in the present invention comprises a base table, a cutting table is fixedly installed on the top of the base table, a pair of material receiving tables are arranged on one side of the cutting table, the cutting table and the upper part of the material receiving table are used to place the honeycomb panels, a cutting frame is fixedly connected to the top of the cutting table, two electric slide rails are fixedly installed on one side of the cutting frame, one electric slide rail is horizontally and longitudinally installed with the cutting table, and the other electric slide rail is horizontally and transversely installed with the cutting table, the inner walls of the electric slide rails are slidably connected with electric sliders, the bottoms of the electric sliders are fixedly connected with laser cutting heads, a unloading assembly for driving the two material receiving tables to tilt and rotate is arranged on the side of the material receiving table, and a loading assembly for driving the honeycomb panels to be advanced is arranged on the side of the cutting table.
[0007] Preferably, a rotating rod is fixedly connected between the two ends of the two receiving tables, and both ends of one of the rotating rods are rotatably connected to a clamping seat, and the two clamping seats are fixedly installed on the top of the base platform. Both ends of one of the rotating rods are fixedly connected to an arc-shaped slide rail, and the outer wall of the arc-shaped slide rail is slidably connected to an arc-shaped slider, and the arc-shaped slider is fixedly installed on the top of the base platform.
[0008] Preferably, the blanking assembly includes two first gears, which are respectively and fixedly installed on both sides of one of the rotating rods. The teeth of the first gears are all engaged with belt gears. A first trapezoidal block is fixedly connected to the top of the belt gear. An extrusion assembly is arranged above the first trapezoidal block, and the extrusion assembly can drive the first trapezoidal block to move downward.
[0009] Preferably, the extrusion assembly includes a connecting block, which is fixedly connected to the top of the horizontally and laterally moving electric slider. Connecting rods are fixedly connected to both sides of the connecting block. Fixing pieces are fixedly connected to one ends of the connecting rods. A hinge seat is fixedly connected to the bottom of the fixing piece. A hinge member is hinged to the shaft rod of the hinge seat. A second trapezoidal block is fixedly connected to the bottom of the hinge member.
[0010] Preferably, torsion springs are fixedly connected to one sides of the hinge members respectively. One ends of the torsion springs far away from the hinge members are fixedly connected to the bottom of the fixing pieces. A rotation-limiting plate is fixedly connected to one side of the hinge seat, and one side of the rotation-limiting plate is attached to one side of the hinge member.
[0011] Preferably, limiting sliders are fixedly connected to both side surfaces at both ends of the belt gear. The outer walls of the limiting sliders are all slidably connected with inner groove seats, and the inner groove seats are fixedly installed on the top of the base table. Return springs are fixedly connected to the tops of the limiting sliders, and one ends of the return springs far away from the limiting sliders are fixedly connected to the inner wall surfaces of the inner groove seats.
[0012] Preferably, the feeding assembly includes a pushing member, which is in a "Ji" shape. Sliding grooves are symmetrically formed on the top surface of the cutting table. Both sides of the pushing member are respectively slidably connected with the inner walls of the sliding grooves. Sliders are fixedly connected to the bottoms of both ends of the pushing member. Fixed sliding seats are symmetrically and fixedly installed on the top of the base table. The sliders are slidably connected with the fixed sliding seats. A pushing assembly is arranged above the pushing member, and the pushing assembly is used to drive the pushing member to slide along the inner wall of the sliding groove.
[0013] Preferably, the pushing assembly includes a telescopic rod, the bottom of which is fixedly connected to the top of the connecting block. A first rack plate is fixedly connected to the top of the telescopic rod. A second gear is arranged below the first rack plate. Both ends of the shaft rod of the second gear are rotatably connected with a fixing frame, and the fixing frame is fixedly installed on the side wall of the cutting table. The teeth of the second gear are engaged with a second rack plate, and the bottom of the second rack plate is fixedly connected to the top of the pushing member.
[0014] Preferably, an inclined sliding plate is fixedly installed on the top of the base table, which is located on the side below the receiving table. A collection box is arranged on the top of the base table, and the opening of the collection box is docked with the bottom of the inclined sliding plate.
