Environment-friendly solid waste garbage sorting treatment device
By using elliptical cylinders and rack and pinion gears to drive the sliding of the magnet rod in the solid waste treatment equipment to expand the magnetic field coverage, and by using electric sliding brushes and quick-release structures for automated cleaning, the problems of insufficient magnetic field coverage and complex cleaning are solved, thereby improving the metal recovery rate and processing efficiency.
Patent Information
- Application Number
- CN202511377464.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-25
- Publication Date
- 2025-11-11
AI Technical Summary
Existing solid waste treatment equipment suffers from problems such as limited magnetic field coverage, numerous adsorption omissions, and cumbersome cleaning in the recovery of magnetic metals. Furthermore, the replacement of filter accessories is complex, affecting the continuity and efficiency of the treatment process.
An elliptical cylinder drives a half-gear to rotate, which in turn drives a rack to slide a magnet rod to expand the magnetic field coverage. An electric sliding brush automatically removes metal impurities. The quick-release structure simplifies the replacement of the moisture-absorbing block, and electric control enables automated operation.
It improves the recovery rate of magnetic metals, simplifies the cleaning operation, ensures the continuity and efficiency of the processing flow, and reduces the cost of manual intervention and maintenance.
Smart Images

Figure CN120920190A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of solid waste treatment technology, and in particular to an environmentally friendly solid waste sorting and treatment device. Background Technology
[0002] With the breakthrough of global urbanization and the dual upgrading of industrial production towards refinement and scale, the amount of solid waste generated is showing a dual characteristics of a surge in total volume and complex composition. According to statistics, the global annual solid waste generation has exceeded 2 billion tons, and the growth rate is increasing every year. my country accounts for about one-third of the annual generation. Combined with metal scraps, plastic waste, and chemical residues generated in industrial production, as well as straw, livestock and poultry manure, and waste agricultural film in the agricultural field, a solid waste system covering all scenarios of life, industry, and agriculture has been formed.
[0003] However, in the current actual treatment of solid waste, in terms of magnetic metal recovery, existing equipment mostly adopts fixed magnets or simple magnetic drum structures. The magnetic field coverage of these devices is limited and the mode of operation is singular. For fine magnetic particles in mixed solid waste, or metal fragments buried and wrapped by other waste materials, it is very easy to miss them, resulting in the loss of recyclable metal resources. At the same time, the metal adsorbed on the surface of the magnet or magnetic drum needs to be cleaned by manual scraping or complex mechanical stripping mechanisms. This is not only cumbersome and time-consuming, but also interrupts the continuity of the sorting process. In addition, in the wastewater treatment stage, although filtration devices are set up to purify the leachate or water vapor condensate generated during the drying and washing of solid waste, due to the limitations of the device structure design, the filter accessories are mostly embedded in the core area inside the equipment. When replacing them, multiple sets of connecting parts need to be disassembled, the machine needs to be stopped and the internal residual liquid drained, and the operation steps are complicated and time-consuming. Summary of the Invention
[0004] The purpose of this invention is to solve the problems mentioned above in the prior art and to propose an environmentally friendly solid waste sorting and processing device.
[0005] To achieve the above objectives, the present invention adopts the following technical solution: An environmentally friendly solid waste sorting and processing device includes a process box. A first grinding roller is rotatably connected inside the process box. The first grinding roller is fixedly connected to a first rotating disk through the process box. A second rotating disk is meshed with the first rotating disk. The second rotating disk is fixedly connected to a second grinding roller through the process box. A rotating shaft is driven by the first rotating disk. A first bevel gear is driven by one end of the rotating shaft through the first rotating disk. The first bevel gear meshes with a second bevel gear. An elliptical cylinder is fixedly connected through a connecting box. A half-gear is slidably connected to the elliptical cylinder. The half-gear is rotatably connected to an L-shaped sliding rack. The L-shaped sliding rack meshes with a gear on the upper part of the box. The gear on the upper part of the box is rotatably connected to the connecting box. An elliptical ring is slidably connected to the side of the L-shaped sliding rack. A first rack is provided inside the elliptical ring. A second rack is provided on the side of the elliptical ring away from the first rack. A magnetic rod is installed on the side of the elliptical ring. A waste gas treatment box is provided on the side of the process box. A disassembly mechanism for disassembling the moisture-absorbing block is provided inside the waste gas treatment box.
