Agricultural non-point source treatment equipment and use method thereof

By designing a motor-driven mixing mechanism, the problems of uneven material mixing and insufficient air circulation in agricultural non-point source pollution control equipment are solved, and the uniform mixing of materials and fermentation reactions are improved.

CN120271377APending Publication Date: 2025-07-08GUIZHOU UNIV
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Patent Information

Application Number
CN202510491181.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-18
Publication Date
2025-07-08

AI Technical Summary

Technical Problem

In the prior art, agricultural non-point source pollution control equipment has uneven mixing, insufficient air circulation, and agglomeration during the material mixing process, resulting in insufficient fermentation reaction.

Method used

An agricultural non-point source pollution control equipment is designed, using a motor-driven mixing mechanism, including sleeves, spiral rods, cross-sliding chute sleeves and rolling and dispersing mechanisms. Through the rotation of the spiral rods and the telescopic base, uniform mixing of materials and air circulation are achieved, avoiding agglomeration, and promoting fermentation reactions.

Benefits of technology

The uniform mixing of materials and air circulation are achieved, the fermentation reaction efficiency is improved, the material agglomeration is reduced, and the stability and efficiency of the fermentation process are improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of treatment, and discloses agricultural non-point source pollution treatment equipment and a using method thereof.The agricultural non-point source pollution treatment equipment comprises a main body, the interior of the main body is hollow, the side face of the main body is fixedly connected with a feeding port, the front face of the main body is slidably connected with a discharging port, and the top of the main body is movably connected with a top cover. Materials are fed through a feeding port, a motor drives a driving disc to pull a driving belt to rotate a driven disc, a sleeve fixedly connected in the driven disc rotates, a plurality of screw rods are pulled through rotation of the sleeve to mix and rotate the materials in a fermentation cylinder, and traction force is utilized to react to a connecting rod, so that the materials in the fermentation cylinder are mixed; the connecting rods slide in the crossed sliding grooves formed in the outer surfaces of the crossed sliding groove sleeves, the two connecting rods pull the multiple spiral rods to turn over the materials under the influence of the paths in the crossed sliding grooves, and air is introduced into the materials to increase the fermentation reaction of the materials.
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Description

Technical Field

[0001] The present invention relates to the field of treatment technologies, and particularly to an agricultural non-point source pollution treatment device and a using method thereof. Background Technique

[0002] Agricultural non-point source pollution refers to the situation in the process of agricultural production where, due to the unreasonable use or poor management of chemical fertilizers, pesticides, livestock and poultry breeding waste, etc., pollutants enter water bodies, soil and the atmosphere through surface runoff, underground seepage, etc., causing negative impacts on the ecological environment. Non-point source pollution has characteristics such as dispersion, concealment and difficulty in monitoring, and is difficult to treat.

[0003] In the treatment of non-point source pollution, the composting method is usually used to treat materials such as livestock manure, straw, withered branches and fallen leaves that can improve soil properties. In order to make the materials be mixed more comprehensively, it is necessary to manually stir and mix them. Since it is necessary to stir and mix them irregularly and comprehensively during the process of mixed fermentation, when there is too much material piled up, there may be a phenomenon of uneven stirring during the stirring process by manual methods, or the stirring force is not enough to cause some materials to not be fully mixed. Because the fermentation reaction requires a certain degree of air circulation, part of the water will be lost, resulting in a certain caking phenomenon, causing some materials to dry and harden, and unable to reach the environment for fungal fermentation reaction. Summary of the Invention

[0004] The purpose of the present invention is to provide an agricultural non-point source pollution treatment device and a using method thereof to solve the problems raised in the above background technique.

[0005] To solve the above technical problems, the present invention is realized through the following technical solutions: The present invention is an agricultural non-point source pollution treatment device, including a main body. The inside of the main body is hollow. A feeding port is fixedly connected to the side of the main body. A discharge port is slidably connected to the front of the main body. A top cover is movably connected to the top of the main body. It further includes: A mixing mechanism, a mixing mechanism sleeve, a cross chute sleeve for affecting the mixing of materials, and a driven structure for being fixed on the surface of the top cover; A driven structure, a driven structure fixing plate, and a connecting rod for restricting the connection and being limited at the bottom of the fixing plate; The inside of the sleeve is hollow. The outer surface of the sleeve is rotatably connected to a cross chute sleeve. The top of the cross chute sleeve is fixedly connected with a plurality of fixing rods. The tops of the plurality of fixing rods are fixedly connected to the bottom of the top cover. Two connecting slide rods are slidably connected to the outer surface of the connecting slide rod. The bottom of the connecting slide rod is fixedly connected with a plurality of spiral rods. The plurality of spiral rods are rotatably connected to the outer surface of the sleeve.