[0015] Preferably, a number of anti-shifting columns are symmetrically arranged on the tops of the base table and the receiving table. The distance between the anti-shifting columns is adaptively adjusted according to the width of the honeycomb board. A limiting plate is fixedly connected to the bottom of the electric slide rail.
[0016] The beneficial effects of the present invention are as follows: 1. In the laser synchronous cutting device for producing honeycomb panels described in the present invention, the unloading component tilts the material collecting table so that the cut small honeycomb panels can slide down automatically. As the small honeycomb panels slide down automatically, the material collecting area can continuously free up space, which provides convenience for subsequent cutting and material collecting operations, avoids the tedious process of manual material collection, and significantly improves production efficiency.
[0017] 2. In the laser synchronous cutting device for producing honeycomb panels described in the present invention, the loading assembly can automatically push the remaining honeycomb panel part to the cutting position, ensuring that the cutting process can be carried out continuously, avoiding production interruptions caused by waiting for loading, and arranging the production layout more flexibly, so that the cutting area and the loading area are closely connected, reducing the distance and time of material transportation.
[0018] 3. In the laser synchronous cutting device for producing honeycomb panels described in the present invention, each time the electric slider slides in the reverse direction, the pushing member can continuously push the large honeycomb panel forward, and the pushing component can also make the length of the honeycomb panel pushed to the top of the receiving table the same as the length of the last cut small honeycomb panel, so that the outer dimensions of each cut small honeycomb panel are the same. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The present invention will be further described below in conjunction with the accompanying drawings.
[0020] Figure 1 It is an overall stereogram of the present invention; Figure 2 It is a structural schematic diagram of the pushing member in the present invention; Figure 3 It is a schematic diagram of the structure of the cutting table in the present invention; Figure 4 It is a structural schematic diagram of the material receiving platform in the present invention; Figure 5 It is a schematic diagram of the second structure of the trapezoidal block in the present invention; Figure 6 It is a structural schematic diagram of a trapezoidal block in the present invention; Figure 7 It is a structural schematic diagram of the arc-shaped slide rail in the present invention; Figure 8 It is a structural schematic diagram of the limit slider in the present invention; Fig. 9 It is a schematic diagram of the second structure of the gear in the present invention.
[0021] In the figure: 1. base table; 2. cutting table; 3. material receiving table; 4. cutting frame; 5. electric slide rail; 6. electric slider; 7. laser cutting head; 8. rotating rod; 9. clamping seat; 10. gear one; 11. belt gear; 12. trapezoidal block one; 13. connecting block; 14. connecting rod; 15. fixing piece; 16. hinge seat; 17. hinge piece; 18. trapezoidal block two; 19. torsion spring; 20. rotation limit plate; 21. limit slider; 22. inner groove seat; 23. reset spring; 24. arc slide rail; 25. arc slider; 26. tilting slider; 27. collecting box; 28. pushing piece; 29. slide groove; 30. slider; 31. fixed slide seat; 32. telescopic rod; 33. rack plate one; 34. gear two; 35. rack plate two; 36. fixing frame; 37. anti-shift column; 38. limit plate. DETAILED DESCRIPTION
[0022] In order to make the technical means, creative features, objectives and effects achieved by the present invention easy to understand, the present invention is further explained below in conjunction with specific implementation methods.
[0023] like Figures 1 to 9 As shown, the present invention provides a technical solution: a laser synchronous cutting device for producing honeycomb panels, comprising a base table 1, a cutting table 2 is fixedly installed on the top of the base table 1, a pair of material receiving tables 3 are arranged on one side of the cutting table 2, the cutting table 2 and the upper part of the material receiving table 3 are used to place the honeycomb panel, a cutting frame 4 is fixedly connected to the top of the cutting table 2, two electric slide rails 5 are fixedly installed on one side of the cutting frame 4, one electric slide rail 5 is horizontally and longitudinally installed with the cutting table 2, and the other electric slide rail 5 is horizontally and transversely installed with the cutting table 2, the inner walls of the electric slide rails 5 are slidably connected with electric sliders 6, the bottoms of the electric sliders 6 are fixedly connected with laser cutting heads 7, a material unloading component for driving the two material receiving tables 3 to tilt and rotate is arranged on the side of the material receiving table 3, and a material loading component for driving the honeycomb panel to be pushed is arranged on the side of the cutting table 2.
