Artificial board cutting waste recovery device and recovery method thereof

By designing a convenient loading mechanism and a hydraulically driven loading bearing plate, the inconvenience and safety of loading during the recycling of cutting waste in the artificial board in the prior art is solved, and efficient and safe loading operations are achieved, reducing the labor intensity of workers.

CN120394154AActive Publication Date: 2025-08-01SUZHOU PI MATERIAL RECYCLING ENVIRONMENTAL PROTECTION CO LTD
View PDF 7 Cites 0 Cited by

Patent Information

Application Number
CN202510753010.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-06
Publication Date
2025-08-01
Estimated Expiration
2045-06-06

AI Technical Summary

Technical Problem

The existing cutter and disc crusher needs to be shut down during the cutting of artificial boards, which makes it inconvenient for workers to carry materials, resulting in high working strength and unsafe loading process.

Method used

A artificial board cutting waste recycling device is designed, using hydraulic telescopic rod to drive the loading bearing plate and the loading bearing cylinder. The feeding port is controlled by a robot to achieve convenient loading, and a convenient loading mechanism is set up on the crushing platform, including the loading bearing plate, the loading bearing cylinder, the bottom sealing plate and the driving connection block, to ensure the safety and efficiency of the loading process.

Benefits of technology

It reduces the work intensity of staff, improves the loading efficiency, ensures the safety and convenience of the loading process, and reduces the labor intensity of manual operation.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120394154A_ABST
    Figure CN120394154A_ABST
Patent Text Reader

Abstract

The invention relates to the technical field of smashing devices, in particular to an artificial board cutting waste recovery device and a recovery method thereof.The artificial board cutting waste recovery device comprises a smashing platform, a smashing part is fixedly arranged on the smashing platform, bearing bending frames are symmetrically and fixedly arranged on the two sides of the smashing part, and mounting guide holes are formed in the upper ends of the bearing bending frames; a bearing cross beam plate is fixedly arranged between the upper ends of the bearing bending frames, movable matching holes are symmetrically formed in the bearing cross beam plate, a fixed protruding connecting frame is fixedly arranged on the bearing cross beam plate, a feeding bearing plate is arranged on the crushing platform, and a feeding bearing cylinder is mounted on the feeding bearing plate; raw materials are placed in the feeding bearing cylinder, a hydraulic telescopic rod is started, the feeding bearing plate can be driven to move upwards to push the raw materials, the feeding bearing cylinder is pushed to move to the upper side of the crushing part under the action of a driving connecting block to achieve feeding, great convenience is achieved, the working intensity of workers is relieved to a great extent, and the feeding efficiency is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of crushing devices, and specifically to a recycling device and a recycling method for artificial board cutting waste. Background Art

[0002] Artificial board cutting waste refers to the remaining materials and fragments generated during the production process or subsequent processing of artificial boards. In the prior art, artificial boards are usually made by recycling various wastes for environmentally friendly reprocessing. The production process of this board involves a series of operations such as board forming, cutting production, and transportation.

[0003] During the cutting process of artificial boards, wastes such as scraps, sawdust, and debris will be generated. These wastes can be recycled and ground into raw materials for re - utilization, thereby better improving the economic benefits of artificial boards. Commonly used crushing equipment includes hammer crushers, cutter - disk crushers, etc. The existing cutter - disk crushers are favored because of their high working efficiency, but they have defects such as inconvenient feeding that requires shutdown for feeding and workers to carry materials. Especially when the existing cutting equipment finishes cutting the boards, after workers collect the board wastes and then transport them to the waste recycling device for crushing and re - utilization, the entire process will greatly increase the working intensity. Summary of the Invention

[0004] The purpose of the present invention is to provide a recycling device for artificial board cutting waste to solve the problems raised in the above background art.

