Full-automatic mould pressing tray spreading machine
By designing a fully automatic molded pallet laying machine, the collaborative work of the lifting component, telescopic component, and release agent nozzle component solves the problem of manually removing wood chips during molded pallet processing, achieving automated production, improving efficiency, and reducing costs.
Patent Information
- Application Number
- CN202520195862.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-07
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2035-02-07
AI Technical Summary
Molded pallets require manual removal of wood chips from the mold during processing, resulting in low production efficiency and increased labor costs.
A fully automatic molded pallet laying machine was designed, comprising a welded frame, a hopper, a weighing sensor, a vibrating baffle, and a two-layer conveyor belt. Through the coordinated work of a lifting assembly, a telescopic assembly, a leveling assembly, and a release agent nozzle assembly, the machine achieves automatic conveying, dispensing, gluing, and molding of wood chips, reducing manual intervention.
It has enabled automated production of molded pallets, improved production efficiency, and reduced labor costs.
Smart Images

Figure CN223777619U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of molded pallet processing, and in particular to a fully automatic molded pallet laying machine. Background Technology
[0002] Molded pallets are transportation and storage tools made by pressing wood fibers or plastic granules through a high-temperature and high-pressure process. They are characterized by high strength, durability, environmental friendliness, and anti-static properties. During the processing of molded pallets, after spraying glue onto the upper and lower molds, wood chips are placed into the lower mold. Excess wood chips in the lower mold need to be manually removed. Then, the upper and lower molds work together to compress the wood chips into shape, which increases labor costs and reduces production efficiency. Utility Model Content
[0003] To solve the above-mentioned technical problems, this utility model provides a fully automatic molded pallet laying machine that improves processing efficiency.
[0004] This utility model discloses a fully automatic molded pallet laying machine, comprising a welded frame, a hopper, a weighing sensor, a vibrating baffle, and a two-layer conveyor belt. The hopper is installed on top of the welded frame, and a weighing sensor is installed between the hopper and the welded frame. A vibrating baffle and a feeding conveyor belt are respectively installed at the output end of the hopper. The vibrating baffle moves left and right using a box-type linear bearing and two guide shafts fixed inside the hopper. The left and right vibration is driven by a cylinder mounted on the side plate of the hopper. The feeding conveyor belt is driven by a servo motor and a worm gear reducer. It also includes... The system comprises a two-layer conveyor belt, a lifting assembly, a mold release agent nozzle assembly, a lifting frame, a brush roller assembly, a telescopic assembly, a leveling assembly, a material distribution assembly, and an anti-clogging assembly. The welding frame contains a lifting assembly at its bottom, a lifting frame at its top, a telescopic assembly at its top, and a two-layer conveyor belt that slides along the top of the lifting frame. The telescopic assembly moves the two-layer conveyor belt on the lifting frame. A leveling assembly is located at the right end of the two-layer conveyor belt, and a mold release agent nozzle assembly is located at the right end of the leveling assembly. A material distribution assembly and a brush roller assembly are located on the hopper. At this time, the lifting assembly raises the second-layer conveyor belt via the lifting frame, and starts the discharge conveyor belt to transport the wood chips inside the hopper onto the second-layer conveyor belt in cooperation with the vibrating baffle, the distributing assembly, and the brush roller assembly. When the weighing sensor detects the weight of the discharged wood chips, the discharge conveyor belt stops unloading. Then, the lifting assembly is operated to lower the second-layer conveyor belt, and then the telescopic assembly is operated to move the second-layer conveyor belt, along with the leveling assembly and the release agent nozzle assembly, between the upper and lower molds. Simultaneously, the release agent nozzle assembly sprays adhesive onto the upper and lower molds. After the nozzle assembly sprays the adhesive onto the upper and lower molds, the telescopic assembly drives the second-layer conveyor belt to move in the opposite direction, simultaneously activating the second-layer conveyor belt. This allows the wood chips on the second-layer conveyor belt to be transported into the interior of the lower mold. The leveling assembly is then activated to level the wood chips that protrude above the upper surface of the lower mold. As the second-layer conveyor belt, leveling assembly, and release agent nozzle assembly move away from the upper and lower molds, the upper mold moves closer to the lower mold to close, thus producing the pallet. During this process, the feeding, unloading, spreading, and molding are completed, achieving automation and improving production efficiency.
