A material recovery and dust removal integrated machine

By combining the air intake component and the material collection component, the device achieves efficient interception of large materials and fine separation of dust and materials, solving the problems of material waste and wear in existing technologies and improving recycling efficiency and automation.

CN120154997BActive Publication Date: 2025-10-28LINYI XINBANG BIOTECH CO LTD
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Patent Information

Application Number
CN202510575717.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-05-06
Publication Date
2025-10-28
Estimated Expiration
2045-05-06

AI Technical Summary

Technical Problem

When existing material recovery devices recover dust and particulate materials, smaller particles can easily enter the dust collector, leading to material waste and dust collector wear. Furthermore, traditional devices are difficult to efficiently separate dust and materials.

Method used

The system employs a dynamic mixing mechanism combining an air intake assembly with a separation cylinder and a turning plate, along with a material collection assembly. Through mesh screening and the rotational agitation of the turning plate, it achieves efficient interception of large materials in the air-dust mixture and fine separation of dust and materials. It utilizes negative pressure to peel off the mixed dust, and combined with the screening of the material collection plate and the turning action of the mixing plate, it achieves automated recycling.

Benefits of technology

It improves material recovery efficiency, reduces wear and blockage inside the dust collector, reduces the frequency of manual cleaning, and achieves efficient material recovery and thorough dust separation.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention belongs to the field of material recycling and dust removal technology, specifically disclosing an integrated material recycling and dust removal machine, including a dust collection box. An air inlet frame is connected to the lower part of one side of the dust collection box, and an air inlet component is connected to one side of the air inlet frame. A dust discharge hopper is connected to the lower end of the dust collection box, and an air outlet pipe is connected to the upper part of one side of the dust collection box. A fan is connected to one end of the air outlet pipe, and a pulse device is connected to the upper part of one side of the dust collection box. This invention can separate materials that accidentally enter the dust collector from the air dust during the material recycling and dust removal process, and collect the materials remaining inside the gas.
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Description

Technical Field

[0001] This invention belongs to the field of material recycling and dust removal technology, and specifically relates to an integrated material recycling and dust removal machine. Background Technology

[0002] With the acceleration of industrialization and urbanization, air pollution has become increasingly serious. There are many types of air pollutants, including small particulate pollutants such as dust, smoke and fog, as well as gaseous pollutants such as sulfur dioxide, carbon dioxide and carbon monoxide. Regional air pollution problems characterized by fine particulate matter and inhalable particulate matter are becoming increasingly prominent.

[0003] In industrial production processes, many materials are emitted into the atmosphere in the form of dust, which not only causes air pollution but also wastes resources. For example, in aluminum foil production, the generation of dust and waste has always been a problem for enterprises. Material recycling and dust removal technology can recycle and reuse these dust and other materials, improving resource utilization.

[0004] In existing technologies, a large amount of dust is generated when recycling materials such as powders and granules (e.g., when recycling grains). In traditional material recycling devices, smaller particles will enter the dust collector due to suction, and the material will follow the dust into the dust collection cylinder, resulting in material waste. Summary of the Invention

[0005] The purpose of this invention is to address the shortcomings of existing technologies by proposing an integrated material recycling and dust removal machine.

[0006] To achieve the above objectives, the present invention provides an integrated material recycling and dust removal machine, comprising a dust collection box, an air inlet frame connected to the lower part of one side of the dust collection box, an air inlet assembly connected to one side of the air inlet frame, a dust discharge hopper connected to the lower end of the dust collection box, an air outlet pipe connected to the upper part of one side of the dust collection box, a fan connected to one end of the air outlet pipe, a pulse device connected to the upper part of one side of the dust collection box, air supply pipes evenly connected to the upper end of the pulse device, multiple air supply pipes extending one end through into the interior of the dust collection box, a dust collection bag connected to one end of multiple air supply pipes, two sets of adsorption plates connected to the upper parts of both sides of the inner wall of the dust collection box, a cleaning frame connected to the lower part of one side of the dust collection box, a baffle connected to the upper side of the inner wall of the cleaning frame, and a material collection assembly connected to the lower side of the inner wall of the cleaning frame.