[0005] To achieve the above purpose, the present invention provides the following technical solutions: A recycling device for artificial board cutting waste, including a crushing platform. A crushing part is fixedly arranged on the crushing platform. Load - bearing bending frames are symmetrically and fixedly arranged on both sides of the crushing part. Installation guiding holes are opened at the upper ends of the load - bearing bending frames, and a load - bearing cross - beam plate is fixedly arranged between the upper ends of the load - bearing bending frames. Moving matching holes are symmetrically opened on the load - bearing cross - beam plate, and a fixed protruding connecting frame is fixedly arranged on the load - bearing cross - beam plate. A support guide rail plate is fixedly arranged on the load - bearing cross - beam plate below the fixed protruding connecting frame. A support guide rail groove is opened on the support guide rail plate, and a limiting fixed rod is fixedly arranged in the support guide rail groove. One end of the crushing platform is fixedly provided with a matching workbench. Guide - bearing rods are symmetrically and fixedly arranged on both sides of the matching workbench. A matching telescopic hole is opened on the matching workbench between the guide - bearing rods. An installation bearing bottom frame is fixedly arranged at the lower port of the matching telescopic hole. A hydraulic telescopic rod is fixedly installed on the installation bearing bottom frame. A convenient feeding mechanism is arranged on the crushing platform.

[0006] Preferably, the convenient feeding mechanism includes a feeding carrier plate, a feeding carrier cylinder, a bottom closing plate of the cylinder, a first connecting spring, a movable interlocking plate, a second connecting spring, a driving connecting block, a counterweight movable block and a movable connecting block. The feeding carrier plate is fixedly installed on the hydraulic telescopic rod, and guiding and mating through holes are symmetrically formed on both sides of the feeding carrier plate. A guiding carrier rod is inserted into the guiding and mating through holes.

[0007] Preferably, a protruding vertical plate is fixedly arranged at one end of the feeding carrier plate. Limiting connection holes are symmetrically formed on both sides of the protruding vertical plate. A feeding carrier cylinder is installed on the feeding carrier plate. A fixed connecting block is fixedly arranged on the upper side of one end of the feeding carrier cylinder close to the protruding vertical plate. A connecting inner insertion cavity is formed in the fixed connecting block.

[0008] Preferably, cylinder body protruding blocks are symmetrically and fixedly arranged on both sides of one end of the feeding carrier cylinder far from the protruding vertical plate. A connecting locking hole is formed on the lower end surface of the cylinder body protruding block. A supporting and loading rod is fixedly arranged on the cylinder body protruding block. Matching supporting rods are symmetrically and fixedly arranged on both sides of the feeding carrier cylinder under the fixed connecting block. The matching supporting rods are inserted into the limiting connection holes.

[0009] Preferably, bottom closing plates of the cylinder are symmetrically installed at the lower end of the feeding carrier cylinder. A connecting and mating plate is fixedly arranged on one side of the bottom closing plate of the cylinder. A fixed column is fixedly arranged on the connecting and mating plate. A movable mating insertion hole is formed in the fixed column. A supporting and loading rod is inserted into the movable mating insertion hole. A first connecting spring is sleeved on the supporting and loading rod. An upper top convex plate is fixedly arranged at the upper end of the fixed column. A mating installation hole is formed in the upper top convex plate. A movable interlocking plate is installed on the upper top convex plate.

[0010] Preferably, a first mating sliding groove is formed at the upper end of the movable interlocking plate. An installation and mating rod is fixedly arranged at the lower end of the movable interlocking plate. The installation and mating rod is inserted into the mating installation hole. A second connecting spring is sleeved on the installation and mating rod. The second connecting spring is located under the upper top convex plate. A locking bottom plate is fixedly arranged at the lower end of the installation and mating rod. A locking insertion column is fixedly arranged on the locking bottom plate. The locking insertion column is inserted into the connecting locking hole.

[0011] Preferably, the driving connecting block is installed on the supporting guide rail plate. A lower convex insertion connecting block is fixedly arranged at the lower end of the driving connecting block, and a mating connecting convex frame is fixedly arranged at the upper end. A first connecting and mating hinge rod is hinged on the mating connecting convex frame. The upper end of the first connecting and mating hinge rod is hinged on the fixed protruding connecting frame.