[0005] Preferably, the material distribution assembly includes a material distribution servo motor, a material distribution slide rail, a material distribution synchronous belt, and material distribution plates. Synchronous pulleys are installed on the hopper, and the material distribution servo motor is installed on the hopper to drive the synchronous pulleys. The two sets of synchronous pulleys are driven by the material distribution synchronous belt. A material distribution slide rail is installed on the hopper, and two sets of material distribution plates are provided on the material distribution synchronous belt. The material distribution plates are slidably connected to the material distribution slide rail. Starting the material distribution servo motor causes it to rotate reciprocally in both forward and reverse directions, thereby causing the two sets of material distribution synchronous belts, in cooperation with the material distribution slide rail, to drive the material distribution plates to move closer and further away in a mirror image, thus performing the material distribution operation on the wood chips conveyed by the discharge conveyor belt to the second-layer conveyor belt.
[0006] Preferably, the telescopic assembly includes a second telescopic slide rail, a telescopic drive servo motor and reducer, a telescopic conveyor box, a first telescopic slide rail, a telescopic transmission shaft, and a lifting frame. The telescopic drive servo motor and reducer, the telescopic conveyor box, and the first telescopic slide rail are mounted on the welded frame. The second telescopic slide rail is mounted on the lifting frame. The first telescopic slide rail is mounted on the second-layer conveyor belt. A gear is mounted on the telescopic transmission shaft, and a rack is mounted at the bottom of the second-layer conveyor belt. The gear meshes with the rack. Activating the telescopic drive servo motor and reducer causes the telescopic transmission shaft to drive the gear to rotate, further causing the rack to move the second-layer conveyor belt in conjunction with the second and first telescopic slide rails, thus improving convenience.
[0007] Preferably, the leveling assembly includes a cylinder, a lifting plate, and a leveling brush. A housing is installed on the second-layer conveyor belt, and a mold release agent nozzle assembly is installed on the housing. A cylinder is installed inside the housing, and a lifting plate is installed on the cylinder. The lifting plate is equipped with a leveling brush servo motor, a second synchronous belt, and a second synchronous pulley. The leveling brush is installed on the second synchronous belt. When the second-layer conveyor belt transports the wood chips into the lower mold, the cylinder is operated to lower the lifting plate and start the leveling brush servo motor, thereby causing the second synchronous belt to drive the leveling brush to perform a leveling operation on the protruding wood chips in the lower mold, realizing the movement and removal of excess wood chips.
[0008] Preferably, the assembly also includes an auger shaft, a burr shaft, a burr shaft drive chain and sprocket, and a burr shaft servo motor. An auger shaft is rotatably mounted inside the hopper. The auger shaft is driven by a second servo motor, a second worm gear, a second worm, and a second reducer. Two sets of burr shafts are installed inside the hopper. The burr shaft servo motor is mounted on the hopper, and the two sets of burr shafts rotate synchronously via a drive chain and sprocket. The burr shaft servo motor is used to rotate one set of burr shafts. Starting the burr shaft servo motor causes both sets of burr shafts to rotate synchronously in the same direction, simultaneously rotating the auger shaft, preventing material from accumulating in one place inside the hopper and improving convenience.
[0009] Preferably, the system also includes a receiving guardrail assembly. The receiving guardrail assembly is provided on the second-layer conveyor belt. The receiving guardrail assembly consists of three guide shafts, a guardrail, a linear bearing, a trapezoidal screw, and a handwheel. According to actual needs, the operator drives the trapezoidal screw to rotate through the handwheel, thereby adjusting the position of the guardrail on the guide shaft, thus enabling the installation of pallets of different sizes and models and improving flexibility.
[0010] Preferably, the welding frame also includes adjustable feet, and the bottom end of the welding frame is provided with multiple sets of adjustable feet; the multiple sets of adjustable feet cooperate with each other to provide stable support for the welding frame and improve stability.