[0007] In the above technical solution, the air intake assembly further includes a housing, which is connected to one side of the air intake frame. An air intake pipe is connected to the middle of the upper end of the housing, and the lower end of the air intake pipe extends through into the interior of the housing. A discharge pipe is connected to the lower end of the air intake pipe, and the discharge pipe has an inverted V-shaped structure. A separation cylinder is connected to the middle of one side of the inner wall of the housing, and a discharge pipe is connected to the middle of the lower end of the separation cylinder. The lower end of the discharge pipe extends through into the lower end of the housing. The separation cylinder is made of a mesh material.

[0008] In the above technical solution, the lower end of the inner wall of the discharge pipe is connected to a conveying cylinder, one side of the upper end of the conveying cylinder is connected to both sides of the lower end of the inner wall of the shell through a fixing block, one side of the conveying cylinder is connected to a connecting motor, the output end of the connecting motor is connected to a conveying auger, one end of the conveying auger extends through into the inside of the conveying cylinder, one end of the conveying auger is connected to one side of the inner wall of the conveying cylinder, and one side of the lower end of the conveying cylinder is connected to a discharge pipe.

[0009] In the above technical solution, a drive motor is further connected to the middle of one side of the housing, the output end of the drive motor extends through into the interior of the housing, the output end of the drive motor is connected to a tilting plate, one side of the tilting plate contacts one side of the inner wall of the separation cylinder, and both the upper and lower sides of the tilting plate are inclined.

[0010] In the above technical solution, the material collection assembly further includes a material collection plate connected to the lower side of the inner wall of the cleaning frame. The lower side of the material collection plate contacts the lower side of the inner wall of the cleaning frame. One end of the material collection plate contacts the inner wall of the dust collector. Support plates are connected to both sides of the upper end of the material collection plate. A first micro motor is evenly connected to the lower part of one side of one of the support plates. Rotating rods are connected to the output ends of the two first micro motors. One end of each of the two rotating rods passes through one side of one support plate and is rotatably connected to the inner wall of the other support plate. Guide plates are connected to both sides of the outer wall of the two rotating rods. The upper end of the guide plates is inclined. One side of each of the two guide plates contacts the lower parts of both sides of the inner wall of the dust collector.

[0011] In the above technical solution, further, a frame is connected to the lower part of one side of each of the two support plates, the lower ends of the two frames respectively contact the upper sides of the collecting plate, and a guide block is connected to the upper end of each of the two frames. One side of each of the guide blocks contacts the upper part of one side of each of the two support plates. A second micro motor is connected to the middle of one side of one frame, and a lead screw is connected to the output end of the second micro motor. One end of the lead screw extends through to the inner wall of one of the frames and contacts one side of the inner wall of the frame. A sliding rod is connected to the middle of both sides of the inner wall of the other frame. A moving block is slidably connected to the middle of the outer wall of the lead screw and the middle of the outer wall of the sliding rod. The outer wall of the lead screw is threadedly connected to one of the moving blocks.

[0012] In the above technical solution, further, a movable plate is connected to the upper part of one side of each of the two movable blocks, and one end of each of the two movable plates extends through to one side of each of the two frames. The movable plates are arranged in an inverted L-shape. A connecting rod is connected between the two movable plates, and both ends of the connecting rod extend through to one side of each of the two movable plates. A stirring plate is circumferentially connected to the middle of the outer wall of the connecting rod. The lower end of one of the stirring plates contacts the upper end of the collecting plate. Gears are connected to both sides of the outer wall of the connecting rod. A rack is connected to the middle of one side of each of the two frames. The upper ends of the two gears are respectively meshed with the lower ends of the rack.

[0013] Compared with the prior art, the present invention has the following beneficial effects:

[0014] Equipped with an air intake component, the system utilizes a dual mechanism of mesh screening in the separation cylinder and dynamic agitation by the tipping plate to efficiently intercept large pieces of material in the air-dust mixture. The mesh of the separation cylinder can be customized according to the particle size of the material to prevent it from entering the dust collector bag and causing wear or blockage of the filter cloth, thus reducing the load on the dust collector bag. At the same time, the rotating tipping plate agitates the retained material and uses the negative pressure of the air intake to peel off the dust particles, thereby removing large pieces of material from the air-dust mixture, improving subsequent filtration efficiency, reducing the frequency of manual cleaning of the dust collector's interior, and enabling material recovery.

