High-yield insecticide preparation auxiliary equipment and implementation method thereof
The combination of the gas feeding unit and the drainage unit with stirring blades solves the problem of low mixing efficiency of the pesticide original medicine, achieves a fast and sufficient mixing effect, and improves the preparation efficiency.
Patent Information
- Application Number
- CN202511081622.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-04
- Publication Date
- 2025-09-26
AI Technical Summary
The mixing efficiency of pesticide technical in the prior art is low, and it is necessary to improve the mixing efficiency to improve the preparation efficiency.
The combination of gas feeding unit and stirring unit is adopted. The gas drives the ground raw medicine into the solution for mixing, and the drainage unit of the stirring blade is used to change the flow state of the solution to improve the mixing efficiency.
The rapid and thorough mixing of the ground original drug and the solution is achieved, thereby improving the mixing efficiency and the preparation efficiency.
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Figure CN120695688A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to a field of pesticide preparation, and in particular to a high-yield pesticide preparation auxiliary device and an implementation method thereof. Background Art
[0002] Insecticide is a chemical agent used to control pests. It is mainly used to control agricultural pests and urban health pests. It has a long history of use, large dosage, and many varieties. Its emergence and use have greatly increased agricultural production.
[0003] In the preparation process of insecticides, the original medicine usually needs to be chopped, ground and mixed. In the existing technology, the original medicine of insecticides is usually mixed by stirring rods, and its mixing efficiency is low. In order to further improve the mixing efficiency of the original medicine of insecticides, it is necessary to provide a preparation auxiliary equipment device to improve the preparation efficiency. Summary of the Invention
[0004] The purpose of the present invention is to solve the problem of low mixing efficiency of pesticide technical in the prior art, and to propose a high-yield pesticide preparation auxiliary equipment and an implementation method thereof.
[0005] In order to achieve the above object, the present invention adopts the following technical solutions:
[0006] A high-yield pesticide preparation auxiliary device and its implementation method, comprising: a mixing box, a first connecting plate, a gas feeding unit, a stirring unit and a second connecting plate;
[0007] The first connecting plate is fixedly arranged on the inner side of the mixing box, and a medicine feed groove is opened on the first connecting plate. The top of the medicine feed groove is connected to the medicine feed main pipe, and the medicine feed groove is connected to the gas medicine feed unit through a plurality of medicine feed branch pipes. A stirring unit is provided below the gas medicine feed unit, and the stirring unit is fixedly mounted on the second connecting plate. The first connecting plate and the second connecting plate divide the mixing box into a medicine feed chamber, a mixing chamber, and a motor placement chamber.
[0008] The medicine inlet main pipe is fixedly connected to the top end of the inner side of the mixing box and is communicated with the outside. An air inlet pipe is provided on one side of the mixing box.
[0009] Furthermore, the gas drug feeding unit includes an air intake chamber, an air intake branch pipe, a raw drug chamber and a drug introduction pipe;
[0010] One side of the air inlet chamber is connected to the air inlet pipe, and the other side is connected to the original medicine chamber through several air inlet branch pipes. One side of the original medicine chamber is connected to the medicine guide pipe, and several medicine inlets are opened at the top of the original medicine chamber. Each of the medicine inlets is connected to a medicine inlet branch pipe, and a gas blocking member is provided in the medicine inlet.
[0011] Furthermore, the gas blocking member includes a first blocking plate, a second blocking plate, a first airbag, a second airbag, a pushing block and a square sealing ring;
[0012] The first baffle is fixedly mounted on an inner wall on one side of the drug inlet and is arranged at an angle. The second baffle is rotatably connected to the connecting shaft. The connecting shaft is fixedly mounted on the inner wall of the drug inlet and is located on the other side of the drug inlet. When closed, one end of the second baffle is tightly fitted into one end of the first baffle to close the drug inlet. A limiting unit is provided on the second baffle. The first airbag is arranged at the bottom end of the second baffle. The square sealing ring is arranged in a cavity opened on both sides of the second baffle. One side of the square sealing ring is connected to the pushing block through a round rod. The pushing block is slidably connected to the inner wall of the cavity, and the pushing block is fixedly connected to the second airbag. The second airbag is located in the cavity and extends downward along the inner wall of the cavity to communicate with the first airbag.
[0013] Furthermore, the limiting unit includes a limiting slot and a limiting block, the limiting slot is provided on the second blocking plate of the limiting slot, the limiting slot is slidably connected to the limiting block, and the limiting block is fixedly connected to the connecting shaft.
