Agricultural enzyme fermentation method for ecological restoration of soil
By designing a method of agricultural enzyme fermentation that can be disassembled and connected to the fertilization vehicle, the problem of cumbersome transfer of fermentation broth in the prior art is solved, efficient enzyme fertilization is achieved, and equipment costs and transportation risks are reduced.
Patent Information
- Application Number
- CN202510029310.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-08
- Publication Date
- 2025-05-09
AI Technical Summary
The existing agricultural enzyme fermentation method requires the transfer of the fermentation broth from the fermentation barrel to a special irrigation container and then installed on the fertilization machine. The process is cumbersome, inefficient and wastes manpower and material resources.
An agricultural enzyme fermentation method including a fixing frame, solenoid valve, connecting plate, drive assembly, limit roller, sealing block and other components was designed. By removably connecting the fermentation barrel to the fertilization truck, the fermentation liquid was directly flowed into the spray pipe of the fertilization truck, which simplified the operation process.
No manual additional transfer of enzymes is required, which significantly improves work efficiency and reduces equipment procurement and maintenance costs. Through the design of limit rollers and reinforcement plates, the resistance of the fermentation barrel when rotating and deformation risks during transportation are reduced.
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Figure CN119949129A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of agricultural enzymes, and in particular to an agricultural enzyme fermentation method for soil ecological restoration. Background Art
[0002] Since fermentation barrels are suitable for farms and farmers of various sizes, they are not only easy to carry and use manually, but also fermentation barrels of different capacities can be selected according to actual needs. However, after the enzyme is fermented in the fermentation barrel, the fermentation barrel containing the fermentation liquid needs to be transported to the field, and then the fermentation liquid in the fermentation barrel needs to be transferred to a container specially used for irrigation. Finally, the container needs to be installed on a fertilizer applicator before fertilization can be carried out. This process is too cumbersome, not only inefficient, but also wastes a lot of manpower and material resources. Summary of the invention
[0003] In order to overcome the shortcomings of the existing fermentation barrel that requires the fermentation liquid to be transferred to a special container, and then the container is installed on the top of the fertilizer vehicle for use, which is a cumbersome process, not only inefficient but also wastes a lot of manpower and material resources, the present invention provides an agricultural enzyme fermentation method for soil ecological restoration.
[0004] An agricultural enzyme fermentation method for soil ecological restoration, the agricultural enzyme fermentation method for soil ecological restoration is based on a fermentation barrel and includes the following working steps: S1: Raw material processing, putting the chopped organic raw materials into the fermentation tank; S2: Add materials, add brown sugar or honey according to 10%-20% of the weight of the raw materials, and then add an appropriate amount of microbial agent; S3: Add water, stir and seal. Add clean water into the fermentation barrel to mix the raw materials, sugar, bacterial liquid and water. Then seal the fermentation barrel and ferment.
[0005] The technical solution of the present invention is: an agricultural enzyme fermentation method for soil ecological restoration, comprising a fixed frame and a solenoid valve; a connecting part is provided on the fixed frame; a connecting groove connected to the discharge port of the fermentation barrel is provided on the fixed frame; a solenoid valve is installed in the connecting groove; it also includes a connecting plate, a driving assembly, a limiting roller, a sealing block, a mounting plate and a bending block; a driving assembly is installed on the fixed frame; a plurality of connecting plates are connected to the driving assembly, and the driving assembly is used to drive the connecting plate to move forward and backward; a sealing block for preventing enzyme leakage is fixedly connected to the fixed frame, and the sealing block is located at the periphery of the connecting groove of the fixed frame; two sliding grooves are provided on each connecting plate; a mounting plate is slidably connected in the sliding groove of each connecting plate; a bending block is fixedly connected to each mounting plate; a plurality of limiting rollers are connected to the two bending blocks on two adjacent connecting plates for common rotation.
[0006] As a preferred technical solution of the present invention, all the limiting rollers are rotatably connected to adjacent bending blocks.
[0007] As a preferred technical solution of the present invention, it also includes a reinforcement plate; a plurality of reinforcement plates are installed on the driving component.