[0012] Preferably, on both sides of one end of the driving connection block, fixed bearing plates are symmetrically and fixedly arranged. On the fixed bearing plates, support linkage rods are fixedly arranged. An active guide block is sleeved on the support linkage rods. The active guide block is inserted into a support guide groove, and a limiting fit through hole is formed in the active guide block. A limiting fixed rod is inserted into the limiting fit through hole. On both sides of the active guide block, connection bearing plates are symmetrically and fixedly arranged. An active fit through hole is formed in the connection bearing plate, and a support linkage rod is inserted into the active fit through hole.

[0013] Preferably, a second fit sliding groove is formed at the lower end of the counterweight movable block, and a fit insertion rod is fixedly arranged at the upper end of the counterweight movable block. The fit insertion rod is inserted into a moving fit hole, and a limiting top plate is fixedly arranged at the upper end of the fit insertion rod.

[0014] Preferably, a second connection fit hinge rod is hinged on the counterweight movable block. The upper end of the second connection fit hinge rod is hinged to a moving connection block. A connection installation rod is fixedly arranged on the moving connection block. The connection installation rod is inserted into an installation guide hole, and an extended bearing plate is fixedly arranged on the connection installation rod. An L-shaped hanging plate is fixedly arranged on the extended bearing plate. A driving cylindrical rod is fixedly arranged at the lower end of the L-shaped hanging plate.

[0015] A method for recycling waste materials from wood-based panel cutting, which realizes the recycling of cutting waste materials based on a wood-based panel cutting waste material recycling device, includes the following steps: S1: The feeding carrier cylinder moves upward for feeding operation; S2: Open the bottom closing plate of the cylinder to realize the discharging operation; S3: Start the crushing part for crushing operation; S4: Recycle the crushed materials after crushing is completed.

[0016] Compared with the prior art, the beneficial effects of the present invention are as follows: The structure of the present invention is reasonably arranged and has strong functionality, and has the following advantages: 1. A feeding carrier plate is arranged on the crushing platform, and a feeding carrier cylinder is installed on the feeding carrier plate. Place the raw materials into the feeding carrier cylinder and start the hydraulic telescopic rod to drive the feeding carrier plate to move upward to push the raw materials. Under the action of the driving connection block, the feeding carrier cylinder is pushed to move above the crushing part to realize feeding, which is very convenient, greatly reducing the work intensity of the staff and improving the feeding efficiency.

[0017] 2. When feeding materials into the feeding carrier cylinder and during the upward movement of the feeding carrier cylinder, the bottom closing plate of the cylinder and the feeding carrier cylinder are in a relatively fixed state, which can fully ensure the safety during the transportation of raw materials. When the movable interlocking plate contacts the driving cylindrical rod, under the action of the driving cylindrical rod at this time, the movable interlocking plate moves downward relative to the feeding carrier cylinder, so that the bottom closing plate of the cylinder is in an unlocked state, facilitating the opening of the bottom closing plate of the cylinder.

[0018] 3. When the feeding carrier cylinder moves to the upper side of the crushing part, the bottom closing plate of the cylinder is in an unlocked state at this time. As the driving connecting block continues to move upward, it will drive the cooperating movable block to move upward. Then, under the action of the second connecting and cooperating hinge rod, it will push the driving cylindrical rod to move away from each other. Further, under the action of the driving cylindrical rod, it can drive the movable interlocking plate to move, and then drive the bottom closing plate of the cylinder to move away from each other, so that the lower end of the feeding carrier cylinder is opened to realize feeding. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 Schematic diagram of the first perspective view of the crushing platform assembly.

[0020] Figure 2 Schematic diagram of the second perspective view of the crushing platform assembly.

[0021] Figure 3 Schematic diagram of the structure of the hinge plate platform.

[0022] Figure 4 For Figure 3 The enlarged schematic diagram of part A in

[0023] Figure 5 Schematic diagram of the first perspective view of the assembly of the feeding carrier plate and the feeding carrier cylinder.

[0024] Figure 6 Schematic diagram of the second perspective view of the assembly of the feeding carrier plate and the feeding carrier cylinder.

[0025] Figure 7 Schematic diagram of the structure of the bottom closing plate of the cylinder.

