Automatic storage device for processing flame-retardant plates

By designing an automatic storage device, the automated production process of flame-retardant boards is realized, and the problem of relying on manual storage in the existing technology is solved, saving human resources and improving the quality of boards.

CN223015738UActive Publication Date: 2025-06-24MUYI NEW MATERIALS (GUANGXI) CO LTD
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Patent Information

Application Number
CN202422292218.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-20
Publication Date
2025-06-24
Estimated Expiration
2034-09-20

AI Technical Summary

Technical Problem

When producing flame retardant plates, the prior art mainly relies on manual sorting and storage after production, which consumes a lot of human and material resources.

Method used

An automatic storage device is designed, including a conveyor belt, a flame retardant plate processing device, an output device, a lifting device, an alignment device and a fixing frame to realize automatic conveying of the plate, spraying flame retardant, lifting storage and automatic alignment.

Benefits of technology

The automated production process of flame retardant plates is realized, human resources are saved, work efficiency is improved, and the quality of the plate is improved by uniform spraying flame retardant.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an automatic storage device for processing flame-retardant plates, and relates to the technical field of automatic storage devices, the automatic storage device comprises a conveyor belt, a flame-retardant plate processing device, an output device, a lifting device, an aligning device and a fixing frame, the conveyor belt is mainly used for conveying the plates into the flame-retardant plate processing device, and the output device is used for outputting the flame-retardant plates. The flame-retardant plate processing device is mainly used for spraying a flame retardant to plates, the output device conveys the plates sprayed with the flame retardant from the flame-retardant plate processing device to the lifting device, and the lifting device lifts through a control platform, so that the plates are better placed and stored; the aligning device is mainly used for aligning and storing produced plates stacked on the lifting device, and the fixing frame serves as a mounting base and is used for mounting and connecting other parts.
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Description

Technical Field

[0001] The utility model relates to the technical field of automatic storage devices, and specifically relates to an automatic storage device for processing flame-retardant plates. Background Technique

[0002] Flame-retardant boards are mainly produced from wood. Due to the rationality of their structure and fine processing in the production process, they can generally overcome the defects of wood, improve the physical and mechanical properties of wood. At the same time, flame-retardant plywood also overcomes the shortcoming of ordinary plywood being easy to burn, effectively improving the flame-retardant performance of plywood. The production of flame-retardant boards is an important method to make full and reasonable use of wood and improve the properties of wood.

[0003] In the prior art, when producing flame-retardant boards, most of them are sorted and stored manually after production, which requires a large amount of human and material resources. The utility model proposes an automatic storage device for processing flame-retardant boards to solve the above problems. Content of the Utility Model

[0004] The purpose of the utility model is to provide an automatic storage device for processing flame-retardant boards to solve the problems raised in the prior art.

[0005] To achieve the above purpose, the utility model provides the following technical solutions:

[0006] An automatic storage device for processing flame-retardant boards, the automatic storage device includes a conveyor belt, a flame-retardant board processing device, an output device, a lifting device, an alignment device and a fixing frame. One end of the flame-retardant board processing device and the output device are tightly connected. One end of the output device far from the flame-retardant board processing device is tightly connected to the fixing frame. The alignment device is tightly connected to the fixing frame. The conveyor belt, the flame-retardant board processing device, the output device and the fixing frame are arranged in sequence according to the feeding direction. The lifting device is located inside the inner circle of the fixing frame, and the working direction of the alignment device faces the lifting device.

[0007] Furthermore, the conveyor belt is mainly used to convey the boards into the flame-retardant board processing device. The flame-retardant board processing device is mainly used to spray flame retardant on the boards, so that ordinary boards can be produced into flame-retardant boards with flame-retardant effects. The output device conveys the boards sprayed with flame retardant from the flame-retardant board processing device onto the lifting device. The lifting device controls the platform to lift to better place and store the boards. The alignment device is mainly used to align and store the boards produced and stacked on the lifting device. The fixing frame serves as an installation base for installing and connecting other components. The lifting device is placed in the middle of the fixing frame, which is convenient for the alignment device to work on the boards placed on the lifting device. And the whole storage device realizes full automation, saves human resources and improves work efficiency.