[0006] The above technical solution further includes: The disassembly mechanism includes a lower connecting block located below the exhaust gas treatment box. The lower connecting block is slidably connected to a pull rod. An installation plate is sleeved on the surface of the pull rod. A spring is fixedly connected to the bottom of the installation plate. The lower connecting block is fixedly connected to the end of the spring away from the installation plate.
[0007] The first rotating disk is driven by a first belt, and the end of the first belt away from the first rotating disk is driven by a rotating shaft. The rotating shaft is driven by a second belt, and the end of the second belt away from the rotating shaft is driven by a first bevel gear. The first bevel gear is rotatably connected to the connecting box.
[0008] A feed inlet is provided at the opening of the process box, and a dryer is provided inside the process box on the side near the feed inlet.
[0009] The feed inlet allows for centralized and targeted input of solid waste, avoiding environmental pollution caused by the scattering of solid waste during feeding. The dryer is positioned close to the feed inlet, enabling the solid waste to be quickly dried as soon as it enters the device. This shortens the residence time of high-moisture solid waste in the device, reduces the amount of leachate generated, and removes moisture in advance to avoid clumping problems caused by damp waste in subsequent grinding and sorting processes. This provides a dry and loose material base for subsequent processes, improving overall processing efficiency.
[0010] The process box is slidably connected to a section plate, and a waste gas treatment box for extracting moisture is provided on the side of the process box. A waste gas extraction machine is provided inside the waste gas treatment box.
[0011] The cut-off plate can be opened and closed by sliding the opening of the process box. When feeding, the cut-off plate is closed to receive the input solid waste and form a closed drying space, preventing water vapor from escaping from the opening during the drying process, ensuring drying efficiency and avoiding exhaust gas leakage. After drying, the cut-off plate is opened, allowing the dried solid waste to fall accurately into the subsequent grinding mechanism without manual transfer. This reduces human intervention, avoids scattering and pollution during solid waste transfer, and ensures smooth process connection.
[0012] An electric pusher is installed above the process box, and a baffle is fixedly connected to the output end of the electric pusher. The baffle is slidably connected to the process box, and a conveyor belt is installed inside the process box.
[0013] The electric pusher can drive the baffle to slide along the flow box, thereby controlling the falling path of the ground solid waste. When the magnetic rod attracts metal, the baffle can close to block the solid waste from falling, ensuring that the metal is fully sorted. After sorting, the baffle slides open to allow non-metallic solid waste to fall accurately into the conveyor belt, preventing solid waste from directly entering the subsequent stage when it is not fully sorted, thus improving sorting accuracy. At the same time, the electric drive eliminates the need for manual operation, reducing labor costs and ensuring timely and accurate control.
[0014] A packing box is installed on the side of the process box, and an electric door is provided at the bottom of the packing box.
[0015] The packing box can compress and pack non-metallic solid waste conveyed by the conveyor belt, reducing the volume of solid waste and minimizing space occupation and transportation costs during subsequent transportation. At the same time, the compressed solid waste has a regular shape, which is convenient for subsequent environmentally friendly disposal such as landfill or incineration. The bottom electric door can open automatically after packing, enabling rapid unloading of the packed solid waste without manual opening, thus improving unloading efficiency. In addition, the electric control can precisely match the packing rhythm to prevent solid waste from scattering during unloading.
[0016] A round rod is provided at the connection between the second bevel gear and the elliptical cylinder, and the round rod is rotatably connected to the connecting box.
