Renewable resource comprehensive utilization cleaning device

By designing a comprehensive utilization cleaning device for recycling resources of multi-stage treatment bins and crushing mechanisms, the problem of difficulty in removing stubborn stains and cleaning liquid pollution in the prior art is solved, and efficient and thorough cleaning effect is achieved.

CN120054941AActive Publication Date: 2025-05-30SHANDONG TIANRUN RESOURCES COMPREHENSIVE UTILIZATION CO LTD
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Patent Information

Application Number
CN202510292989.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-13
Publication Date
2025-05-30
Estimated Expiration
2045-03-13

AI Technical Summary

Technical Problem

The prior art is difficult to effectively remove stubborn stains on the surface of recycled resources, and the residue of impurities during the cleaning process affects the cleaning effect.

Method used

A comprehensive utilization cleaning device for renewable resources is designed, including a primary treatment chamber (soak), a secondary treatment chamber (friction cleaning) and a third treatment chamber (ultrasound cleaning). The stains are completely removed through different treatment methods and the pushing components of the filter partition, and the contact area of ​​the resource surface is increased through the crushing mechanism.

Benefits of technology

It improves the cleaning effect of recycled resources, ensures the complete removal of stains, avoids contamination of cleaning liquid, and improves the cleaning efficiency and resource recycling quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a renewable resource comprehensive utilization cleaning device, and relates to the technical field of renewable resource comprehensive utilization cleaning. A first-stage treatment bin used for conducting soaking treatment on renewable resources, a second-stage treatment bin used for conducting friction cleaning on the renewable resources and a third-stage treatment bin used for conducting ultrasonic cleaning on the renewable resources are sequentially arranged in the cleaning box, and filtering partition plates are arranged in the first-stage treatment bin, the second-stage treatment bin and the third-stage treatment bin. According to the device, renewable resources are soaked in the first-stage treatment bin firstly and then enter the second-stage treatment bin to be subjected to friction cleaning through the friction assembly, so that stains attached to the renewable resources fall off more easily; and finally, stains attached to the interiors or dead corners of renewable resources are more thoroughly removed through the cavitation effect of ultrasonic waves in the third treatment bin, meanwhile, cleaning liquid is isolated through different treatment bins in different cleaning stages, and the situation that the cleaning effect is affected due to mutual pollution is avoided.
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Description

Technical Field

[0001] The present invention relates to the technical field of comprehensive utilization and cleaning devices for renewable resources, and specifically to a comprehensive utilization and cleaning device for renewable resources. Background Art

[0002] The comprehensive utilization of renewable resources refers to the process of recycling, processing, and reusing the material resources that have been exploited once and scrapped in various activities of human production, life, science and education, transportation, etc. through a series of technical means and methods. This process aims to maximize the utilization of resources, reduce resource waste, reduce environmental pollution, and promote sustainable development. Renewable resources mainly include metals such as steel, non-ferrous metals, rare metals, alloys, etc. These metals are widely used in the production process and can be recycled after being scrapped, reducing the mining of new metal ores. Non-metals such as plastics, rubber, fibers, paper, glass, etc. These materials are widely used in production and life and can be reprocessed after being recycled to make new products. However, when recycling and utilizing these renewable resources, cleaning is a very important link. By removing pollutants and residues through cleaning, the quality and purity of the recycled materials can be guaranteed, and the recycling quality can be improved.

[0003] Currently, for some stubborn stains or large and complex renewable resources, the stains attached to their surfaces may be relatively stubborn. If only simple spraying or soaking is used, it is difficult to deal with various combinations of stains and it may take a long time to clean them. Moreover, when placing renewable resources in a cleaning pool for cleaning, as the usage time increases, the impurities washed off during the cleaning process will remain in the cleaning liquid and may reattach to the renewable resources during the cleaning process, affecting the cleaning effect.

[0004] Therefore, we propose a comprehensive utilization and cleaning device for renewable resources to solve the above problems. Summary of the Invention

[0005] Technical Problems to be Solved The purpose of the present invention is to make up for the deficiencies of the existing technology and provide a comprehensive utilization and cleaning device for renewable resources.