[0008] As a preferred technical solution of the present invention, it also includes an adapter component; the adapter component includes a fixed block, a first driving member, a connecting block and a limit rod; a plurality of fixed blocks are connected to the driving component; each fixed block is fixedly connected to a first driving member, and the first driving member is a bidirectional electric push rod; the telescopic end of each first driving member is fixedly connected to a connecting block, and each connecting block is slidably connected to an adjacent fixed block; a plurality of limit rods are fixedly connected to each connecting block; a connecting hole is provided on each bending block; a slot is provided in each limit roller, and each slot is aligned with an adjacent connecting hole; each limit rod passes through an adjacent connecting hole and is located in a slot of an adjacent limit roller.
[0009] As a preferred technical solution of the present invention, it also includes a supporting block and a second driving member; each limiting rod is provided with a plurality of limiting parts for limiting the rotation of the limiting roller, and the card groove of each limiting roller is engaged with the limiting part of the adjacent limiting rod; a plurality of supporting blocks are installed on the driving assembly; each supporting block is fixedly connected to a second driving member, and the second driving member is an electric push rod; the telescopic end of each second driving member is fixedly connected to the adjacent fixed block, and the second driving member is used to drive the fixed block to move forward and backward.
[0010] As a preferred technical solution of the present invention, a guiding portion is provided on each limiting portion.
[0011] As a preferred technical solution of the present invention, the sealing block is configured as an air bag, and the sealing block is connected to an external pump.
[0012] As a preferred technical solution of the present invention, it also includes a connecting pipe; the connecting groove of the fixed frame is connected with a connecting pipe for easy sampling and observation, and the connecting pipe is connected to an external water pump.
[0013] As a preferred technical solution of the present invention, it also includes a guide block; a plurality of guide blocks are rotatably connected to the fixed frame.
[0014] Beneficial effects of the present invention: The present invention realizes that the fermentation barrel is detachably connected to the fertilizer application vehicle, and the enzyme in the fermentation barrel is transferred to a special irrigation container without manual labor, which not only reduces the workload of manual handling and dumping, but also significantly improves work efficiency. At the same time, no additional special irrigation container is required, which reduces equipment procurement and maintenance costs; By setting the limiting roller and the adjacent bending block to be rotatably connected, the resistance generated during the rotation of the fermentation barrel is reduced, the difficulty of manual positioning is reduced, and the positioning efficiency is improved; The first driving member drives the adjacent connecting blocks and the limiting rods to move left and right, so that the limiting rods squeeze the adjacent curved blocks, so that the placement space formed by all the limiting rollers is correspondingly enlarged or reduced, thereby adapting to fermentation barrels of different sizes, meeting fermentation needs of different scales, and improving practicality; The reinforcement plate can disperse the impact force generated by the surging of the enzyme, reduce the deformation or breakage of the fermentation barrel due to impact, and extend the service life of the fermentation barrel. At the same time, the reinforcement plate will effectively reduce the possibility of the fermentation barrel being displaced from the limiting roller due to impact, and improve the stability of the fermentation barrel during transportation. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 It is a schematic diagram of the three-dimensional structure of the agricultural enzyme fermentation method for soil ecological restoration of the present invention; Figure 2 It is a schematic diagram of the combined three-dimensional structure of the reinforcement plate and the guide block of the present invention; Figure 3 It is a schematic diagram of the three-dimensional structure of the adapter assembly and the limiting roller combination of the present invention; Figure 4 It is a schematic diagram of the combined three-dimensional structure of the connecting block and the limiting rod of the present invention; Figure 5 It is a schematic diagram of the three-dimensional structure of the sealing block and the connecting pipe combination of the present invention; Figure 6 This is a combined cross-sectional view of the fixing frame and the sealing block of the present invention.