[0015] Equipped with a material collection component, the dust and materials are finely separated and efficiently collected through grading, screening, and dynamic mixing. The collection plate first traps coarse particles, while fine dust falls into the ash hopper through the mesh. Then, the mixing plate moves horizontally and rotates while being automatically mixed back and forth, ensuring that the residual dust is fully screened and improving the screening efficiency. At the same time, the angle of the guide plate is adjusted to prevent material from spilling from the top of the collection plate, allowing the material collected inside the dust collector to be quickly removed. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the overall structure proposed in this invention;

[0017] Figure 2 This is a cross-sectional view of the overall structure proposed in this invention;

[0018] Figure 3 This is a schematic diagram of the air intake assembly proposed in this invention;

[0019] Figure 4 This is a cross-sectional view of the air intake assembly proposed in this invention;

[0020] Figure 5 This is a schematic diagram of the material collection assembly proposed in this invention;

[0021] Figure 6 This is a cross-sectional view of the material collection assembly proposed in this invention;

[0022] Figure 7 This is a schematic diagram of the installation structure of the guide plate proposed in this invention;

[0023] Figure 8 This is a schematic diagram of the installation structure of the movable block proposed in this invention;

[0024] Figure 9 The present invention proposes Figure 8 A magnified structural diagram of A in the diagram;

[0025] Figure 10 This is a schematic diagram of the gear mounting structure proposed in this invention.

[0026] In the diagram: 1. Dust collector; 2. Air inlet frame; 3. Shell; 4. Air inlet pipe; 5. Feed pipe; 6. Separation cylinder; 7. Discharge pipe; 8. Conveying cylinder; 9. Conveying auger; 10. Discharge pipe; 11. Drive motor; 12. Tilting plate; 13. Ash hopper; 14. Air outlet pipe; 15. Fan; 16. Pulse device; 17. Air conveying pipe; 18. Dust collector bag; 19. Adsorption plate; 20. Cleaning frame; 21. Baffle; 22. Collecting plate; 23. Support plate; 24. First micro motor; 25. Rotating rod; 26. Guide plate; 27. Frame; 28. Guide block; 29. ​​Second micro motor; 30. Lead screw; 31. Slide rod; 32. Moving block; 33. Moving plate; 34. Connecting rod; 35. Mixing plate; 36. Gear; 37. Rack. Detailed Implementation

[0027] To better understand the above-mentioned objectives, features, and advantages of the present invention, the present invention will be further described in detail below with reference to the accompanying drawings and specific embodiments.

[0028] like Figures 1-10 The material recycling and dust removal integrated machine shown includes a dust collection box 1, an air inlet frame 2 connected to the lower part of one side of the dust collection box 1, an air inlet component connected to one side of the air inlet frame 2, a dust discharge hopper 13 connected to the lower end of the dust collection box 1, an air outlet pipe 14 connected to the upper part of one side of the dust collection box 1, a fan 15 connected to one end of the air outlet pipe 14, a pulse device 16 connected to the upper part of one side of the dust collection box 1, an air conveying pipe 17 evenly connected to the upper end of the pulse device 16, multiple air conveying pipes 17 extending into the interior of the dust collection box 1 at one end, and a dust collection bag 18 connected to one end of multiple air conveying pipes 17. Adsorption plates 19 are connected to the upper part of both sides of the inner wall of the dust collection box 1. There are two sets of adsorption plates 19, which are located above the dust collection bag 18 and are used to adsorb harmful gases. A cleaning frame 20 is connected to the lower part of one side of the dust collection box 1. A baffle 21 is connected to the upper part of the inner wall of the cleaning frame 20, and a material collection component is connected to the lower part of the inner wall of the cleaning frame 20.