[0006] Furthermore, a driving disk is rotatably connected to the top of the top cover. A motor is fixedly connected to the top of the driving disk, and a driving belt is sleeved on the outer surface of the driving disk.

[0007] Furthermore, the inner wall of one end of the driving belt away from the driving disk is sleeved on the outer surface of a driven disk; Wherein, the bottom of the driven disk is rotatably connected to the top of the top cover, the inside of the driven disk is fixedly connected to the outer surface of a sleeve, and the sleeve penetrates through the inside of the top cover and extends to the inner wall of the bottom of the main body.

[0008] Furthermore, the bottom of a fixing plate is fixedly connected to the top of the top cover. The bottom of the fixing plate is rotatably connected to the top of the driven disk. A connecting rod is fixedly connected to the bottom of the fixing plate, and the connecting rod penetrates through the inside of the driven disk and extends to the inner wall of the bottom of the sleeve.

[0009] Furthermore, the bottom of the connecting rod is rotatably connected to the inner wall of the bottom of the sleeve. A sleeve is rotatably connected to the outer surface of the connecting rod. Two arc-shaped chute platforms are fixedly connected to the outer surface of the connecting rod. The two arc-shaped chute platforms are symmetrically arranged with respect to the center of the sleeve. Two telescopic bases are fixedly connected to the outer surface of the sleeve.

[0010] Furthermore, the two telescopic bases are symmetrically arranged with respect to the center of the sleeve. Two spherical sliding rods are fixedly connected to the outer surface of the telescopic base. The two spherical sliding rods are symmetrically arranged with respect to the center of the telescopic base. One side of the spherical sliding rod away from the telescopic base slides on the outer surface of the arc-shaped chute platform.

[0011] Furthermore, a rolling mechanism is arranged on the outer wall of one side of the telescopic base close to the motor. The rolling mechanism is fixedly connected to a support rod on the outer wall of one side of the telescopic base close to the motor. Two driven plates are rotatably connected to the outer surface of the telescopic base. Springs are fixedly connected to the outer wall of one side of the two driven plates close to the support rod. A through rectangular groove is formed in the outer surface of the driven plate, and a sliding cavity is formed inside the rectangular groove.

[0012] Furthermore, two slotted arc-shaped arms are rotatably connected to the side of the support rod away from the telescopic base. The two slotted arc-shaped arms are arranged in a staggered manner. Arc-shaped sliding grooves are formed in the outer surface of the slotted arc-shaped arms. One end of the slotted arc-shaped arm away from the telescopic base penetrates into the inside of the rectangular groove and extends to the outside. The extended end of the slotted arc-shaped arm penetrates into the side wall of a screw rod close to the driven plate. A crushing box is rotatably connected to the side of the slotted arc-shaped arm away from the support rod; Wherein, a sliding rod is slidably connected inside the slotted arc-shaped arm, and the outer surface of the sliding rod slides on the inner wall of the sliding cavity of the driven plate.

[0013] Further, a dispersing mechanism is fixedly connected to the side of the telescopic base away from the support rod. The dispersing mechanism is fixedly connected to the convex block rotating arm on the outer wall of the side of the telescopic base away from the support rod. Two fixing blocks are fixedly connected to the outer surface of the convex block rotating arm, and the two fixing blocks are symmetrically arranged with respect to the center of the convex block rotating arm. The inside of the convex block rotating arm is hollow, and a sliding rod is slidably connected to the inner wall of the convex block rotating arm. A spiral groove sleeve is fixedly connected to the side of the sliding rod away from the convex block rotating arm. Two through spiral grooves are formed on the outer surface of the spiral groove sleeve, and the fixing blocks slide inside the spiral grooves. A blade sleeve is slidably connected to the outer surface of the spiral groove sleeve, and two spiral chutes are formed on the inner wall of the blade sleeve, and the fixing blocks slide on the inner wall of the spiral chutes.