[0006] To achieve the above object, the present invention provides the following technical solution: A comprehensive utilization cleaning device for renewable resources, comprising a cleaning tank. Inside the cleaning tank, there are successively arranged a primary treatment chamber for soaking renewable resources, a secondary treatment chamber for friction cleaning renewable resources, and a tertiary treatment chamber for ultrasonic cleaning renewable resources. Inside the primary treatment chamber, the secondary treatment chamber, and the tertiary treatment chamber, there are filter partitions, and on the filter partitions, there are also provided pushing components for discharging the renewable resources on the filter partitions to the next process. The lower end of each filter partition is driven by a corresponding lifting mechanism to realize the lifting of the filter partition to different heights. And on the primary treatment chamber, the secondary treatment chamber, and the tertiary treatment chamber, there are discharge channels opened, and the heights of the three discharge channels gradually increase from the tertiary treatment chamber to the primary treatment chamber. Inside the primary treatment chamber and the secondary treatment chamber, there are rotating shafts rotatably connected. On the rotating shaft located inside the primary treatment chamber, there is a stirring component movably connected for stirring the renewable resources. On the rotating shaft located inside the secondary treatment chamber, there is a friction component for friction cleaning and decontaminating the soaked renewable resources, and inside the tertiary treatment chamber, there is an ultrasonic generator.

[0007] As described above, it further includes a crushing mechanism for pre-treating the renewable resources to be cleaned. The output end of the crushing mechanism is communicated with the primary treatment chamber. The crushing mechanism includes a crushing box and two mutually meshing crushing rollers rotatably connected inside the crushing box. On the outer wall of the crushing box, there is a first driving motor, and the output end of the first driving motor is connected to one end of one of the crushing rollers. On both of the crushing rollers, there are gears, and the two gears mesh with each other.

[0008] As described above, the stirring component includes a first sliding sleeve and a plurality of stirring rods arranged on the first sliding sleeve. The friction component includes a second sliding sleeve and a plurality of friction rods with friction bumps arranged on the second sliding sleeve. The first sliding sleeve and the second sliding sleeve are respectively slidably connected up and down with the rotating shafts located inside the primary treatment chamber and the secondary treatment chamber.

[0009] As described above, inside the cleaning tank, there is a second driving motor, the output end of the second driving motor is connected to one end of one of the rotating shafts, and the two rotating shafts are connected by a belt drive.

[0010] As described above, the pushing component includes a pushing box arranged on the filter partition. Inside the pushing box, there is a first telescopic member, and the movable end of the first telescopic member is connected to a pushing plate that contacts the upper surface of the filter partition.

[0011] As described above, the number of the pushing plates is two, and at the mutually approaching ends of the two pushing plates, there are elastic pushing plates connected, and the two elastic pushing plates are aligned with the rotating shaft.

[0012] As described above, a liquid discharge bin is provided at the bottom of the cleaning tank. Liquid discharge pipes communicating with the liquid discharge bin are provided at the bottoms of the primary treatment bin, the secondary treatment bin, and the tertiary treatment bin, and a valve is provided on each of the liquid discharge pipes.

[0013] As described above, a filter screen is slidably connected inside the liquid discharge bin, and the filter screen is located below the output end of the liquid discharge pipe.

[0014] As described above, it further includes a controller. Fixed plates are provided on the inner walls of the primary treatment bin, the secondary treatment bin, and the tertiary treatment bin. A pressure sensor electrically connected to the controller is installed below the fixed plate. When the filter partition contacts the corresponding pressure sensor, the controller controls the corresponding first telescopic member to act for pushing the material.

[0015] As described above, a material blocking gate is connected to the output end of the crushing tank through a second telescopic member electrically connected to the controller. After the second telescopic member in the primary treatment bin completes a preset stroke, it sends a stroke completion signal to the controller. After receiving this signal, the controller sends an opening signal to the material blocking gate to open the material blocking gate.