[0026] Figure 8 Schematic diagram of the assembly of the driving connecting block.

[0027] Figure 9 Schematic diagram of the assembly of the counterweight movable block.

[0028] In the figure: 1. Crushing platform; 11. Crushing part; 12. Carrying and bending frame; 13. Installation guiding hole; 14. Carrying cross beam plate; 141. Moving matching hole; 142. Fixed protruding connecting frame; 143. Supporting guide rail plate; 144. Supporting guide rail groove; 145. Limiting fixing rod; 15. Matching workbench; 16. Guiding carrying rod; 17. Matching telescopic hole; 18. Installation carrying bottom frame; 19. Hydraulic telescopic rod; 2. Feeding carrying plate; 21. Guiding matching through hole; 22. Protruding vertical plate; 23. Limiting connecting hole; 3. Feeding carrying cylinder; 31. Fixed connecting block; 32. Connecting inner insertion cavity; 33. Cylinder body protruding block; 34. Connecting locking hole; 35. Supporting load-bearing rod; 36. Matching supporting rod; 4. Bottom cylinder closing plate; 41. Connecting matching plate; 42. Fixed column; 43. Moving matching socket; 431. First connecting spring; 44. Upper top convex plate; 45. Matching installation hole; 5. Movable interlocking plate; 51. First matching chute; 52. Installation matching rod; 53. Second connecting spring; 54. Locking bottom plate; 55. Locking insertion column; 6. Driving connecting block; 61. Lower convex inserting connecting block; 62. Matching connecting convex frame; 63. First connecting matching hinge rod; 64. Fixed carrying plate; 65. Supporting linkage rod; 66. Movable guide rail block; 67. Limiting matching through hole; 68. Connecting carrying plate; 69. Movable matching through hole; 7. Counterweight movable block; 71. Second matching chute; 72. Matching insertion rod; 73. Limiting top plate; 74. Second connecting matching hinge rod; 75. Moving connecting block; 76. Connecting installation rod; 77. Extended carrying plate; 78. L-shaped hanging plate; 79. Driving cylindrical rod. Detailed implementation mode

[0029] 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.

[0030] Please refer to Figures 1 to 9 , the present invention provides a technical solution: A device for recycling waste materials from artificial board cutting includes a crushing platform 1. A crushing part 11 is fixedly arranged on the crushing platform 1. The crushing part 11 is composed of a cylindrical shell and a crushing knife group arranged inside to form a waste material recycling and crushing structure. The upper port of the cylindrical shell is the feeding port. At the feeding port, the opening and closing of the lid at the port are controlled by a manipulator (not shown in the figure). It is simply the opening and closing of the lid controlled by a manipulator. When the feeding port is opened, feeding starts, and when it is closed, crushing begins to prevent the splashing of the crushed board raw materials. A discharging structure is arranged on one side of the bottom of the cylindrical shell, which can be a discharging valve, a discharging pipe or a structure controlled by a discharging pump for automatic discharging.

[0031] On both sides of the crushing part 11, there are symmetrically fixed bearing bending frames 12. An installation guiding hole 13 is opened at the upper end of the bearing bending frame 12. And between the upper ends of the bearing bending frames 12, there is a fixed bearing cross beam plate 14. Symmetrically arranged moving fitting holes 141 are opened on the bearing cross beam plate 14. And a fixed protruding connecting frame 142 is fixed on the bearing cross beam plate 14. A supporting guide rail plate 143 is fixed on the bearing cross beam plate 14 below the fixed protruding connecting frame 142. A supporting guide rail groove 144 is opened on the supporting guide rail plate 143. A limiting fixing rod 145 is fixed in the supporting guide rail groove 144. One end of the crushing platform 1 is fixedly provided with a matching workbench 15. Guide bearing rods 16 are symmetrically fixed on both sides of the matching workbench 15. A matching telescopic hole 17 is opened on the matching workbench 15 between the guide bearing rods 16. An installation bearing bottom frame 18 is fixed at the lower port of the matching telescopic hole 17. A hydraulic telescopic rod 19 is fixedly installed on the installation bearing bottom frame 18. A convenient feeding mechanism is arranged on the crushing platform 1.