[0008] The flame-retardant board processing device includes a first mounting frame, a first motor, an upper roller, a lower roller, a water spray pipe, a water pump and a water tank. The fixed end of the first motor is tightly connected to the first mounting frame, the output end of the first motor is tightly connected to one end of the lower roller, the end of the lower roller away from the first motor is rotatably connected to the first mounting frame, the upper roller is rotatably connected to the first mounting frame, the fixed end of the water pump is tightly connected to the first mounting frame, the input end of the water pump is connected to the water tank through a pipeline, the output end of the water pump is connected to one end of the water spray pipe through a pipeline, and the end of the water spray pipe away from the water pump is tightly connected to the first mounting frame. There are three first motors, upper rollers and lower rollers respectively. The three first motors, upper rollers and lower rollers are arranged on the same horizontal plane in the feeding direction, and the upper roller is located above the lower roller.

[0009] Further, the first mounting frame serves as an installation base for mounting other components. The first motor serves as a power source to provide torque to the lower roller, causing the lower roller to rotate. The upper roller is above the lower roller, and the board is fixed between the upper roller and the lower roller for transportation. The water spray pipe is used to spray the flame retardant. The water pump serves as a power source to provide negative pressure, enabling the flame retardant to flow from the water tank into the water spray pipe. The water tank is used to store the flame retardant and is placed at the bottom on one side of the first mounting frame for convenient addition of the flame retardant at any time. There are three first motors, upper rollers and lower rollers respectively, and they are all on the same horizontal plane, making the board move more smoothly during the process.

[0010] The output device includes a second mounting frame, a second motor, a rotating shaft, a fixed shaft, auxiliary rollers and a receiving plate. The second mounting frame is tightly connected to the fixed frame. The fixed end of the second motor is tightly connected to the second mounting frame, the output end of the second motor is tightly connected to one end of the rotating shaft, the end of the rotating shaft away from the second motor is rotatably connected to the second mounting frame, the fixed shaft is tightly connected to the second mounting frame, the auxiliary rollers are rotatably connected to the fixed shaft, one end of the receiving plate is tightly connected to the first mounting frame, and the end of the receiving plate away from the first mounting frame is tightly connected to the second mounting frame. There are two fixed shafts and auxiliary rollers respectively, and the two auxiliary rollers are located above the symmetrically distributed rotating shaft.

[0011] Further, the second mounting frame serves as an installation base for mounting other components. The second motor serves as a power source to provide torque to the rotating shaft, causing the rotating shaft to rotate, thereby transporting the board from the flame-retardant board processing device to the lifting device. The fixed shaft is used to connect the auxiliary rollers to the second mounting frame. The auxiliary rollers are installed above the rotating shaft and are used to assist in the transportation of the board. And there are two auxiliary rollers, making the transportation process of the board more stable. The receiving plate is used to connect the first mounting frame and the second mounting frame, enabling the board to be conveyed from the flame-retardant board processing device to the rotating shaft without getting stuck and preventing subsequent work from being unable to proceed.

[0012] The lifting device includes a bottom plate, a hydraulic pump, a hydraulic rod, inclined forks, connecting rods and a lifting platform. There are several inclined forks and connecting rods. The fixed end of the hydraulic pump is firmly connected to the bottom plate. One end of the bottom plate close to the hydraulic rod is slidably connected to the inclined fork, and one end of the bottom plate close to the hydraulic pump is firmly connected to the inclined fork. The output end of the hydraulic pump is firmly connected to one end of the hydraulic rod. The end of the hydraulic rod far from the hydraulic pump is rotatably connected to the inclined fork. Adjacent inclined forks are rotatably connected. Both ends of the connecting rod are rotatably connected to two inclined forks. One end of the lifting platform close to the hydraulic pump is firmly connected to the inclined fork, and one end of the lifting platform far from the hydraulic pump is slidably connected to the inclined fork. The bottom plate is located at the bottom, and the lifting platform is located at the top.

[0013] Furthermore, the bottom plate serves as an installation base for installing other components. The hydraulic pump serves as a power source. By controlling the pressure and flow rate, the hydraulic rod can be raised or lowered. The inclined forks are used to transmit the kinetic energy output by the hydraulic rod to realize the rise or fall of the lifting platform. The connecting rods are used to connect the inclined forks to make the movement of the inclined forks smoother and the structure more stable, enabling it to bear items of higher quality. The lifting platform is used to place the plates, thereby driving the rise or fall of the plates. Moreover, the main structure of the inclined fork adopts a parallelogram structure, which is easy to deform and adapt to different lifting requirements, and can achieve stable and efficient lifting work.