[0014] Furthermore, the stirring unit includes a motor and a stirring rod;
[0015] The output end of the motor is fixedly connected to the stirring rod through a bearing and a second connecting plate. The stirring rod is provided with a plurality of stirring blades, and a drainage unit is provided in the stirring blades.
[0016] Furthermore, the drainage unit includes a square cavity and a plurality of communicating tubes, the square cavity starts inside the stirring blade, the plurality of communicating tubes are arranged on one side of the stirring blade, and the square cavity is connected to the plurality of communicating tubes.
[0017] Furthermore, the drainage unit includes a square cavity and a plurality of connecting tubes, the square cavity starts inside the dry stirring blade, the plurality of connecting tubes are arranged on one side of the dry stirring blade, and the square cavity is connected to the plurality of connecting tubes.
[0018] Furthermore, the connecting pipe is truncated cone-shaped.
[0019] Furthermore, the mixing box is also provided with a liquid inlet pipe and a liquid outlet pipe.
[0020] The present invention also provides a method for implementing the high-yield pesticide preparation auxiliary equipment according to claims 1-8, comprising the following steps:
[0021] Step 1: The ground raw medicine flows into the drug inlet trough through the drug inlet main pipe, and is then diverted to the drug inlet branch pipes through the drug inlet trough. Then, each drug inlet branch pipe inputs the ground raw medicine into the raw medicine chamber;
[0022] Step 2: Start the air pump to input the gas into the air inlet chamber through the air inlet pipe. The gas flows through the air inlet chamber into the air inlet branch pipe, and then into the raw medicine chamber through the air inlet branch pipe, and drives the ground raw medicine along the drug guide pipe into the solution in the mixing chamber for mixing;
[0023] Step 3: After the ground raw medicine enters the solution in the mixing chamber, start the motor to drive the stirring rod and stirring blades to stir the mixed solution. After the stirring is completed, a mixed medicine is obtained, turn off the air pump and motor, and output the mixed medicine through the liquid outlet pipe.
[0024] Compared with the existing technology, the advantages of the present invention are:
[0025] 1. The present invention is provided with a gas drug feeding unit, and the gas passes through the gas inlet pipe of the gas drug feeding unit and the gas inlet branch pipe in sequence into the raw drug chamber, driving the ground raw drug along the drug guide pipe into the solution in the mixing chamber, so that the ground raw drug and the solution are fully mixed, and the gas enters the solution to stir the solution so that the ground raw drug and the solution are quickly mixed, thereby improving the mixing efficiency.
[0026] 2. The present invention designs a drainage unit in the stirring blade. When the stirring rod rotates at high speed, part of the mixed solution will flow into the connecting tube and then flow out of the square cavity, changing the flow state of the solution, thereby breaking the vortex formed in the mixed solution when the stirring rod rotates at high speed, improving the stirring efficiency, and when the mixed solution enters the square cavity, it will collide and vibrate back and forth in the cavity, so that the original drug and the solution are mixed more fully and quickly, thereby further improving the mixing efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0027] Figure 1 This is a schematic diagram of the mixing box structure of a high-yield pesticide preparation auxiliary equipment proposed by the present invention.
[0028] Figure 2 The present invention provides a schematic structural diagram of the first connecting plate and gas feeding unit of a high-yield pesticide preparation auxiliary device.
[0029] Figure 3 The present invention provides a schematic structural diagram of a stirring unit and a second connecting plate of an auxiliary device for preparing a high-yield pesticide.
[0030] Figure 4 The present invention provides a schematic structural diagram of a gas feeding unit of an auxiliary device for preparing pesticides with high yield.
[0031] Figure 5 The present invention provides a schematic structural diagram of a gas barrier component for auxiliary equipment for preparing pesticides with high yield.
[0032] Figure 6This is an enlarged structural diagram of point A of an auxiliary device for preparing insecticides with high yield proposed by the present invention.
[0033] Figure 7 The present invention provides a cross-sectional view of an enlarged portion A of an auxiliary device for preparing pesticides with high yield.
[0034] Figure 8 The present invention provides a cross-sectional view of a stirring blade of a high-yield pesticide preparation auxiliary equipment.
