Dissolving equipment for biopesticide production and processing
By introducing a swaying mechanism between the crushing roller and the dissolving cylinder into the biopesticide production equipment, the problem of uneven dissolution caused by raw materials not being crushed is solved, achieving more efficient dissolution and application results.
Patent Information
- Application Number
- CN202422870606.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-25
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2034-11-25
AI Technical Summary
Existing biological pesticide production and processing equipment cannot effectively crush raw materials when they enter, resulting in particulate matter affecting dissolution efficiency and uneven dissolution, which reduces the efficiency of use and work.
The system employs a combination of components such as crushing rollers, worm gears, worm wheels, electric push rods, and docking plates to crush the raw materials and agitate the dissolving cylinder, ensuring that the raw materials are effectively crushed and uniformly dissolved upon entry.
It improves dissolution and utilization efficiency, ensures uniform and complete dissolution of raw materials, and enhances the working efficiency of the equipment.
Smart Images

Figure CN223788423U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of biological pesticide production technology, and in particular to a dissolving device for biological pesticide production and processing. Background Technology
[0002] Biological pesticides are formulations that utilize living organisms, fungi, bacteria, insect viruses, genetically modified organisms, natural enemies, or their metabolites such as pheromones, growth hormones, naphthaleneacetic acid, and 2,4-D to kill or inhibit agricultural pests. Examples include fludioxonil, cypermethrin, and bifenazate. These pesticides effectively control mites and insects, improve crop resistance, and provide comprehensive protection. During pesticide production, various solutions need to be mixed in specific proportions to ensure complete dissolution.
[0003] For example, the dissolving equipment for biological pesticide production and processing disclosed in application number 202223040801.X, through the setting of the mixing component, when the equipment is running, the operation of the drive motor can drive the transmission rod installed inside the machine body to run, which in turn drives the mixing rod on the outside, as well as several rotating shafts and mixing blades to run, stirring the solution inside the machine body to make it completely dissolved. When the mixing blades are driven by the rotating shafts to contact the solution, the mixing blades can simultaneously drive the corresponding rotating shafts to rotate. While the mixing blades are rotating, they can also rotate along the transmission rod through the mixing rod, so that the solution inside the machine body can be dissolved better, improving the operating efficiency of the equipment.
[0004] However, the above-mentioned structure cannot crush the raw materials when they enter, which easily leads to the presence of particulate matter that affects dissolution and reduces dissolution efficiency. Furthermore, it cannot be effectively shaken, which prevents uniform and sufficient dissolution, thus reducing its usage efficiency and working efficiency. Therefore, we propose a dissolution device for the production and processing of biological pesticides. Utility Model Content
[0005] The purpose of this utility model is to at least solve one of the technical problems existing in the prior art, and to provide a dissolving device for the production and processing of biological pesticides. This device can crush the raw materials when they enter, so that the presence of particulate matter will not affect the dissolution, thus improving the dissolution efficiency. It can also effectively shake the raw materials, so that they can be dissolved evenly and fully, thereby improving the efficiency of use and work.
[0006] To achieve the above objectives, a dissolving device for the production and processing of biological pesticides is provided, comprising: an outer shell and a vertical pipe. Support plates are bolted to the left and right outer walls near the bottom of the outer shell. An inner shell is slidably connected within the outer shell. A dissolving cylinder is fitted inside the inner shell, and the top and bottom of the dissolving cylinder are closed. The top and bottom of the dissolving cylinder are respectively movably connected to the top and bottom of the inner cavity of the inner shell via bearings. The top and bottom of the dissolving cylinder extend through the inner rings of the bearings to the outside of the inner shell. A drain pipe is connected to the bottom of the dissolving cylinder. A through hole is provided at the bottom of the cavity, and the bottom end of the drain pipe extends through the through hole to the outer shell. A cover is bolted to the top of the outer shell, and the bottom of the cover is open. A feed pipe is connected through the top of the cover, and the bottom end of the feed pipe extends into the cover and is connected to a circular shell. A guide pipe is connected to the bottom of the circular shell. A perforation is provided at the top of the dissolving cylinder, and the bottom end of the guide pipe passes through the top of the outer shell and through the perforation to the dissolving cylinder. A liquid inlet pipe is connected through the right side of the cover, and the left end of the liquid inlet pipe is connected to the inside of the guide pipe.