[0016] Marked in the figure: 1-fixed frame, 1001-connecting part, 1002-connecting groove, 2-solenoid valve, 3-connecting plate, 3001-slide groove, 4-limiting roller, 4001-card slot, 5-fermentation barrel, 5001-feeding port, 5002-discharging port, 101-mounting plate, 102-bending block, 10201-connecting hole, 201-slide rail, 202-electric slider, 301-reinforcement plate, 401-fixed block, 402-first driving member, 403-connecting block, 404-limiting rod, 40401-limiting part, 40402-guide part, 405-supporting block, 406-second driving member, 501-sealing block, 601-connecting pipe, 701-guide block. DETAILED DESCRIPTION
[0017] The present invention will be further described below in conjunction with the accompanying drawings and embodiments.
[0018] Example 1 An agricultural enzyme fermentation method for soil ecological restoration, the agricultural enzyme fermentation method for soil ecological restoration is based on a fermentation barrel 5 and includes the following working steps: S1: Raw material processing, putting the chopped organic raw materials into the fermentation barrel 5; S2: Add materials, add brown sugar or honey according to 10%-20% of the weight of the raw materials, and then add an appropriate amount of microbial agent; S3: Add water, stir and seal. Add clean water into the fermentation barrel 5 to mix the raw materials, sugar, bacterial liquid and water. Then, seal the fermentation barrel 5 to ferment.
[0019] An agricultural enzyme fermentation method for soil ecological restoration, such as Figure 1-Figure 5 As shown, it includes a fixing frame 1 and a solenoid valve 2; a connecting portion 1001 is provided on the fixing frame 1; a connecting groove 1002 is provided on the fixing frame 1, and the connecting groove 1002 is connected to the spraying pipe of the existing fertilizer application vehicle; and a solenoid valve 2 is installed in the connecting groove 1002; It also includes a connecting plate 3, a driving assembly, a limiting roller 4, a sealing block 501, a mounting plate 101 and a bending block 102; a driving assembly is installed on the fixed frame 1; four connecting plates 3 are connected to the driving assembly; a sealing block 501 is fixedly connected to the fixed frame 1, and the sealing block 501 is located at the periphery of the connecting groove 1002 of the fixed frame 1; two sliding grooves 3001 are arranged on each connecting plate 3; a mounting plate 101 is slidably connected in the sliding groove 3001 of each connecting plate 3; a bending block 102 is fixedly connected to each mounting plate 101; six limiting rollers 4 are connected to the two bending blocks 102 on two adjacent connecting plates 3 for common rotation.
[0020] The driving assembly includes a slide rail 201 and an electric slider 202 ; two slide rails 201 are fixedly connected to the fixed frame 1 ; an electric slider 202 is slidably connected to each slide rail 201 , and each connecting plate 3 is fixedly connected to an adjacent electric slider 202 .
[0021] All the limiting rollers 4 are rotatably connected to the adjacent bending blocks 102 .
[0022] It also includes a reinforcement plate 301; each electric slider 202 is fixedly connected to a reinforcement plate 301, and the electric slider 202 drives the reinforcement plate 301 to move forward and backward, thereby clamping the front and rear sides of the fermentation barrel 5 firmly.
[0023] It also includes an adapter component; the adapter component includes a fixed block 401, a first driving member 402, a connecting block 403 and a limiting rod 404; each electric slider 202 is connected to a fixed block 401; each fixed block 401 is fixedly connected to a first driving member 402, and the first driving member 402 is a bidirectional electric push rod; the telescopic end of each first driving member 402 is fixedly connected to a connecting block 403, and each connecting block 403 is slidably connected to an adjacent fixed block 401; six limiting rods 404 are fixedly connected to each connecting block 403; each bending block 102 is provided with a connecting hole 10201; each limiting roller 4 is provided with a slot 4001, and each slot 4001 is aligned with an adjacent connecting hole 10201; each limiting rod 404 passes through an adjacent connecting hole 10201 and is located in the slot 4001 of an adjacent limiting roller 4.
[0024] It also includes a supporting block 405 and a second driving member 406; each limiting rod 404 is provided with a plurality of limiting parts 40401, and the slot 4001 of each limiting roller 4 is engaged with the limiting part 40401 of the adjacent limiting rod 404; each electric slider 202 is fixedly connected with a supporting block 405, and each fixed block 401 is slidably connected with the adjacent supporting block 405; each supporting block 405 is fixedly connected with a second driving member 406, and the second driving member 406 is an electric push rod; the telescopic end of each second driving member 406 is fixedly connected with the adjacent fixed block 401, and the second driving member 406 is used to drive the fixed block 401 to move forward and backward, so as to drive the connecting block 403 and the limiting rod 404 to be inserted into the slot 4001 of the adjacent limiting roller 4, thereby limiting the rotation of the limiting roller 4.