[0035] In the figure: 1. mixing box, 2. first connecting plate, 21. medicine feed trough, 3. gas medicine feed unit, 31. air inlet chamber, 32. air inlet branch pipe, 33. raw medicine chamber, 34. medicine guide pipe, 35. medicine inlet port, 36. gas blocking member, 361. first blocking plate, 362. second blocking plate, 363. connecting shaft, 364. limiting groove, 365. limiting groove block, 366. first air bag, 367. second air bag, 368. pushing block, 369. square sealing ring, 4. stirring unit, 41. motor, 42. stirring rod, 43. stirring blade, 44. drainage unit, 441. square cavity, 442. connecting pipe, 5. second connecting plate, 6. medicine feed main pipe, 7. medicine feed branch pipe, 8. air inlet pipe, 9. liquid inlet pipe, 10. liquid outlet pipe. DETAILED DESCRIPTION
[0036] The present invention will be further explained below with reference to the accompanying drawings.
[0037] like Figure 1-3 As shown, the present invention provides a high-yield pesticide preparation auxiliary equipment, including: a mixing box 1, a first connecting plate 2, a gas feeding unit 3, a stirring unit 4 and a second connecting plate 5.
[0038] Among them, the first connecting plate 2 is fixedly arranged on the inner side of the mixing box 1, and a medicine feed groove 21 is opened on the first connecting plate 2. The top of the medicine feed groove 21 is connected to the medicine feed main pipe 6. The medicine feed groove 21 is connected to the gas medicine feed unit 3 through several medicine feed branch pipes 7. A stirring unit 4 is arranged below the gas medicine feed unit 3, and the stirring unit 4 is fixedly installed on the second connecting plate 5. The first connecting plate 2 and the second connecting plate 5 divide the mixing box 1 into a medicine feed chamber, a mixing chamber and a motor placement chamber. The medicine feed main pipe 6 is fixedly connected to the top of the inner side of the mixing box 1 and is connected to the outside world. An air inlet pipe 8 is provided on one side of the mixing box 1, and the mixing box 1 is also provided with a liquid inlet pipe 9, a liquid outlet pipe 10 and an air outlet.
[0039] In the above embodiment, the gas drug feeding unit 3 is located inside the mixing chamber, and its top end is connected to the drug feeding groove 21 on the first connecting plate 2 through a plurality of drug feeding branch pipes 7, so that the ground raw medicine can enter the gas drug feeding unit 3 through the drug feeding main pipe 6, the drug feeding groove 21 and the plurality of drug feeding branch pipes 7 in sequence.
[0040] The stirring unit 4 is arranged on the second connecting plate 5, wherein the motor 41 of the stirring unit 4 is located in the motor placement cavity, the stirring rod 42 and a plurality of stirring blades 43 are located inside the mixing cavity, and the plurality of stirring blades 43 are arranged on the stirring rod 42 from top to bottom, and the bottom end of the stirring rod 42 is fixedly connected to the output end of the motor 41. When the motor 41 is started, the stirring rod 42 and the plurality of stirring blades 43 will be driven to rotate to stir the mixed liquid in the mixing cavity to improve the mixing efficiency. Considering the sealing problem of the motor being connected to the mixing chamber from the lower end, an annular slider is provided at the bottom end of the stirring rod 42, and an annular groove is opened on the second connecting plate 5. The annular slider is slidably connected to the annular groove, and the annular slider and the second connecting plate 5 form a sealed cavity, and part of the output shaft of the output end of the motor 41 is located in the sealed cavity, thereby avoiding the solution from affecting the motor 41.
[0041] like Figure 4 As shown, the gas drug feeding unit 3 includes an air intake chamber 31, an air intake branch pipe 32, a raw drug chamber 33 and a drug guide pipe 34. A plurality of partitions are arranged inside the raw drug chamber 33 to form a plurality of chambers, and the top of each chamber corresponds to a drug inlet 35, which improves the gas drug delivery efficiency and avoids mutual interference between gases entering from different air intake branches 32. One end of the air intake chamber 31 is connected to the external air pump through the air intake pipe 8, and the other end is connected to the raw drug chamber 33 through several air intake branches 32, which plays the role of gas collection and sends the gas into different chambers of the raw drug chamber 33 through several air intake branches 32. Each chamber is connected to a drug guide pipe 34, so that the gas drives the ground raw drug along the drug guide pipe 34 into the solution for mixing. This structure directly brings the ground raw drug into the solution, so that the ground raw drug is fully in contact with the solution, and then the gas drives the ground raw drug to roll with the solution, so that the ground raw drug and the solution are mixed faster, thereby improving the mixing efficiency.
[0042] like Figure 5-7 As shown, a gas blocking member 36 is provided in the drug inlet 35 on the raw drug chamber 33 to prevent the gas from driving the ground raw drug into the drug inlet main pipe 6 and blowing the ground raw drug out of the mixing box 1.