[0014] The alignment device includes a telescopic cylinder, an alignment plate and a distance measuring sensor device. The fixed end of the telescopic cylinder is firmly connected to the fixed frame. The output end of the telescopic cylinder is firmly connected to the alignment plate. The distance measuring sensor device is firmly connected to the fixed frame. The distance measuring sensor device is electrically connected to the telescopic cylinder. There are four telescopic cylinders and four alignment plates, and two distance measuring sensor devices. The four telescopic cylinders are respectively located at the four corners above the fixed frame, and the two distance measuring sensor devices are respectively located at the two diagonals of the fixed frame. The distance measuring sensor device is located on one side of the telescopic cylinder.

[0015] Furthermore, the telescopic cylinder serves as a power source to drive the alignment plate to perform telescopic movement. The distance measuring sensor device is used to measure the distance to the plate. When the plate is lifted and lowered on the lifting platform and the distances measured by the distance measuring sensor device are the same, the telescopic cylinder does not work. When the measured distances are different, the telescopic cylinder drives the alignment plate to extend towards the plate. Since there are four telescopic cylinders located at the four corners of the fixed frame, the plate is evenly stressed and both sides are accurately leveled. Two distance measuring sensor devices are set at the two diagonals of the fixed frame respectively, making the measurement results more accurate.

[0016] The distance measuring sensor device includes a power supply, a transmitter and a receiver. The power supply is firmly connected to the fixed frame. The transmitter and the receiver are firmly connected to the power supply. The power supply is electrically connected to the telescopic cylinder. The transmitter is electrically connected to the output end of the power supply, and the receiver is electrically connected to the input end of the power supply.

[0017] Further, a power supply is used to output current to the transmitter and the receiver, the transmitter is used to emit laser, and the receiver is used to receive the reflected laser, so as to achieve the effect of distance measurement. By processing the signal in a timely manner and feeding it back to the telescopic cylinder, the effect of automatic storage is realized, while saving resources and improving work efficiency.

[0018] A plurality of water spray holes are provided on the water spray pipe.

[0019] Further, a plurality of water spray holes are provided on the water spray pipe, which can make the flame retardant sprayed on the plate more uniform and the quality of the processed flame retardant plate better.

[0020] Compared with the prior art, the beneficial effects of the present utility model are as follows:

[0021] 1. An alignment device is provided for automatically aligning and storing the plates produced and stacked on the lifting device. Two distance measuring sensors are provided on the alignment device and are respectively located at two diagonals of the fixed frame, making the measurement results more accurate.

[0022] 2. A plurality of water spray holes are provided on the water spray pipe, which can make the flame retardant sprayed on the plate more uniform and the quality of the processed flame retardant plate better.

[0023] 3. The connection between various devices is realized, and automatic production is achieved. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 is a schematic diagram of the overall structure of the present utility model;

[0025] Figure 2 is a schematic diagram of the right view structure of the present utility model;

[0026] Figure 3 is Figure 2 a sectional view taken along the line A-A of the view;

[0027] Figure 4 is Figure 3 a partially enlarged view of view B;

[0028] Figure 5 is a schematic diagram of the transmission structure of the flame retardant plate processing device of the present utility model;

[0029] Figure 6 is a schematic diagram of the transmission structure of the alignment device of the present utility model.

[0030] In the figure: 1, conveyor belt; 2, flame retardant board processing device; 3, output device; 4, lifting device; 5, alignment device; 6, fixing frame; 21, first mounting frame; 22, first motor; 23, upper roller; 24, lower roller; 25, water spray pipe; 26, water pump; 27, water tank; 31, second mounting frame; 32, second motor; 33, rotating shaft; 34, fixed shaft; 35, auxiliary roller; 36, receiving plate; 41, bottom plate; 42, hydraulic pump; 43, hydraulic rod; 44, inclined fork; 45, connecting rod; 46, lifting platform; 51, telescopic cylinder; 52, alignment plate; 53, distance measuring sensor device; 531, power supply; 532, transmitter; 533, receiver. Detailed implementation manners

[0031] Based on the embodiments in the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.