[0025] A guide portion 40402 is provided on each limiting portion 40401; the smaller guide portion 40402 is inserted into the slot 4001 of the adjacent limiting roller 4, and the limiting roller 4 is rotated as the limiting portion 40401 of the limiting rod 404 is squeezed, thereby ensuring that the limiting portion 40401 is smoothly engaged with the slot 4001.
[0026] The sealing block 501 is configured as an air bag, and the sealing block 501 is connected to an external pump.
[0027] The following description is based on Figure 1 The side where the connection part 1001 is located is the front side, and the side where the fixing frame 1 is located is the left side.
[0028] The working steps of this embodiment are: Before fermentation, the electric slider 202 is controlled to drive the adjacent connecting plates 3 to move forward and backward respectively, so that the limiting rollers 4 at the front and rear are separated from each other until the limiting rollers 4 do not block the placement of the fermentation barrel 5. Then, the fermentation barrel 5 is manually placed horizontally and slowly pushed to the left to roll the fermentation barrel 5 onto the fixed frame 1. Figure 1 As shown, the electric slider 202 is controlled to drive the adjacent connecting plates 3 to approach the fermentation barrel 5 respectively, and the position of the fermentation barrel 5 on the fixed frame 1 is manually adjusted until the connecting plate 3 drives the adjacent limiting rollers 4 to fit with the fermentation barrel 5. At this time, the fermentation barrel 5 rests on all the limiting rollers 4, and the position of the fermentation barrel 5 is limited by the limiting rollers 4. Then, the fermentation barrel 5 is manually rotated slowly to adjust the position of the fermentation barrel 5 until the discharge port 5002 of the fermentation barrel 5 is aligned with the connecting groove 1002. At this time, the sealing block 5 01 The space between the discharge port 5002 of the fermentation barrel 5 and the connecting groove 1002 of the fixing frame 1 is blocked to prevent the enzyme from leaking from the gap between the discharge port 5002 of the fermentation barrel 5 and the connecting groove 1002 of the fixing frame 1 during the subsequent fermentation process. After the fermentation barrel 5 is fixed, the feed port 5001 of the fermentation barrel 5 is opened, and the mixed fermentation raw materials are placed into the feed port 5001 of the fermentation barrel 5, and then the feed port 5001 of the fermentation barrel 5 is closed to allow the enzyme to ferment.
[0029] When the fermentation of the enzyme in the fermentation barrel 5 is completed, the fixing frame 1 is manually connected to the fertilizer vehicle through the connecting portion 1001, and the connecting groove 1002 of the fixing frame 1 is connected to the spraying pipeline of the fertilizer machine. Then, the solenoid valve 2 in the connecting groove 1002 is opened to allow the enzyme in the fermentation barrel 5 to flow into the spraying pipe in the fertilizer vehicle through the connecting groove 1002. Finally, the enzyme is evenly sprayed on the field through the spraying pipe to complete the fertilization. This eliminates the need for manual transfer of the enzyme in the fermentation barrel 5 to a special irrigation container, which not only reduces the workload of manual handling and dumping, but also significantly improves work efficiency. At the same time, no additional special irrigation container is required, thereby reducing equipment procurement and maintenance costs.
[0030] When the fermentation barrel 5 is slowly rotated manually to align the discharge port 5002 of the fermentation barrel 5 with the connecting groove 1002, since all the limiting rollers 4 are rotatably connected to the adjacent bending arc blocks 102, when the fermentation barrel 5 is rotated manually, the limiting rollers 4 fitted with the fermentation barrel 5 will rotate with the fermentation barrel 5 due to the friction force, thereby effectively reducing the resistance generated during the rotation of the fermentation barrel 5, reducing the operational difficulty of manual positioning, and improving the positioning efficiency.