[0017] The round rod provides stable support for the elliptical cylinder, preventing it from wobbling or shifting when driving the half-gear to rotate and the elliptical ring to slide, thus ensuring the stability of the transmission structure. At the same time, the rotating connection between the round rod and the connecting box reduces the frictional resistance when the elliptical cylinder rotates, reduces component wear, extends the service life of the device, and ensures transmission efficiency. It also prevents the reciprocating sliding rhythm of the magnet rod from becoming disordered due to structural wobbling, thus ensuring the metal adsorption effect.
[0018] The surface of the magnet rod is provided with an electric sliding brush.
[0019] The electric sliding brush automatically slides along the surface of the magnetic rod after it has finished adsorbing metal and moved to the bottom slope of the connecting box, completely removing the adsorbed metal impurities. This replaces manual scraping or complex mechanical peeling mechanisms, simplifies metal cleaning operations, and avoids process interruptions caused by untimely manual cleaning. In addition, the electric sliding brush has uniform cleaning force, which can reduce metal residue on the surface of the magnetic rod, ensuring the subsequent adsorption effect. At the same time, it avoids damage to the magnetic rod caused by bumps during manual cleaning, reducing maintenance costs.
[0020] The present invention has the following beneficial effects: 1. In this invention, addressing the problems of limited magnetic field coverage, numerous adsorption omissions, and interrupted cleaning processes caused by traditional fixed magnets and simple magnetic rollers, this device uses an elliptical cylinder to drive a half-gear to rotate. This, in conjunction with a first rack and a second rack, drives an elliptical ring and a magnetic rod to slide back and forth above the ground solid waste, dynamically expanding the magnetic field coverage. This allows the magnetic rod to fully contact deeply buried or fine magnetic particles in the mixed solid waste, reducing adsorption omissions and improving the recovery rate of recyclable metals. Simultaneously, after adsorption is complete, the magnetic rod can move with the L-shaped sliding rack to the bottom slope of the connecting box, where the surface electric cleaning block automatically removes metal impurities. This eliminates the need for manual scraping or complex mechanical stripping mechanisms, avoiding interruptions in the sorting process, ensuring continuous processing, and significantly improving overall efficiency.
[0021] 2. In this invention, the filter accessories are embedded, and replacing them requires disassembling multiple sets of connecting parts, which can easily lead to leakage. This device is designed with a quick-release structure consisting of a pull rod, a spring, and a mounting plate inside the exhaust gas treatment box. When replacing the moisture-absorbing block, simply pull the pull rod to compress the spring on the mounting plate, which will disengage the pull rod from the bottom slot of the moisture-absorbing block, allowing the old moisture-absorbing block to be removed directly. When installing a new moisture-absorbing block, releasing the pull rod releases the elastic potential energy of the spring, which pushes the mounting plate to automatically insert the pull rod back into the slot to complete the fixation. There is no need to disassemble complex connecting parts or stop the machine to drain residual liquid. This structure simplifies the operation steps and shortens the replacement time. Attached Figure Description
[0022] Figure 1 This is a schematic diagram of the structure of an environmentally friendly solid waste sorting and processing device proposed in this invention; Figure 2 for Figure 1 Enlarged view of point A in the middle; Figure 3 This is a schematic diagram of the side structure in this invention; Figure 4 for Figure 3 Enlarged view of point B in the middle; Figure 5 This is a schematic diagram of the side structure in this invention; Figure 6 This is a schematic diagram of the internal structure of the present invention; Figure 7This is a top view of the structure in this invention.