[0032] Embodiment: As Figures 1 - 6 shown, the present utility model provides a technical solution for an automatic storage device for processing flame retardant boards:

[0033] As Figure 1 shown, an automatic storage device for processing flame retardant boards, the automatic storage device includes a conveyor belt 1, a flame retardant board processing device 2, an output device 3, a lifting device 4, an alignment device 5 and a fixing frame 6. One end of the flame retardant board processing device 2 and the output device 3 are firmly connected. One end of the output device 3 far from the flame retardant board processing device 2 and the fixing frame 6 are firmly connected. The alignment device 5 and the fixing frame 6 are firmly connected. The conveyor belt 1, the flame retardant board processing device 2, the output device 3 and the fixing frame 6 are arranged in sequence according to the feeding direction. The lifting device 4 is located inside the fixing frame 6, and the working direction of the alignment device 5 faces the lifting device 4.

[0034] The conveyor belt 1 is mainly used to convey the boards into the flame retardant board processing device 2. The flame retardant board processing device 2 is mainly used to spray flame retardant on the boards, so that ordinary boards can be produced into flame retardant boards with flame retardant effects. The output device 3 conveys the boards sprayed with flame retardant from the flame retardant board processing device 2 onto the lifting device 4. The lifting device 4 controls the lifting of the platform to better place and store the boards. The alignment device 5 is mainly used to align and store the boards stacked on the lifting device 4 after production. The fixing frame 6 serves as an installation base for installing and connecting other components. The lifting device 4 is placed in the middle of the fixing frame 6, which is convenient for the alignment device 5 to work on the boards placed on the lifting device 4. And the entire storage device realizes full automation, saves human resources and improves work efficiency.

[0035] As Figures 1 - 3As shown in the figure, the flame-retardant board processing device 2 includes a first mounting frame 21, a first motor 22, an upper roller 23, a lower roller 24, a water spray pipe 25, a water pump 26 and a water tank 27. The fixed end of the first motor 22 is fixedly connected to the first mounting frame 21, the output end of the first motor 22 is fixedly connected to one end of the lower roller 24, the end of the lower roller 24 away from the first motor 22 is rotatably connected to the first mounting frame 21, the upper roller 23 is rotatably connected to the first mounting frame 21, the fixed end of the water pump 26 is fixedly connected to the first mounting frame 21, the input end of the water pump 26 is connected to the water tank 27 through a pipeline, the output end of the water pump 26 is connected to one end of the water spray pipe 25 through a pipeline, and the end of the water spray pipe 25 away from the water pump 26 is fixedly connected to the first mounting frame 21. There are three first motors 22, upper rollers 23 and lower rollers 24 respectively. The three first motors 22, upper rollers 23 and lower rollers 24 are arranged on the same horizontal plane in the feeding direction, and the upper roller 23 is located above the lower roller 24.

[0036] The first mounting frame 21 serves as a mounting base for installing other components. The first motor 22 serves as a power source for providing torque to the lower roller 24 to make the lower roller 24 rotate. The upper roller 23 is above the lower roller 24, and the board is fixed between the upper roller 23 and the lower roller 24 for transportation. The water spray pipe 25 is used for spraying the flame retardant. The water pump 26 serves as a power source for providing negative pressure so that the flame retardant can flow from the water tank 27 into the water spray pipe 25. The water tank 27 is used for storing the flame retardant and is placed at the bottom on one side of the first mounting frame 21 for convenient addition of the flame retardant at any time. There are three first motors 22, upper rollers 23 and lower rollers 24 respectively, and they are all on the same horizontal plane, making the board move more smoothly.

[0037] As Figures 3 - 5 As shown in the figure, the output device 3 includes a second mounting frame 31, a second motor 32, a rotating shaft 33, a fixed shaft 34, auxiliary rollers 35 and a receiving plate 36. The second mounting frame 31 is fixedly connected to the fixed frame 6. The fixed end of the second motor 32 is fixedly connected to the second mounting frame 31, the output end of the second motor 32 is fixedly connected to one end of the rotating shaft 33, the end of the rotating shaft 33 away from the second motor 32 is rotatably connected to the second mounting frame 31, the fixed shaft 34 is fixedly connected to the second mounting frame 31, the auxiliary rollers 35 are rotatably connected to the fixed shaft 34, one end of the receiving plate 36 is fixedly connected to the first mounting frame 21, and the end of the receiving plate 36 away from the first mounting frame 21 is fixedly connected to the second mounting frame 31. There are two fixed shafts 34 and auxiliary rollers 35 respectively, and the two auxiliary rollers 35 are located above the symmetrically distributed rotating shaft 33.

