Intelligent stock garbage screening and separating resourceful treatment device
Through the combination of the screening and treatment structure and the conduction and drainage structure, the problem of the existing devices occupying a large area when dealing with large volumes of garbage is solved, efficient garbage screening and compression treatment is achieved, processing efficiency is improved and intelligent operation is supported.
Patent Information
- Application Number
- CN202510815850.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-18
- Publication Date
- 2025-08-12
AI Technical Summary
The existing intelligent inventory garbage screening and separation resource processing device takes up a large area when processing large garbage, and it is difficult to efficiently screen and compress.
The screening and discharge diversion structure are adopted to realize the screening and extrusion treatment of garbage through the rotation of the screening mesh seat and the control of the electronically controlled hydraulic telescopic rod, and the flow and discharge are diverted and discharged through the transmission belt, combined with the remote monitoring of the stepper motor to achieve intelligent control.
It realizes efficient screening and compression treatment of garbage, reduces the area occupied, improves processing efficiency, and improves the convenience and efficiency of operation through intelligent control.
Smart Images

Figure CN120460424A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of garbage screening, separation and resource processing, and in particular to an intelligent stock garbage screening, separation and resource processing device. Background Art
[0002] Garbage screening machines play a vital role in the modern waste management system. They help achieve effective recycling of resources through an efficient screening process. With the acceleration of urbanization and the improvement of people's living standards, garbage production has increased year by year. How to efficiently screen reusable resources from these wastes has become an important issue in environmental protection and sustainable development.
[0003] At present, most of the existing intelligent stock garbage screening, separation and resource processing devices use a centrifugal method to separate and select the garbage, and then screen and incinerate it. However, due to the large volume of the garbage, it often occupies too large an area, and needs to be compressed and adjusted by extrusion to control the volume and better improve the subsequent processing efficiency. Summary of the Invention
[0004] In response to the problems in the prior art, the present invention provides an intelligent stock garbage screening, separation and resource processing device.
[0005] The technical solution adopted by the present invention to solve the technical problem is: an intelligent stock garbage screening, separation and resource processing device, including a screening processing structure and a drainage and diversion structure, the lower end of the screening processing structure is connected to the drainage and diversion structure;
[0006] The screening processing structure is used for screening and extrusion processing. The guide groove block is connected to the second docking groove seat through the first docking groove seat and the bearing ring. The second docking groove seat is connected to the screening mesh seat, and the first gear plate controls the rotation of the second gear plate, so that the screening mesh seat rotates on the external cylinder. The guide groove block is fixed by the external frame, screened by the screening mesh seat, and guided to the first guide belt and the second discharge port. The electric-controlled hydraulic telescopic rod controls the matching frame to rotate around the rear end hinge position, changing the position of the heavy wheel, and performing extrusion processing through the heavy wheel;
[0007] The drainage diversion structure performs diversion processing. The first conveyor belt and the second conveyor belt perform transmission processing respectively. The waste liquid is discharged through the drainage trough seat, the connecting butt pipe and the drainage pipe.
[0008] Specifically, the screening processing structure includes a first extrusion component, a second extrusion component and a screening component. One side of the lower end of the screening component is connected to the first extrusion component, and the other side of the lower end of the screening component is connected to the second extrusion component.
[0009] Specifically, the first extrusion component includes a matching hinge shaft, an electro-hydraulic telescopic rod, a fixed block, a butt hinge block and a supporting top plate. The fixed block is fixedly connected to the matching hinge shaft, and the matching hinge shaft is hingedly provided with an electro-hydraulic telescopic rod. The lower end of the electro-hydraulic telescopic rod is hingedly provided with a butt hinge block. The lower end of the butt hinge block is fixedly connected to a matching frame. The rear end of the matching frame is hingedly provided with the supporting top plate, and the center of the matching frame is rotatably connected to a heavy wheel.