[0011] Compared with the prior art, the beneficial effects of this utility model are as follows: In use, the lifting assembly drives the second-layer conveyor belt to rise through the lifting frame. The discharge conveyor belt is then activated, allowing the wood chips inside the hopper to be transported onto the second-layer conveyor belt in cooperation with the vibrating baffle, the distributing assembly, and the brush roller assembly. When the weighing sensor detects the weight of the discharged wood chips, the discharge conveyor belt stops unloading. Then, the lifting assembly is operated to lower the second-layer conveyor belt, and the telescopic assembly is operated to move the second-layer conveyor belt, along with the leveling assembly and the release agent nozzle assembly, between the upper and lower molds. Simultaneously, the release agent nozzle assembly sprays the release agent onto the upper and lower molds. The process involves spraying adhesive onto the upper and lower molds. After the release agent nozzle assembly has finished spraying adhesive onto the upper and lower molds, the telescopic assembly is activated to move the second-layer conveyor belt in the opposite direction. This allows the wood chips on the second-layer conveyor belt to be transported into the lower mold. The leveling assembly is then activated to level the wood chips that are above the upper surface of the lower mold. As the second-layer conveyor belt, leveling assembly, and release agent nozzle assembly move away from the upper and lower molds, the upper mold moves closer to the lower mold to close, thus producing the pallet. During this process, the loading, unloading, spreading, and molding are completed, achieving automation and improving production efficiency. Attached Figure Description
[0012] Figure 1 This is a schematic diagram of the first isometric structure of this utility model;
[0013] Figure 2 This is a schematic diagram of the second isometric structure of this utility model;
[0014] Figure 3 This is a schematic diagram of the third isometric structure of this utility model;
[0015] Figure 4 This is a schematic diagram of the fourth isometric structure of this utility model;
[0016] Figure 5 yes Figure 4 A magnified schematic diagram of part A in the middle.
[0017] The attached diagram shows the following components: 1. Welded frame; 2. Hopper; 3. Weighing sensor; 4. Vibrating baffle; 5. Discharge conveyor belt; 6. Second-layer conveyor belt; 7. Lifting assembly; 8. Release agent nozzle assembly; 9. Second telescopic slide rail; 10. Distributing servo motor; 11. Distributing slide rail; 12. Distributing synchronous belt; 13. Distributing plate; 14. Telescopic drive servo motor and reducer; 15. Telescopic transmission box; 16. First telescopic slide rail; 17. Telescopic drive shaft; 18. Cylinder; 19. Lifting plate; 20. Flat material brush; 21. Housing; 22. Screw shaft; 23. Burr shaft; 24. Burr shaft drive sprocket and chain; 25. Burr shaft servo motor; 26. Adjustable foot; 27. Lifting frame; 28. Brush roller assembly; 29. Receiving guardrail assembly. Detailed Implementation
[0018] To facilitate understanding of this utility model, a more complete description will be given below with reference to the accompanying drawings. This utility model can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to make the disclosure of this utility model more thorough and complete.
[0019] Example 1
[0020] like Figures 1 to 5 As shown, the fully automatic molded pallet laying machine of this utility model includes a welded frame 1, a hopper 2, a weighing sensor 3, a vibrating baffle 4, and a two-layer conveyor belt 6. The hopper 2 is installed on the top of the welded frame 1. A weighing sensor 3 is installed between the hopper 2 and the welded frame 1. The output end of the hopper 2 is respectively equipped with a vibrating baffle 4 and a feeding conveyor belt 5. The vibrating baffle 4 is moved left and right by a box-type linear bearing and two guide shafts fixed inside the hopper. The left and right vibration is driven by a cylinder mounted on the side plate of the hopper. The feeding conveyor belt 5 is driven by a servo motor and a worm gear reducer. The machine also includes a two-layer conveyor belt. The assembly includes a conveyor belt 6, a lifting component 7, a release agent nozzle component 8, a lifting frame 27, a brush roller component 28, a telescopic component, a leveling component, a material distribution component, and an anti-clogging component. The bottom of the welded frame 1 is equipped with a lifting component 7, the top of the lifting component 7 is equipped with a lifting frame 27, the top of the lifting frame 27 is equipped with a telescopic component, and a second layer of conveyor belt 6 is slidably arranged on the top of the lifting frame 27. The telescopic component allows the second layer of conveyor belt 6 to move on the lifting frame 27. A leveling component is arranged on the right end of the second layer of conveyor belt 6, and a release agent nozzle component 8 is arranged on the right end of the leveling component. The material bin 2 is equipped with a material distribution component and a brush roller component 28.