[0016] Compared with the prior art, the comprehensive utilization cleaning device for renewable resources has the following beneficial effects: First, by arranging a primary treatment bin, a secondary treatment bin, and a tertiary treatment bin in the cleaning tank, the renewable resources to be cleaned are first soaked in the primary treatment bin, and then enter the secondary treatment bin for friction cleaning through the friction assembly, making the stains attached to the renewable resources easier to fall off. Finally, in the third treatment bin, the stains attached to the inside or dead corners of the renewable resources are more thoroughly removed through the cavitation effect of ultrasonic waves, improving the cleaning effect of the renewable resources. At the same time, the cleaning liquid is isolated through different treatment bins at different cleaning stages to avoid mutual contamination and affect the cleaning effect.

[0017] Second, through the arranged crushing mechanism, before the renewable resources are cleaned, they are crushed into small pieces by the crushing mechanism, and the surface area will be greatly increased. When soaking, flushing, or ultrasonic cleaning, the cleaning liquid can act more effectively on each surface of the material, so as to remove dirt, rust, and impurities faster and more thoroughly, ensuring the cleaning quality. At the same time, in the processing link after resource recovery, the granular or small-piece renewable resources are also more convenient to operate.

[0018] Other advantages, objectives, and features of the present invention will be described to some extent in the subsequent specification, and to some extent, will be obvious to those skilled in the art based on the study of the following text, or can be taught from the practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 is a schematic diagram of the three-dimensional structure of the present invention; Figure 2 is a schematic diagram of the sectional structure of the present invention; Figure 3 is a schematic diagram of the partial sectional structure of the present invention; Figure 4 is a schematic diagram of the internal structure of the cleaning tank in the present invention; Figure 5 is a schematic diagram of the structure of the stirring assembly and the friction assembly of the present invention; Figure 6 is a schematic diagram of the structure of the crushing assembly in the present invention; Figure 7 is a schematic diagram of the structure of the friction assembly mounted on the rotating shaft in the present invention; Figure 8 is a schematic diagram of the structure of the material pushing assembly in the present invention.

[0020] In the figure: 1. Cleaning tank; 11. Primary treatment bin; 12. Secondary treatment bin; 13. Tertiary treatment bin; 14. Ultrasonic generator; 2. Filter partition; 21. Lifting mechanism; 22. Discharge channel; 3. Rotating shaft; 31. First sliding sleeve; 32. Stirring rod; 33. Second sliding sleeve; 34. Friction bump; 35. Friction rod; 4. Crushing box; 41. Crushing roller; 42. First driving motor; 43. Gear; 5. Second driving motor; 51. Belt; 6. Material pushing box; 61. First telescopic member; 62. Material pushing plate; 63. Elastic pushing plate; 7. Liquid discharge bin; 71. Liquid outlet pipe; 72. Valve; 73. Liquid discharge pipe; 74. Filter screen; 8. Fixed plate; 81. Controller; 82. Pressure sensor; 9. Second telescopic member; 91. Baffle gate. Detailed implementation manners

[0021] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0022] Such as Figures 1 - 8As shown in the figure, the present invention provides a technical solution: a comprehensive utilization cleaning device for renewable resources, including a cleaning tank 1. Inside the cleaning tank 1, there are successively arranged a primary treatment chamber 11 for soaking renewable resources, a secondary treatment chamber 12 for friction cleaning renewable resources, and a tertiary treatment chamber 13 for ultrasonic cleaning renewable resources. Inside the primary treatment chamber 11, the secondary treatment chamber 12, and the tertiary treatment chamber 13, there are filter partitions 2, and on the filter partitions 2, there are also push material components for discharging the renewable resources on the filter partitions 2 to the next process. The specific sequence is that the renewable resources in the primary treatment chamber 11 are discharged into the secondary treatment chamber 12, the renewable resources in the secondary treatment chamber 12 are discharged into the tertiary treatment chamber 13, and the renewable resources in the tertiary treatment chamber 13 are discharged from the cleaning tank 1. The lower end of each filter partition 2 is driven by a corresponding lifting mechanism 21 to realize the lifting of the filter partition 2 to different heights. There are discharge channels 22 opened on the primary treatment chamber 11, the secondary treatment chamber 12, and the tertiary treatment chamber 13, and the heights of the three discharge channels 22 gradually increase from the tertiary treatment chamber 13 to the primary treatment chamber 11. Inside the primary treatment chamber 11 and the secondary treatment chamber 12, there are rotationally connected shafts 3. On the shaft 3 inside the primary treatment chamber 11, there is movably connected a stirring component for stirring renewable resources. On the shaft 3 inside the secondary treatment chamber 12, there is a friction component for friction cleaning and decontaminating the soaked renewable resources. And inside the tertiary treatment chamber 13, there is an ultrasonic generator 14.