[0014] Further, a method for using an agricultural non-point source pollution treatment device, the agricultural non-point source pollution treatment device, the method comprises the following steps: S1: Power connection: First, turn off the external power supply and connect the external power supply to the motor device; S2: Device placement: The top cover can be placed into the interior of the main body by holding the protruding parts at both ends of the top cover, and fix it after confirming the position; S3: Start the device: Start the external power supply. After being driven by the power supply, the motor drives the driving disc to rotate, and the driving belt applies rotation to the driven disc. The sleeve fixed to the inner wall of the driven disc rotates. At the same time, the rotation of the sleeve will pull the connected screw rod to mix and stir the materials. After meeting the requirements, turn off the external power supply to stop the device.

[0015] The present invention has the following beneficial effects: 1. When in use, the driving motor rotates through the connection of the external power supply. The motor drives the driving disc to rotate to pull the driving belt to rotate the driven disc. Since the rotation of the driven disc will drive the sleeve to rotate, several screw rods are rotated on the outer surface of the sleeve. The rotation of the sleeve affects the screw rod to mix and stir the materials. At the same time, through rotation, the connecting sliding rod slides on the outer wall of the cross groove sleeve. Through the path of the outer wall of the cross groove sleeve, the screw rod performs a lifting trajectory movement. Since the movement trajectory of the screw rod interferes with the materials, it promotes the air circulation inside the materials. Through the rotation effect, the internal air is converted. At the same time, the internal fungi are mixed with other materials, improving the internal temperature and air circulation of the materials, and dispersing the internal fungi to a certain extent, which can improve the fermentation reaction.

[0016] 2. During use, the rotation of the sleeve is affected by the drive of the motor, which pulls the telescopic base fixedly connected to the outer surface of the sleeve, causing the spherical slide bar on the surface of the telescopic base to slide on the outer wall of the arc-shaped chute table. Due to the influence of the path, the telescopic base undergoes a telescopic path. Through the telescoping action, the support rod stretches two slotted arc-shaped arms. Through the traction, the slotted arc-shaped arms slide telescopically inside and extend outside the driven plate. The telescopic path generated by the rotation of the sleeve enables the crushing box to crush the material to a certain extent. By utilizing the rotational potential energy of the sleeve, the slotted arc-shaped arms can be used for crushing and opening / closing, maintaining a certain degree of integrity of the material and promoting the reaction degree of material fermentation, maintaining the characteristics of the material, protecting the active ingredients in the material and the environment of the material to a certain extent, and avoiding excessive pulverization of the material caused by one-time or continuous crushing, which has too much impact on the internal environment.

[0017] 3. During use, the rotation of the sleeve is affected by the drive of the motor. Due to the influence of the path of the arc-shaped chute table, the telescopic base is affected by the convex block rotating arm connected to the side away from the support rod, resulting in a telescopic path. At the same time, two fixing blocks are fixedly connected to the outer surface of the convex block rotating arm. Through the telescopic path generated by the telescopic base, the two fixing blocks slide inside the spiral chute of the spiral groove sleeve, causing the spiral groove sleeve to rotate closer to the telescopic base side. At the same time, the outer walls of the two fixing blocks also slide in the spiral chute on the inner wall of the blade sleeve. By utilizing the telescopic reaction, the blade sleeve is rotated. Through the rotation power of the motor rotation, the blade sleeve rotates to disperse the material to a certain extent, avoiding the formation of internal material agglomeration due to excessive fermentation. At the same time, the dispersed material can be more conducive to contacting air, promoting the fermentation reaction of the internal material, accelerating the fermentation reaction time to a certain extent, being more conducive to the development of material fungi, promoting the reduction of the required fermentation time, and being more conducive to the fermentation efficiency.