[0038] The second mounting bracket 31 serves as a mounting base for installing other components. The second motor 32 serves as a power source to provide torque to the rotating shaft 33, causing the rotating shaft 33 to rotate, thereby transporting the board from the flame-retardant board processing device 2 to the lifting device 4. The fixed shaft 34 is used to connect the auxiliary roller 35 to the second mounting bracket 31. The auxiliary roller 35 is installed above the rotating shaft 33 and is used to assist in the transportation of the board. Moreover, two auxiliary rollers 35 are provided to make the board transportation process more stable. The receiving plate 36 is used to connect the first mounting bracket 21 and the second mounting bracket 31, enabling the board to be conveyed from the flame-retardant board processing device 2 to the rotating shaft 33 without getting stuck and preventing subsequent work from proceeding.

[0039] As Figures 2 - 6 shown, the lifting device 4 includes a bottom plate 41, a hydraulic pump 42, a hydraulic rod 43, a cross fork 44, a connecting rod 45, and a lifting platform 46. There are several cross forks 44 and connecting rods 45. The fixed end of the hydraulic pump 42 is fixedly connected to the bottom plate 41. One end of the bottom plate 41 close to the hydraulic rod 43 is slidably connected to the cross fork 44, and one end of the bottom plate 41 close to the hydraulic pump 42 is fixedly connected to the cross fork 44. The output end of the hydraulic pump 42 is fixedly connected to one end of the hydraulic rod 43. The end of the hydraulic rod 43 far from the hydraulic pump 42 is rotatably connected to the cross fork 44. Adjacent cross forks 44 are rotatably connected. Both ends of the connecting rod 45 are rotatably connected to two cross forks 44. One end of the lifting platform 46 close to the hydraulic pump 42 is fixedly connected to the cross fork 44, and the end of the lifting platform 46 far from the hydraulic pump 42 is slidably connected to the cross fork 44. The bottom plate 41 is located at the bottom, and the lifting platform 46 is located at the top.

[0040] The bottom plate 41 serves as a mounting base for installing other components. The hydraulic pump 42 serves as a power source. By controlling the pressure and flow rate, the hydraulic rod 43 is caused to rise or fall. The cross fork 44 is used to transmit the kinetic energy output by the hydraulic rod 43 to achieve the rise or fall of the lifting platform 46. The connecting rod 45 is used to connect the cross forks 44 to make the movement of the cross forks 44 more stable and the structure more solid, enabling it to bear items of higher quality. The lifting platform 46 is used to place the board, thereby driving the rise or fall of the board. Moreover, the main structure of the cross fork 44 adopts a parallelogram structure, which has the characteristics of being easy to deform and adapting to different lifting requirements, and can achieve stable and efficient lifting work.

[0041] As Figures 3 - 6As shown in the figure, the alignment device 5 includes a telescopic cylinder 51, an alignment plate 52, and a ranging sensor device 53. The fixed end of the telescopic cylinder 51 is fixedly connected to the fixed frame 6, the output end of the telescopic cylinder 51 is fixedly connected to the alignment plate 52, the ranging sensor device 53 is fixedly connected to the fixed frame 6, and the ranging sensor device 53 is electrically connected to the telescopic cylinder 51. There are four telescopic cylinders 51 and four alignment plates 52, and two ranging sensor devices 53. The four telescopic cylinders 51 are respectively located at the four corners above the fixed frame 6, and the two ranging sensor devices 53 are respectively located at the two diagonals of the fixed frame 6. The ranging sensor device 53 is located on one side of the telescopic cylinder 51.

[0042] The telescopic cylinder 51 serves as a power source to drive the alignment plate 52 to perform telescopic movement. The ranging sensor device 53 is used to measure the distance to the plate. When the plate is lifted and lowered on the lifting platform 46, when the distances measured by the ranging sensor device 53 are the same, the telescopic cylinder 51 does not work. When the measured distances are different, the telescopic cylinder 51 drives the alignment plate 52 to extend towards the plate. Since there are four telescopic cylinders 51 located at the four corners of the fixed frame 6, the plate is evenly stressed, and both sides are accurately leveled. Two ranging sensor devices 53 are respectively located at the two diagonals of the fixed frame 6, making the measurement results more accurate.