[0023] In the diagram: 1. Flow box; 2. Baffle; 3. Electric push block; 4. Waste gas treatment box; 5. Waste suction machine; 6. Moisture absorption block; 7. Lower connecting block; 8. Pull rod; 9. Mounting plate; 10. Spring; 11. Feed inlet; 12. Conveyor belt; 13. Packing box; 14. Cut plate; 15. Dryer; 16. First grinding roller; 17. Second grinding roller; 18. First rotating disk; 19. Second rotating disk; 20. First belt; 21. Rotating shaft; 22. Second belt; 23. First bevel gear; 24. Second bevel gear; 25. Connecting box; 26. Elliptical ring; 27. First rack; 28. Second rack; 29. Half gear; 30. Magnet rod; 31. Elliptical cylinder; 32. L-shaped sliding rack; 33. Gear on the box. Detailed Implementation
[0024] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0025] Please see Figures 1-7 As shown, this invention is an environmentally friendly solid waste sorting and processing device, including a process box 1. A first grinding roller 16 is rotatably connected inside the process box 1. The first grinding roller 16 passes through the process box 1 and is fixedly connected to a first rotating disk 18. The first rotating disk 18 is meshed with a second rotating disk 19. The second rotating disk 19 passes through the process box 1 and is fixedly connected to a second grinding roller 17. The first rotating disk 18 is driven by a rotating shaft 21. The rotating shaft 21 is driven by a first bevel gear 23 at one end of the first rotating disk 18. The first bevel gear 23 meshes with a second bevel gear 24. The second bevel gear 24 passes through a connecting box 25 and is fixedly connected to... There is an elliptical cylinder 31, which is slidably connected to a half-gear 29. The half-gear 29 is rotatably connected to an L-shaped sliding rack 32. The L-shaped sliding rack 32 is meshed with a gear 33 on the upper part of the housing. The gear 33 on the upper part of the housing is rotatably connected to a connecting box 25. An elliptical ring 26 is slidably connected to the side of the L-shaped sliding rack 32. A first rack 27 is provided inside the elliptical ring 26. A second rack 28 is provided on the side of the elliptical ring 26 away from the first rack 27. A magnet rod 30 is installed on the side of the elliptical ring 26. An exhaust gas treatment box 4 is provided on the side of the process box 1. The exhaust gas treatment box 4 is provided with a disassembly mechanism for disassembling the moisture-absorbing block 6.
[0026] In one embodiment, the disassembly mechanism includes a lower connecting block 7 disposed below the exhaust gas treatment box 4. The lower connecting block 7 is slidably connected to a pull rod 8. A mounting plate 9 is sleeved on the surface of the pull rod 8. A spring 10 is fixedly connected to the bottom of the mounting plate 9. The lower connecting block 7 is fixedly connected to the end of the spring 10 away from the mounting plate 9.
[0027] In one embodiment, for the first rotating disk 18, the first rotating disk 18 is driven by a first belt 20, the end of the first belt 20 away from the first rotating disk 18 is driven by a rotating shaft 21, the rotating shaft 21 is driven by a second belt 22, the end of the second belt 22 away from the rotating shaft 21 is driven by a first bevel gear 23, and the first bevel gear 23 is rotatably connected to the connecting box 25.
[0028] In one embodiment, for the aforementioned feed inlet 11, a feed inlet 11 is provided at the opening of the process box 1, and a dryer 15 is provided inside the process box 1 on the side near the feed inlet 11.
[0029] In this embodiment, the feed inlet 11 enables centralized and targeted input of solid waste, avoiding environmental pollution caused by the scattering of solid waste during feeding. The dryer 15 is located close to the feed inlet 11, allowing the solid waste to be quickly dried as soon as it enters the device, shortening the residence time of high moisture content solid waste in the device, reducing the amount of leachate generated, and removing moisture in advance can avoid the problem of clumping caused by wet waste in the subsequent grinding and sorting stages, providing a dry and loose material base for subsequent processes and improving the overall processing efficiency.
[0030] In one embodiment, for the process box 1, the process box 1 is slidably connected with a section plate 14, and a waste gas treatment box 4 for extracting moisture is provided on the side of the process box 1. A waste gas extraction machine 5 is provided inside the waste gas treatment box 4.