[0010] Specifically, the lower end of the supporting top plate is fixedly connected to a guide inclined frame, and the side of the guide inclined frame is fixedly connected to an isolation frame. The matching frame is hinged to the supporting top plate through a hinge rod. The structural setting of the screening processing structure facilitates screening processing, wherein the garbage is introduced into the screening mesh seat through the guide groove block, the first docking groove seat, and the bearing ring. At this time, the first gear disc controls the rotation of the second gear disc, and the garbage is screened under the action of centrifugation, and reaches the first discharge port and the second discharge port respectively through the screening mesh seat, and then is guided by the first guide belt and the second guide belt, and then reaches the guide inclined frame. At this time, the electrically controlled hydraulic telescopic rod controls the telescopic adjustment, so that the matching frame and the heavy wheel rotate in coordination, and the rear end of the matching frame is hinged to the supporting top plate, which can make the matching frame and the heavy wheel swing, thereby squeezing the garbage through the heavy wheel, which is convenient for garbage compression processing.
[0011] Specifically, the screening component includes a fixed platform, a supporting base, a first discharge port, a first guide belt, a second discharge port and a second guide belt. The fixed platform is fixedly connected to the supporting base, and the supporting base is provided with a first guide belt and a second guide belt. The first guide belt and the second guide belt rotate and transmit on the supporting base.
[0012] Specifically, the screening component also includes an external cylinder, a stepping motor, an installation side frame, a first gear disc, a guide groove block and a first docking groove seat. The lower end of the external cylinder is connected on both sides with a first discharge port and a second discharge port. The center of the external cylinder is rotatably connected to the screening mesh seat, and the side end of the screening mesh seat is fixedly connected to the second docking groove seat. The side end of the second docking groove seat is fixedly connected to the second gear disc, the second docking groove seat, and the screening mesh seat is rotatably connected in the external cylinder.
[0013] Specifically, a bearing ring is provided for the central rotation of the second gear disc, and the side end of the bearing ring is fixedly connected to the first docking groove seat, and the side end of the first docking groove seat is fixedly connected to the guide groove block, and the guide groove block is fixed to the external frame to perform limiting processing, and the guide groove block, the first docking groove seat, and the bearing ring are connected, and the bearing ring is connected to the second docking groove seat and the screening mesh seat.
[0014] Specifically, the lower end of the second gear disc is meshedly connected with the first gear disc, and a stepper motor is installed on the side end of the first gear disc. The stepper motor is installed by limiting the installation side frame, and the side end of the installation side frame is fixedly connected to the fixed platform.
[0015] The conveyor belt is connected to the conveyor belt by the connecting pipe, and the connecting pipe is connected to the conveyor belt by the connecting pipe.
[0016] Specifically, the upper end of the support platform is fixed to the fixed platform, the guide inclined frame is connected to the first guide belt, and the screening mesh seat adopts an expanded slot structure.
[0017] Beneficial effects of the present invention:
[0018] 1. The present invention facilitates screening and processing through the structural setting of the screening and processing structure, wherein the garbage is introduced into the screening mesh seat through the guide groove block, the first docking groove seat, and the bearing ring. At this time, the first gear disc controls the rotation of the second gear disc, and the garbage is screened under the action of the centrifuge, and reaches the first discharge port and the second discharge port respectively through the screening mesh seat, and then is guided by the first guide belt and the second guide belt, and then reaches the guide inclined frame. At this time, the electrically controlled hydraulic telescopic rod controls the telescopic adjustment, so that the matching frame and the heavy wheel rotate in coordination, and the rear end of the matching frame is hinged to the supporting top plate, which can make the matching frame and the heavy wheel swing, thereby squeezing the garbage through the heavy wheel, which facilitates the compression processing of the garbage.