[0024] During operation: after the honeycomb panel is produced, when it needs to be laser cut, it is often necessary to perform multiple cross-cutting and vertical cutting to form multiple smaller honeycomb panels; when the device is in use, a larger honeycomb panel is first placed directly above the cutting table 2 and the material receiving table 3. At this time, the two electric slide rails 5 are controlled to start at the same time, and the two electric slide blocks 6 slide along the inner walls of the two electric slide rails 5 respectively. The two electric slide blocks 6 respectively drive the two laser cutting heads 7 connected to them to move. When the electric slide rail 5, which is horizontal and longitudinal to the cutting table 2, drives the electric slide block 6 to slide, it will drive the laser cutting heads 7 connected to the bottom to move. The cutting head 7 cuts the honeycomb panel vertically along the gap between the cutting table 2 and the material receiving table 3, and when the electric slide rail 5 which is horizontal and transverse to the cutting table 2 drives the electric slider 6 to slide, it will drive the laser cutting head 7 connected at the bottom to cut the honeycomb panel horizontally along the gap between the two material receiving tables 3. After each horizontal and vertical cutting, two smaller honeycomb panels will appear and be left alone above the two material receiving tables 3. At this time, when the electric slide rail 5 which is horizontal and transverse to the cutting table 2 drives the electric slider 6 to slide in the reverse direction, the two material receiving tables 3 will be tilted through the unloading assembly, and the two material receiving tables will be tilted. After being tilted to a certain angle, the two smaller honeycomb panels will automatically slide out under the action of gravity, and in the synchronous movement process, the electric slide rail 5 which is horizontal to the cutting table 2 drives the electric slide block 6 to slide in the reverse direction and can also drive the loading assembly to move, and the loading assembly can continue to push the remaining small part of the larger honeycomb panel to the top of the two receiving tables 3 for the next round of cutting operation, and the large honeycomb panel is cut horizontally and vertically for multiple times in this cycle until the large honeycomb panel is divided into multiple smaller honeycomb panels. Through the above embodiment, the unloading The component tilts the collecting table so that the small pieces of honeycomb panels that have been cut can slide down automatically. As the small pieces of honeycomb panels slide down automatically, the collecting area can continue to free up space, which provides convenience for subsequent cutting and collecting operations, avoids the tedious process of manual material collection, and significantly improves production efficiency. The loading component can automatically push the remaining honeycomb panels to the cutting position to ensure that the cutting process can be carried out continuously, avoiding production interruptions caused by waiting for loading, and arranging the production layout more flexibly, so that the cutting area is closely connected with the loading area, reducing the distance and time of material transportation.
[0025] like Figures 2 to 3 As shown, a rotating rod 8 is fixedly connected between the two ends of the two receiving tables 3, and both ends of one of the rotating rods 8 are rotatably connected to a clamping seat 9, and the two clamping seats 9 are fixedly installed on the top of the base platform 1. Both ends of one of the rotating rods 8 are fixedly connected to an arc-shaped slide rail 24, and the outer wall of the arc-shaped slide rail 24 is slidably connected to an arc-shaped slider 25, and the arc-shaped slider 25 is fixedly installed on the top of the base platform 1.
[0026] During operation: after the honeycomb panel completes the first crosscutting and vertical cutting, the horizontal electric slide rail 5 drives the electric slider 6 to slide in the reverse direction, and the unloading assembly causes the two material receiving tables 3 to rotate with the clamping seat 9 as the center point, and the rotating rod 8 connected to the clamping seat 9 will continue to rotate, and the rotating rod 8 connected to the other end of the two material receiving tables 3 will drive the arc-shaped slide rail 24 to slide along the inner groove of the arc-shaped slider 25, so that the two material receiving tables 3 will gradually tilt. During the tilting process, the two cut honeycomb panels will automatically slide out of the slope surface below, thereby reducing the need for manual material collection and allowing the cutting process to be carried out continuously.