[0021] The material distribution assembly includes a material distribution servo motor 10, a material distribution slide rail 11, a material distribution synchronous belt 12, and a material distribution plate 13. A synchronous wheel is installed on the hopper 2. The material distribution servo motor 10 is installed on the hopper 2 to drive the synchronous wheel. The two sets of synchronous wheels are driven by the material distribution synchronous belt 12. The material distribution slide rail 11 is installed on the hopper 2. Two sets of material distribution plates 13 are provided on the material distribution synchronous belt 12. The material distribution plates 13 are slidably connected to the material distribution slide rail 11.
[0022] The telescopic assembly includes a second telescopic slide rail 9, a telescopic drive servo motor and reducer 14, a telescopic conveyor box 15, a first telescopic slide rail 16, a telescopic transmission shaft 17, and a lifting frame 27. The welding frame 1 is equipped with the telescopic drive servo motor and reducer 14, the telescopic conveyor box 15, and the first telescopic slide rail 16. The lifting frame 27 is equipped with the second telescopic slide rail 9. The second telescopic slide rail 16 is equipped on the second-layer conveyor belt 6. The telescopic transmission shaft 17 is equipped with a gear, and the bottom end of the second-layer conveyor belt 6 is equipped with a rack, and the gear meshes with the rack.
[0023] The leveling assembly includes a cylinder 18, a lifting plate 19, and a leveling brush 20. A housing 21 is installed on the second-layer conveyor belt 6. A release agent nozzle assembly 8 is installed on the housing 21. The cylinder 18 is installed inside the housing 21. The lifting plate 19 is installed on the cylinder 18. The lifting plate 19 is equipped with a leveling brush servo motor, a second synchronous belt, and a second synchronous pulley. The leveling brush 20 is installed on the second synchronous belt.
[0024] In this embodiment, during use, the burr shaft servo motor 25 is activated, causing the two sets of burr shafts 23 to rotate synchronously in the same direction, while simultaneously rotating the auger shaft 22 to prevent material from accumulating in one place inside the hopper 2. The lifting assembly 7 drives the second-layer conveyor belt 6 to rise via the lifting frame 27. The discharge conveyor belt 5 is activated, allowing the wood chips inside the hopper 2 to be transported onto the second-layer conveyor belt 6 in cooperation with the vibrating baffle 4 and the brush roller assembly 28. At the same time, the material distribution servo motor 10 is activated, causing the material distribution servo motor 10 to rotate in both forward and reverse directions. The reciprocating rotation causes the two-part synchronous belt 12, in conjunction with the distribution slide rail 11, to drive the distribution plate 13 to move closer and further away in a mirror image, thereby distributing the wood chips conveyed by the discharge conveyor belt 5 to the secondary conveyor belt 6. When the weighing sensor 3 detects the weight of the discharged wood chips, the discharge conveyor belt 5 stops unloading. Then, the lifting assembly 7 is operated to lower the lifting frame 27 and the secondary conveyor belt 6. The telescopic drive servo motor and reducer 14 are activated, thereby causing the telescopic transmission shaft 17 to drive the gear to rotate, further causing the gear... With the cooperation of the second telescopic slide rail 9 and the first telescopic slide rail 16, the second-layer conveyor belt 6 moves. The second-layer conveyor belt 6 drives the leveling assembly and the release agent nozzle assembly 8 to move between the upper mold and the lower mold. At the same time, the release agent nozzle assembly 8 sprays glue onto the upper mold and the lower mold. After the release agent nozzle assembly 8 has finished spraying glue onto the upper mold and the lower mold, the telescopic assembly is operated to drive the second-layer conveyor belt 6 to move in the opposite direction and start the second-layer conveyor belt 6, so that the wood chips on the second-layer conveyor belt 6 are transported to the lower mold. Inside the lower mold, when the second-layer conveyor belt 6 transports wood chips to the lower mold, the operating cylinder 18 drives the lifting plate 19 to descend, activating the leveling brush servo motor. This causes the second synchronous belt to drive the leveling brush 20 to level the wood chips protruding from the lower mold. When the second-layer conveyor belt 6, the leveling assembly, and the release agent nozzle assembly 8 move away from the upper and lower molds, the upper mold moves closer to the lower mold to close, thus producing the pallet. During this process, the feeding, unloading, spreading, and forming are completed, achieving automation and improving production efficiency.