[0019] Secondly, the present invention facilitates the drainage of waste liquid by setting up a guide and diversion structure. The waste liquid in the garbage reaches the drainage trough seat through the guiding inclined frame, and is then drained through the connecting butt pipe and the guide pipe. The compressed garbage is diverted and drained through the first conveyor belt and the second conveyor belt, thereby facilitating separation and processing work, subsequent processing, and realizing garbage disposal. The operating status of the stepper motor can be remotely monitored through signal transmission, thereby performing intelligent control, thereby controlling the efficiency of the screening processing structure, the guide and diversion structure, and the first extrusion component. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] The present invention will be further described below with reference to the accompanying drawings and examples.
[0021] Figure 1 A three-dimensional diagram of the main body of the present invention;
[0022] Figure 2 It is a three-dimensional side view of the main body of the present invention;
[0023] Figure 3 It is a three-dimensional rear view of the main body of the present invention;
[0024] Figure 4 This is a split diagram of the main body of the present invention;
[0025] Figure 5 It is a three-dimensional diagram of the screening processing structure of the present invention;
[0026] Figure 6 is a three-dimensional diagram of the first extrusion component in the present invention;
[0027] Figure 7 A three-dimensional diagram of the screening component of the present invention;
[0028] Figure 8 This is a disassembled diagram of the screening component in the present invention;
[0029] Figure 9 It is a three-dimensional diagram of the guide and diversion structure in the present invention.
[0030] In the figure: 1-screening and processing structure, 2-guiding and diverting structure, 3-first extrusion component, 4-second extrusion component, 5-screening component, 6-cooperating hinge shaft, 7-electrically controlled hydraulic telescopic rod, 8-fixed block, 9-butt hinge block, 10-support top plate, 11-cooperating frame, 12-heavy wheel, 13-guide inclined frame, 14-isolation frame, 15-fixed platform, 16-support bottom frame, 17-first discharge port, 18-first guide belt, 19-second Discharge port, 20-second guide belt, 21-external cylinder, 22-stepping motor, 23-mounting side frame, 24-first gear disc, 25-guide groove block, 26-first docking groove seat, 27-bearing ring, 28-second gear disc, 29-second docking groove seat, 30-screening mesh seat, 31-guide pipe, 32-support platform, 33-connecting docking pipe, 34-first conveyor belt, 35-second conveyor belt, 36-drainage trough seat, 37-support bottom block. DETAILED DESCRIPTION
[0031] In order to enable those skilled in the art to better understand the present invention, the following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments in the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts should fall within the scope of protection of this application.
[0032] The present invention will be further described below with reference to the accompanying drawings.
[0033] Example
[0034] like Figure 1-9 As shown, an intelligent stock garbage screening, separation and resource processing device of the present invention comprises a screening processing structure 1 and a drainage and diversion structure 2. The lower end of the screening processing structure 1 is connected to the drainage and diversion structure 2;
[0035] The screening processing structure 1 is used for screening and extrusion processing. The guide groove block 25 is connected to the second docking groove seat 29 through the first docking groove seat 26 and the bearing ring 27. The second docking groove seat 29 is connected to the screening mesh seat 30, and the first toothed disc 24 controls the rotation of the second toothed disc 28, so that the screening mesh seat 30 rotates on the external cylinder 21. The guide groove block 25 is fixed by the external frame. After screening through the screening mesh seat 30, it is guided to the first guide belt 18 and the second discharge port 19. The electrically controlled hydraulic telescopic rod 7 controls the matching frame 11 to rotate around the rear end hinge position, changing the position of the heavy wheel 12, and performing the extrusion processing through the heavy wheel 12;
[0036] The drainage diversion structure 2 performs diversion processing, and the first conveyor belt 34 and the second conveyor belt 35 perform transmission processing respectively. The waste liquid is discharged through the drainage trough seat 36, the connecting pipe 33, and the drainage pipe 31.