[0027] like Figures 6 to 8 As shown, the unloading assembly includes two gears 10, and the two gears 10 are respectively fixedly installed on both sides of one of the rotating rods 8. The teeth of the gears 10 are meshed with belt gears 11. The top of the belt gear 11 is fixedly connected with a trapezoidal block 12. An extrusion assembly is arranged above the trapezoidal block 12, and the extrusion assembly can drive the trapezoidal block 12 to move downward.
[0028] During operation: when the horizontal electric slide rail 5 drives the electric slider 6 to slide in the reverse direction, the trapezoidal block 12 will be moved downward through the extrusion component. When the trapezoidal block 12 moves downward, the teeth of the belt gear 11 will mesh with the teeth of the gear 10, thereby driving the gear 10 to rotate. The gear 10 will drive the rotating rod 8 connected to it to rotate. When the rotating rod 8 rotates, the two material receiving tables 3 will rotate with the clamping seat 9 as the center point, thereby causing the two material receiving tables 3 to tilt and unload materials.
[0029] like Figure 5 to Figure 6 As shown, the extrusion assembly includes a connecting block 13, which is fixedly connected to the top of the horizontally movable electric slider 6, and connecting rods 14 are fixedly connected to both sides of the connecting block 13, and one end of the connecting rod 14 is fixedly connected to a fixing member 15, and the bottom of the fixing member 15 is fixedly connected to an articulated seat 16, and the shaft rod of the articulated seat 16 is hinged with an articulated member 17, and the bottom of the articulated member 17 is fixedly connected to a trapezoidal block 2 18.
[0030] When working: when the horizontal electric slide rail 5 drives the electric slide block 6 to cut and slide, the fixing member 15 and the hinge seat 16 will be driven to move through the connecting block 13 and the connecting rod 14, and the hinge seat 16 will drive the trapezoidal block 18 to move through the hinge 17. When the trapezoidal block 18 moves, its vertical surface will gradually approach the vertical surface of the trapezoidal block 12. At this time, when the trapezoidal block 18 continues to move, the trapezoidal block 18 and the hinge 17 will be centered on the shaft of the hinge seat 16. The two receiving tables 3 are hinged and rotated at the same time, so that the trapezoidal block 2 18 can pass through the trapezoidal block 1 12 smoothly without causing the trapezoidal block 12 to move downward; and when the horizontal electric slide rail 5 drives the electric slide block 6 to slide in the reverse direction, the inclined surface of the trapezoidal block 2 18 will gradually approach the inclined surface of the trapezoidal block 12 when it moves, and at this time, the trapezoidal block 2 18 will squeeze the trapezoidal block 12 to move downward, so that the two receiving tables 3 rotate and tilt with the clamping seat 9 as the center point.
[0031] like Figure 5 to Figure 6 As shown, a torsion spring 19 is fixedly connected to one side of the hinge 17, and the end of the torsion spring 19 away from the hinge 17 is fixedly connected to the bottom of the fixing member 15. One side of the hinge seat 16 is fixedly connected to the limited rotation plate 20, and one side of the limited rotation plate 20 is in contact with one side of the hinge 17.
[0032] During operation: when the vertical surface of the trapezoidal block 2 18 contacts the vertical surface of the trapezoidal block 1 12, the trapezoidal block 2 18 and the hinge 17 are hinged and rotated with the shaft of the hinge seat 16 as the midline point, the torsion spring 19 will be squeezed to deform it. After the trapezoidal block 2 18 passes through the trapezoidal block 1 12 smoothly, under the action of the torsion spring 19, the trapezoidal block 2 18 and the hinge 17 will be hinged and rotated in the opposite direction with the shaft of the hinge seat 16 to reset, so that the trapezoidal block 2 When the trapezoidal block 18 is reset, its inclined surface can contact the inclined surface of the trapezoidal block 12, so that the trapezoidal block 12 is subjected to a downward extrusion force; at this time, due to the setting of the rotation limit plate 20, the hinge 17 and the other side of the trapezoidal block 18 are restricted, so that when the trapezoidal block 18 is reset and contacts the inclined surface of the trapezoidal block 12, the trapezoidal block 18 and the hinge 17 will not be hinged and rotated with the shaft rod of the hinge seat 16, but squeeze the trapezoidal block 12 to move downward.