[0023] As Figure 2As shown in the figure, specifically, when in use, a cleaning agent can be added into the primary treatment bin 11 so that the stains on the renewable resources can fall off more easily. The renewable resources entering the primary treatment bin 11 are agitated by the stirring component, making them fully contact with the cleaning agent in the cleaning liquid, facilitating the falling off of oil stains or some loose stains. Then, the lifting mechanism 21 arranged below drives the filter partition 2 in the primary treatment bin 11 to move upward. At this time, under the action of the filter partition 2, the renewable resources are filtered out. When the filter partition 2 moves to the discharge channel 22 between the primary treatment bin 11 and the secondary treatment bin 12, the soaked renewable resources on the filter partition 2 are discharged into the secondary treatment bin 12 through the pushing component. Then, the friction component in the secondary treatment bin 12 brushes and rubs the renewable resources. With the auxiliary action of the cleaning liquid, the relatively stubborn dirt on the surface of the renewable resources is further removed. After the brushing is completed, the lifting mechanism 21 below the secondary treatment bin 12 drives the filter partition 2 to move to the discharge channel 22 between the secondary treatment bin 12 and the tertiary treatment bin 13, and the brushed renewable resources are discharged into the tertiary treatment bin 13 through the pushing component. Through the cavitation effect of the ultrasonic waves generated by the ultrasonic generator 14 in the liquid, when the ultrasonic waves propagate in the cleaning liquid, countless tiny cavitation bubbles will be generated. These bubbles will instantly burst when they come into contact with the surface of the renewable resources, generating a powerful impact force to peel off and clean the dirt from the surface of the object, cleaning the dirt in some gaps or dead corners of the renewable resources and improving the cleaning effect. After the ultrasonic cleaning is completed, the lifting mechanism 21 drives the filter partition 2 to the discharge channel 22 above the tertiary treatment bin 13, and it can be pushed into the next process through the pushing component. Among them, the lifting mechanism 21 can be a hydraulic rod or other devices, and the lifting heights of the lifting mechanisms 21 below the primary treatment bin 11, the secondary treatment bin 12, and the tertiary treatment bin 13 gradually decrease, so as to lift the corresponding filter partition 2 to the corresponding discharge channel 22.

[0024] As Figure 6As shown in the figure, it further includes a crushing mechanism for preprocessing the cleaned renewable resources. The output end of the crushing mechanism is communicated with the primary treatment bin 11. The crushing mechanism includes a crushing box 4 and two mutually meshing crushing rollers 41 rotatably connected inside the crushing box 4. A first driving motor 42 is provided on the outer wall of the crushing box 4, and the output end of the first driving motor 42 is connected to one end of one of the crushing rollers 41. Gears 43 are provided on both of the two crushing rollers 41, and the two gears 43 mesh with each other. Some renewable resources are relatively large in volume and cannot come into full contact with the cleaning liquid when entering the cleaning box 1. The renewable resources can be first discharged into the crushing box 4. Driven by the first driving motor 42, the two gears 43 rotate in opposite directions, causing the two crushing rollers 41 to mesh with each other, tearing up the renewable resources and crushing them into small pieces, with a larger surface area, so that when they enter the cleaning box 1 and come into contact with the cleaning liquid, it is more uniform and more convenient for cleaning. Moreover, after cleaning, it is convenient for subsequent recycling work.