[0037] The screening and processing structure 1 includes a first extrusion component 3, a second extrusion component 4 and a screening component 5. One side of the lower end of the screening component 5 is connected to the first extrusion component 3, and the other side of the lower end of the screening component 5 is connected to the second extrusion component 4. The structural setting of the screening and processing structure 1 facilitates screening processing, wherein the garbage is introduced into the screening mesh seat 30 through the guide groove block 25, the first docking groove seat 26, and the bearing ring 27. At this time, the first toothed disc 24 controls the rotation of the second toothed disc 28, and the garbage is screened under the action of centrifugation and reaches the first discharge port 17 and the second discharge port 19 respectively through the screening mesh seat 30. Then, it is guided by the first guide belt 18 and the second guide belt 20 and then reaches the guide inclined frame 13. At this time, the electrically controlled hydraulic telescopic rod 7 controls the telescopic adjustment, so that the matching frame 11 and the heavy wheel 12 rotate in coordination. The rear end of the matching frame 11 is hinged to the support top plate 10, which can make the matching frame 11 and the heavy wheel 12 swing, thereby squeezing the garbage through the heavy wheel 12, which is convenient for the compression processing of the garbage.
[0038] The first extrusion component 3 includes a matching hinge shaft 6, an electro-hydraulic telescopic rod 7, a fixed block 8, a butt hinge block 9 and a supporting top plate 10. The fixed block 8 is fixedly connected to the matching hinge shaft 6, and the matching hinge shaft 6 is hingedly provided with an electro-hydraulic telescopic rod 7. The lower end of the electro-hydraulic telescopic rod 7 is hingedly provided with a butt hinge block 9. The lower end of the butt hinge block 9 is fixedly connected to a matching frame 11. The rear end of the matching frame 11 is hingedly provided with the supporting top plate 10, and the center of the matching frame 11 is rotatably connected to a heavy wheel 12.
[0039] The lower end of the supporting top plate 10 is fixedly connected to a guiding inclined frame 13, and the side of the guiding inclined frame 13 is fixedly connected to an isolation frame 14. The matching frame 11 is hinged to the supporting top plate 10 through a hinge rod. The garbage reaches the first extrusion component 3 and the second extrusion component 4. When the garbage reaches the guiding inclined frame 13, the electro-hydraulic telescopic rod 7 is telescopically adjusted. The upper end of the electro-hydraulic telescopic rod 7 is hinged to the matching hinge shaft 6, and the lower end of the electro-hydraulic telescopic rod 7 is hinged to the docking hinge block 9. Under telescopic control, the matching frame 11 and the heavy wheel 12 rotate. At this time, the matching frame 11 rotates through the hinge point with the supporting top plate 10 at the rear end, driving the heavy wheel 12 to cooperate with the movement. At this time, the heavy wheel 12 performs extrusion processing to achieve the extrusion of the garbage, and then the garbage continues to be guided away along the guiding inclined frame 13.
[0040] The screening component 5 includes a fixed platform 15, a supporting base 16, a first discharge port 17, a first guide belt 18, a second discharge port 19 and a second guide belt 20. The fixed platform 15 is fixedly connected to the supporting base 16. The supporting base 16 is provided with a first guide belt 18 and a second guide belt 20. The first guide belt 18 and the second guide belt 20 rotate and transmit on the supporting base 16, and the garbage is introduced through the guide groove block 25. The garbage is guided to the second docking groove seat 29 through the first docking groove seat 26 and the bearing ring 27, and then reaches the second docking groove seat 29 along the second docking groove seat 29. Inside the screening mesh seat 30, the stepper motor 22 is working at this time, driving the first gear disc 24 to rotate, and the first gear disc 24 is engaged and connected with the second gear disc 28, driving the second gear disc 28 to rotate and connect. At this time, the screening mesh seat 30 rotates in the external cylinder 21 to screen the garbage. The garbage passes through the screening mesh seat 30 according to size to the first discharge port 17 and the second discharge port 19. The lower end of the second discharge port 19 is connected to the second guide belt 20, and the lower end of the first discharge port 17 is connected to the first guide belt 18, which guide and transmit the garbage respectively.