[0043] The gas blocking member 36 includes a first blocking plate 361, a second blocking plate 362, a first air bag 366, a second air bag 367, a pushing block 368 and a square sealing ring 369. The first blocking plate 361 is fixedly mounted on the inner wall of one side of the drug inlet 35 and is arranged at an angle. The second blocking plate 362 is rotatably connected to the connecting shaft 363. The connecting shaft 363 is fixedly arranged on the inner wall of the drug inlet 35 and is located on the other side of the drug inlet 35. When closed, one end of the second blocking plate 362 is tightly attached to the one end of the first blocking plate 361 to seal the drug inlet 35 to prevent the gas from driving the ground raw medicine into the drug inlet main pipe 6. When the air pump is turned off, the second blocking plate 362 rotates downward under the action of gravity, and the ground raw medicine slides into the raw medicine chamber 33 through the gap opened by the first blocking plate 361 and the second blocking plate 362. A limiting unit is provided on the second blocking plate 362 for limiting the second blocking plate 362 to prevent the second blocking plate 362 from rotating too much. The blocking gas affecting the gas blocking member 36 drives the ground raw medicine into the medicine inlet main pipe 6. The first air bag 366 is fixedly mounted on the bottom end of the second blocking plate 362, which is respectively connected to the two second air bags 367. The two second air bags 367 are respectively arranged in the cavities opened on both sides of the second blocking plate 362. The two second air bags 367 are fixedly connected to the pushing blocks 368. The pushing blocks 368 are connected to the square sealing ring 369 through a round rod. During the start-up of the air pump, the air pressure in the second blocking plate 362 will increase. When one end of the second blocking plate 362 is tightly attached to one end of the first blocking plate 361, the gas in the first air bag 366 will flow into the second air bag 367 under the influence of air pressure. The second air bag 367 will expand, thereby pushing the pushing block 368 to slide in the cavity and pushing the square sealing ring 369 to slide outward along the cavity, so that the square sealing ring 369 is tightly pressed against the inner wall of the medicine inlet 35, thereby improving the sealing performance on both sides of the second blocking plate 362.
[0044] The limiting unit includes a limiting slot 364 and a limiting block 365. The limiting slot 364 is opened on the second blocking plate 362 of the limiting slot 364. The limiting slot 364 is slidably connected to the limiting block 365. The limiting block 365 is fixedly connected to the connecting shaft 363. The rotation angle of the second blocking plate 362 is limited by the limiting slot 364 and the limiting block 365.
[0045] like Figure 8 As shown, a drainage unit 44 is provided in the stirring blade 43 for changing the flow state of the solution when the stirring rod rotates at high speed.
[0046] The drainage unit 44 includes a square cavity 441 and several connecting tubes 442. Each square cavity 441 is connected to several connecting tubes 442 and is opened inside the stirring blade 43. The connecting tube 442 is located on one side of the stirring blade 43. The connecting tube 442 is a frustum. When the stirring blade 43 rotates at high speed with the stirring rod 42, part of the mixed solution will enter the square cavity 441 from the connecting tube 442 and will flow out from the square outlet of the square cavity 441 along the direction toward the inner wall of the mixing box 1, thereby disrupting the flow state of the mixed solution at the edge of the mixing chamber, thereby changing the flow state of the mixed solution at the edge of the mixing chamber, breaking the vortex formed in the mixed solution when the stirring rod 42 rotates at high speed, improving the stirring efficiency, and when the mixed solution enters the square cavity 441, it will collide with the cavity wall of the square cavity 441. The impact force will accelerate the speed of the ground original medicine and solution, thereby further improving the mixing efficiency of the ground original medicine and solution.
[0047] The working process of the present invention is:
[0048] The ground raw medicine is placed in the main medicine inlet pipe 6 and then flows into each sub-chamber of the raw medicine chamber 33 through a plurality of sub-medicine inlet pipes 7 .
[0049] After the medicine is released, the air pump is started, and the gas will pass through the air inlet pipe 8, the air inlet chamber 3 and the air inlet branch pipe 32 in turn into each sub-chamber of the raw medicine chamber 33. At this time, part of the gas flows upward to push the second blocking plate 362 to rotate, so that one end of the second blocking plate 362 is tightly attached to the end of the first blocking plate 361 to close the drug inlet 35, and the remaining gas will drive the ground raw medicine along the drug guide pipe 34 into the solution in the mixing chamber, and the gas enters the solution to stir the solution so that the ground raw medicine and the solution are quickly mixed.
