Green resource treatment equipment and method for livestock and poultry manure and plant residues

By designing green resource disposal equipment that can lift and lower fermentation tanks and automated cleaning mechanisms, the problems of waste and inconvenience of land resources during large-scale conversion are solved, and efficient resource conversion and production continuity is achieved.

CN120441367AInactive Publication Date: 2025-08-08HUZHOU COLLEGE
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202510578236.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-07
Publication Date
2025-08-08
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

When large-scale use of livestock and poultry manure and plant residues are converted into green resources, there are problems of waste of land resources and inconvenient cleaning.

Method used

A green resource disposal equipment for livestock and poultry manure and plant residues was designed, and the structure of the liftable fermentation tank was adopted, combining anti-corrosion bottom plate, lifting threaded rod, worm gear and worm transmission system and automated cleaning mechanism to realize the automatic operation and efficient cleaning of materials in the fermentation tank.

Benefits of technology

Increase fermentation capacity within a limited area, reduce land resource waste, and reduce the difficulty of cleaning after large-scale fermentation through automated cleaning mechanisms, ensuring the continuity and efficiency of production.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120441367A_ABST
    Figure CN120441367A_ABST
Patent Text Reader

Abstract

The invention discloses green resource treatment equipment and method for livestock and poultry manure and plant residues. The green resource treatment equipment comprises an anti-corrosion bottom plate, a placement groove is formed in the surface of the anti-corrosion bottom plate, the bottom of the placement groove is rotationally connected with a lifting threaded rod, the lifting threaded rod is in threaded connection with a worm wheel, the worm wheel is in meshed connection with a worm, and the worm is rotationally connected with the inner wall of a square cavity. The square cavity is arranged in the fermentation tank, a fixed block is fixedly connected above the fermentation tank, the fixed block is rotatably connected with a rotating rod, the rotating rod is in transmission connection with a transverse support threaded rod, the transverse support threaded rod is in threaded connection with a cleaning block, and the cleaning block is in sliding connection with the fermentation tank. When not in use, the device can be lowered to be flush with the ground, the space above the device can be temporarily used for other purposes, multilayer layout is facilitated, the fermentation capacity is increased in the limited occupied area, land resource occupation caused by large-scale green resource conversion is reduced, and the problem of land resource waste in the large-scale conversion process is effectively solved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of green resource processing, and in particular to green resource processing equipment and a method for processing livestock and poultry excrement and plant residues. Background Art

[0002] With the large-scale development of livestock and poultry farming and the large-scale production of plant residues in agricultural production, the disposal of livestock and poultry manure and plant residues has become an urgent environmental challenge. Improperly treated livestock and poultry manure emits a pungent odor and contains foul-smelling gases such as ammonia and hydrogen sulfide, which seriously pollute the air and affect the quality of life of surrounding residents. Furthermore, nutrients such as nitrogen and phosphorus in manure, if carried into water bodies through surface runoff, can easily cause eutrophication, leading to excessive algae growth, disrupting the aquatic ecosystem, and causing mass deaths of fish and other aquatic life. Carelessly discarding plant residues in farmland can also affect the growth of crops.

[0003] However, the use of livestock and poultry manure and plant residues can be well converted into green resources for utilization. However, large-scale green resource conversion wastes a lot of land resources on the one hand, and on the other hand, it is more troublesome to clean up after the fermentation is completed due to the large scale. This patent is to provide a green resource disposal equipment for livestock and poultry manure and plant residues to alleviate the above technical problems existing in the prior art. Summary of the Invention

[0004] The purpose of the present invention is to solve the problem in the prior art that livestock and poultry manure and plant residues can be converted into green resources for utilization, but large-scale green resource conversion wastes a lot of land resources on the one hand, and on the other hand, it is troublesome to clean up after fermentation due to the large scale. A green resource disposal equipment and method for livestock and poultry manure and plant residues are proposed.