[0025] As Figure 5 As shown in the figure, the stirring assembly includes a first sliding sleeve 31 and a plurality of stirring rods 32 provided on the first sliding sleeve 31. The friction assembly includes a second sliding sleeve 33 and a plurality of friction rods 35 provided on the second sliding sleeve 33 and having friction bumps 34. The first sliding sleeve 31 and the second sliding sleeve 33 are respectively slidably connected up and down with the rotating shafts 3 located in the primary treatment bin 11 and the secondary treatment bin 12. And a second driving motor 5 is provided inside the cleaning box 1, and the output end of the second driving motor 5 is connected to one end of one of the rotating shafts 3, and the two rotating shafts 3 are driven by a belt 51. When the second driving motor 5 drives one of the rotating shafts 3 to rotate, the other rotating shaft 3 is driven to rotate synchronously through the belt 51. And because both the first sliding sleeve 31 and the second sliding sleeve 33 are slidably connected up and down with the rotating shafts 3, that is, the first sliding sleeve 31 and the second sliding sleeve 33 can only move axially along the rotating shafts 3. Therefore, when the rotating shafts 3 rotate, they will drive the first sliding sleeve 31 and the second sliding sleeve 33 to rotate synchronously, so as to realize stirring and friction scouring work in the primary treatment bin 11 and the secondary treatment bin 12. When the lifting assembly jacks up the filter partition 2 upward, the upper end surface of the filter partition 2 abuts against the first sliding sleeve 31 or the second sliding sleeve 33. At this time, it will drive the stirring assembly or the friction assembly to move upward, preventing the stirring assembly or the friction assembly from hindering the upward movement of the filter partition 2. And when the filter partition 2 moves downward, under the action of its own gravity, the stirring assembly or the friction assembly will move downward synchronously to reset.

[0026] Among them, as Figure 8As shown, the pushing assembly includes a pushing box 6 arranged on the filter baffle 2, and a first telescopic member 61 is arranged inside the pushing box 6. The movable end of the first telescopic member 61 is connected to a pushing plate 62 in contact with the upper end surface of the filter baffle 2. The first telescopic member 61 drives the pushing plate 62 to move in the direction of the discharge channel 22 to push the recycled resources on the filter baffle 2 to the next process. In order to avoid the pushing plate 62 from conflicting with the rotating shaft 3 in the middle of the filter baffle 2, the number of the pushing plates 62 is set to two, and the two pushing plates 62 are mutually The close ends are connected to elastic push plates 63, and the two elastic push plates 63 are aligned with the rotating shaft 3. The elastic push plates 63 can be made of rubber or other materials. When the push plate 62 moves to one side of the rotating shaft 3, the two elastic push plates 63 directly contact the rotating shaft 3. At this time, as the first telescopic member 61 continues to flex and extend, the two elastic push plates 63 will be squeezed by the rotating shaft 3 and bend until the elastic push plates 63 pass through the rotating shaft 3. At this time, the elastic push plates 63 will restore their deformation, thereby completely pushing the recycled resources on the filter partition 2 to the next process.

[0027] Further, such as Figure 2 As shown, a drain bin 7 is provided at the bottom of the cleaning box 1, and a liquid outlet pipe 71 connected to the drain bin 7 is provided at the bottom of the primary processing bin 11, the secondary processing bin 12 and the tertiary processing bin 13, and each liquid outlet pipe 71 is provided with a valve 72, and the drain bin 7 is connected with a liquid outlet pipe 73. When the cleaning liquid needs to be replaced, the valve 72 can be opened to allow the cleaning liquid to enter the drain bin 7, and the interior of the drain bin 7 is slidably connected with a filter screen 74, and the filter screen 74 is located below the output end of the liquid outlet pipe 71. Impurities in the cleaning liquid will first be filtered through the filter screen 74, and then discharged through the drain pipe 73 after filtration. When the filtering state of the filter screen 74 reaches saturation, the filter screen 74 can be drawn out of the drain bin 7 for cleaning to improve the filtering effect.