[0031] In this embodiment, the cut-off plate 14 can be slid to open and close the opening of the process box 1. When feeding, the cut-off plate 14 is closed, which can receive the input solid waste and form a closed drying space to prevent water vapor from escaping from the opening during the drying process, ensuring drying efficiency and avoiding exhaust gas leakage. After drying, the cut-off plate 14 is opened, which allows the dried solid waste to fall accurately into the subsequent grinding mechanism without manual transfer. This reduces manual intervention and avoids scattering and pollution during the solid waste transfer process, ensuring the smoothness of the process connection.
[0032] In one embodiment, for the above-mentioned process box 1, an electric pusher 3 is installed on the top of the process box 1, and a baffle 2 is fixedly connected to the output end of the electric pusher 3. The baffle 2 is slidably connected to the process box 1, and a conveyor belt 12 is provided inside the process box 1.
[0033] In this embodiment, the electric pusher 3 can drive the baffle 2 to slide along the process box 1 to control the falling path of the ground solid waste. When the magnetic rod 30 adsorbs metal, the baffle 2 can close to block the falling solid waste, ensuring that the metal is fully sorted. After sorting, the baffle 2 slides open to allow the non-metallic solid waste to fall accurately into the conveyor belt 12, avoiding the solid waste from directly entering the subsequent stage when it is not fully sorted, thus improving the sorting accuracy. At the same time, the electric drive does not require manual operation, reducing labor costs and ensuring the timeliness and accuracy of control.
[0034] In one embodiment, the packing box 13 is installed on the side of the process box 1, and an electric door is provided at the bottom of the packing box 13.
[0035] In this embodiment, the packing box 13 can compress and pack the non-metallic solid waste conveyed by the conveyor belt 12, reducing the volume of solid waste and reducing the space occupation and transportation costs in the subsequent transportation process. At the same time, the compressed solid waste has a regular shape, which is convenient for subsequent environmentally friendly disposal such as landfill or incineration. The bottom electric door can be opened automatically after packing, realizing the rapid unloading of the packed solid waste without manual opening of the box, improving the unloading efficiency. Moreover, the electric control can accurately match the packing rhythm and prevent the solid waste from scattering during unloading.
[0036] In one embodiment, for the second bevel gear 24, a round rod is provided at the connection between the second bevel gear 24 and the elliptical cylinder 31, and the round rod is rotatably connected to the connecting box 25.
[0037] In this embodiment, the round rod provides stable support for the elliptical cylinder 31, preventing it from wobbling or shifting when it drives the half-gear 29 to rotate and the elliptical ring 26 to slide, thus ensuring the stability of the transmission structure. At the same time, the rotatable connection between the round rod and the connecting box 25 reduces the frictional resistance when the elliptical cylinder 31 rotates, reduces component wear, extends the service life of the device, and ensures transmission efficiency. It also prevents the reciprocating sliding rhythm of the magnet rod 30 from becoming disordered due to structural wobbling, thus ensuring the metal adsorption effect.
[0038] In one embodiment, the surface of the magnet rod 30 is provided with an electrically driven sliding brush.
[0039] In this embodiment, the electric sliding brush can automatically slide along the surface of the magnetic rod 30 when the magnetic rod 30 has completed metal adsorption and moved to the bottom slope of the connecting box 25, completely peeling off the adsorbed metal impurities. This replaces manual scraping or complex mechanical peeling mechanisms, simplifies the metal cleaning operation, and avoids process interruptions caused by untimely manual cleaning. Moreover, the electric sliding brush has uniform cleaning force, which can reduce metal residue on the surface of the magnetic rod 30, ensure the subsequent adsorption effect, and avoid damage to the magnetic rod 30 during manual cleaning, thus reducing maintenance costs.