[0032] The convenient feeding mechanism includes a feeding bearing plate 2, a feeding bearing cylinder 3, a cylinder bottom closing plate 4, a first connecting spring 431, a movable interlocking plate 5, a second connecting spring 53, a driving connecting block 6, a counterweight movable block 7 and a moving connecting block 75. The feeding bearing plate 2 is fixedly installed on the hydraulic telescopic rod 19. And symmetrically arranged guiding fitting through holes 21 are opened on both sides of the feeding bearing plate 2. The guiding bearing rods 16 are inserted into the guiding fitting through holes 21.

[0033] One end of the feeding bearing plate 2 is fixedly provided with a protruding vertical plate 22. Limiting connecting holes 23 are symmetrically opened on both sides of the protruding vertical plate 22. And a feeding bearing cylinder 3 is installed on the feeding bearing plate 2. On the upper side of one end of the feeding bearing cylinder 3 close to the protruding vertical plate 22, a fixed connecting block 31 is fixedly provided. A connecting inner insertion cavity 32 is opened in the fixed connecting block 31.

[0034] On both sides of one end of the feeding bearing cylinder 3 far from the protruding vertical plate 22, there are symmetrically fixed cylinder body protruding blocks 33. Connecting locking holes 34 are opened on the lower end surfaces of the cylinder body protruding blocks 33. And a supporting load-bearing rod 35 is fixedly provided on the cylinder body protruding blocks 33. On both sides of the feeding bearing cylinder 3 below the fixed connecting block 31, there are symmetrically fixed matching supporting rods 36. The matching supporting rods 36 are inserted into the limiting connecting holes 23.

[0035] At the lower end of the feeding and bearing cylinder 3, bottom closing plates 4 are symmetrically installed. On one side of the bottom closing plate 4, a connecting and mating plate 41 is fixedly arranged. On the connecting and mating plate 41, a fixed upright column 42 is fixedly arranged. An activity mating insertion hole 43 is formed on the fixed upright column 42. A supporting and loading rod 35 is inserted into the activity mating insertion hole 43. A first connecting spring 431 is sleeved on the supporting and loading rod 35, and both ends of the first connecting spring 431 are respectively welded on the fixed upright column 42 and the cylinder body protruding block 33. At the upper end of the fixed upright column 42, an upper top convex plate 44 is fixedly arranged. A mating installation hole 45 is formed on the upper top convex plate 44. An activity interlocking plate 5 is installed on the upper top convex plate 44. In addition, the upper end surface of the bottom closing plate 4 is in contact with the lower end surface of the feeding and bearing cylinder 3, and the bottom closing plate 4 is in a closed state when supporting the raw materials.

[0036] At the upper end of the activity interlocking plate 5, a first mating sliding groove 51 is formed. At the lower end of the activity interlocking plate 5, an installation and mating rod 52 is fixedly arranged. The installation and mating rod 52 is inserted into the mating installation hole 45. A second connecting spring 53 is sleeved on the installation and mating rod 52. The second connecting spring 53 is located below the upper top convex plate 44. At the lower end of the installation and mating rod 52, a locking bottom plate 54 is fixedly arranged. On the locking bottom plate 54, a locking insertion column 55 is fixedly arranged. The locking insertion column 55 is inserted into the connecting and locking hole 34. In addition, both ends of the second connecting spring 53 are respectively welded on the lower end surface of the upper top convex plate 44 and the locking bottom plate 54.

[0037] The driving connection block 6 is installed on the supporting guide rail plate 143. At the lower end of the driving connection block 6, a lower convex insertion connection block 61 is fixedly arranged. At the upper end, a mating connection convex frame 62 is fixedly arranged. A first connecting and mating hinge rod 63 is hinged on the mating connection convex frame 62. The upper end of the first connecting and mating hinge rod 63 is hinged on the fixed protruding connection frame 142. In addition, the size of the lower convex insertion connection block 61 is equal to the size of the connecting inner insertion cavity 32.