[0028] Furthermore, it also includes a controller 81. The inner walls of the primary processing chamber 11, the secondary processing chamber 12 and the tertiary processing chamber 13 are all provided with a fixed plate 8, and the upper end surface of the fixed plate 8 is inclined. A pressure sensor 82 electrically connected to the controller 81 is installed below the fixed plate 8. When the filter partition 2 conflicts with the corresponding pressure sensor 82, the controller 81 controls the corresponding first telescopic member 61 to move and push the material. For example, when the filter partition 2 in the primary processing chamber 11 moves upward under the action of the lifting mechanism 21 and conflicts with the pressure sensor 82 arranged therein, the pressure sensor 82 transmits a signal to the controller 81. The controller 81 controls the first telescopic member 61 on the filter partition 2 in the primary processing chamber 11 to move and push the material, and the controller 81 can be electrically connected to the valve 72 to open the valve 72 individually or uniformly. Moreover, the output end of the crushing box 4 is connected with a baffle gate 91 through a second telescopic member 9 electrically connected to the controller 81. After the second telescopic member 9 in the primary treatment bin 11 completes a preset stroke, it sends a stroke completion signal to the controller 81. After receiving this signal, the controller 81 sends an opening signal to the baffle gate 91 to open the baffle gate 91. At this time, the crushed recycled resources will be continuously added into the primary treatment bin 11. By circulating in this way, the cleaning equipment can be fully utilized to improve the overall operation efficiency of the equipment.

[0029] Working principle: First, during use, the recycled resources are put into the crushing box 4. After being crushed into small pieces by two reversely rotating crushing rollers 41, they first fall into the primary treatment bin 11. After being continuously stirred by the stirring assembly to make them fully contact and soak in the cleaning liquid for a period of time, the filter partition 2 is pushed upward by the lifting mechanism 21. At this time, the filter partition 2 will filter out the recycled resources from the cleaning liquid. When the filter partition 2 moves upward, it will drive the stirring assembly to slide upward on the rotating shaft 3. When the filter partition 2 touches the pressure sensor 82 in the primary treatment bin 11, after the controller 81 receives the signal from the pressure sensor 82, it controls the first telescopic member 61 in the primary treatment bin 11 to drive the pushing plate 62 to move, and pushes the soaked recycled resources in the primary treatment bin 11 into the secondary treatment bin 12. Then, they are continuously scrubbed by the friction assembly to remove stubborn stains. After that, in the same way, the recycled resources in the secondary treatment bin 12 are pushed into the tertiary treatment bin 13 for ultrasonic cleaning to more thoroughly clean the dead corners. Finally, they are discharged for the next processing step. At the same time, when the first telescopic member 61 in the primary treatment bin 11 completes a pushing stroke, after the controller 81 receives the signal, it will control the second telescopic member 9 to drive the baffle gate 91 to move upward to open the output end of the crushing box 4, and feed materials into the primary treatment bin 11 again for cleaning. By circulating in this way, the cleaning effect and cleaning efficiency can be improved.

[0030] It should be noted that in this text, the orientation or positional relationships indicated by terms such as "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. are based on the orientation or positional relationships shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation to the present invention; the terms "first", "second", "third" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance. In addition, unless otherwise clearly specified and defined, the terms "fixedly installed", "installed", "connected", "coupled" should be understood in a broad sense. For example, "installed" can be a fixed connection, a detachable connection, or an integral connection; "connected" can be a mechanical connection or an electrical connection; "coupled" can be a direct connection, an indirect connection through an intermediate medium, or a communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.

[0031] Although the embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill 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 present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A cleaning device for comprehensive utilization of renewable resources, comprising a cleaning box (1), characterized in that: The cleaning box (1) is provided with a primary processing chamber (11) for soaking the renewable resources, a secondary processing chamber (12) for friction cleaning the renewable resources, and a tertiary processing chamber (13) for ultrasonic cleaning the renewable resources in sequence. The primary processing chamber (11), the secondary processing chamber (12), and the tertiary processing chamber (13) are each provided with a filter baffle (2) inside, and the filter baffle (2) is also provided with a pusher assembly for discharging the renewable resources on the filter baffle (2) to the next process. The lower end of each filter baffle (2) is driven by a corresponding lifting mechanism (21) for lifting the filter baffle (2) to different heights, and the primary processing chamber (11), the secondary processing chamber (12), and the tertiary processing chamber (13) are each provided with a discharge channel (22), and the height of the three discharge channels (22) gradually increases from the tertiary processing chamber (13) to the primary processing chamber (11); The first-stage processing chamber (11) and the second-stage processing chamber (12) are both rotatably connected with a rotating shaft (3), the rotating shaft (3) located inside the first-stage processing chamber (11) is movably connected with a stirring component for stirring the renewable resources, the rotating shaft (3) located inside the second-stage processing chamber (12) is provided with a friction component for frictionally cleaning and decontaminating the renewable resources after immersion, and an ultrasonic generator (14) is provided inside the third-stage processing chamber (13).