[0025] Example 2
[0026] like Figures 1 to 5As shown, the fully automatic molded pallet laying machine of this utility model includes a welded frame 1, a hopper 2, a weighing sensor 3, a vibrating baffle 4, and a two-layer conveyor belt 6. The hopper 2 is installed on the top of the welded frame 1. A weighing sensor 3 is installed between the hopper 2 and the welded frame 1. The output end of the hopper 2 is respectively equipped with a vibrating baffle 4 and a feeding conveyor belt 5. The vibrating baffle 4 is moved left and right by a box-type linear bearing and two guide shafts fixed inside the hopper. The left and right vibration is driven by a cylinder mounted on the side plate of the hopper. The feeding conveyor belt 5 is driven by a servo motor and a worm gear reducer. The machine also includes a two-layer conveyor belt. The assembly includes a conveyor belt 6, a lifting component 7, a release agent nozzle component 8, a lifting frame 27, a brush roller component 28, a telescopic component, a leveling component, a material distribution component, and an anti-clogging component. The bottom of the welded frame 1 is equipped with a lifting component 7, the top of the lifting component 7 is equipped with a lifting frame 27, the top of the lifting frame 27 is equipped with a telescopic component, and a second layer of conveyor belt 6 is slidably arranged on the top of the lifting frame 27. The telescopic component allows the second layer of conveyor belt 6 to move on the lifting frame 27. A leveling component is arranged on the right end of the second layer of conveyor belt 6, and a release agent nozzle component 8 is arranged on the right end of the leveling component. The material bin 2 is equipped with a material distribution component and a brush roller component 28.
[0027] The material distribution assembly includes a material distribution servo motor 10, a material distribution slide rail 11, a material distribution synchronous belt 12, and a material distribution plate 13. A synchronous wheel is installed on the hopper 2. The material distribution servo motor 10 is installed on the hopper 2 to drive the synchronous wheel. The two sets of synchronous wheels are driven by the material distribution synchronous belt 12. The material distribution slide rail 11 is installed on the hopper 2. Two sets of material distribution plates 13 are provided on the material distribution synchronous belt 12. The material distribution plates 13 are slidably connected to the material distribution slide rail 11.
[0028] The telescopic assembly includes a second telescopic slide rail 9, a telescopic drive servo motor and reducer 14, a telescopic conveyor box 15, a first telescopic slide rail 16, a telescopic transmission shaft 17, and a lifting frame 27. The welding frame 1 is equipped with the telescopic drive servo motor and reducer 14, the telescopic conveyor box 15, and the first telescopic slide rail 16. The lifting frame 27 is equipped with the second telescopic slide rail 9. The second telescopic slide rail 16 is equipped on the second-layer conveyor belt 6. The telescopic transmission shaft 17 is equipped with a gear, and the bottom end of the second-layer conveyor belt 6 is equipped with a rack, and the gear meshes with the rack.
[0029] The material leveling assembly includes a cylinder 18, a lifting plate 19, and a material leveling brush 20. A housing 21 is installed on the second-layer conveyor belt 6. A mold release agent nozzle assembly 8 is installed on the housing 21. The cylinder 18 is installed inside the housing 21. The lifting plate 19 is installed on the cylinder 18. The lifting plate 19 is equipped with a material leveling brush servo motor, a second synchronous belt, and a second synchronous pulley. The material leveling brush 20 is installed on the second synchronous belt.