[0018] Of course, it is not necessary for any product implementing the present invention to achieve all the above-mentioned advantages simultaneously. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings required for describing the embodiments will be briefly introduced below. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0020] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 It is a schematic diagram of the overall partial cross-sectional structure of the present invention; Figure 3 It is a schematic diagram of the main body of the present invention; Figure 4Schematic diagram of the mixing mechanism of the present invention; Figure 5 Schematic cross-sectional view of the driven mechanism of the present invention; Figure 6 Schematic diagram of the rolling mechanism of the present invention; Figure 7 Schematic cross-sectional view of the rolling mechanism of the present invention; Figure 8 Schematic enlarged view at position A of the present invention; Figure 9 Schematic diagram of the dispersing mechanism of the present invention; Figure 10 Schematic cross-sectional view of the dispersing mechanism of the present invention; Figure 11 Schematic diagram of the operation steps of the present invention.

[0021] In the attached drawings, the list of components represented by each reference numeral is as follows: In the figure: 1, main body; 101, feed inlet; 102, discharge outlet; 103, top cover; 104, drive disk; 105, motor; 106, drive belt; 107, driven disk; 2, mixing mechanism; 201, sleeve; 202, cross chute sleeve; 203, connecting slide bar; 204, screw rod; 3, driven structure; 301, fixing plate; 302, connecting rod; 303, sleeve; 304, arc chute table; 305, telescopic base; 306, spherical slide bar; 4, rolling mechanism; 401, support rod; 402, driven plate; 403, grooved arc arm; 404, crushing box; 5, dispersing mechanism; 501, convex block rotating arm; 502, sliding rod; 503, spiral groove sleeve; 504, blade sleeve. Detailed implementation manners

[0022] 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 of 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.

[0023] Please refer to Figures 1-10 As shown, the present invention is an agricultural non-point source pollution treatment device, including a main body 1. The interior of the main body 1 is hollow. A feed inlet 101 is fixedly connected to the side of the main body 1, a discharge outlet 102 is slidably connected to the front of the main body 1, and a top cover 103 is movably connected to the top of the main body 1. It further includes: A mixing mechanism 2, a sleeve 201 of the mixing mechanism 2, a cross chute sleeve 202 for affecting the mixing of materials, and a driven structure 3 for fixing on the surface of the top cover 103; Driven structure 3, fixing plate 301 of driven structure 3, used to limit the connecting rod 302 limited at the bottom of the fixing plate 301; The inside of the sleeve 201 is hollow. The outer surface of the sleeve 201 is rotatably connected with a cross-shaped chute sleeve 202. The top of the cross-shaped chute sleeve 202 is fixedly connected with several fixing rods. The tops of the several fixing rods are fixedly connected to the bottom of the top cover 103. The outer surface of the connecting slide rod 203 is slidably connected with two connecting slide rods 203. The bottom of the connecting slide rod 203 is fixedly connected with several screw rods 204. The several screw rods 204 are rotatably connected with the outer surface of the sleeve 201; the rotational potential energy is used to rotate the material through the screw rod 204, so that the internal material is mixed. At the same time, during the stirring process, the internal pollutants are dispersed, promoting the contact of fungi, enabling the fungi to be dispersed in the material in multiple aspects, increasing the involvement of fungal reproduction, improving the fermentation stability during the movement process, and improving the pollution treatment efficiency.

[0024] The top of the top cover 103 is rotatably connected with a driving disc 104. The top of the driving disc 104 is fixedly connected with a motor 105. The outer surface of the driving disc 104 is sleeved with a driving belt 106; the motor 105 drives the turntable through the driving belt 106 to increase the friction force, driving the driven disc 107 to rotate. To a certain extent, the rotational force is increased through the belt friction, avoiding the rubbing, sliding and impact between parts due to the too fast start of the motor 105.

[0025] One end inner wall of the driving belt 106 far from the driving disc 104 is sleeved on the outer surface of the driven disc 107; Among them, the bottom of the driven disc 107 is rotatably connected with the top of the top cover 103. The inside of the driven disc 107 is fixedly connected with the outer surface of the sleeve 201. The sleeve 201 penetrates through the inside of the top cover 103 and extends to the bottom inner wall of the main body 1; this design rotates the sleeve 201 through the rotation of the driven disc 107 to reduce friction. To a certain extent, the driving belt force of the driving belt 106 is directly fixed to reduce the transmission energy loss, reduce manual intervention, and reduce energy consumption.