[0031] Taking into account the different capacities of the fermentation barrels 5 required for use, in order to improve the ease of use of the device and to adapt to fermentation barrels 5 of different sizes, when the fermentation barrel 5 is placed on all the limiting rollers 4, the first driving member 402 is controlled to drive the two adjacent connecting blocks 403 and the limiting rod 404 on the left and right to move away from or closer to each other. Since at this time each limiting rod 404 passes through the connecting hole 10201 of the adjacent bending block 102 and is located inside the adjacent limiting roller 4, the limiting rod 404 will drive the adjacent mounting plate 101 to slide in the slide groove 3001 of the connecting plate 3 through the bending block 102, so that the placement space composed of all the limiting rollers 4 will be correspondingly enlarged or reduced, thereby adapting to fermentation barrels 5 of different sizes, meeting the fermentation needs of different scales, and improving practicality.
[0032] When the discharge port 5002 of the fermentation barrel 5 is aligned with the connecting groove 1002, the external pump is started to gradually expand the sealing block 501 and fit tightly between the connecting groove 1002 and the discharge port 5002 of the fermentation barrel 5. By setting the sealing block 501 as an air bag to adapt to fermentation barrels 5 of different sizes, it is ensured that the sealing effect is not affected by the size of the fermentation barrel 5, thereby further improving the practicability of the device.
[0033] When the fermentation barrel 5 is connected to the fertilizer spreader by bolts, during the transportation to the field, the field road surface is uneven, which can easily cause the fermentation barrel 5 to shake, and the enzyme inside the fermentation barrel 5 surges violently, causing the enzyme to impact the front and rear sides of the fermentation barrel 5, thereby causing damage to the fermentation barrel 5. Therefore, when the discharge port 5002 of the fermentation barrel 5 is aligned with the connecting groove 1002, and the electric slider 202 drives the connecting plate 3 to make the limiting roller 4 contact with the fermentation barrel 5, the electric slider 202 simultaneously drives the reinforcing plate 301 to The fermentation barrel 5 is moved closer to the reinforcing plate 301, so that the reinforcing plate 301 fits with the fermentation barrel 5, so that during the transportation of the fermentation barrel 5, the impact force generated by the fermentation surging is dispersed through the reinforcing plate 301, the deformation or breakage of the fermentation barrel 5 caused by the impact is reduced, and the service life of the fermentation barrel 5 is extended. At the same time, the reinforcing plate 301 will effectively reduce the possibility of the fermentation barrel 5 being displaced and separated from the limiting roller 4 due to the impact, and the stability of the fermentation barrel 5 during transportation is improved. It should be noted that before placing the fermentation barrel 5 on the fixing frame 1, the first driving The first driving member 402 drives the two adjacent connecting blocks 403 and the limiting rod 404 on the left and right to move away from each other, so that the placement space formed by all the limiting rollers 4 becomes larger. After the fermentation barrel 5 is manually placed on the fixed frame 1 and the electric slider 202 drives the connecting plate 3 and the limiting roller 4 to move closer to the fermentation barrel 5, the first driving member 402 drives the two adjacent connecting blocks 403 and the limiting rod 404 on the left and right to move closer to each other, so that the placement space formed by all the limiting rollers 4 is reduced. In this process, the limiting roller 4 will push the fermentation barrel 5 to move when it moves, so that the fermentation barrel 5 is The left and right positions on the fixed frame 1 are calibrated, and when the electric slider 202 drives the connecting plate 3 and the limiting roller 4 to approach the fermentation barrel 5, the electric slider 202 drives the reinforcement plate 301 to push the fermentation barrel 5 to move, so that the front and rear positions of the fermentation barrel 5 on the fixed frame 1 are calibrated, so that the fermentation barrel 5 only needs to be placed on the fixed frame 1 manually, and the automatic correction operation can be realized in the process of the limiting roller 4 and the reinforcement plate 301 limiting and protecting the fermentation barrel 5, without the need to manually adjust the position of the fermentation barrel 5 on the fixed frame 1, thereby improving the practicality of the present invention.