[0007] According to the aforementioned dissolving equipment for biological pesticide production and processing, two mutually fitted rolling rollers are movably connected inside the circular housing via a rotating shaft and bearings. A drive motor is bolted to the inner wall of the front side of the cover near the left side, and the front ends of the rotating shafts on the front walls of the two rolling rollers pass through the inner rings of the bearings and are connected to mutually meshing gears. The rear end of the output shaft of the drive motor is bolted to the front wall of the left gear.
[0008] According to the aforementioned dissolving equipment for biological pesticide production and processing, a protective cover is bolted to the side of the support plate that is away from the outer shell, and an electric push rod is bolted to the bottom of the inner cavity of the protective cover. A round hole is opened at the top of the protective cover, and the top of the electric push rod passes through the round hole and is connected to a docking plate. Movable grooves matching the docking plates are opened on the left and right side walls of the outer shell, and the side of the docking plate opposite to the outer shell passes through the movable groove and is connected to the outer wall of the inner shell.
[0009] According to the aforementioned dissolving equipment for biological pesticide production and processing, a worm gear is sleeved on the outer wall of the inner shell of the dissolving cylinder, and a worm is engaged on the front side of the worm gear. The left end of the worm is movably connected to the left inner wall of the inner shell through a bearing. A rotary motor is bolted to the right inner wall of the inner shell, and the right end of the worm is bolted to the output shaft of the rotary motor.
[0010] According to the aforementioned dissolving equipment for biological pesticide production and processing, the bottom of the inner cavity of the dissolving cylinder is connected to an arc-shaped plate, and the bottom of the arc-shaped plate is provided with grooves near the left and right sides. The top of the inner cavity of the two grooves is connected to the dissolving cylinder. The bottom end of the vertical pipe is connected to the inside of the drain pipe, and a valve is installed on the vertical pipe.
[0011] According to the aforementioned dissolving equipment for biological pesticide production and processing, an installation groove is provided at the bottom center of the arc-shaped plate, and a stirring rod is movably connected to the top center of the arc-shaped plate via a bearing. A servo motor is bolted into the installation groove, and the bottom end of the stirring rod passes through the inner ring of the bearing and is connected to the output shaft of the servo motor.
[0012] According to the aforementioned dissolving equipment for the production and processing of biological pesticides, a number of evenly distributed arc-shaped blades are connected to the outer wall of the stirring rod.
[0013] The above solution has at least one of the following beneficial effects: This technical solution, through the cooperation between two crushing rollers, worm gear, worm wheel, electric push rod and docking plate and other components, can crush the raw material when it enters, so that the presence of particulate matter will not affect its dissolution, thus improving its dissolution efficiency. It can also effectively shake the raw material, so that it can be dissolved evenly and fully, thus improving its usage efficiency and working efficiency.
[0014] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description
[0015] The present invention will be further described below with reference to the accompanying drawings and embodiments;
[0016] Figure 1 This is a front perspective view of the present invention;
[0017] Figure 2 for Figure 1 A schematic diagram of the cross-sectional structure;
[0018] Figure 3 for Figure 1 A top-section view of the central cover and circular shell components;
[0019] Figure 4 for Figure 2 Enlarged view of point A in the image;
[0020] Figure 5 for Figure 1 Partial 3D view of components such as the connecting plate and inner shell.