[0029] When the blower 15 operates, suction is generated at the outlet pipe 14, which in turn generates suction at the inlet assembly. The air and dust are transported to the dust collection box 1 through the inlet assembly and the inlet frame 2. The inlet assembly can effectively intercept the material that enters with the air and dust, and then discharge large pieces of material. Subsequently, the air and dust enter the dust collection box 1 and are removed by multiple dust collection bags 18. The dust and material are located at the lower part of the outer wall of the dust collection bag 18. When there is a lot of dust on the outer wall of the dust collection bag 18, compressed gas is delivered into multiple air supply pipes 17 through the pulse device 16. The compressed gas enters into multiple dust collection bags 18 through the air supply pipes 17, causing the dust and material on the dust collection bag 18 to fall to the upper end of the collection assembly. The collection assembly separates the dust and material, and the collected material can be taken out through the cleaning frame 20.

[0030] like Figure 3 and Figure 4 As shown, the air intake assembly includes a housing 3, which is connected to one side of the air intake frame 2. An air intake pipe 4 is connected to the middle of the upper end of the housing 3, and the lower end of the air intake pipe 4 extends through into the interior of the housing 3. A discharge pipe 5 is connected to the lower end of the air intake pipe 4, and the discharge pipe 5 has an inverted V-shaped structure. A separation cylinder 6 is connected to the middle of one side of the inner wall of the housing 3, and a discharge pipe 7 is connected to the middle of the lower end of the separation cylinder 6. The lower end of the discharge pipe 7 extends through to the lower end of the housing 3. The separation cylinder 6 is made of a mesh material. A conveying cylinder 8 is connected to the lower end of the inner wall of the discharge pipe 7. The upper side of the conveying cylinder 8 is fixed to both sides of the lower end of the inner wall of the housing 3. The block is connected, and a connecting motor is connected to one side of the conveying cylinder 8. The output end of the connecting motor is connected to the conveying auger 9. One end of the conveying auger 9 extends through into the inside of the conveying cylinder 8 and is connected to one side of the inner wall of the conveying cylinder 8. A discharge pipe 10 is connected to one side of the lower end of the conveying cylinder 8. A drive motor 11 is connected to the middle of one side of the housing 3. The output end of the drive motor 11 extends through into the inside of the housing 3 and is connected to the output end of the drive motor 11. A tilting plate 12 is connected to one side of the tilting plate 12 and one side of the inner wall of the separation cylinder 6. The upper and lower sides of the tilting plate 12 are both inclined.

[0031] Dust and materials enter the housing 3 through the air inlet pipe 4. The air and materials are fed into the separation cylinder 6 through the discharge pipe 5. Since the separation cylinder 6 is made of mesh material, the gas and dust can be conveyed to one side through the mesh, while materials larger than the mesh are left inside the separation cylinder 6. Because the materials are piled up in one place, dust is easily mixed between the materials. The drive motor 11 drives the turning plate 12 to rotate inside the separation cylinder 6, thereby turning the materials inside the separation cylinder 6. Since there is suction at the air inlet frame 2, the dust mixed in with the materials enters the dust collector 1 through the air inlet frame 2. The outer wall of the discharge pipe 7 is connected to an airlock discharge valve. When the airlock discharge valve on the outer wall of the discharge pipe 7 is opened, the materials inside the separation cylinder 6 enter the conveying cylinder 8 through the discharge pipe 7. The motor drives the conveying auger 9 to rotate, conveying the materials inside the conveying cylinder 8 to the discharge pipe 10. The materials can be conveyed out through the discharge pipe 10, realizing the pre-separation of materials and dust.