[0043] As Figures 3 - 6 shown in the figure, the ranging sensor device 53 includes a power supply 531, a transmitter 532, and a receiver 533. The power supply 531 is fixedly connected to the fixed frame 6, the transmitter 532 and the receiver 533 are fixedly connected to the power supply 531, the power supply 531 is electrically connected to the telescopic cylinder 51, the transmitter 532 is electrically connected to the output end of the power supply 531, and the receiver 533 is electrically connected to the input end of the power supply 531.

[0044] The power supply 531 is used to output current to the transmitter 532 and receive the current of the receiver 533. The transmitter 532 is used to emit laser, and the receiver 533 is used to receive the reflected laser, so as to achieve the effect of ranging. By processing the signal in time and feeding it back to the telescopic cylinder 51, the effect of automatic storage is realized, while also saving resources and improving work efficiency.

[0045] As Figure 2 shown in the figure, the water spray pipe 25 is provided with a plurality of water spray holes.

[0046] The water spray pipe 25 is provided with a plurality of water spray holes, which can make the flame retardant sprayed on the plate more uniform and the quality of the processed flame retardant board better.

[0047] Working principle of the utility model: The conveyor belt 1 conveys the board to the flame-retardant board processing device 2. The first motor 22 outputs torque to the lower roller 24, causing the lower roller 24 to rotate, driving the board to be conveyed between the upper roller 23 and the lower roller 24. The water pump 26 provides negative pressure to convey the flame retardant in the water tank 27 to the water spray pipe 25, and it is evenly sprayed onto the board being conveyed below through multiple water spray holes provided on the water spray pipe 25. The board sprayed with the flame retardant is conveyed from the receiving plate 36 to the rotating shaft 33. The second motor 32 outputs torque, causing the rotating shaft 33 to rotate, enabling the board to be conveyed between the rotating shaft 33 and the auxiliary roller 35. Meanwhile, the hydraulic pump 42 controls the pressure and flow rate of the hydraulic oil, causing the hydraulic rod 43 to extend, driving the inclined fork 44 to move, so that the lifting platform 46 and the rotating shaft 33 are on the same horizontal plane, and the board conveyed out by the rotating shaft 33 falls onto the lifting platform 46. When the lifting platform 46 drives the stacked boards to descend, the power supply 531 provides current, enabling the transmitter 532 to emit laser, and the receiver 533 receives the returned laser, feeding back the electrical signal of the measured distance to the telescopic cylinder 51. When the measurement signal remains consistent all the time, the telescopic cylinder 51 does not work. When the measurement signals are inconsistent, the telescopic cylinder 51 drives the alignment plate 52 to extend towards the board, thus realizing the automatic storage function.

[0048] Finally, it should be noted that the above are only the preferred embodiments of the present utility model and are not used to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present utility model shall be included within the protection scope of the present utility model.

Claims

1. An automatic storage device for processing flame-retardant plates, characterized in that: The automatic storage device comprises a conveyor belt (1), a flame retardant board processing device (2), an output device (3), a lifting device (4), an alignment device (5) and a fixed frame (6); the flame retardant board processing device (2) is tightly connected to one end of the output device (3); the end of the output device (3) away from the flame retardant board processing device (2) is tightly connected to the fixed frame (6); the alignment device (5) is tightly connected to the fixed frame (6); the conveyor belt (1), the flame retardant board processing device (2), the output device (3) and the fixed frame (6) are arranged in sequence according to the feeding direction; the lifting device (4) is located in the inner circle of the fixed frame (6); and the alignment device (5) works in the direction of the lifting device (4).

2. The automatic storage device for processing flame-retardant plates according to claim 1, characterized in that: The flame retardant board processing device (2) comprises a first mounting frame (21), a first motor (22), an upper roller (23), a lower roller (24), a water spray pipe (25), a water pump (26) and a water tank (27); the fixed end of the first motor (22) is tightly connected to the first mounting frame (21); the output end of the first motor (22) is tightly connected to one end of the lower roller (24); the end of the lower roller (24) away from the first motor (22) is rotatably connected to the first mounting frame (21); the upper roller (23) is rotatably connected to the first mounting frame (21); the water pump (26) is fixed The first motor (22), the upper roller (23) and the lower roller (24) are each provided with three. The three first motors (22), the upper rollers (23) and the lower rollers (24) are arranged on the same horizontal plane according to the feeding direction. The upper roller (23) is located above the lower roller (24).