[0021] Legend:
[0022] 1. Outer shell; 2. Cover; 3. Feed pipe; 4. Liquid inlet pipe; 5. Movable groove; 6. Connecting plate; 7. Electric push rod; 8. Protective cover; 9. Drain pipe; 10. Support plate; 11. Inner shell; 12. Arc plate; 13. Worm gear; 14. Dissolving cylinder; 15. Worm wheel; 16. Rotary motor; 17. Stirring rod; 18. Arc blade; 19. Guide pipe; 20. Compactor roller; 21. Circular shell; 22. Drive motor; 23. Gear; 24. Groove; 25. Valve; 26. Mounting groove; 27. Vertical pipe; 28. Servo motor. Detailed Implementation
[0023] This section will describe in detail the specific embodiments of the present utility model. The preferred embodiments of the present utility model are shown in the accompanying drawings. The purpose of the drawings is to supplement the textual description with graphics, so that people can intuitively and vividly understand each technical feature and the overall technical solution of the present utility model, but they should not be construed as limiting the scope of protection of the present utility model.
[0024] Reference Figures 1 to 4 This utility model discloses a dissolving device for biological pesticide production and processing, comprising an outer shell 1 and a vertical pipe 27. Support plates 10 are bolted to the left and right outer walls of the outer shell 1 near the bottom. An inner shell 11 is slidably connected inside the outer shell 1, and a dissolving cylinder 14 is fitted inside the inner shell 11. The top and bottom of the dissolving cylinder 14 are closed, and the top and bottom of the dissolving cylinder 14 are respectively movably connected to the top and bottom of the inner cavity of the inner shell 11 via bearings. The top and bottom of the dissolving cylinder 14 extend through the inner ring of the bearings to the outside of the inner shell 11. A drain pipe 9 is connected to the bottom of the dissolving cylinder 14. A through hole is provided at the bottom of the cavity, and the bottom end of the drain pipe 9 extends through the through hole to the outside of the outer shell 1. The top of the outer shell 1 is connected to the cover 2 by bolts, and the bottom of the cover 2 is open. The top of the cover 2 is connected through the feed pipe 3, and the bottom end of the feed pipe 3 extends into the cover 2 and is connected to the circular shell 21. The bottom of the circular shell 21 is connected to the guide pipe 19. The top of the dissolving cylinder 14 is provided with a perforation, and the bottom end of the guide pipe 19 extends through the top of the outer shell 1 and through the perforation into the dissolving cylinder 14. The right side of the cover 2 is connected through the liquid inlet pipe 4, and the left end of the liquid inlet pipe 4 is connected to the inside of the guide pipe 19.
[0025] The bottom of the inner cavity of the dissolving cylinder 14 is connected to an arc plate 12, and the bottom of the arc plate 12 is provided with grooves 24 near the left and right sides. The top of the inner cavity of the two grooves 24 is connected to the dissolving cylinder 14. The bottom end of the vertical pipe 27 is connected to the inside of the drain pipe 9, and a valve 25 is installed on the vertical pipe 27.
[0026] An installation groove 26 is provided at the bottom center of the arc plate 12, and an agitator 17 is movably connected to the top center of the arc plate 12 via a bearing. A servo motor 28 is connected to the installation groove 26 via bolts, and the bottom end of the agitator 17 passes through the inner ring of the bearing and is connected to the output shaft of the servo motor 28. Several evenly distributed arc blades 18 are connected to the outer wall of the agitator 17.
[0027] Inside the circular housing 21, two closely fitted crushing rollers 20 are movably connected via a rotating shaft and bearings. A drive motor 22 is bolted to the inner front wall of the cover 2 near the left side. The front ends of the rotating shafts on the front walls of the two crushing rollers 20 pass through the inner rings of the bearings and are connected to meshing gears 23. The rear end of the output shaft of the drive motor 22 is bolted to the front wall of the left gear 23. This structure enables the raw materials to be crushed when they enter, thus preventing the presence of particulate matter that could affect their dissolution and improving their dissolution efficiency.
[0028] A protective cover 8 is bolted to the side of the support plate 10 that is away from the outer shell 1. An electric push rod 7 is bolted to the bottom of the inner cavity of the protective cover 8. A round hole is opened on the top of the protective cover 8. The top of the electric push rod 7 passes through the round hole and is connected to the docking plate 6. Movable grooves 5 that match the docking plate 6 are opened on the left and right side walls of the outer shell 1. The side of the docking plate 6 opposite to the outer shell 1 passes through the movable groove 5 and is connected to the outer wall of the inner shell 11.