[0032] like Figures 5-10As shown, the material collection assembly includes a material collection plate 22, which is connected to the lower side of the inner wall of the cleaning frame 20. A support plate is connected to the inner wall of the dust collector 1 at the lower side of the material collection plate 22. The lower side of the material collection plate 22 is located above the support plate, and the lower side of the material collection plate 22 contacts the lower side of the inner wall of the cleaning frame 20. One end of the material collection plate 22 contacts the inner wall of the dust collector 1. Support plates 23 are connected to both sides of the upper end of the material collection plate 22. A first micro motor 24 is evenly connected to the lower part of one side of one of the support plates 23. The output ends of the two first micro motors 24 are connected to rotating rods 25. One end of each of the two rotating rods 25 passes through one side of one of the support plates 23 and is rotatably connected to one side of the inner wall of the other support plate 23. Guide plates 26 are connected to both sides of the outer wall of each of the two rotating rods 25. The upper ends of the guide plates 26 are inclined. One side of each guide plate 26 contacts the lower part of both sides of the inner wall of the dust collector 1. Frames 27 are connected to the lower part of one side of each of the two support plates 23. The lower ends of each frame 27 contact the upper sides of the collecting plate 22. Guide blocks 28 are connected to the upper ends of each frame 27. The upper ends of the guide blocks 28 are inclined. One side of each guide block 28 contacts the upper part of one side of each of the two support plates 23. One of the frames 27 has a second micro motor 29 connected to the middle of one side. The output end of the second micro motor 29 is connected to a lead screw 30. One end of the lead screw 30 extends through to the inner wall of one of the frames 27 and contacts one side of the inner wall. The middle of both sides of the inner wall of the other frame 27 is connected to a sliding rod 31. Moving blocks 32 are slidably connected to the middle of the outer wall of the lead screw 30 and the middle of the outer wall of the sliding rod 31. The outer wall of the lead screw 30 is threadedly connected to one of the moving blocks 32, and the lead screw 30 and moving block 32 are threadedly engaged. The sliding rod 31 and moving block 32 are slidably engaged. The upper part of one side of each of the two moving blocks 32 is connected to... Two movable plates 33 extend through one end to one side of two frames 27. The movable plates 33 are in the shape of an inverted L-shape. A connecting rod 34 connects the two movable plates 33. Both ends of the connecting rod 34 extend through one side of the two movable plates 33. A stirring plate 35 is circumferentially connected to the middle of the outer wall of the connecting rod 34. The lower end of one stirring plate 35 contacts the upper end of the collecting plate 22. Gears 36 are connected to both sides of the outer wall of the connecting rod 34. A rack rod 37 is connected to the middle of one side of the two frames 27. The upper ends of the two gears 36 are respectively meshed with the lower ends of the rack rod 37.

[0033] When dust and materials on the dust collector bag 18 fall to the upper end of the collecting assembly, the two first micro motors 24 rotate, driving the rotating rod 25 and the guide plate 26 to rotate. One end of the guide plate 26 then contacts one side of the inner wall of the dust collector box 1. The guide plate 26 guides the dust and materials to the top of the collecting plate 22. The collecting plate 22 is made of a mesh material. When materials and dust fall to the top of the collecting plate 22, the dust at the bottom falls through the mesh into the ash hopper 13, while the dust at the top cannot fall due to material obstruction. The second micro motor 29 then rotates the lead screw 30, causing the moving block 32 on the outer wall of the lead screw 30 to slide. This causes the moving plate 33 on one side and the connecting rod 34 to move. The moving plate 33 at the other end of the connecting rod 34 then causes the moving block 32 on the other side to slide on the outer wall of the sliding rod 31. During this movement, the gears 36 at both ends of the connecting rod 34 move below the rack 37. The rack 37 and... Gear 36 meshes, thereby driving connecting rod 34 and multiple stirring plates 35 to rotate. As the multiple stirring plates 35 move above the collecting plate 22, they rotate, thus agitating the material above the collecting plate 22. This causes dust above the collecting plate 22 to fall through the mesh, while the material falls onto the collecting plate 22, achieving material collection. When the collecting plate 22 needs to be removed, two first micro motors 24 drive rotating rod 25 and guide plate 26 to rotate, changing the angle of the guide plate 26. One end of the two guide plates 26 is away from the inner wall of the dust collector 1. One of the support plates 23 has a handle connected to the middle of one side. The operator pulls the handle to pull out the collecting plate 22 and remove the material above it. The collecting plate 22 is a coarse mesh plate. Dust (fine particles) falls through the mesh into the ash hopper 13, while material (coarse particles) remains on the collecting plate 22 and is fully screened by agitation by the stirring plates 35.