[0005] In order to achieve the above object, the present invention adopts the following technical solutions:

[0006] A green resource disposal device for livestock and poultry manure and plant residues and a method thereof, comprising an anti-corrosion bottom plate, a placement groove being provided on the surface of the anti-corrosion bottom plate, a lifting threaded rod being rotatably connected to the bottom of the placement groove, the lifting threaded rod being threadedly connected to a worm gear, the worm gear being meshedly connected to a worm, the worm being rotatably connected to the inner wall of a square cavity, the square cavity being arranged inside a fermentation tank, a fixed block being fixedly connected above the fermentation tank, the fixed block being rotatably connected to a rotating rod, the rotating rod being transmission-connected to a cross-bracing threaded rod, the cross-bracing threaded rod being threadedly connected to a cleaning block, the cleaning block being slidably connected to the fermentation tank, and the rotating rod being rotationally connected to the fermentation tank. The end of the rotating rod away from the fixed block is connected to a lifting gear in a transmission manner. The lifting gear is meshed with a lifting rack, and the lifting rack is fixedly connected to a lifting block on the side. The lifting block is used to block the push port. The rotating rod is fixedly connected to the electric cover. The raw materials include livestock and poultry manure, straw, sawdust, kitchen waste, municipal sludge, rice husks, blue algae, bran, etc. By adding high-carbon raw materials such as straw and sawdust, or high-nitrogen raw materials such as livestock and poultry manure, the carbon-nitrogen ratio is adjusted to 25:1 to 30:1. For raw materials mainly composed of straw, cellulose-decomposing bacteria can be selected, and for raw materials mainly composed of livestock and poultry manure, protein-decomposing bacteria can be selected. For complex raw materials, composite microbial agents are generally selected, which contain multiple bacteria, fungi and actinomycetes, which can work synergistically to improve fermentation efficiency.

[0007] Mix the inoculum with brown sugar or molasses and warm water in appropriate proportions and activate for 1-2 hours. The activation ratio is 1 kg inoculum + 1 kg brown sugar + 20-30°C heated water. Spray the activated inoculum solution evenly onto the raw materials. Thoroughly mix the inoculum with the raw materials to ensure even distribution of the microorganisms. After mixing, form a pile.

[0008] The dosage of the inoculant is generally 0.1%-0.3% based on the weight of the raw material, meaning 1-3 kg of inoculant is added to 1 ton of raw material. For raw materials with a high carbon-nitrogen ratio, such as straw and sawdust, the dosage can be increased by 0.2%-0.3% to accelerate the decomposition of cellulose and lignin. For raw materials with a low carbon-nitrogen ratio, such as livestock and poultry manure, the dosage can be reduced by 0.1%-0.2%. Furthermore, the dosage can be adjusted based on the ambient temperature. For temperatures below 15°C, the dosage can be increased by 0.2%-0.3%. For temperatures above 25°C, the dosage can be reduced by 0.1%-0.2%.

[0009] The mixed raw materials are piled into strips or placed in a fermentation tank. The pile height is generally 1.5 meters to 2 meters and the width is 2 meters to 3 meters. Ensure that the pile is loose to facilitate ventilation.

[0010] The temperature rise phase lasts 1 to 3 days, during which microbial activity is rapid and the pile temperature rises to around 40°C.

[0011] The high temperature stage lasts 3-15 days, with the temperature rising by 50℃-70℃, and sometimes even exceeding 80℃, killing pathogens and weed seeds. When it exceeds 70℃, the soil should be turned over.

[0012] The cooling stage lasts 15 to 30 days, during which the temperature gradually drops, microbial activity slows down, and the pile tends to stabilize.

[0013] The composting stage lasts 30 to 60 days, during which the temperature of the pile approaches the ambient temperature and the organic matter is converted into humus.

[0014] Turn the pile regularly to improve aeration and promote uniform fermentation. Turning is generally not required during the warming phase. Turn the pile every 3-5 days during the high temperature phase. If the temperature exceeds 70°C, turn the pile promptly to cool it down. Turn the pile every 5-7 days during the cooling phase and every 7-10 days during the mature phase. Forced ventilation can be used to replenish oxygen. After fermentation is complete, screen and crush the pile to remove impurities. Functional bacteria or nutrients can be added as needed to produce finished organic fertilizer.