[0033] like Figures 7 and 8 As shown, the side surfaces at both ends of the belt gear 11 are fixedly connected to the limit slider 21, the outer wall of the limit slider 21 is slidably connected to the inner groove seat 22, the inner groove seat 22 is fixedly installed on the top of the base 1, and the top of the limit slider 21 is fixedly connected to the return spring 23, and the end of the return spring 23 away from the limit slider 21 is fixedly connected to the inner wall surface of the inner groove seat 22.
[0034] During operation: When the trapezoidal block 12 moves downward under the extrusion force of the trapezoidal block 18 for resetting, the belt gear 11 will engage with the teeth of the gear 10, causing the gear 10 to rotate self - sufficiently. The self - rotation of the gear 10 causes the two receiving platforms 3 to tilt. Through the provided limit sliders 21 and inner groove seats 22, the two ends of the belt gear 11 can be restricted, so that when the trapezoidal block 12 moves downward, the belt gear 11 can move along a certain trajectory and fully engage with the teeth of the gear 10. When the trapezoidal block 12 moves downward, the end of the belt gear 11 connected to the trapezoidal block 12 will move downward, causing the limit slider 21 corresponding to the downward - moving end of the belt gear 11 to slide downward along the inner wall of the inner groove seat 22 and stretch the corresponding return spring 23. The end of the belt gear 11 away from the trapezoidal block 12 will move upward, causing the limit slider 21 corresponding to the upward - moving end of the belt gear 11 to slide upward along the inner wall of the inner groove seat 22 and compress the corresponding return spring 23. When the trapezoidal block 18 finishes squeezing the trapezoidal block 12 and leaves the contact with the trapezoidal block 12, under the action of the two return springs 23, the belt gear 11 can return to its original position, and the trapezoidal block 12 moves upward to return to its original position. When the belt gear 11 resets, it will cause the gear 10 to rotate reversely. The two receiving platforms 3 can return from the tilted state to the horizontal state under the reverse rotation of the gear 10. At this time, the two receiving platforms 3 create space, providing convenience for subsequent cutting and receiving operations.
[0035] As Figure 2 and Fig. 9 shown, the feeding assembly includes a pusher 28. The pusher 28 is in a "Ji" shape. Symmetrically - arranged sliding grooves 29 are formed on the top surface of the cutting table 2. The two sides of the pusher 28 are respectively slidably connected to the inner walls of the sliding grooves 29. Fixedly - connected to the bottom of both ends of the pusher 28 are sliders 30. Symmetrically - fixedly - installed on the top of the base table 1 are fixed sliding seats 31. The sliders 30 are slidably connected to the fixed sliding seats 31. Above the pusher 28 is arranged a pushing assembly for driving the pusher 28 to slide along the inner wall of the sliding groove 29.
[0036] During operation: when the large honeycomb panel is placed on the top of the cutting table 2, one side of it is in contact with one side of the pushing member 28. Whenever the horizontal electric slide rail 5 drives the electric slider 6 to slide in the opposite direction and reset, and the two receiving tables 3 are tilted to unload materials, the electric slider 6 will use the pushing component to make the pushing member 28 slide along the inner wall of the slide groove 29, pushing the remaining part of the honeycomb panel forward, and a part of the large honeycomb panel continues to be pushed to the top of the receiving table 3, ready for the next cutting work, and each time the electric slider 6 slides in the opposite direction and resets, the pushing member 28 can continuously push the large honeycomb panel forward, and the pushing component can also make the length of the honeycomb panel pushed to the top of the receiving table 3 the same as the length of the last cut small honeycomb panel, so that the outer dimensions of each cut small honeycomb panel are the same.