[0030] It also includes an auger shaft 22, a burr shaft 23, a burr shaft drive chain sprocket 24, and a burr shaft servo motor 25. The auger shaft 22 is rotatably installed inside the hopper 2. The auger shaft 22 is driven by a second servo motor, a second worm gear, a second worm, and a second reducer. Two sets of burr shafts 23 are installed inside the hopper 2. The burr shaft servo motor 25 is installed on the hopper 2. The two sets of burr shafts 23 rotate synchronously through the drive chain sprocket 24. The burr shaft servo motor 25 is used to rotate one set of burr shafts 23.
[0031] It also includes a receiving guardrail assembly 29, which is provided on the second-layer conveyor belt 6. The receiving guardrail assembly 29 consists of three guide shafts, guardrails, linear bearings, trapezoidal lead screws and handwheels.
[0032] It also includes adjustable feet 26, and the bottom end of the welding frame 1 is provided with multiple sets of adjustable feet 26.
[0033] In this embodiment, during use, according to actual needs, the operator drives the trapezoidal screw to rotate via the handwheel, thereby adjusting the position of the guardrail on the guide shaft, thus enabling the installation of pallets of different sizes and models. The lifting assembly 7 drives the secondary conveyor belt 6 to rise via the lifting frame 27. The discharge conveyor belt 5 is started, causing the wood chips inside the hopper 2 to be transported to the secondary conveyor belt 6 in cooperation with the vibrating baffle 4 and the brush roller assembly 28. At the same time, the distributing servo motor 10 is started, causing the distributing servo motor 10 to rotate in both forward and reverse directions. This causes the two distributing synchronous belts 12 to drive the distributing plate 13 to move closer and further away in mirror image with the cooperation of the distributing slide rail 11, thereby distributing the wood chips transported by the discharge conveyor belt 5 to the secondary conveyor belt 6. When the weighing sensor 3 detects the weight of the discharged wood chips, the discharge conveyor belt 5 stops unloading. Then, the lifting assembly 7 is operated to cause the lifting frame 27 to drive the secondary conveyor belt 6 to descend. The telescopic drive servo motor and reducer 14 are started, causing the telescopic transmission shaft 17 to drive the gear to rotate, further causing the rack to rotate. The second telescopic slide rail 9 and the first telescopic slide rail 16 work together to move the second-layer conveyor belt 6. The second-layer conveyor belt 6 drives the leveling assembly and the release agent nozzle assembly 8 to move between the upper and lower molds. At the same time, the release agent nozzle assembly 8 sprays adhesive onto the upper and lower molds. After the release agent nozzle assembly 8 has finished spraying adhesive onto the upper and lower molds, the telescopic assembly is operated to move the second-layer conveyor belt 6 in the opposite direction, thereby activating the second-layer conveyor belt 6 and transporting the wood chips on the second-layer conveyor belt 6 to the lower mold. Inside, when the second-layer conveyor belt 6 transports wood chips to the interior of the lower mold, the operating cylinder 18 drives the lifting plate 19 to descend, activating the leveling brush servo motor. This causes the second synchronous belt to drive the leveling brush 20 to level the protruding wood chips in the lower mold. When the second-layer conveyor belt 6, the leveling assembly, and the release agent nozzle assembly 8 move away from the upper and lower molds, the upper mold moves closer to the lower mold to close, thus producing the pallet. During this process, the feeding, unloading, spreading, and forming are completed, achieving automation and improving production efficiency.
[0034] The weighing sensor 3 of the fully automatic molded pallet laying machine of this utility model is purchased from the market. Technical personnel in this industry only need to install and operate it according to the accompanying instruction manual, without requiring any creative work from those skilled in the art.
[0035] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of the present utility model, and these improvements and modifications should also be considered within the protection scope of the present utility model.