[0026] The bottom of the fixing plate 301 is fixedly connected to the top of the top cover 103. The bottom of the fixing plate 301 is rotatably connected with the top of the driven disc 107. The bottom of the fixing plate 301 is fixedly connected with a connecting rod 302. The connecting rod 302 penetrates through the inside of the driven disc 107 and extends to the bottom inner wall of the sleeve 201; this design is mainly to make the equipment more compact, ensure the power transmission to reduce the potential energy loss to a certain extent, avoid deviation or vibration during movement, and improve the stability.

[0027] The bottom of the connecting rod 302 is rotatably connected to the inner wall of the bottom of the sleeve 201. A sleeve 303 is rotatably connected to the outer surface of the connecting rod 302. Two arc-shaped chute platforms 304 are fixedly connected to the outer surface of the connecting rod 302. The two arc-shaped chute platforms 304 are symmetrically arranged with respect to the center of the sleeve 303. Two telescopic bases 305 are fixedly connected to the outer surface of the sleeve 303. This design disperses the force during the movement process, enables uniform and relative force application, reduces the degree of local wear, and makes the operation more adaptable to the material conditions of the action.

[0028] The two telescopic bases 305 are symmetrically arranged with respect to the center of the sleeve 303. Two spherical sliding rods 306 are fixedly connected to the outer surface of the telescopic base 305. The two spherical sliding rods 306 are symmetrically arranged with respect to the center of the telescopic base 305. The side of the spherical sliding rod 306 away from the telescopic base 305 slides on the outer surface of the arc-shaped chute platform 304. This design is to make use of the rotational potential energy to more evenly disperse the force application situation, adjust the motion state during the movement process, and improve the adaptability of the equipment.

[0029] A rolling mechanism 4 is arranged on the outer wall of the telescopic base 305 close to the motor 105. The rolling mechanism 4 is fixedly connected to a support rod 401 on the outer wall of the telescopic base 305 close to the motor 105. Two driven plates 402 are rotatably connected to the outer surface of the telescopic base 305. Springs are fixedly connected to the outer walls of the two driven plates 402 close to the support rod 401. A through rectangular groove is formed on the outer surface of the driven plate 402, and a sliding cavity is formed inside the rectangular groove. The tension of the spring is used to improve the stability of the structure. According to the swing amplitude generated during rotation, it rotates on the surface of the telescopic base 305 to further adapt to the working motion trajectory.

[0030] Two slotted arc-shaped arms 403 are rotatably connected to the side of the support rod 401 away from the telescopic base 305. The two slotted arc-shaped arms 403 are arranged in a staggered manner. The end of the slotted arc-shaped arm 403 away from the telescopic base 305 penetrates into the inside of the rectangular groove and extends to the outside. The extended end of the slotted arc-shaped arm 403 penetrates into the side wall of the screw rod 204 close to the driven plate 402. A crushing box 404 is rotatably connected to the side of the slotted arc-shaped arm 403 away from the support rod 401. Among them, a sliding rod is slidably connected inside the slotted arc-shaped arm 403, and the outer surface of the sliding rod is slidably connected to the inner wall of the sliding cavity of the driven plate 402. The rotation affects the traction to make the slotted arc-shaped arm 403 move, and has different degrees of rolling impact on the material, with a certain degree of rolling but ensuring its integrity to a certain extent.

[0031] One side of the telescopic base 305 away from the support rod 401 is fixedly connected with a dispersing mechanism 5. The dispersing mechanism 5 is fixedly connected with a convex block rotating arm 501 on the outer wall of the telescopic base 305 away from the support rod 401. Two fixing blocks are fixedly connected to the outer surface of the convex block rotating arm 501. The two fixing blocks are symmetrically arranged with the center of the convex block rotating arm 501 as the center. The inside of the convex block rotating arm 501 is hollow. A sliding rod 502 is slidably connected to the inner wall of the convex block rotating arm 501. One side of the sliding rod 502 away from the convex block rotating arm 501 is fixedly connected with a spiral groove sleeve 503. Two through spiral grooves are formed on the outer surface of the spiral groove sleeve 503. The fixing blocks slide inside the spiral grooves. A blade sleeve 504 is slidably connected to the outer surface of the spiral groove sleeve 503. Two spiral chutes are formed on the inner wall of the blade sleeve 504. The fixing blocks slide on the inner wall of the spiral chutes. This design is to disperse and refine the materials to a certain extent during operation, improve the thoroughness of material pollution treatment, and enable the internal fungi to more conveniently reach the surrounding materials.