[0015] The above technical solution further includes:

[0016] The fixed block is connected to a first belt, which is connected to a cross-bracing threaded rod, which is connected to the inner wall of the fermentation tank for rotation, and the worm gear is connected to the bottom of the square cavity for rotation. The rotating rod is connected to a second belt, which is connected to a lifting gear, which is connected to the inner wall of the fermentation tank for rotation, and the inner wall of the fermentation tank is slidably connected to the lifting block. The fixed block is connected to the first belt, which is in turn connected to the cross-bracing threaded rod, which is connected to the inner wall of the fermentation tank for rotation. This structural design allows for efficient power transmission. The fixed block receives power from an external power source, which is driven by the first belt to drive the cross-bracing threaded rod for rotation, thereby achieving functions such as controlling the movement of the cleaning block, thereby facilitating operations such as cleaning or stirring the materials in the fermentation tank, and improving the automated operation capability of the equipment.

[0017] The fermentation tank is slidably connected with a cleaning block, the interior of the fermentation tank is slidably connected with a cylinder, a sliding block is arranged above the cylinder, and the sliding block is rotatably connected with a throwing pulp at a side away from the fermentation tank.

[0018] A control panel is fixedly connected above the anti-corrosion bottom plate, a crushing box is provided on the side of the control panel, crushing slurry is rotatably connected inside the crushing box, an opening for conveying to the surface of the conveyor belt is provided at the bottom of the crushing box, the end of the conveyor belt away from the control panel is provided above the mixing box, and buttons for controlling the crushing box are provided on the surface of the control panel.

[0019] The mixing box is fixed above the anti-corrosion base plate, and a half cover plate is provided above the mixing box. A stirring paddle for stirring the inside of the mixing box is provided at the bottom of the half cover plate. The mixing box is slidably connected to a stop block, and the stop block is threadedly connected to a vertical threaded rod, and the vertical threaded rod is rotatably connected to the anti-corrosion base plate.

[0020] The fermentation tank is rotatably connected to a folding cover plate, and an isolation strip for preventing rainwater from entering the fermentation tank is provided above the anti-corrosion bottom plate.

[0021] The surface of the isolation strip is provided with a discharge notch for discharging materials from the push port. The discharge notch prevents rainwater from entering the fermentation tank while providing a channel for the fermented material to be discharged from the push port, allowing for a smooth discharge process without compromising the waterproof function of the isolation strip, thus meeting both the waterproof and discharge requirements of the equipment.

[0022] The fermentation tank has a sliding groove on the side for the cylinder to slide. The sliding groove on the side of the fermentation tank provides guidance and space for the movement of the cylinder, ensuring that the cylinder can stably perform telescopic movement in the fermentation tank, thereby ensuring that the components connected to it, such as the slurry turning, can work normally, thereby improving the stability of the equipment operation.

[0023] The fermentation tank surface is provided with an opening for the first belt to transmit power. The opening for the first belt transmission on the fermentation tank surface enables the first belt to transmit power to components such as the horizontal threaded rods inside the fermentation tank from outside the fermentation tank. This ensures smooth power transmission and avoids problems such as material entanglement caused by the belt running inside the fermentation tank, thereby improving the safety and reliability of equipment operation.

[0024] The present invention has the following beneficial effects:

[0025] 1. In the present invention, the liftable fermentation tank can make the use of vertical space more flexible. When not in use, it can be lowered to the same level as the ground, and the upper space can be temporarily used for other purposes. It is also convenient for multi-layer layout, increasing the fermentation capacity within a limited area, reducing the occupation of land resources by large-scale green resource conversion, and effectively solving the problem of land resource waste in the large-scale conversion process.

[0026] 2. In the present invention, after the fermentation is completed, the equipment has an automatic discharging mechanism, such as driving the rotating rod through the electric cover, and the cleaning block pushes the fermented material out of the pushing port through a series of transmissions. There is no need for manual or additional large-scale equipment to perform tedious cleaning operations, which reduces the difficulty of cleaning after large-scale fermentation, overcomes the technical difficulties of cleaning troubles caused by large scale, improves cleaning efficiency, and ensures production continuity. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] Figure 1 This is a schematic structural diagram of a green resource disposal device and method for livestock and poultry manure and plant residues proposed by the present invention;

[0028] Figure 2 It is a schematic diagram of the structure of the fermentation tank in the present invention;

[0029] Figure 3 for Figure 2 A in the middle is an enlarged schematic diagram;

[0030] Figure 4 This is a schematic diagram of the structure of the fermentation tank in the present invention from a top view;

[0031] Figure 5 for Figure 4 The enlarged schematic diagram of point B in the middle;

[0032] Figure 6 Schematic diagram of the internal structure of the fermentation tank in the present invention;

[0033] Figure 7 It is a side structural diagram of the present invention.