[0041] The screening component 5 also includes an external cylinder 21, a stepper motor 22, an installation side frame 23, a first gear disc 24, a guide groove block 25 and a first docking groove seat 26. The lower end of the external cylinder 21 is connected on both sides with a first discharge port 17 and a second discharge port 19. The center of the external cylinder 21 is rotatably connected to the screening mesh seat 30, and the side end of the screening mesh seat 30 is fixedly connected to the second docking groove seat 29. The side end of the second docking groove seat 29 is fixedly connected to the second gear disc 28, the second docking groove seat 29, and the screening mesh seat 30 is rotatably connected in the external cylinder 21.
[0042] A bearing ring 27 is provided for rotation at the center of the second gear disc 28. The side end of the bearing ring 27 is fixedly connected to the first docking groove seat 26. The side end of the first docking groove seat 26 is fixedly connected to the guide groove block 25. The guide groove block 25 is fixed to the external frame to perform position limiting processing. The guide groove block 25, the first docking groove seat 26, and the bearing ring 27 are connected, and the bearing ring 27 is connected to the second docking groove seat 29 and the screening mesh seat 30.
[0043] The lower end of the second gear disc 28 is meshedly connected with the first gear disc 24 . The side end of the first gear disc 24 is installed with a stepper motor 22 . The stepper motor 22 is limitedly installed by the mounting side frame 23 . The side end of the mounting side frame 23 is fixedly connected to the fixing platform 15 .
[0044] The drainage diversion structure 2 includes a drainage pipe 31, a support platform 32, a connecting pipe 33, a first conveyor belt 34, a second conveyor belt 35 and a drainage trough seat 36. When the garbage reaches the first conveyor belt 34, it is drained and processed. There is a gap between the guiding inclined frame 13 and the first conveyor belt 34. At this time, the waste liquid is guided to the drainage trough seat 36, and then drained to the connecting pipe 33 through the drainage trough seat 36. It is discharged through the drainage pipe 31 to achieve continuous garbage screening and processing. The rear end of the drainage trough seat 36 is connected to the connecting pipe 33, and the rear end of the connecting pipe 33 is connected to the drainage pipe 31. The connecting pipe 33 is connected to the support platform 32. The lower end of the drainage trough seat 36 is fixedly connected to the support bottom block 37, and the support bottom block 37 is fixed to the support platform 32. A first conveyor belt 34 and a second conveyor belt 35 are provided at the upper end of the liquid tank seat 36, and a gap is provided at the connection position between the first conveyor belt 34, the second conveyor belt 35 and the guide inclined frame 13. The setting of the guide and diversion structure 2 facilitates the drainage of waste liquid. The waste liquid in the garbage reaches the drainage tank seat 36 through the guide inclined frame 13, and is then drained through the connecting connecting pipe 33 and the guide pipe 31. The compressed garbage is diverted and drained through the first conveyor belt 34 and the second conveyor belt 35, thereby facilitating separation and processing work, facilitating subsequent processing, and realizing garbage processing work. The operating status of the stepper motor 22 can be remotely monitored through signal transmission, thereby performing intelligent control, thereby controlling the efficiency of the screening processing structure 1, the guide and diversion structure 2, and the first extrusion component 3.
[0045] The upper end of the support platform 32 is fixed to the fixed platform 15, the guide inclined frame 13 is connected to the first guide belt 18, and the screening mesh seat 30 adopts an expanded slot structure.