[0032] A method for using an agricultural non-point source pollution treatment device, the agricultural non-point source pollution treatment device, the method comprises the following steps: S1: Power connection: First, turn off the external power supply and connect the external power supply to the motor 105 device; S2: Device placement: The top cover 103 can be placed into the interior of the main body 1 by holding the protruding parts at both ends, and fixed after confirming the position; S3: Start the device: Start the external power supply. After being driven by the power supply, the motor 105 drives the driving disc 104 to rotate, and the driving belt 106 drives the driven disc 107 to rotate. The sleeve 201 fixed to the inner wall of the driven disc 107 rotates. At the same time, the rotation of the sleeve 201 will drive the connected spiral rod 204 to mix and stir the materials. After meeting the requirements, turn off the external power supply to stop the device.

[0033] Before use, connect the motor 105 with an external power supply (not specified), hold the two protruding parts of the top cover 103 and put it into the interior of the main body 1, fix it after confirming the position, put the materials through the feeding port 101. When in use, start the external power supply, rotate the driving motor 105, rotate the driving disc 104, the driving belt 106 sleeved outside the driving disc 104 will drive the driven disc 107 to rotate, and at the same time rotate the sleeve 201 fixedly connected to the inside of the driven disc 107. Use the rotation effect to rotate the spiral rod 204 rotatably connected to the outer surface of the sleeve 201 to mix the materials. During the operation, the two connecting sliding rods 203 slide on the outer wall of the cross chute sleeve 202. Since the bottoms of the two connecting sliding rods 203 are fixedly connected with a plurality of spiral rods 204, the spiral rods 204 are driven by the path on the outer wall of the cross chute sleeve 202, increasing the performance of the spiral rods 204 during operation. The rotation of the sleeve 201 generates diversity in the mixing of the materials; Meanwhile, during the rotation process, the materials inside the main body 1 are flipped. Inside the sleeve 201, the fixing plate 301 is fixed on the top of the top cover 103. The connecting rod 302 fixedly connected to the bottom of the fixing plate 301 penetrates through the inside of the top cover 103 and the driven disc 107, and extends to the inner wall of the bottom of the sleeve 201. A sleeve 303 is rotatably connected to the outer surface of the connecting rod 302. Two arc-shaped chute platforms 304 are fixedly connected to the outer surface of the connecting rod 302. The two arc-shaped chute platforms 304 are symmetrically arranged with respect to the center of the telescopic base 305. Two telescopic bases 305 are fixedly connected to the outer wall of the sleeve 303. The two telescopic bases 305 are symmetrically arranged with respect to the center of the sleeve 303. Two spherical sliding rods 306 are fixedly connected to the outer surface of the telescopic base 305. The two spherical sliding rods 306 are symmetrically arranged with respect to the center of the telescopic base 305. At the same time, the rotation of the sleeve 201 causes the telescopic base 305 to rotate the sleeve 303. By using the spherical sliding rods 306 on the surface of the telescopic base 305 to slide on the outer wall of the arc-shaped chute platform 304, a support rod 401 is fixedly connected to the outer wall of the telescopic base 305 near the motor 105 for support and traction. Two driven plates 402 are rotatably connected to the outer surface of the telescopic base 305. Springs are fixed to the outer walls of the two driven plates 402 close to the support rod 401, so as to cooperate with the rotation of the screw rod 204. Two grooved arc-shaped arms 403 are rotatably connected to the side of the support rod 401 away from the telescopic base 305 for traction. The two grooved arc-shaped arms 403 are cross-arranged. Arc-shaped sliding grooves are formed on the outer surfaces of the grooved arc-shaped arms 403. The ends of the grooved arc-shaped arms 403 away from the arc-shaped chute platform 304 penetrate into the inside of the rectangular groove and extend to the outside. The extended ends of the grooved arc-shaped arms 403 penetrate into the side wall of the screw rod 204 close to the driven plate 402. A sliding rod is slidably connected inside the arc-shaped sliding groove, and the outer surface of the sliding rod is slidably connected to the inner wall of the sliding cavity of the driven plate 402. In this way, the rotation of the sleeve 201 can cause the support rod 401 to pull the two grooved arc-shaped arms 403 to open and close, and during the rotation of the sleeve 201, the crushing box 404 rotatably connected to the grooved arc-shaped arms 403 crushes the materials; The potential energy of rotation is also used to expand and contract the convex block rotating arm 501 fixedly connected to the side of the telescopic base 305 away from the support rod 401. Since two fixing blocks are fixedly connected to the outer surface of the convex block rotating arm 501, the fixing blocks will slide inside the spiral chute of the spiral groove sleeve 503. By using the expansion and contraction reaction, the convex block rotating arm 501 rotates the spiral groove sleeve 503. At the same time, the two fixing blocks also slide inside the spiral chute on the inner wall of the blade sleeve 504. Similarly, the expansion and contraction reaction of the telescopic base 305 causes the convex block rotating arm 501 to rotate the blade sleeve 504. Through the rotation effect, the materials inside the main body 1 are dispersed, and the rotation of the sleeve 201 affects the injection of air for material dispersion, which is beneficial to the fermentation reaction; When the external power supply is turned off according to the required duration, during material discharging, the material can be separated at the discharging port 102, or the device can be pulled out by holding the protruding parts at both ends of the top cover 103 to separate the material in the main body 1.