[0038] On both sides at one end of the driving connection block 6, fixed bearing plates 64 are symmetrically fixedly arranged. On the fixed bearing plates 64, supporting linkage rods 65 are fixedly arranged. An activity guide rail block 66 is sleeved on the supporting linkage rods 65. The activity guide rail block 66 is inserted into the supporting guide rail groove 144. A limiting mating through hole 67 is formed on the activity guide rail block 66. A limiting fixed rod 145 is inserted into the limiting mating through hole 67. On both sides of the activity guide rail block 66, connection bearing plates 68 are symmetrically fixedly arranged. An activity mating through hole 69 is formed on the connection bearing plates 68. The supporting linkage rod 65 is inserted into the activity mating through hole 69.

[0039] A second mating chute 71 is provided at the lower end of the counterweight movable block 7, and a mating insertion rod 72 is fixedly provided at the upper end of the counterweight movable block 7. The mating insertion rod 72 is inserted into the moving mating hole 141, and a limiting top plate 73 is fixedly provided at the upper end of the mating insertion rod 72, and the limiting top plate 73 is located above the load-bearing crossbeam plate 14.

[0040] A second connecting and mating hinge rod 74 is hinged to the counterweight movable block 7. The upper end of the second connecting and mating hinge rod 74 is hinged to a moving connecting block 75. A connecting and mounting rod 76 is fixedly provided on the moving connecting block 75. The connecting and mounting rod 76 is inserted into the mounting guide hole 13, and an extended load-bearing plate 77 is fixedly provided on the connecting and mounting rod 76. An L-shaped hanging plate 78 is fixedly provided on the extended load-bearing plate 77. A driving cylinder rod 79 is fixedly provided at the lower end of the L-shaped hanging plate 78, and the driving cylinder rod 79 is located directly above the movable interlocking plate 5.

[0041] In this embodiment, the driving source motors used all adopt energy-saving motors to reduce the energy consumption of waste recycling, such as the driving motor of the crushing knife group in the crushing part 11, the driving motor of the discharge pump, and so on.

[0042] When feeding the crushing device, place the waste generated by cutting the artificial board in the feeding carrier cylinder 3, and then start the hydraulic telescopic rod 19 to drive the feeding carrier plate 2 to move upward, thereby driving the raw materials to move upward. When the feeding carrier cylinder 3 passes over the crushing part 11, the lower convex insertion connecting block 61 is inserted into the connecting inner insertion cavity 32 at this time. In this way, as the feeding carrier plate 2 moves upward, it will push the driving connecting block 6 to move upward. At the same time, under the action of the first connecting and cooperating hinge rod 63, it will push the driving connecting block 6 to move above the crushing part 11. In this way, under the action of the driving connecting block 6, it will push the feeding carrier cylinder 3 to move above the barrel opening of the crushing part 11. When the feeding carrier cylinder 3 moves above the crushing part 11, the driving cylinder rod 79 is inserted into the first cooperation chute 51 at this time. In this way, as the feeding carrier cylinder 3 moves upward, it will cause the movable interlocking plate 5 to move downward relative to the feeding carrier cylinder 3, thereby causing the locking insertion column 55 on the locking bottom plate 54 to withdraw from the connection locking hole 34, making the bottom barrel closing plate 4 in an active state. And at this time, the support linkage rod 65 is also inserted into the second cooperation chute 71. In this way, under the action of the support linkage rod 65, it will also drive the counterweight movable block 7 to move upward. Then, under the action of the second connecting and cooperating hinge rod 74, the movable connecting block 75 will move. Then, as the movable connecting block 75 moves, it will also cause the driving cylinder rod 79 to move. Then, under the action of the driving cylinder rod 79, it will drive the bottom barrel closing plate 4 to move, causing the bottom barrel closing plate 4 to move away from each other, thereby making the lower barrel hole of the feeding carrier cylinder 3 in an open state, so that the raw materials can fall from the feeding carrier cylinder 3 downward into the crushing part 11 to complete the feeding. After the feeding is completed, the crushing part 11 is started to crush and recycle the artificial board waste; it is very convenient, greatly reducing the working intensity of the staff and making the feeding more convenient. After the feeding is completed, start the hydraulic telescopic rod 19 to drive the feeding carrier plate 2 to move downward. In this way, under the action of the driving connecting block 6, it will drive the feeding carrier cylinder 3 to move in the reverse direction. At the same time, it will also cause the bottom barrel closing plate 4 to reset, and the locking insertion column 55 is inserted into the connection locking hole 34 again to fix the bottom barrel closing plate 4, so that the bottom barrel closing plate 4 can be in a stable closed state, preventing the bottom barrel closing plate 4 from shaking and causing the raw materials to spill during the movement of the feeding carrier cylinder 3.