[0037] like Figure 1 and Fig. 9 As shown, the pushing assembly includes a telescopic rod 32, the bottom of the telescopic rod 32 is fixedly connected to the top of the connecting block 13, the top of the telescopic rod 32 is fixedly connected to a rack plate 1 33, a gear 2 34 is arranged below the rack plate 1 33, both ends of the shaft of the gear 2 34 are rotatably connected to a fixing frame 36, the fixing frame 36 is fixedly installed on the side wall of the cutting table 2, the teeth of the gear 2 34 are meshed with a rack plate 2 35, and the bottom of the rack plate 2 35 is fixedly connected to the top of the pushing member 28.
[0038] During operation: when the horizontal and transverse electric slide rail 5 drives the electric slider 6 to slide for cutting, the telescopic rod 32 is in an extended state. When the electric slider 6 drives the rack plate 1 33 to move through the connecting block 13 and the telescopic rod 32, the teeth of the rack plate 1 33 and the teeth of the gear 2 34 are not in a meshing state, and the honeycomb panel performs cutting work in this process. When the horizontal and transverse electric slide rail 5 drives the electric slider 6 to slide in the reverse reset state, the telescopic rod 32 is in a shortened state, and the teeth of the rack plate 1 33 and the gear 2 34 are in a meshing state. The rack plate 1 33 drives the gear 2 34 to rotate, and the gear 2 34 drives the rack plate 2 35 to move forward the same distance as the rack plate 1 33. When the rack plate 2 35 moves, the pushing member 28 pushes the remaining part of the honeycomb panel to move and load. It should be noted that the rack plate 2 35 needs to be set to a sufficient length. Every time the electric slider 6 slides and resets, the engagement of the rack plate 1 33 and the gear 2 34 can enable the pusher 28 to push the honeycomb panel forward a certain distance, and the pushing distance is the same each time, so that the outer dimensions of each cut small honeycomb panel are the same.
[0039] like Figure 1 and Figure 4As shown, an inclined slide 26 is fixedly installed on the top of the base platform 1, and the inclined slide 26 is located on the side below the receiving platform 3. A collecting box 27 is provided on the top of the base platform 1, and the opening of the collecting box 27 is connected to the bottom of the inclined slide 26.
[0040] During operation: during the tilting process of the two receiving tables 3, the two cut small honeycomb panels will fall onto the upper surface of the tilting slide 26 and fall into the collecting box 27 along the inclined surface of the tilting slide 26 for collection.
[0041] like Figures 2 to 3 As shown, a plurality of anti-shifting columns 37 are symmetrically arranged on the top of the base platform 1 and the receiving platform 3, and the distance between the anti-shifting columns 37 is adaptively adjusted according to the width of the honeycomb panel. The bottom of the electric slide rail 5 is fixedly connected with a limiting plate 38.
[0042] During operation: the two ends of the honeycomb panel are limited by the anti-shifting column 37 to avoid positional displacement during the cutting process or when the pusher 28 pushes the honeycomb panel to feed the material, resulting in reduced cutting accuracy. The limit plate 38 is used to control the length of the cut small honeycomb panel.
[0043] The above shows and describes the basic principles, main features and advantages of the present invention. It should be understood by those skilled in the art that the present invention is not limited to the above embodiments. The above embodiments and descriptions are only for explaining the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention may have various changes and improvements, which fall within the scope of the present invention. The scope of protection of the present invention is defined by the attached claims and their equivalents.
Claims
1. A laser synchronous cutting device for producing honeycomb panels, comprising a base table, characterized in that: A cutting table is fixedly installed at the top of the base table. A pair of receiving tables are arranged on one side of the cutting table. Above the cutting table and the receiving tables is used for placing honeycomb boards. A cutting frame is fixedly connected to the top of the cutting table. Two electric slide rails are fixedly installed on one side of the cutting frame. One electric slide rail is installed horizontally longitudinally with respect to the cutting table, and the other electric slide rail is installed horizontally transversely with respect to the cutting table. Electric sliders are slidably connected to the inner walls of the electric slide rails. Laser cutting heads are fixedly connected to the bottoms of the electric sliders. A blanking component for driving the two receiving tables to tilt and rotate is arranged on the side of the receiving table. A feeding component for driving the honeycomb board to advance is arranged on the side of the cutting table.