[0034] In the above process, although the reinforcing plate 301 has appropriately limited the fermentation barrel 5, during transportation, since the limiting roller 4 that is in contact with the fermentation barrel 5 is in a free rotation state, during the vibration generated by the fertilizer truck, the fermentation barrel 5 and the limiting roller 4 will both rotate slightly due to the vibration of the vehicle body, causing the fermentation barrel 5 to deviate, thereby affecting the alignment between the discharge port 5002 of the fermentation barrel 5 and the connecting groove 1002 of the fixing frame 1. In order to further improve the limiting effect of the fermentation barrel 5, when the fixing frame 1 is connected to the fertilizer spreader by bolts, the second driving member 406 is controlled to drive the adjacent fixed block 401 and the connecting block 403 to move toward the fermentation barrel 5, so that the connecting block 403 drives the limiting rod 404 to insert into the card of the adjacent limiting roller 4. The limiting roller 4 is restricted to prevent the fermentation barrel 5 from being offset and rotating during the subsequent transfer process, thereby avoiding affecting the subsequent irrigation. It should be noted that a guide portion 40402 is provided on the front side of each limiting portion 40401. Even if the slot 4001 of each limiting roller 4 is not aligned with the limiting portion 40401 in the initial state, the smaller guide portion 40402 can be inserted into the slot 4001 of the adjacent limiting roller 4, and the limiting roller 4 is rotated along with the squeezing of the limiting portion 40401 of the limiting rod 404 until the limiting portion 40401 is completely engaged with the slot 4001.
[0035] Example 2 On the basis of Example 1, Figure 1 , Figure 2 , Figure 5 and Figure 6 As shown, a connecting pipe 601 is also included; the connecting pipe 601 is connected to the connecting groove 1002 of the fixing frame 1, and the connecting pipe 601 is connected to an external water pump.
[0036] It also includes a guide block 701; two guide blocks 701 symmetrically disposed on the fixing frame 1 are rotatably connected.
[0037] The working steps of this embodiment are: First, connect the connecting pipe 601 to the external water pump; During the fermentation process of the enzyme, in order to promptly discover possible problems that may occur during the fermentation process, such as contamination, abnormal metabolism, etc., regular sampling is usually required to ensure product quality. However, most existing sampling methods are for sampling with the lid opened, and contamination is easily introduced during the sampling process. To solve the above problem, when manual sampling of the enzyme is required, the external water pump is started to allow the enzyme in the fermentation barrel 5 to enter the connecting pipe 601 through the connecting groove 1002, thereby achieving sampling, without the need to open the lid, reducing the risk of external contamination and keeping the fermentation environment clean.
[0038] When the fermentation barrel 5 on the fixed frame 1 needs to be replaced, the electric slider 202 is controlled to drive the adjacent connecting plates 3 to move to the front and rear sides respectively, so that the limiting rollers 4 at the front and rear are moved away from each other. At this time, the limiting rollers 4 no longer block the fermentation barrel 5. Then, the fermentation barrel 5 is slowly pushed to the left or right manually to roll to the left or right. At this time, the fermentation barrel 5 is guided and supported by the guide block 701, so as to prevent the fermentation barrel 5 from falling directly to the ground and causing wear to the fermentation barrel 5.
[0039] The embodiments of the present invention are described in detail above with reference to the accompanying drawings, but the present invention is not limited to the above embodiments, and various changes can be made within the knowledge scope of those skilled in the art without departing from the spirit of the present invention.
Claims
1. An agricultural enzyme fermentation method for soil ecological restoration, the agricultural enzyme fermentation method for soil ecological restoration is based on a fermentation barrel (5), characterized in that: The following steps are included: S1: Raw material processing, putting the chopped organic raw materials into the fermentation tank (5); S2: Add materials, add brown sugar or honey according to 10%-20% of the weight of the raw materials, and then add an appropriate amount of microbial agent; S3: Add water, stir and seal. Add clean water into the fermentation barrel (5) to mix the raw materials, sugar, bacterial liquid and water. Then seal the fermentation barrel (5) and ferment.