[0034] In the figure: 1. Anti-corrosion bottom plate; 2. Isolation strip; 3. Fermentation tank; 4. Square cavity; 5. Worm; 6. Worm gear; 7. Lifting threaded rod; 8. Fixed block; 9. First belt; 10. Rotating rod; 11. Horizontal support threaded rod; 12. Cleaning block; 13. Turning pulp; 14. Sliding block; 15. Cylinder; 16. Sliding trough; 17. Electric cover; 18. Second belt; 19. Lifting gear; 20. Lifting block; 21. Lifting rack; 22. Crushing box; 23. Crushing pulp; 24. Control panel; 25. Conveyor belt; 26. Mixing box; 27. Half cover; 28. Block; 29. Vertical threaded rod; 30. Folding cover; 31. Placement trough; 32. Discharge incision; 33. Pushing port. DETAILED DESCRIPTION

[0035] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0036] See also Figure 1-Figure 7As shown, the present invention is a green resource disposal equipment and method for livestock and poultry manure and plant residues, including an anti-corrosion base plate 1, a placement groove 31 is opened on the surface of the anti-corrosion base plate 1, the bottom of the placement groove 31 is rotatably connected to a lifting threaded rod 7, the lifting threaded rod 7 is threadedly connected to a worm gear 6, the worm gear 6 is meshed with a worm 5, and the worm 5 is rotatably connected to the inner wall of the square cavity 4, the square cavity 4 is arranged inside the fermentation tank 3, and a fixed block 8 is fixedly connected above the fermentation tank 3, the fixed block 8 is rotatably connected to a rotating rod 10, the rotating rod 10 is transmission-connected to a cross-bracing threaded rod 11, the cross-bracing threaded rod 11 is threadedly connected to a cleaning block 12, the cleaning block 12 is slidingly connected to the fermentation tank 3, the end of the rotating rod 10 away from the fixed block 8 is transmission-connected to a lifting gear 19, the lifting gear 19 is meshed with a lifting rack 21, and a lifting block 20 is fixedly connected to the side of the lifting rack 21, the lifting block 20 is used to block the pushing port 33, and the rotating rod 10 is fixedly connected to the electric cover 17.

[0037] In one embodiment, for the above-mentioned fixed block 8, the fixed block 8 is transmission-connected to the first belt 9, the first belt 9 is transmission-connected to the cross-bracing threaded rod 11, the cross-bracing threaded rod 11 is rotationally connected to the inner wall of the fermentation tank 3, the worm gear 6 is rotationally connected to the bottom of the square cavity 4, the rotating rod 10 is transmission-connected to the second belt 18, the second belt 18 is transmission-connected to the lifting gear 19, the lifting gear 19 is rotationally connected to the inner wall of the fermentation tank 3, and the inner wall of the fermentation tank 3 is slidingly connected to the lifting block 20.

[0038] In this embodiment, the fixed block 8 is connected to the first belt 9, and the first belt 9 is further connected to the cross-bracing threaded rod 11, and the cross-bracing threaded rod 11 is rotatably connected to the inner wall of the fermentation tank 3. Such a structural design enables power to be effectively transmitted. The fixed block 8 receives power from an external power source, and the cross-bracing threaded rod 11 is driven to rotate by the first belt 9, which can realize functions such as controlling the movement of the cleaning block 12, thereby facilitating operations such as cleaning or stirring the material in the fermentation tank 3, thereby improving the automation operation capability of the equipment.

[0039] In one embodiment, for the above-mentioned anti-corrosion base plate 1, the fermentation tank 3 is slidably connected to a cleaning block 12, and a cylinder 15 is slidably connected inside the fermentation tank 3. A sliding block 14 is arranged above the cylinder 15, and the sliding block 14 is rotatably connected to a flipping slurry 13 on the side away from the fermentation tank 3.