[0046] The working principle is as follows: when in use, the garbage is introduced through the guide groove block 25, and the garbage is guided to the second docking groove seat 29 through the first docking groove seat 26 and the bearing ring 27, and then reaches the screening mesh seat 30 along the second docking groove seat 29. At this time, the stepping motor 22 works to drive the first gear disc 24 to rotate, and the first gear disc 24 is meshed and connected with the second gear disc 28, driving the second gear disc 28 to rotate and connect. At this time, the screening mesh seat 30 rotates in the external cylinder 21 to screen the garbage. The garbage passes through the screening mesh seat 30 according to its size and reaches the first discharge port 17 and the second discharge port 19. The lower end of the second discharge port 19 is connected to the second guide belt 20, and the lower end of the first discharge port 17 is connected to the first guide belt 18, so as to guide and transmit the garbage respectively.
[0047] Afterwards, the garbage reaches the first squeezing component 3 and the second squeezing component 4. When the garbage reaches the guide inclined frame 13, the electric-controlled hydraulic telescopic rod 7 is telescopically adjusted. The upper end of the electric-controlled hydraulic telescopic rod 7 is hinged to the matching hinge shaft 6, and the lower end of the electric-controlled hydraulic telescopic rod 7 is hinged to the docking hinge block 9. Under the telescopic control, the matching frame 11 and the heavy wheel 12 rotate. At this time, the matching frame 11 rotates through the hinge point with the supporting top plate 10 at the rear end, driving the heavy wheel 12 to cooperate with the movement. At this time, the heavy wheel 12 performs squeezing processing to achieve the squeezing of the garbage. After that, the garbage continues to be guided away along the guide inclined frame 13;
[0048] After that, the garbage reaches the first conveyor belt 34 for drainage treatment, and there is a gap between the guiding inclined frame 13 and the first conveyor belt 34. At this time, the waste liquid is guided to the drainage trough seat 36, and then discharged through the drainage trough seat 36 to the connecting docking pipe 33, and discharged through the drainage pipe 31, realizing continuous garbage screening and processing work, and completing the work.
[0049] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. An intelligent stock waste screening, separation and resource processing device, characterized by: It comprises a screening and processing structure (1) and a drainage and diversion structure (2), wherein the lower end of the screening and processing structure (1) is connected to the drainage and diversion structure (2); The screening processing structure (1) is used for screening and extrusion processing. The guide groove block (25) is connected to the second docking groove seat (29) through the first docking groove seat (26) and the bearing ring (27). The second docking groove seat (29) is connected to the screening mesh seat (30). The first toothed disc (24) controls the rotation of the second toothed disc (28), so that the screening mesh seat (30) rotates on the external cylinder (21). The guide groove block (25) is fixed by the external frame, screened by the screening mesh seat (30), and guided to the first guide belt (18) and the second discharge port (19). The electrically controlled hydraulic telescopic rod (7) controls the matching frame (11) to rotate around the rear end hinge position, changes the position of the heavy wheel (12), and performs extrusion processing through the heavy wheel (12); The drainage diversion structure (2) performs diversion processing, and the first conveyor belt (34) and the second conveyor belt (35) respectively perform transmission processing, and the waste liquid is guided and discharged through the drainage trough seat (36), the connecting butt pipe (33), and the drainage pipe (31).
2. The intelligent stock waste screening, separation and resource processing device according to claim 1 is characterized by: The screening processing structure (1) comprises a first extrusion component (3), a second extrusion component (4) and a screening component (5); one side of the lower end of the screening component (5) is connected to the first extrusion component (3), and the other side of the lower end of the screening component (5) is connected to the second extrusion component (4).
3. The intelligent stock waste screening, separation and resource processing device according to claim 2 is characterized by: The first extrusion component (3) comprises a matching hinge shaft (6), an electric-controlled hydraulic telescopic rod (7), a fixed block (8), a butt hinge block (9) and a supporting top plate (10); the matching hinge shaft (6) is fixedly connected to the fixed block (8); the matching hinge shaft (6) is hingedly provided with an electric-controlled hydraulic telescopic rod (7); the lower end of the electric-controlled hydraulic telescopic rod (7) is hingedly provided with a butt hinge block (9); the lower end of the butt hinge block (9) is fixedly connected to a matching frame (11); the rear end of the matching frame (11) is hingedly provided with the supporting top plate (10), and the center of the matching frame (11) is rotatably connected with a heavy wheel (12).