[0034] Working principle: When the device is in use, after the fan 15 is started, a negative pressure is formed in the dust collection box 1 through the air outlet pipe 14, which drives the air intake component to generate suction. The air-dust mixture enters the housing 3 from the air inlet pipe 4 and is evenly introduced into the separation cylinder 6 through the inverted V-shaped discharge pipe 5.

[0035] Material larger than the mesh size is retained in the cylinder. Gas carrying fine dust flows through the mesh to the air inlet frame 2. The drive motor 11 drives the turning plate 12 to rotate, turning the accumulated material in the separation cylinder 6. The suction of the air inlet frame 2 is used to peel off the dust mixed in the material, preventing the material from carrying dust into the dust collector 1. The air lock discharge valve of the discharge pipe 7 is opened, and the material falls into the conveying cylinder 8 and is discharged from the discharge pipe 10 by the conveying auger 9, realizing pre-separation.

[0036] The pre-separated gas-dust mixture enters the dust collector 1 through the air inlet frame 2. The gas rises through the dust collector bag 18 at the top of the dust collector 1. Dust and materials are trapped on the outer wall of the bag by the filter cloth. Clean gas flows upward from the bag opening through the air outlet pipe 14 and is filtered again by the adsorption plate 19 to filter the finer dust and harmful gases in the gas. The filtered gas is then transported by the fan 15 to subsequent treatment or discharge.

[0037] When dust accumulates on the outer wall of the dust collector bag 18, causing the resistance to increase, the pulse device 16 is activated and compressed air is delivered to the air supply pipe 17. The compressed air is sprayed downward into the upper opening of the dust collector bag 18 through the nozzle at the end of the air supply pipe 17. The instantaneous high-pressure airflow causes the filter bag to expand and shake. The attached dust and materials fall off due to inertia and airflow impact, and slide down the outer wall of the dust collector bag 18 to the lower collection assembly.

[0038] The detached dust and unseparated fine particles fall onto the collecting plate 22. The fine dust falls through the mesh into the ash hopper 13 and is periodically discharged from the bottom. The particles remain on the collecting plate 22. The second micro motor 29 drives the lead screw 30 to rotate, causing the moving block 32 to move laterally along the lead screw 30 and the slide bar 31. At the same time, the gear 36 meshes with the rack 37, forcing the stirring plate 35 on the connecting rod 34 to move and rotate at the same time, stirring the material on the collecting plate 22, so that the residual dust can fall through the mesh and ensure the purity of the material. The material after cleaning and screening accumulates on the collecting plate 22. The material can be taken out by pulling out the collecting plate 22 assembly by the handle and opening the cleaning frame 20. The angle of the guide plate 26 can be adjusted by the first micro motor 24 and the rotating rod 25 to prevent the material from spilling when taking it out.

[0039] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed invention.

Claims

1. A material recycling and dust removal integrated machine, comprising a dust collection box (1), characterized in that, The dust collector (1) is connected to an air inlet frame (2) on one side of its lower part. An air inlet assembly is connected to one side of the air inlet frame (2). A dust discharge hopper (13) is connected to the lower end of the dust collector (1). An air outlet pipe (14) is connected to the upper part of one side of the dust collector (1). A fan (15) is connected to one end of the air outlet pipe (14). A pulse device (16) is connected to the upper part of one side of the dust collector (1). An air supply pipe (17) is evenly connected to the upper end of the pulse device (16). Multiple air supply pipes (17) are connected to the upper end of the pulse device (1). One end of the air pipe (17) extends through into the interior of the dust collection box (1). One end of each of the multiple air pipes (17) is connected to a dust collection bag (18). Adsorption plates (19) are connected to the upper part of both sides of the inner wall of the dust collection box (1). There are two sets of adsorption plates (19). A cleaning frame (20) is connected to the lower part of one side of the dust collection box (1). A baffle (21) is connected to the upper side of the inner wall of the cleaning frame (20). A material collection assembly is connected to the lower side of the inner wall of the cleaning frame (20). The air intake assembly includes a housing (3), an air intake pipe (4) connected to the middle of the upper end of the housing (3), the lower end of the air intake pipe (4) extending through into the interior of the housing (3), a discharge pipe (5) connected to the lower end of the air intake pipe (4), the discharge pipe (5) being an inverted V-shaped structure, a separation cylinder (6) connected to the middle of one side of the inner wall of the housing (3), a discharge pipe (7) connected to the middle of the lower end of the separation cylinder (6), the lower end of the discharge pipe (7) extending through into the lower end of the housing (3), the separation cylinder (6) being made of mesh material, a drive motor (11) connected to the middle of one side of the housing (3), the output end of the drive motor (11) extending through into the interior of the housing (3), a tilting plate (12) connected to the output end of the drive motor (11), one side of the tilting plate (12) contacting one side of the inner wall of the separation cylinder (6), and both the upper and lower sides of the tilting plate (12) being inclined.