[0043] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An artificial board cutting waste recycling device, comprising a crushing platform (1), characterized in that: A crushing unit (11) is fixedly arranged on the crushing platform (1). Loading and bending frames (12) are symmetrically and fixedly arranged on both sides of the crushing unit (11). A loading cross beam plate (14) is fixedly arranged between the upper ends of the loading and bending frames (12). A fixed protruding connecting frame (142) is fixedly arranged on the loading cross beam plate (14). A support guide plate (143) is fixedly arranged on the loading cross beam plate (14) below the fixed protruding connecting frame (142). A support guide groove (144) is formed in the support guide plate (143). A limiting fixed rod (145) is fixedly arranged in the support guide groove (144). A matching workbench (15) is fixedly arranged at one end of the crushing platform (1). Guide loading rods (16) are symmetrically and fixedly arranged on both sides of the matching workbench (15). A matching telescopic hole (17) is formed in the matching workbench (15) between the guide loading rods (16). An installation loading bottom frame (18) is fixedly arranged at the lower port of the matching telescopic hole (17). A hydraulic telescopic rod (19) is fixedly installed on the installation loading bottom frame (18). A convenient feeding mechanism is arranged on the crushing platform (1).

2. The waste recycling device for wood-based panel cutting according to claim 1, characterized in that: The convenient feeding mechanism includes a feeding loading plate (2), a feeding loading cylinder (3), a cylinder bottom closing plate (4), a first connecting spring (431), a movable interlocking plate (5), a second connecting spring (53), a driving connecting block (6), a counterweight movable block (7) and a movable connecting block (75). The feeding loading plate (2) is fixedly installed on the hydraulic telescopic rod (19). Guide matching through holes (21) are symmetrically formed on both sides of the feeding loading plate (2). Guide loading rods (16) are inserted into the guide matching through holes (21).

3. The artificial board cutting waste recycling device according to claim 2, characterized in that: A protruding vertical plate (22) is fixedly arranged at one end of the feeding loading plate (2). Limiting connecting holes (23) are symmetrically formed on both sides of the protruding vertical plate (22). A feeding loading cylinder (3) is installed on the feeding loading plate (2). A fixed connecting block (31) is fixedly arranged on the upper side of one end of the feeding loading cylinder (3) close to the protruding vertical plate (22). A connecting inner insertion cavity (32) is formed in the fixed connecting block (31).

4. An artificial board cutting waste recycling device according to claim 3, characterized in that: Cylinder body protruding blocks (33) are symmetrically and fixedly arranged on both sides of the end of the feeding loading cylinder (3) far from the protruding vertical plate (22). Connecting locking holes (34) are formed in the lower end surfaces of the cylinder body protruding blocks (33). Support loading rods (35) are fixedly arranged on the cylinder body protruding blocks (33). Matching support rods (36) are symmetrically and fixedly arranged on both sides of the feeding loading cylinder (3) below the fixed connecting block (31). The matching support rods (36) are inserted into the limiting connecting holes (23).

5. An artificial board cutting waste recycling device according to claim 4, characterized in that: The lower end of the feeding and carrying cylinder (3) is symmetrically installed with bottom closing plates (4). One side of the bottom closing plate (4) is fixedly provided with a connecting and mating plate (41). A fixed column (42) is fixedly provided on the connecting and mating plate (41). An active mating socket hole (43) is opened on the fixed column (42). A support and load-bearing rod (35) is inserted into the active mating socket hole (43). A first connecting spring (431) is sleeved on the support and load-bearing rod (35). The upper end of the fixed column (42) is fixedly provided with an upper convex plate (44). A mating installation hole (45) is opened on the upper convex plate (44), and an active interlocking plate (5) is installed on the upper convex plate (44).