[0040] The working principle of the environmentally friendly solid waste sorting and processing device of this invention is as follows: First, the operator controls the cut-off plate 14 to block the opening of the process box 1. Then, the solid waste is put into the feed inlet 11 above the process box 1. Subsequently, the solid waste falls onto the cut-off plate 14. Then, the opening above the process box 1 is sealed and the dryer 15 is turned on to dry the solid waste. Then, the wastewater in the solid waste will exist in the form of water vapor. At this time, the waste suction machine 5 is turned on. The waste suction machine 5 uses the pipe connected to the side opening of the process box 1 to suck up the water vapor. Then, the liquid is filtered by the moisture-absorbing block 6, while other polluting gases are discharged from the pipe at one end of the moisture-absorbing block 6 to the subsequent processing equipment, thereby preventing polluting gases from polluting the air. After the solid waste is dried, the cut-off plate 14 is opened, and the gear 33 on the box engages with the L-shaped sliding rack 32. The L-shaped sliding rack 32 slides inside the connecting box 25, causing the magnet rod 30 to move above the baffle 2. The waste then falls above the first grinding roller 16 and the second grinding roller 17. The first grinding roller 16 and the second grinding roller 17 are then rotated, grinding the waste and causing it to fall above the baffle 2. While the waste is being ground by the first grinding roller 16 and the second grinding roller 17, the rotation of the first grinding roller 16 drives the rotating shaft 21 via the first belt 20. The rotation of the rotating shaft 21 drives the first bevel gear 23 via the second belt 22. The first bevel gear 23 meshes with the second bevel gear 24, causing the elliptical cylinder 31 to rotate. Meanwhile, the previously moved L-shaped sliding rack 32 and the elliptical ring 26 slide along the elliptical cylinder 31 into the baffle 2. The grinding process of the first grinding roller 16 and the second grinding roller 17 utilizes the elliptical cylinder 31 to drive the half-gear 29 to rotate. The rotating half-gear 29 first meshes with the second rack 28, then the meshing of the half-gear 29 with the second rack 28 causes the elliptical ring 26 to slide to the left. As the half-gear 29 continues to rotate, it disengages from the second rack 28 and engages with the first rack 27. Then, the half-gear 29 meshes with the first rack 27, driving the elliptical ring 26 to slide to the left. 6. Rotate to the right, and then half gear 29 continues to rotate, disengaging from the first rack 27 and engaging with the second rack 28. This cycle repeats, causing the elliptical ring 26 to drive the magnetic rods 30 to slide back and forth above the baffle 2. The particles ground by the first grinding roller 16 and the second grinding roller 17 are then attracted to the surfaces of the two magnetic rods 30 on the side of the elliptical ring 26. After the first grinding roller 16 and the second grinding roller 17 have finished grinding, the gear 33 on the box engages with the L-shaped sliding rack 32 in the opposite direction. The L-shaped sliding rack 32 then slides inside the connecting box 25, so that the magnetic rods 30 on the side of the L-shaped sliding rack 32 are located on the slope at the bottom of the connecting box 25. Electric cleaning blocks are installed on the surface of the magnetic rods 30.The metal object on the surface of the magnetic rod 30 is pushed into the bottom of the connecting box 25. A collection port at the bottom of the connecting box 25 is then located for recycling. Subsequently, the electric pusher 3 pulls the baffle 2, causing the solid waste to fall onto the surface of the conveyor belt 12 inside the process box 1. The conveyor belt 12 then transports the solid waste into the packaging box 13. After packaging, the electric door at the bottom is opened, and the solid waste undergoes further processing. It is worth mentioning that inside the exhaust gas treatment box 4, by pulling the lever 8 downward, the lever 8 drives the mounting plate 9 to compress the spring 10, and then the lever 8 slides down to disengage from the groove at the bottom of the moisture-absorbing block 6. At this time, the moisture-absorbing block 6 can be disassembled, which facilitates the replacement of the moisture-absorbing block 6 in case it fails. When the lever 8 is no longer pulled, the spring 10 releases its elastic potential energy, and then the spring 10 pushes the mounting plate 9 to drive the lever 8 to insert into the interior of the moisture-absorbing block 6, and then the moisture-absorbing block 6 is fixed.