2. The integrated material recycling and dust removal machine according to claim 1, characterized in that, The lower end of the inner wall of the discharge pipe (7) is connected to the conveying cylinder (8). The upper side of the conveying cylinder (8) is connected to both sides of the lower end of the inner wall of the shell (3) by a fixing block. A connecting motor is connected to one side of the conveying cylinder (8). A conveying auger (9) is connected to the output end of the connecting motor. One end of the conveying auger (9) extends through into the inside of the conveying cylinder (8). One end of the conveying auger (9) is connected to one side of the inner wall of the conveying cylinder (8). A discharge pipe (10) is connected to one side of the lower end of the conveying cylinder (8).

3. The integrated material recycling and dust removal machine according to claim 1, characterized in that, The material collection assembly includes a material collection plate (22). One side of the lower end of the material collection plate (22) contacts the lower side of the inner wall of the cleaning frame (20). One end of the material collection plate (22) contacts the inner wall of the dust collector (1). Support plates (23) are connected to both sides of the upper end of the material collection plate (22). A first micro motor (24) is evenly connected to the lower part of one side of one of the support plates (23). Rotating rods (25) are connected to the output ends of the two first micro motors (24). One end of the two rotating rods (25) passes through one side of one support plate (23) and is rotatably connected to the inner wall of the other support plate (23). Guide plates (26) are connected to both sides of the outer wall of the two rotating rods (25). The upper end of the guide plates (26) is inclined. One side of the two guide plates (26) contacts the lower part of both sides of the inner wall of the dust collector (1).

4. The integrated material recycling and dust removal machine according to claim 3, characterized in that, Two support plates (23) are connected to a frame (27) on one side of the lower part. The lower ends of the two frames (27) are in contact with the upper sides of the material collection plate (22). The upper ends of the two frames (27) are connected to a guide block (28). One side of the two guide blocks (28) is in contact with the upper part of one side of the two support plates (23). A second micro motor (29) is connected to the middle of one side of one frame (27). The output end of the second micro motor (29) is connected to a lead screw (30). One end of the lead screw (30) extends through to the inner wall of one frame (27) and contacts one side of the inner wall of the frame (27). A sliding rod (31) is connected to the middle of both sides of the inner wall of the other frame (27). A moving block (32) is slidably connected to the middle of the outer wall of the lead screw (30) and the middle of the outer wall of the sliding rod (31). The outer wall of the lead screw (30) is threadedly connected to one of the moving blocks (32).

5. The integrated material recycling and dust removal machine according to claim 4, characterized in that, Two movable blocks (32) are connected to a movable plate (33) on one side of the upper part. One end of the two movable plates (33) extends through to one side of the two frames (27). The movable plates (33) are in the shape of an inverted L-shape. A connecting rod (34) is connected between the two movable plates (33). Both ends of the connecting rod (34) extend through to one side of the two movable plates (33). A stirring plate (35) is circumferentially connected to the middle of the outer wall of the connecting rod (34). The lower end of one of the stirring plates (35) contacts the upper end of the collecting plate (22). Gears (36) are connected to both sides of the outer wall of the connecting rod (34). A rack rod (37) is connected to the middle of one side of the two frames (27). The upper ends of the two gears (36) are meshed with the lower ends of the rack rod (37).

Citation Information

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