4. The intelligent stock waste screening, separation and resource processing device according to claim 3 is characterized by: The lower end of the supporting top plate (10) is fixedly connected to a guide oblique frame (13), the side of the guiding oblique frame (13) is fixedly connected to an isolation frame (14), and the matching frame (11) is hingedly arranged with the supporting top plate (10) through a hinge rod.
5. The intelligent stock waste screening, separation and resource processing device according to claim 4 is characterized by: The screening component (5) comprises a fixed platform (15), a supporting base (16), a first discharge port (17), a first guide belt (18), a second discharge port (19) and a second guide belt (20); the fixed platform (15) is fixedly connected to the supporting base (16); the supporting base (16) is provided with the first guide belt (18) and the second guide belt (20); the first guide belt (18) and the second guide belt (20) are rotated and transmitted on the supporting base (16).
6. The intelligent stock waste screening, separation and resource processing device according to claim 5 is characterized by: The screening component (5) further comprises an external cylinder (21), a stepping motor (22), a mounting side frame (23), a first toothed disc (24), a guide slot block (25) and a first docking slot seat (26); the lower end of the external cylinder (21) is connected to both sides with a first discharge port (17) and a second discharge port (19); the center of the external cylinder (21) is rotatably connected to a screening mesh seat (30); the side end of the screening mesh seat (30) is fixedly connected to a second docking slot seat (29); the side end of the second docking slot seat (29) is fixedly connected to a second toothed disc (28); the second docking slot seat (29); and the screening mesh seat (30) is rotatably connected in the external cylinder (21).
7. The intelligent stock waste screening, separation and resource processing device according to claim 6 is characterized by: The center of the second toothed disc (28) is provided with a bearing ring (27) for rotation. The side end of the bearing ring (27) is fixedly connected to the first docking groove seat (26). The side end of the first docking groove seat (26) is fixedly connected to the guide groove block (25). The guide groove block (25) is fixed to the external frame to perform position limiting processing. The guide groove block (25), the first docking groove seat (26), and the bearing ring (27) are connected, and the bearing ring (27) is connected to the second docking groove seat (29) and the screening mesh seat (30).
8. The intelligent stock waste screening, separation and resource processing device according to claim 7 is characterized by: The lower end of the second toothed disc (28) is meshedly connected with the first toothed disc (24), and a stepper motor (22) is installed on the side end of the first toothed disc (24). The stepper motor (22) is limitedly installed by the mounting side frame (23), and the side end of the mounting side frame (23) is fixedly connected to the fixed platform (15).
9. The intelligent stock waste screening, separation and resource processing device according to claim 8 is characterized by: The drainage diversion structure (2) comprises a drainage pipe (31), a support platform (32), a connecting butt pipe (33), a first conveyor belt (34), a second conveyor belt (35) and a drainage trough seat (36); the rear end of the drainage trough seat (36) is connected to a connecting butt pipe (33); the rear end of the connecting butt pipe (33) is connected to a drainage pipe (31); the connecting butt pipe (33) and the support platform (32) are connected; the lower end of the drainage trough seat (36) is fixedly connected to a supporting bottom block (37); the supporting bottom block (37) is fixed to the support platform (32); the upper end of the drainage trough seat (36) is provided with a first conveyor belt (34) and a second conveyor belt (35); and a gap is provided at the connection position between the first conveyor belt (34), the second conveyor belt (35) and the guide inclined frame (13).
10. The intelligent stock waste screening, separation and resource processing device according to claim 9 is characterized by: The upper end of the support platform (32) is fixed to the fixed platform (15), the guide inclined frame (13) is connected to the first guide belt (18), and the screening mesh seat (30) adopts an expanded slot structure.