2. A laser synchronous cutting device for producing honeycomb panels according to claim 1, characterized in that: Rotating rods are fixedly connected between the two ends of the two receiving tables. Clamping seats are rotatably connected to both ends of one of the rotating rods. The two clamping seats are fixedly installed on the top of the base table. Arc-shaped slide rails are fixedly connected to both ends of one of the rotating rods. Arc-shaped sliders are slidably connected to the outer walls of the arc-shaped slide rails. The arc-shaped sliders are fixedly installed on the top of the base table.
3. A laser synchronous cutting device for producing honeycomb panels according to claim 2, characterized in that: The blanking component includes two first gears, which are respectively fixedly installed on both sides of one of the rotating rods. The teeth of the first gears are all engaged with belt gears. A trapezoidal block one is fixedly connected to the top of the belt gear. An extrusion component is arranged above the trapezoidal block one, and the extrusion component can drive the trapezoidal block one to move downward.
4. The laser synchronous cutting device for producing honeycomb panels according to claim 3, characterized in that: The extrusion component includes a connecting block, which is fixedly connected to the top of the horizontally and transversely moving electric slider. Connecting rods are fixedly connected to both sides of the connecting block. Fixing pieces are fixedly connected to one ends of the connecting rods. A hinge seat is fixedly connected to the bottom of the fixing piece. A hinge piece is hinged to the shaft rod of the hinge seat. A trapezoidal block two is fixedly connected to the bottom of the hinge piece.
5. The laser synchronous cutting device for producing honeycomb panels according to claim 4, characterized in that: Torsion springs are fixedly connected to one side of each hinge piece. The ends of the torsion springs away from the hinge pieces are fixedly connected to the bottom of the fixing piece. A limiting rotation plate is fixedly connected to one side of the hinge seat. One side of the limiting rotation plate is attached to one side of the hinge piece.
6. The laser synchronous cutting device for producing honeycomb panels according to claim 5, characterized in that: Limit sliders are fixedly connected to both side surfaces of the belt gear. Inner groove seats are slidably connected to the outer walls of the limit sliders. The inner groove seats are fixedly installed on the top of the base table. Return springs are fixedly connected to the tops of the limit sliders. The ends of the return springs away from the limit sliders are fixedly connected to the inner wall surfaces of the inner groove seats.
7. The laser synchronous cutting device for producing honeycomb panels according to claim 6, characterized in that: The feeding component includes a pusher, which is in a "J" shape. Sliding grooves are symmetrically opened on the top surface of the cutting table. Both sides of the pusher are slidably connected to the inner walls of the sliding grooves. Sliders are fixedly connected to the bottoms of both ends of the pusher. Fixed sliding seats are symmetrically fixedly installed on the top of the base table. The sliders are slidably connected to the fixed sliding seats. A pushing component is arranged above the pusher, and the pushing component is used to drive the pusher to slide along the inner wall of the sliding groove.
8. The laser synchronous cutting device for producing honeycomb panels according to claim 7, characterized in that: The pushing component includes a telescopic rod, the bottom of which is fixedly connected to the top of the connecting block. A first rack plate is fixedly connected to the top of the telescopic rod. A second gear is arranged below the first rack plate. The shaft rod of the second gear is rotatably connected to both ends of a fixed frame, and the fixed frame is fixedly installed on the side wall of the cutting table. The teeth of the second gear are engaged with a second rack plate, and the bottom of the second rack plate is fixedly connected to the top of the pusher.
9. The laser synchronous cutting device for producing honeycomb panels according to claim 8, characterized in that: An inclined slide is fixedly installed on the top of the base platform, and the inclined slide is located on the side below the material receiving platform. A collection box is arranged on the top of the base platform, and the opening of the collection box is butted against the bottom of the inclined slide.
10. The laser synchronous cutting device for producing honeycomb panels according to claim 9, characterized in that: A plurality of anti-shift columns are symmetrically arranged on the top of the base platform and the material receiving platform. The distance between the anti-shift columns is adjusted according to the width of the honeycomb panel. The bottom of the electric slide rail is fixedly connected with a limit plate.
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