[0041] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. An environmentally friendly solid waste sorting and processing device, characterized in that, The system includes a process box (1), inside which a first grinding roller (16) is rotatably connected. The first grinding roller (16) passes through the process box (1) and is fixedly connected to a first rotating disk (18). The first rotating disk (18) is meshed with a second rotating disk (19). The second rotating disk (19) passes through the process box (1) and is fixedly connected to a second grinding roller (17). The first rotating disk (18) is driven by a rotating shaft (21). The rotating shaft (21) is driven by a first bevel gear (23) at one end of the first rotating disk (18). The first bevel gear (23) is meshed with a second bevel gear (24). The second bevel gear (24) passes through a connecting box (25) and is fixedly connected to an elliptical cylinder (31). 31) A half-gear (29) is slidably connected, and the half-gear (29) is rotatably connected to an L-shaped sliding rack (32). The L-shaped sliding rack (32) is meshed with a gear on the box (33). The gear on the box (33) is rotatably connected to a connecting box (25). An elliptical ring (26) is slidably connected to the side of the L-shaped sliding rack (32). A first rack (27) is provided inside the elliptical ring (26). A second rack (28) is provided on the side of the elliptical ring (26) away from the first rack (27). A magnet rod (30) is installed on the side of the elliptical ring (26). A waste gas treatment box (4) is provided on the side of the process box (1). A disassembly mechanism for disassembling the moisture-absorbing block (6) is provided inside the waste gas treatment box (4).
2. The environmentally friendly solid waste sorting and processing device according to claim 1, characterized in that, The disassembly mechanism includes a lower connecting block (7) located below the exhaust gas treatment box (4), a pull rod (8) slidably connected to the lower connecting block (7), an mounting plate (9) sleeved on the surface of the pull rod (8), a spring (10) fixedly connected to the bottom of the mounting plate (9), and the lower connecting block (7) fixedly connected to the end of the spring (10) away from the mounting plate (9).
3. The environmentally friendly solid waste sorting and processing device according to claim 1, characterized in that, The first rotating disk (18) is connected to a first belt (20). The end of the first belt (20) away from the first rotating disk (18) is connected to a rotating shaft (21). The rotating shaft (21) is connected to a second belt (22). The end of the second belt (22) away from the rotating shaft (21) is connected to a first bevel gear (23). The first bevel gear (23) is rotatably connected to the connecting box (25).
4. The environmentally friendly solid waste sorting and processing device according to claim 1, characterized in that, The process box (1) has a feed inlet (11) at its opening, and a dryer (15) is provided inside the process box (1) on the side near the feed inlet (11).
5. The environmentally friendly solid waste sorting and processing device according to claim 1, characterized in that, The process box (1) is slidably connected to a section plate (14), and a waste gas treatment box (4) for extracting moisture is provided on the side of the process box (1). A waste gas extraction machine (5) is provided inside the waste gas treatment box (4).
6. The environmentally friendly solid waste sorting and processing device according to claim 1, characterized in that, An electric pusher (3) is installed above the process box (1). A baffle (2) is fixedly connected to the output end of the electric pusher (3). The baffle (2) is slidably connected to the process box (1). A conveyor belt (12) is installed inside the process box (1).
7. The environmentally friendly solid waste sorting and processing device according to claim 4, characterized in that, A packing box (13) is installed on the side of the process box (1), and an electric door is provided at the bottom of the packing box (13).
8. The environmentally friendly solid waste sorting and processing device according to claim 1, characterized in that, A round rod is provided at the connection between the second bevel gear (24) and the elliptical cylinder (31), and the round rod is rotatably connected to the connecting box (25).
9. The environmentally friendly solid waste sorting and processing device according to claim 1, characterized in that, The surface of the magnet rod (30) is provided with an electric sliding brush.