[0050] At the same time, the motor 41 will start at the same time as the air pump, driving the stirring rod 42 and several stirring blades 43 to rotate, stirring the mixed solution in the mixing chamber, and during the high-speed stirring process, part of the mixed solution will enter the square cavity 441 from the connecting pipe 442 and collide with the cavity wall of the square cavity 441, thereby increasing the mixing rate of the ground original medicine and the solution, and then will flow out from the square outlet of the square cavity 441 toward the inner wall of the mixing box 1, thereby disrupting the flow state of the mixed solution at the edge of the mixing chamber, breaking the vortex formed in the mixed solution when the stirring rod 42 rotates at high speed, and improving the stirring efficiency.
[0051] Finally, after the stirring is completed and the mixed medicine is obtained, the motor 41 and the air pump are turned off, and the valve connecting the outer portion of the liquid outlet pipe is opened to allow the mixed medicine to flow out.
[0052] The present invention also provides a method for implementing the high-yield pesticide preparation auxiliary equipment according to claims 1-8, comprising the following steps:
[0053] Step 1: The ground raw medicine flows into the drug inlet trough 21 through the drug inlet main pipe 6, and is then branched to the drug inlet branch pipes 7 through the drug inlet trough 21. Then, each drug inlet branch pipe 7 inputs the ground raw medicine into the raw medicine chamber 33;
[0054] Step 2: Start the air pump to input the gas into the air inlet chamber 31 through the air inlet pipe 8. The gas flows through the air inlet chamber 31 into the air inlet branch pipe 32, and then enters the raw medicine chamber 33 through the air inlet branch pipe 32, and drives the ground raw medicine along the drug guide pipe 34 into the solution in the mixing chamber for mixing;
[0055] Step 3: After the ground raw medicine enters the solution in the mixing chamber, start the motor 41 to drive the stirring rod 42 and the stirring blade 43 to stir the mixed solution. After the stirring is completed, a mixed medicine is obtained, turn off the air pump and the motor 41, and output the mixed medicine through the liquid outlet pipe.
[0056] The present invention inputs gas into the gas drug feeding unit 3 through an air pump, so that the gas drives the ground original medicine into the solution, and stirs the solution when the gas enters the solution so that the ground original medicine and the solution are quickly mixed. At the same time, a motor 41 is used to drive the stirring rod 42 and a plurality of stirring blades 43 to rotate to stir the mixed solution in the mixing chamber. During the stirring process, part of the mixed solution will enter the square cavity 441 through the connecting pipe 442 and collide with the cavity wall of the square cavity 441, thereby increasing the mixing rate of the ground original medicine and the solution. Then, the mixed solution will flow out from the square outlet of the square cavity 441 toward the inner wall of the mixing box 1, thereby disrupting the flow state of the mixed solution at the edge of the mixing chamber, breaking the vortex formed in the mixed solution when the stirring rod 42 rotates at high speed, improving the stirring efficiency, and thus improving the preparation efficiency of the insecticide.
[0057] It is understood from common technical knowledge that the present invention may be implemented by other embodiments that do not depart from its spirit or essential features. Therefore, the embodiments disclosed above are, in all respects, merely illustrative and not exclusive. All modifications within the scope of the present invention or equivalent to the scope of the present invention are intended to be encompassed by the present invention.
Claims
1. A high-yield pesticide preparation auxiliary equipment, characterized in that: include: A mixing box (1), a first connecting plate (2), a gas feeding unit (3), a stirring unit (4), and a second connecting plate (5); The first connecting plate (2) is fixedly arranged on the inner side of the mixing box (1), and a medicine feed groove (21) is provided on the first connecting plate (2). The top of the medicine feed groove (21) is connected to the medicine feed main pipe (6). The medicine feed groove (21) is connected to the gas medicine feed unit (3) through a plurality of medicine feed branch pipes (7). A stirring unit (4) is provided below the gas medicine feed unit (3), and the stirring unit (4) is fixedly mounted on the second connecting plate (5). The first connecting plate (2) and the second connecting plate (5) divide the mixing box (1) into a medicine feed chamber, a mixing chamber, and a motor placement chamber. The medicine inlet main pipe (6) is fixedly connected to the top end of the inner side of the mixing box (1) and is communicated with the outside. An air inlet pipe (8) is provided on one side of the mixing box (1).