6. The artificial board cutting waste recycling device according to claim 5, characterized in that: The upper end of the active interlocking plate (5) is opened with a first mating chute (51). The lower end of the active interlocking plate (5) is fixedly provided with an installation and mating rod (52). The installation and mating rod (52) is inserted into the mating installation hole (45). A second connecting spring (53) is sleeved on the installation and mating rod (52). The second connecting spring (53) is located below the upper convex plate (44). The lower end of the installation and mating rod (52) is fixedly provided with a locking bottom plate (54). A locking insertion column (55) is fixedly provided on the locking bottom plate (54). The locking insertion column (55) is inserted into the connecting and locking hole (34).

7. An artificial board cutting waste recycling device according to claim 6, characterized in that: The driving connection block (6) is installed on the support guide plate (143). The lower end of the driving connection block (6) is fixedly provided with a lower convex connecting block (61), and the upper end is fixedly provided with a mating connecting convex frame (62). A first connecting and mating hinge rod (63) is hinged on the mating connecting convex frame (62). The upper end of the first connecting and mating hinge rod (63) is hinged on the fixed protruding connecting frame (142).

8. The artificial board cutting waste recycling device according to claim 7, characterized in that: On both sides of one end of the driving connection block (6), fixed bearing plates (64) are symmetrically fixedly provided. A support linkage rod (65) is fixedly provided on the fixed bearing plate (64). An active guide block (66) is sleeved on the support linkage rod (65). The active guide block (66) is inserted into the support guide groove (144). A limiting mating through hole (67) is opened on the active guide block (66). A limiting fixed rod (145) is inserted into the limiting mating through hole (67). Connecting bearing plates (68) are symmetrically fixedly provided on both sides of the active guide block (66). An active mating through hole (69) is opened on the connecting bearing plate (68). The support linkage rod (65) is inserted into the active mating through hole (69).

9. The artificial board cutting waste recycling device according to claim 8, characterized in that: The lower end of the counterweight movable block (7) is opened with a second mating chute (71). The upper end of the counterweight movable block (7) is fixedly provided with a mating insertion rod (72). The mating insertion rod (72) is inserted into the moving mating hole (141). A limiting top plate (73) is fixedly provided at the upper end of the mating insertion rod (72).

10. A waste recycling device for artificial board cutting, characterized in that: A second connecting and mating hinge rod (74) is hinged to the counterweight movable block (7), the upper end of the second connecting and mating hinge rod (74) is hinged to a movable connecting block (75), a connecting and mounting rod (76) is fixedly arranged on the movable connecting block (75), the connecting and mounting rod (76) is inserted into the mounting guiding hole (13), and an extending bearing plate (77) is fixedly arranged on the connecting and mounting rod (76).

11. An artificial board cutting waste recycling device according to claim 9, characterized in that: An L-shaped drooping plate (78) is fixedly arranged on the extending bearing plate (77), and a driving cylindrical rod (79) is fixedly arranged at the lower end of the L-shaped drooping plate (78).

12. A method for recycling waste materials from wood-based panel cutting, characterized in that: Implementing the recovery of cutting waste by using a wood-based panel cutting waste recovery device according to any one of claims 1-11, comprising the following steps: S1: The feeding and bearing cylinder (3) moves upward for feeding operation; S2: The bottom closing plate (4) of the cylinder is opened to achieve discharging operation; S3: The crushing part (11) is started for crushing operation; S4: After crushing is completed, the crushed materials are recovered.

Citation Information

Patent Citations

  • Sponge crushing equipment for improving crushing effect

    CN109847913A

  • Powder unloading equipment of container dumper

    CN115352909A

  • A high-efficiency crushing device for plate processing

    CN119747005A

  • Cement grinding roller press capable of smoothly conveying materials

    CN213791978U

  • Crushing device for circuit board reclaimed materials

    CN220126359U