[0040] In one embodiment, a control panel 24 is fixedly connected above the anti-corrosion base plate 1, a crushing box 22 is provided on the side of the control panel 24, a crushing slurry 23 is rotatably connected inside the crushing box 22, and an opening for conveying to the surface of the conveyor belt 25 is provided at the bottom of the crushing box 22. The end of the conveyor belt 25 away from the control panel 24 is provided above the mixing box 26, and a button for controlling the crushing box 22 is provided on the surface of the control panel 24.

[0041] In one embodiment, for the above-mentioned mixing box 26, the mixing box 26 is fixed above the anti-corrosion base plate 1, and a half cover plate 27 is provided above the mixing box 26. A stirring paddle for stirring the inside of the mixing box 26 is provided at the bottom of the half cover plate 27. The mixing box 26 is slidingly connected with a stop block 28, and the stop block 28 is threadedly connected with a vertical threaded rod 29, and the vertical threaded rod 29 is rotatably connected to the anti-corrosion base plate 1.

[0042] In one embodiment, for the above-mentioned fermentation tank 3 , the fermentation tank 3 is rotatably connected to a folding cover plate 30 , and an isolation strip 2 is provided above the anti-corrosion bottom plate 1 for preventing rainwater from entering the fermentation tank 3 .

[0043] In one embodiment, for the isolation strip 2 , a discharge notch 32 for discharging materials from a pushing port 33 is provided on the surface of the isolation strip 2 .

[0044] In this embodiment, a discharge cutout 32 is provided on the surface of the isolation strip 2, which prevents rainwater from entering the fermentation tank 3 while providing a channel for the fermented product to be discharged from the push port 33, so that the discharge process can proceed smoothly without destroying the waterproof function of the isolation strip 2, thereby taking into account the waterproof and discharge requirements of the equipment.

[0045] In one embodiment, for the fermentation tank 3 , a sliding groove 16 for the cylinder 15 to slide is opened on the side of the fermentation tank 3 .

[0046] In this embodiment, a sliding groove 16 is provided on the side of the fermentation tank 3 for the sliding of the cylinder 15, which provides a guide and space for the movement of the cylinder 15, ensuring that the cylinder 15 can stably perform telescopic movement in the fermentation tank 3, thereby ensuring that the components such as the slurry turning 13 connected thereto can work normally, thereby improving the stability of the equipment operation.

[0047] In one embodiment, for the fermentation tank 3 , an opening for the first belt 9 to transmit the power is provided on the surface of the fermentation tank 3 .

[0048] In this embodiment, an opening for the transmission of the first belt 9 is opened on the surface of the fermentation tank 3, so that the first belt 9 can transmit power to the components such as the cross-bracing threaded rod 11 inside the fermentation tank 3, which not only ensures the smoothness of power transmission, but also avoids the problems such as material entanglement caused by the operation of the belt inside the fermentation tank 3, thereby improving the safety and reliability of the equipment operation.

[0049] The working principle of a green resource disposal equipment for livestock and poultry manure and plant residues is to first use livestock and poultry manure, straw, wood chips, kitchen waste, municipal sludge, rice husks, blue algae, bran, etc. as raw materials for related treatment.

[0050] The raw materials are then fed into a crushing box 22 and pre-processed by crushing or chopping them using a crushing slurry 23 to increase the surface area for microbial decomposition. The carbon-nitrogen ratio is then adjusted by adding materials such as straw, sawdust, or livestock and poultry manure to a certain ratio. The moisture content is also controlled to approximately half by adding water or rice husks. A fermentation agent is then added, selected based on the raw material characteristics and fermentation conditions. For example, if straw is the primary material, cellulolytic bacteria are selected, while if livestock and poultry manure is the primary material, protein-degrading bacteria are selected. For complex raw materials, a composite agent containing a variety of bacteria, fungi, and actinomycetes is used. The agent must first be mixed with brown sugar or molasses and warm water in a 1:1 ratio of agent to brown sugar for one or two hours for activation. It is then evenly sprayed onto the raw materials, adding the agent by weight. For raw materials with a high carbon-nitrogen ratio and in low-temperature environments, the amount should be increased appropriately, while for raw materials with a low carbon-nitrogen ratio and in high-temperature environments, the amount should be reduced appropriately. The mixed raw materials are then stacked into strips or placed inside a fermentation tank 3, where the stack is kept loose and ventilated. Fermentation is divided into four stages: heating, high temperature, cooling, and composting. During this period, the pile should be turned regularly using the turning slurry 13. Generally, the pile is not turned during the warming stage. Subsequent turning depends on the situation. Forced ventilation equipment can also be used to supplement oxygen.