2. A cleaning device for comprehensive utilization of renewable resources according to claim 1, characterized in that: It also includes a crushing mechanism for pre-processing the cleaned recycled resources, the output end of the crushing mechanism being connected to the primary processing bin (11), the crushing mechanism comprising a crushing box (4) and two crushing rollers (41) rotatably connected to the inside of the crushing box (4) and meshing with each other, a first drive motor (42) is provided on the outer wall of the crushing box (4), the output end of the first drive motor (42) is connected to one end of one of the crushing rollers (41), and the two crushing rollers (41) are both provided with gears (43), and the two gears (43) mesh with each other.

3. The cleaning device for comprehensive utilization of renewable resources according to claim 1, characterized in that: The stirring assembly comprises a first sliding sleeve (31) and a plurality of stirring rods (32) arranged on the first sliding sleeve (31); the friction assembly comprises a second sliding sleeve (33) and a plurality of friction rods (35) with friction protrusions (34) arranged on the second sliding sleeve (33); the first sliding sleeve (31) and the second sliding sleeve (33) are respectively connected to the rotating shaft (3) located in the primary processing chamber (11) and the secondary processing chamber (12) in an up-and-down sliding manner.

4. The cleaning device for comprehensive utilization of renewable resources according to claim 1, characterized in that: A second drive motor (5) is provided inside the cleaning box (1); an output end of the second drive motor (5) is connected to one end of one of the rotating shafts (3), and the two rotating shafts (3) are connected by a belt (51).

5. The cleaning device for comprehensive utilization of renewable resources according to claim 1, characterized in that: The pusher assembly comprises a pusher box (6) arranged on the filter baffle (2), a first telescopic member (61) being arranged inside the pusher box (6), and a movable end of the first telescopic member (61) being connected to a pusher plate (62) in contact with the upper end surface of the filter baffle (2).

6. A cleaning device for comprehensive utilization of renewable resources according to claim 5, characterized in that: There are two push plates (62), and the ends of the two push plates (62) that are close to each other are both connected to an elastic push plate (63), and the two elastic push plates (63) are aligned with the rotating shaft (3).

7. The cleaning device for comprehensive utilization of renewable resources according to claim 1, characterized in that: The cleaning box (1) is provided with a liquid drainage bin (7) at the bottom, and the first-stage processing bin (11), the second-stage processing bin (12), and the third-stage processing bin (13) are all provided with liquid outlet pipes (71) at the bottom that are connected to the liquid drainage bin (7), and each of the liquid outlet pipes (71) is provided with a valve (72).

8. The cleaning device for comprehensive utilization of renewable resources according to claim 7, characterized in that: A filter screen (74) is slidably connected to the interior of the liquid discharge bin (7), and the filter screen (74) is located below the output end of the liquid outlet pipe (71).

9. The cleaning device for comprehensive utilization of renewable resources according to claim 1, characterized in that: It also includes a controller (81); the inner walls of the primary processing chamber (11), the secondary processing chamber (12) and the tertiary processing chamber (13) are each provided with a fixing plate (8); a pressure sensor (82) electrically connected to the controller (81) is installed below the fixing plate (8); when the filter baffle (2) contacts the corresponding pressure sensor (82), the controller (81) controls the corresponding first telescopic member (61) to move and perform a material pushing operation.

10. The cleaning device for comprehensive utilization of renewable resources according to claim 2, characterized in that: The output end of the crushing box (4) is connected to a material blocking gate (91) via a second telescopic member (9) electrically connected to a controller (81), and the second telescopic member (9) in the primary processing chamber (11) sends a stroke completion signal to the controller (81) after completing a preset stroke, and the controller (81) sends an opening signal to the material blocking gate (91) to open the material blocking gate (91) after receiving the signal.

Citation Information

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