[0029] A worm gear 15 is fitted onto the outer wall of the inner shell 11 in the dissolving cylinder 14. A worm 13 meshes with the front side of the worm gear 15. The left end of the worm 13 is movably connected to the left inner wall of the inner shell 11 via a bearing. A rotary motor 16 is bolted to the right inner wall of the inner shell 11, and the right end of the worm 13 is bolted to the output shaft of the rotary motor 16. This structure allows for effective agitation, ensuring uniform and thorough dissolution, thus improving its efficiency and work efficiency.
[0030] Working Principle: In operation, this technical solution first places the outer casing 1 in the desired position using two support plates 10. Then, raw materials enter through the feed pipe 3, and liquid is introduced through the liquid inlet pipe 4. The drive motor 22 rotates the left gear 23, which in turn rotates the right gear 23. These two gears 23 then rotate the two crushing rollers 20, crushing the material and preventing particulate matter from affecting dissolution, thus improving dissolution efficiency. The crushed material and liquid then enter the dissolving cylinder 14 through the guide pipe 19. The servo motor 28 drives... The stirring rod 17 and the arc-shaped blade 18 achieve stirring, while the rotary motor 16 drives the dissolving cylinder 14 to rotate through the worm gear 13 and the worm wheel 15. The extension and retraction of the electric push rod 7 causes the docking plate 6 to slide up and down in the movable groove 5. The docking plate 6 drives the dissolving cylinder 14 to slide up and down in the outer shell 1 through the inner shell 11, which can effectively shake the dissolving cylinder 14, so that it can be effectively shaken, thereby making it uniform and sufficient to dissolve, improving its usage efficiency and working efficiency. When the dissolution is completed, the valve 25 is opened, and the vertical pipe 27 introduces the solution in the dissolving cylinder 14 into the drain pipe 9, and then discharges it through the drain pipe 9.
[0031] The embodiments of the present utility model have been described in detail above with reference to the accompanying drawings. However, the present utility model is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present utility model.
Claims
1. A dissolving apparatus for biopesticide production and processing, characterized by, Include: The left and right sides of the outer shell (1) are connected with support plates (10) near the bottom, and the inner shell (11) is connected with the outer shell (1), the inner shell (11) is sleeved with the dissolving cylinder (14), and the top and bottom of the dissolving cylinder (14) are closed, the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell (11) through the bearing, and the top and bottom of the dissolving cylinder (14) are connected with the inner cavity of the inner shell ( 2. The dissolving apparatus for biopesticide production and processing according to claim 1, characterized in that, 3. The dissolving apparatus for biopesticide production and processing according to claim 1, characterized in that, 4. The dissolving apparatus for biopesticide production and processing according to claim 1, characterized in that, 5. The dissolving apparatus for biopesticide production and processing according to claim 1, characterized in that, The inner cavity bottom of the dissolving cylinder (14) is connected with an arc-shaped plate (12), the bottom of the arc-shaped plate (12) is provided with a groove (24) near the left and right sides, the inner cavities of the two grooves (24) are communicated with the dissolving cylinder (14), the bottom end of the vertical pipe (27) is communicated with the inner part of the liquid discharge pipe (9), and the vertical pipe (27) is provided with a valve (25).
6. The dissolving apparatus for biopesticide production and processing according to claim 5, characterized in that, The middle part of the bottom of the arc-shaped plate (12) is provided with a mounting groove (26), the middle part of the top of the arc-shaped plate (12) is movably connected with an agitating rod (17) through a bearing, the mounting groove (26) is connected with a servo motor (28) through bolts, and the bottom end of the agitating rod (17) is connected with the output shaft of the servo motor (28) through the inner ring of the bearing.
7. The dissolving apparatus for biopesticide production and processing according to claim 6, characterized in that, The outer wall of the agitating rod (17) is connected with a plurality of arc-shaped blades (18) which are uniformly distributed.
Citation Information
Patent Citations
Dissolving equipment for biopesticide production and processing
CN218688364U