Claims
1. A fully automatic molded pallet laying machine, comprising a welded frame (1), a hopper (2), a weighing sensor (3), a vibrating baffle (4), and a two-layer conveyor belt (6), wherein the hopper (2) is installed at the top of the welded frame (1), and a weighing sensor (3) is provided between the hopper (2) and the welded frame (1), and a vibrating baffle (4) and a discharge conveyor belt (5) are respectively provided at the output end of the hopper (2), wherein the vibrating baffle (4) is moved left and right by a box-type linear bearing and two guide shafts fixed inside the hopper, and the left and right vibration is driven by a cylinder mounted on the side plate of the hopper, and the discharge conveyor belt (5) is driven by a servo motor and a worm gear reducer, characterized in that, It also includes a second-layer conveyor belt (6), a lifting assembly (7), a release agent nozzle assembly (8), a lifting frame (27), a brush roller assembly (28), a telescopic assembly, a leveling assembly, a material distribution assembly, and an anti-blocking assembly. The welding frame (1) is equipped with a lifting assembly (7) at its bottom. The lifting assembly (7) is equipped with a lifting frame (27) at its top. The lifting frame (27) is equipped with a telescopic assembly at its top. The second-layer conveyor belt (6) is slidably installed at the top of the lifting frame (27). The telescopic assembly allows the second-layer conveyor belt (6) to move on the lifting frame (27). The second-layer conveyor belt (6) is equipped with a leveling assembly at its right end. The release agent nozzle assembly (8) is equipped with a leveling assembly at its right end. The hopper (2) is equipped with a material distribution assembly and a brush roller assembly (28).
2. The fully automatic molded pallet laying machine as described in claim 1, characterized in that, The material distribution assembly includes a material distribution servo motor (10), a material distribution slide rail (11), a material distribution timing belt (12), and a material distribution plate (13). A timing wheel is installed on the hopper (2). The material distribution servo motor (10) is installed on the hopper (2) to drive the timing wheel. The two sets of timing wheels are driven by the material distribution timing belt (12). The material distribution slide rail (11) is installed on the hopper (2). Two sets of material distribution plates (13) are provided on the material distribution timing belt (12). The material distribution plates (13) are slidably connected to the material distribution slide rail (11).
3. The fully automatic molded pallet laying machine as described in claim 2, characterized in that, The telescopic assembly includes a second telescopic slide rail (9), a telescopic drive servo motor and reducer (14), a telescopic conveyor box (15), a first telescopic slide rail (16), a telescopic transmission shaft (17), and a lifting frame (27). The welding frame (1) is equipped with the telescopic drive servo motor and reducer (14), the telescopic conveyor box (15), and the first telescopic slide rail (16). The lifting frame (27) is equipped with the second telescopic slide rail (9). The second layer conveyor belt (6) is equipped with the first telescopic slide rail (16). The telescopic transmission shaft (17) is equipped with a gear. The bottom end of the second layer conveyor belt (6) is equipped with a rack, and the gear meshes with the rack.
4. The fully automatic molded pallet laying machine as described in claim 1, characterized in that, The material leveling assembly includes a cylinder (18), a lifting plate (19), and a material leveling brush (20). A housing (21) is installed on the second-layer conveyor belt (6). A mold release agent nozzle assembly (8) is installed on the housing (21). The cylinder (18) is installed inside the housing (21). A lifting plate (19) is provided on the cylinder (18). A material leveling brush servo motor, a second synchronous belt, and a second synchronous pulley are provided on the lifting plate (19). The material leveling brush (20) is installed on the second synchronous belt.
5. The fully automatic molded pallet laying machine as described in claim 1, characterized in that, It also includes an auger shaft (22), a burr shaft (23), a burr shaft drive chain sprocket (24), and a burr shaft servo motor (25). The auger shaft (22) is rotatably installed inside the hopper (2). The auger shaft (22) is driven by a second servo motor, a second worm gear, a second worm, and a second reducer. Two sets of burr shafts (23) are installed inside the hopper (2). The burr shaft servo motor (25) is installed on the hopper (2). The two sets of burr shafts (23) rotate synchronously through the drive chain sprocket (24). The burr shaft servo motor (25) is used to rotate one set of burr shafts (23).
6. The fully automatic molded pallet laying machine as described in claim 1, characterized in that, It also includes a receiving guardrail assembly (29), which is provided on the second-layer conveyor belt (6). The receiving guardrail assembly (29) consists of three guide shafts, guardrails, linear bearings, trapezoidal screws and handwheels.
7. The fully automatic molded pallet laying machine as described in claim 1, characterized in that, It also includes adjustable feet (26), and the bottom end of the welding frame (1) is provided with multiple sets of adjustable feet (26).