3. The automatic storage device for processing flame-retardant plates according to claim 2, characterized in that: The output device (3) comprises a second mounting frame (31), a second motor (32), a rotating shaft (33), a fixed shaft (34), an auxiliary roller (35) and a receiving plate (36); the second mounting frame (31) is tightly connected to the fixed frame (6); the fixed end of the second motor (32) is tightly connected to the second mounting frame (31); the output end of the second motor (32) is tightly connected to one end of the rotating shaft (33); the end of the rotating shaft (33) away from the second motor (32) is tightly connected to the second mounting frame ( The fixed shaft (34) is rotatably connected to the second mounting frame (31), the fixed shaft (34) is tightly connected to the second mounting frame (31), the auxiliary roller (35) is rotatably connected to the fixed shaft (34), one end of the receiving plate (36) is tightly connected to the first mounting frame (21), and one end of the receiving plate (36) away from the first mounting frame (21) is tightly connected to the second mounting frame (31), and two fixed shafts (34) and two auxiliary rollers (35) are provided, and the two auxiliary rollers (35) are located above the symmetrically distributed rotating shafts (33).

4. The automatic storage device for processing flame-retardant plates according to claim 1, characterized in that: The lifting device (4) comprises a base plate (41), a hydraulic pump (42), a hydraulic rod (43), an inclined fork (44), a connecting rod (45) and a lifting platform (46). The inclined fork (44) and the connecting rod (45) are provided in plurality. The fixed end of the hydraulic pump (42) is tightly connected to the base plate (41). One end of the base plate (41) close to the hydraulic rod (43) is slidably connected to the inclined fork (44). One end of the base plate (41) close to the hydraulic pump (42) is tightly connected to the inclined fork (44). The output end of the hydraulic pump (42) is tightly connected to the hydraulic rod (43). One end of the pressure rod (43) is tightly connected, one end of the hydraulic rod (43) away from the hydraulic pump (42) is rotatably connected to the inclined fork (44), and the adjacent inclined forks (44) are rotatably connected. Both ends of the connecting rod (45) are rotatably connected to the two inclined forks (44). One end of the lifting platform (46) close to the hydraulic pump (42) is tightly connected to the inclined fork (44), and one end of the lifting platform (46) away from the hydraulic pump (42) is slidably connected to the inclined fork (44). The base plate (41) is located at the bottom, and the lifting platform (46) is located at the top.

5. The automatic storage device for processing flame-retardant plates according to claim 1, characterized in that: The alignment device (5) comprises a telescopic cylinder (51), an alignment plate (52) and a distance measuring sensor device (53); the fixed end of the telescopic cylinder (51) is tightly connected to a fixed frame (6); the output end of the telescopic cylinder (51) is tightly connected to the alignment plate (52); the distance measuring sensor device (53) is tightly connected to the fixed frame (6); the distance measuring sensor device (53) is electrically connected to the telescopic cylinder (51); four telescopic cylinders (51) and four alignment plates (52) are provided; two distance measuring sensors (53) are provided; the four telescopic cylinders (51) are respectively located at four corners above the fixed frame (6); the two distance measuring sensors (53) are respectively located at two diagonal corners of the fixed frame (6); and the distance measuring sensor device (53) is located on one side of the telescopic cylinder (51).

6. The automatic storage device for processing flame-retardant plates according to claim 5, characterized in that: The distance measuring sensor device (53) comprises a power supply (531), a transmitter (532) and a receiver (533); the power supply (531) is tightly connected to a fixing frame (6); the transmitter (532) and the receiver (533) are tightly connected to the power supply (531); the power supply (531) is electrically connected to a telescopic cylinder (51); the transmitter (532) is electrically connected to an output end of the power supply (531); and the receiver (533) is electrically connected to an input end of the power supply (531).

7. The automatic storage device for processing flame-retardant plates according to claim 2, characterized in that: The water spray pipe (25) is provided with a plurality of water spray holes.