[0051] During the fermentation process, the folding cover 30 can be folded to sample the fermented material inside and observe its fermentation status. If the fermentation is completed, the electric cover 17 can be folded electrically, and then the electric cover 17 drives the rotating rod 10 to rotate, and the rotation of the rotating rod 10 drives the first belt 9 to transmit, and the first belt 9 further drives the horizontal support threaded rod 11 to rotate, and the rotation of the horizontal support threaded rod 11 will drive the cleaning block 12 to push the inside of its fermentation tank 3. Before this, it is necessary to control the rotation of the worm 5, and then the rotation of the worm 5 drives the worm wheel 6 to rotate, and the rotation of the worm wheel 6 will cause the fermentation tank 3 to move along the lifting threaded rod 7 and The crushing box 22 is raised from the placement groove 31 to the top of the anti-corrosion bottom plate 1. At this time, the tossing slurry 13 is lifted by the cylinder 15 to push the fermented material. Then, when the cleaning block 12 is pushed to the position of the discharge incision 32, the rotating rod 10 will use the second belt 18 to drive the lifting gear 19 to rotate. The lifting gear 19 engages with the lifting rack 21 to lift the lifting block 20 upward, so that the fermented material is pushed out from the pushing port 33. Since the fermentation tank 3 is above the anti-corrosion bottom plate 1, a high-pressure water pipe can be used to clean its interior at this time, and maintenance can be carried out to prevent subsequent damage to the fermentation tank 3 and cause fermentation failure.

[0052] After fermentation is completed, it is screened and crushed to remove impurities, and functional bacteria or nutrients are added as needed to make finished organic fertilizer.

[0053] 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. A green resource disposal equipment for livestock and poultry manure and plant residues, characterized in that: The invention comprises an anti-corrosion bottom plate (1), a placement groove (31) is provided on the surface of the anti-corrosion bottom plate (1), a lifting threaded rod (7) is rotatably connected to the bottom of the placement groove (31), the lifting threaded rod (7) is threadedly connected to a worm wheel (6), the worm wheel (6) is meshedly connected to a worm (5), the worm (5) is rotatably connected to the inner wall of a square cavity (4), the square cavity (4) is arranged inside a fermentation tank (3), a fixed block (8) is fixedly connected above the fermentation tank (3), the fixed block (8) is rotatably connected to a rotating rod (10), and the rotating rod (10) The rotary rod (10) is connected to a horizontal threaded rod (11) in a transmission manner. The horizontal threaded rod (11) is threadedly connected to a cleaning block (12). The cleaning block (12) is slidably connected to the fermentation tank (3). The end of the rotating rod (10) away from the fixed block (8) is connected to a lifting gear (19). The lifting gear (19) is meshed with a lifting rack (21). The lifting rack (21) is fixedly connected to a lifting block (20) on its side. The lifting block (20) is used to block the pushing port (33). The rotating rod (10) is fixedly connected to the electric cover (17).

2. The green resource disposal equipment for livestock and poultry manure and plant residues according to claim 1, characterized in that: The fixed block (8) is connected to a first belt (9) in a transmission manner, the first belt (9) is connected to a cross-bracing threaded rod (11), the cross-bracing threaded rod (11) is connected to the inner wall of the fermentation tank (3) in a rotational manner, the worm gear (6) is connected to the bottom of the square cavity (4) in a rotational manner, the rotating rod (10) is connected to a second belt (18), the second belt (18) is connected to a lifting gear (19), the lifting gear (19) is connected to the inner wall of the fermentation tank (3) in a rotational manner, and the inner wall of the fermentation tank (3) is connected to a lifting block (20) in a sliding manner.