2. An agricultural enzyme fermentation method for soil ecological restoration, characterized in that: The invention comprises a fixing frame (1) and a solenoid valve (2); the fixing frame (1) is provided with a connecting portion (1001); the fixing frame (1) is provided with a connecting groove (1002) which is connected with a material outlet (5002) of a fermentation barrel (5); the solenoid valve (2) is installed in the connecting groove (1002); and the invention also comprises a connecting plate (3), a driving assembly, a limiting roller (4), a sealing block (501), a mounting plate (101) and an arc block (102); the fixing frame (1) is provided with a driving assembly; a plurality of connecting plates (3) are connected to the driving assembly, and the driving assembly is used to drive the connecting plates (3) moves forward and backward; a sealing block (501) for preventing enzyme leakage is fixedly connected to the fixed frame (1), and the sealing block (501) is located outside the connecting groove (1002) of the fixed frame (1); two sliding grooves (3001) are provided on each connecting plate (3); a mounting plate (101) is slidably connected in the sliding groove (3001) of each connecting plate (3); a bending block (102) is fixedly connected to each mounting plate (101); a plurality of limiting rollers (4) are rotatably connected between the two bending blocks (102) on two adjacent connecting plates (3).
3. The agricultural enzyme fermentation method for soil ecological restoration according to claim 2, characterized in that: All the limiting rollers (4) are rotatably connected to adjacent bending blocks (102).
4. The agricultural enzyme fermentation method for soil ecological restoration according to claim 2, characterized in that: It also includes a reinforcement plate (301); a plurality of reinforcement plates (301) are mounted on the driving assembly.
5. The agricultural enzyme fermentation method for soil ecological restoration according to claim 2, characterized in that: The adapter assembly also includes a fixing block (401), a first driving member (402), a connecting block (403) and a limiting rod (404); the driving assembly is connected to a plurality of fixing blocks (401); each fixing block (401) is fixedly connected to a first driving member (402), and the first driving member (402) is a bidirectional electric push rod; the telescopic end of each first driving member (402) is fixedly connected to a connecting block (403), and each connecting block (403) is connected to an adjacent The fixed blocks (401) are slidably connected; a plurality of limiting rods (404) are fixedly connected to each connecting block (403); a connecting hole (10201) is provided on each bending block (102); a clamping groove (4001) is provided in each limiting roller (4), and each clamping groove (4001) is aligned with an adjacent connecting hole (10201); each limiting rod (404) passes through an adjacent connecting hole (10201) and is located in the clamping groove (4001) of the adjacent limiting roller (4).
6. The agricultural enzyme fermentation method for soil ecological restoration according to claim 5, characterized in that: It also includes a supporting block (405) and a second driving member (406); each limiting rod (404) is provided with a plurality of limiting portions (40401) for limiting the rotation of the limiting roller (4), and the clamping groove (4001) of each limiting roller (4) is engaged with the limiting portion (40401) of the adjacent limiting rod (404); a plurality of supporting blocks (405) are installed on the driving assembly; each supporting block (405) is fixedly connected to a second driving member (406), and the second driving member (406) is an electric push rod; the telescopic end of each second driving member (406) is fixedly connected to an adjacent fixed block (401), and the second driving member (406) is used to drive the fixed block (401) to move forward and backward.
7. The agricultural enzyme fermentation method for soil ecological restoration according to claim 6, characterized in that: A guide portion (40402) is provided on each limiting portion (40401).
8. The agricultural enzyme fermentation method for soil ecological restoration according to claim 2, characterized in that: The sealing block (501) is configured as an air bag, and the sealing block (501) is connected to an external pump.
9. The agricultural enzyme fermentation method for soil ecological restoration according to claim 2, characterized in that: It also includes a connecting pipe (601); the connecting groove (1002) of the fixing frame (1) is connected with a connecting pipe (601) for facilitating sampling and observation, and the connecting pipe (601) is connected to an external water pump.
10. The agricultural enzyme fermentation method for soil ecological restoration according to claim 9, characterized in that: It also includes a guide block (701); a plurality of guide blocks (701) are rotatably connected to the fixed frame (1).