2. The high-yield pesticide preparation auxiliary equipment according to claim 1, characterized in that: The gas medicine feeding unit (3) comprises an air intake chamber (31), an air intake branch pipe (32), a raw medicine chamber (33) and a medicine introduction pipe (34); One side of the air inlet chamber (31) is connected to the air inlet pipe (8), and the other side is connected to the raw medicine chamber (33) through a plurality of air inlet branch pipes (32). One side of the raw medicine chamber (33) is connected to the drug introduction pipe (34), and a plurality of drug inlet ports (35) are opened at the top of the raw medicine chamber (33). Each of the drug inlet ports (35) is connected to a drug inlet branch pipe (7), and a gas blocking member (36) is provided in the drug inlet port (35).
3. The high-yield pesticide preparation auxiliary equipment according to claim 2, characterized in that: The gas blocking member (36) includes a first blocking plate (361), a second blocking plate (362), a first airbag (366), a second airbag (367), a pushing block (368) and a square sealing ring (369); The first blocking plate (361) is fixedly mounted on the inner wall of one side of the medicine inlet (35) and is arranged in an inclined manner. The second blocking plate (362) is rotatably connected to the connecting shaft (363). The connecting shaft (363) is fixedly mounted on the inner wall of the medicine inlet (35) and is located on the other side of the medicine inlet (35). When closed, one end of the second blocking plate (362) is tightly fitted on one end of the first blocking plate (361) to close the medicine inlet (35). A limiting unit is provided on the second blocking plate (362). The first airbag (3 66) is arranged at the bottom end of the second blocking plate (362), and the square sealing ring (369) is arranged in a cavity opened on both sides of the second blocking plate (362), one side of the square sealing ring (369) is connected to the push block (368) through a round rod, and the push block (368) is slidably connected to the inner wall of the cavity, and the push block (368) is fixedly connected to the second airbag (367), and the second airbag (367) is located in the cavity and extends downward along the inner wall of the cavity to communicate with the first airbag (366).
4. The high-yield pesticide preparation auxiliary equipment according to claim 3, characterized in that: The limiting unit comprises a limiting groove (364) and a limiting block (365); the limiting groove (364) is provided on a second blocking plate (362) of the limiting groove (364); the limiting groove (364) is slidably connected to the limiting block (365); and the limiting block (365) is fixedly connected to the connecting shaft (363).
5. The high-yield pesticide preparation auxiliary equipment according to claim 1, characterized in that: The stirring unit (4) includes a motor (41) and a stirring rod (42); The output end of the motor (41) is fixedly connected to the stirring rod (42) through a bearing and passes through the second connecting plate (5). The stirring rod (42) is provided with a plurality of stirring blades (43), and the stirring blades (43) are provided with a drainage unit (44).
6. The high-yield pesticide preparation auxiliary equipment according to claim 1, characterized in that: The drainage unit (44) comprises a square cavity (441) and a plurality of communicating tubes (442), wherein the square cavity (441) is opened inside the dry stirring blade (43), and the plurality of communicating tubes (442) are arranged on one side of the dry stirring blade (43), and the square cavity (441) is connected to the plurality of communicating tubes (442).
7. The high-yield pesticide preparation auxiliary equipment according to claim 1, characterized in that: The connecting pipe (442) is truncated cone-shaped.
8. The high-yield pesticide preparation auxiliary equipment according to claim 1, characterized in that: The mixing box (1) is also provided with a liquid inlet pipe (9) and a liquid outlet pipe (10).
9. A method for implementing the high-yield pesticide preparation auxiliary equipment according to any one of claims 1 to 8, characterized in that: The following steps are involved: Step 1: The ground raw medicine flows into the drug inlet trough (21) through the drug inlet main pipe (6), and is then diverted to the drug inlet branch pipes (7) through the drug inlet trough (21). Then, each drug inlet branch pipe (7) inputs the ground raw medicine into the raw medicine chamber (33); Step 2: Start the air pump to input the gas into the air inlet chamber (31) through the air inlet pipe (8); the gas flows into the air inlet branch pipe (32) through the air inlet chamber (31), and then enters the raw medicine chamber (33) through the air inlet branch pipe (32), and drives the ground raw medicine to enter the solution in the mixing chamber along the drug guide pipe (34) for mixing; Step 3: After the ground raw medicine enters the solution in the mixing chamber, the motor (41) is started to drive the stirring rod (42) and the stirring blade (43) to stir the mixed solution. After the stirring is completed, a mixed medicine is obtained, the air pump and the motor (41) are turned off, and the mixed medicine is output through the liquid outlet pipe.