3. The green resource disposal equipment for livestock and poultry manure and plant residues according to claim 1, characterized in that: The fermentation tank (3) is slidably connected to a cleaning block (12), and a cylinder (15) is slidably connected inside the fermentation tank (3). A sliding block (14) is provided above the cylinder (15), and the sliding block (14) is rotatably connected to a flipping slurry (13) on a side away from the fermentation tank (3).

4. The green resource disposal equipment for livestock and poultry manure and plant residues according to claim 1, characterized in that: A control panel (24) is fixedly connected above the anti-corrosion bottom plate (1), a crushing box (22) is provided on the side of the control panel (24), a crushing slurry (23) is rotatably connected inside the crushing box (22), an opening for conveying to the surface of a conveyor belt (25) is provided at the bottom of the crushing box (22), an end of the conveyor belt (25) away from the control panel (24) is provided above the mixing box (26), and a button for controlling the crushing box (22) is provided on the surface of the control panel (24).

5. The green resource disposal equipment for livestock and poultry manure and plant residues according to claim 4, characterized in that: The stirring box (26) is fixed above the anti-corrosion base plate (1), and a half cover plate (27) is provided above the stirring box (26). A stirring paddle for stirring the interior of the stirring box (26) is provided at the bottom of the half cover plate (27). The stirring box (26) is slidably connected to a stop block (28), and the stop block (28) is threadedly connected to a vertical threaded rod (29), and the vertical threaded rod (29) is rotatably connected to the anti-corrosion base plate (1).

6. The green resource disposal equipment for livestock and poultry manure and plant residues according to claim 1, characterized in that: The fermentation tank (3) is rotatably connected to a folding cover plate (30), and an isolation strip (2) for preventing rainwater from entering the fermentation tank (3) is provided above the anti-corrosion bottom plate (1).

7. The green resource disposal equipment for livestock and poultry manure and plant residues according to claim 6, characterized in that: The surface of the isolation strip (2) is provided with a discharge notch (32) for discharging materials from a pushing port (33).

8. The green resource disposal equipment for livestock and poultry manure and plant residues according to claim 1, characterized in that: The side of the fermentation tank (3) is provided with a sliding groove (16) for the cylinder (15) to slide.

9. The green resource disposal equipment for livestock and poultry manure and plant residues according to claim 1, characterized in that: The surface of the fermentation tank (3) is provided with an opening for the first belt (9) to transmit the power.

10. The method for using the green resource disposal equipment for livestock and poultry manure and plant residues according to any one of claims 1 to 9, characterized in that: The following steps are involved: Step 1: When operating the equipment, first control the fermentation tank (3) to rise and fall, rotate the worm (5), which is engaged with the worm wheel (6), and the worm wheel (6) is threadedly connected to the lifting threaded rod (7) and rotates accordingly, driving the lifting threaded rod (7) to rotate at the bottom of the placement tank (31), so that the fermentation tank (3) can be raised and lowered along the lifting threaded rod (7), meeting the requirements of different stages such as material input or discharge; Step 2: After fermentation is completed, the material is discharged and the electric cover (17) is started. Since the electric cover (17) is fixedly connected to the rotating rod (10), the rotating rod (10) is driven to rotate when it is turned on, providing starting power for the subsequent discharge operation; Step 3: After the rotating rod (10) rotates, the horizontal support threaded rod (11) is driven to rotate via the transmission device, and the horizontal support threaded rod (11) is threadedly connected to the cleaning block (12), and the cleaning block (12) is slidably connected to the fermentation tank (3). The rotation of the horizontal support threaded rod (11) causes the cleaning block (12) to slide in the fermentation tank (3), pushing the fermented material to the pushing port (33); Step 4: The end of the rotating rod (10) away from the fixed block (8) is connected to the lifting gear (19). The rotating rod (10) rotates to drive the lifting gear (19) to rotate. The lifting gear (19) engages with the lifting rack (21), driving the lifting rack (21) to move, so that the lifting block (20) fixed on its side can achieve a lifting action. Step 5: When the material is not in place, the lifting block (20) blocks the pushing port (33). When the cleaning block (12) pushes the material to the vicinity of the pushing port (33), the lifting block (20) descends and releases the material, and cooperates with the cleaning block (12) to push the material out of the pushing port (33), completing the discharge.