[0034] The preferred embodiments of the present invention disclosed above are only used to help illustrate the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the invention to the specific embodiments described. Obviously, many modifications and variations can be made according to the content of this specification. These embodiments are selected and specifically described in this specification to better explain the principle and practical application of the present invention, so that those skilled in the art can understand and utilize the present invention well. The present invention is only limited by the claims and their full scope and equivalents.

Claims

1. An agricultural non-point source pollution treatment device, comprising a main body (1). The interior of the main body (1) is hollow. A feed inlet (101) is fixedly connected to the side of the main body (1). A discharge outlet (102) is slidably connected to the front of the main body (1). A top cover (103) is movably connected to the top of the main body (1), characterized in that, It further includes: A mixing mechanism (2), the mixing mechanism (2) includes a sleeve (201), a cross chute sleeve (202) for affecting the mixing of materials, and a driven structure (3) for being fixed on the surface of the top cover (103); A driven structure (3), the driven structure (3) includes a fixing plate (301) and a connecting rod (302) for restricting the connection and being limited at the bottom of the fixing plate (301); The inside of the sleeve (201) is hollow, the outer surface of the sleeve (201) is rotatably connected with a cross chute sleeve (202), the top of the cross chute sleeve (202) is fixedly connected with a plurality of fixing rods, the tops of the plurality of fixing rods are fixedly connected to the bottom of the top cover (103), the outer surface of the connecting slide rod (203) is slidably connected with two connecting slide rods (203), the bottom of the connecting slide rod (203) is fixedly connected with a plurality of spiral rods (204), and the plurality of spiral rods (204) are rotatably connected with the outer surface of the sleeve (201).

2. The agricultural non-point source pollution treatment device according to claim 1, characterized in that: The top of the top cover (103) is rotatably connected with a driving disk (104), the top of the driving disk (104) is fixedly connected with a motor (105), and the outer surface of the driving disk (104) is sleeved with a driving belt (106).

3. An agricultural non-point source pollution treatment device according to claim 2, characterized in that: One end inner wall of the driving belt (106) away from the driving disk (104) is sleeved on the outer surface of a driven disk (107); Wherein, the bottom of the driven disk (107) is rotatably connected with the top of the top cover (103), the inside of the driven disk (107) is fixedly connected with the outer surface of the sleeve (201), and the sleeve (201) penetrates through the inside of the top cover (103) and extends to the bottom inner wall of the main body (1).

4. The agricultural non-point source pollution treatment device according to claim 3, wherein: The bottom of the fixing plate (301) is fixedly connected to the top of the top cover (103), the bottom of the fixing plate (301) is rotatably connected with the top of the driven disk (107), the bottom of the fixing plate (301) is fixedly connected with a connecting rod (302), and the connecting rod (302) penetrates through the inside of the driven disk (107) and extends to the bottom inner wall of the sleeve (201).

5. The agricultural non-point source pollution treatment device according to claim 4, characterized in that: The bottom of the connecting rod (302) is rotatably connected with the bottom inner wall of the sleeve (201), the outer surface of the connecting rod (302) is rotatably connected with a sleeve (303), the outer surface of the connecting rod (302) is fixedly connected with two arc chute platforms (304), the two arc chute platforms (304) are symmetrically arranged with the center of the sleeve (303) as the center, and the outer surface of the sleeve (303) is fixedly connected with two telescopic bases (305).

6. The agricultural non-point source pollution treatment device according to claim 5, characterized in that: The two telescopic bases (305) are symmetrically arranged with the center of the sleeve (303) as the center, the outer surface of the telescopic base (305) is fixedly connected with two spherical slide rods (306), the two spherical slide rods (306) are symmetrically arranged with the center of the telescopic base (305) as the center, and one side of the spherical slide rod (306) away from the telescopic base (305) slides on the outer surface of the arc chute platform (304).

7. An agricultural non-point source pollution treatment device according to claim 6, characterized in that: On one side outer wall of the telescopic base (305) close to the motor (105), a rolling mechanism (4) is provided. The rolling mechanism (4) includes a support rod (401) fixedly connected to the outer wall of the telescopic base (305) on the side close to the motor (105). Two driven plates (402) are rotatably connected to the outer surface of the telescopic base (305). Springs are fixedly connected to the outer walls of the two driven plates (402) on the side close to the support rod (401). A through rectangular groove is formed in the outer surface of the driven plate (402), and a sliding cavity is formed inside the rectangular groove.

8. The agricultural non-point source pollution treatment device according to claim 7, characterized in that: Two grooved arc-shaped arms (403) are rotatably connected to the side of the support rod (401) away from the telescopic base (305). The two grooved arc-shaped arms (403) are arranged in a staggered manner. An arc-shaped sliding groove is formed in the outer surface of the grooved arc-shaped arm (403). The end of the grooved arc-shaped arm (403) away from the telescopic base (305) penetrates into the interior of the rectangular groove and extends to the outside. The extended end of the grooved arc-shaped arm (403) penetrates into the side wall of the screw rod (204) close to the driven plate (402). A crushing box (404) is rotatably connected to the side of the grooved arc-shaped arm (403) away from the support rod (401). Wherein, a sliding rod is slidably connected inside the grooved arc-shaped arm (403), and the outer surface of the sliding rod is slidably connected to the inner wall of the sliding cavity of the driven plate (402).

9. The agricultural non-point source pollution treatment equipment according to claim 8, characterized in that: A dispersing mechanism (5) is fixedly connected to the side of the telescopic base (305) away from the support rod (401). The dispersing mechanism (5) includes a convex block rotating arm (501) fixedly connected to the outer wall of the telescopic base (305) on the side away from the support rod (401). Two fixing blocks are fixedly connected to the outer surface of the convex block rotating arm (501). The two fixing blocks are symmetrically arranged with respect to the center of the convex block rotating arm (501). The interior of the convex block rotating arm (501) is hollow. A sliding rod (502) is slidably connected to the inner wall of the convex block rotating arm (501). A spiral groove sleeve (503) is fixedly connected to the side of the sliding rod (502) away from the convex block rotating arm (501). Two through spiral-shaped sliding grooves are formed in the outer surface of the spiral groove sleeve (503). The fixing blocks slide inside the spiral-shaped sliding grooves. A blade sleeve (504) is slidably connected to the outer surface of the spiral groove sleeve (503). Two spiral sliding grooves are formed in the inner wall of the blade sleeve (504). The fixing blocks slide inside the inner walls of the spiral sliding grooves.

10. A method for using an agricultural non-point source pollution treatment device, characterized in that: Using the agricultural non-point source pollution control equipment as described in claim 9, the method includes the following steps: S1: Power connection: First, turn off the external power supply and connect the external power supply to the motor (105) equipment. S2: Device placement: The two protruding parts at both ends of the top cover (103) can be held by hand and placed into the interior of the main body (1). After confirming the position, fix it. S3: Starting device: Start the external power supply. After being driven by the power supply, the motor (105) drives the driving disk (104) to rotate, and the driving belt (106) applies rotation to the driven disk (107). The sleeve (201) fixed to the inner wall of the driven disk (107) rotates. At the same time, the rotation of the sleeve (201) will pull the connected screw rod (204) to mix and stir the material. After meeting the requirements, turn off the external power supply to stop the equipment.