Damage-preventing type pesticide mixing device for improving bud rate of fresh corn
By designing an anti-damage mixing device and using a tank device, a protective device and a pneumatic device, the problem of damage to fresh corn seeds during the mixing process was solved, the mixing efficiency and seed germination rate were improved, and environmental pollution was reduced.
Patent Information
- Application Number
- CN202511016690.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-23
- Publication Date
- 2025-09-23
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing pesticide mixing device easily causes mechanical damage to fresh corn seeds during the pesticide mixing process, affecting the germination rate, and has low pesticide mixing efficiency.
A damage-resistant pesticide mixing device was designed, including a tank device, a protective device, a rotating mechanism and a pneumatic device. It protects seed integrity and improves pesticide mixing efficiency through various means such as shock absorption and buffering, stirring and mixing, and air drying.
It effectively reduces mechanical damage to seeds, improves mixing efficiency and quality, shortens drying time, and reduces environmental pollution caused by pesticides.
Smart Images

Figure CN120677889A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of medicine mixing, in particular to an anti-damage medicine mixing device for improving the sprout rate of fresh corn. Background Art
[0002] Fresh corn seeds (such as sweet corn and glutinous corn) have thin seed coats and water-rich endosperms. During the mixing process, they are easily damaged by mechanical friction and extrusion, which directly affects the germination rate. Therefore, the damage-resistant mixing device must achieve uniform adhesion of the pesticide while reducing physical damage to the seeds through structural optimization, taking into account both the "dressing effect" and "seed integrity protection." The essence of mixing pesticides is to precisely apply the functions of the pesticide to the target object through the close combination of "pesticide-material." This can not only effectively solve problems such as pests and diseases, storage, and growth, but also reduce costs and environmental burdens. It is a typical embodiment of the concept of "prevention first, precise application of pesticides" in agricultural production.
[0003] The existing medicine mixing device has a manual mixing method during operation, which leads to low mixing efficiency and easily damages the materials, reducing the quality of the material mixing. Therefore, a new design was made to address this situation. Summary of the Invention
[0004] To achieve the above objectives, the present invention is implemented through the following technical solutions: an anti-damage type medicine mixing device for improving the sprout rate of fresh corn, comprising a tank device, the interior of which is fixedly connected to the anti-damage device, the bottom of which is fixedly connected to a first motor, and the outer side of which is fixedly connected to a pneumatic device;
[0005] The tank device includes a tank shell, the top of the tank shell is fixedly connected with a feed pipe, the feed pipe is used to enter the medicine, generally the medicine is of liquid type, the material enters the tank shell from the top of the feed pipe, the top of the tank shell is fixedly connected to the side close to the feed pipe, the material collides with the protective device during the process of descending from the feed pipe, thereby achieving the effect of shock absorption and buffering of the material, slowing down the descending speed of the material, thereby reducing the damage rate of the material, reducing mechanical damage to the seeds, and protecting the activity of the seeds. The bottom of the tank shell is fixedly connected to the outer side of the first motor. The bottom of the inner wall of the tank shell is fixedly connected with a connecting end, and the inner side of the connecting end is rotatably connected with a central rotating shaft. The material and the medicine are mixed inside the tank shell. The central rotating shaft is rotated by the first motor, and the central rotating shaft drives the anti-damage device to rotate, so as to achieve the stirring operation of the material, thereby improving the mixing effect of the material and the medicine. The bottom of the central rotating shaft is fixedly connected to the output end of the first motor, and the outer side of the central rotating shaft is fixedly connected to the inner side of the anti-damage device. The anti-damage device reduces damage to the material during the stirring and mixing of the material, thereby improving the utilization of the material. The rate is improved, and the operating efficiency of the equipment is improved. One side of the outer side of the tank shell is fixedly connected to the drug inlet pipe, and the outer side of the tank shell is fixedly connected to the rotating mechanism. The bottom of the tank shell is provided with a rotating mechanism. The bottom of the equipment is stirred by the rotating mechanism, thereby improving the material mixing efficiency, avoiding the precipitation of materials and agents affecting the material mixing quality, eliminating bottom sedimentation, avoiding material "dead corners", enhancing material fluidity, and improving mixing efficiency. Bottom stirring can prevent the agents from solidifying or caking at the bottom. After the materials are mixed, the materials are flushed by the pneumatic device to achieve the effect of rapid air drying of the materials, thereby accelerating drying, solidifying the adhesion of the agents, and removing the moisture on the surface of the materials, shortening the drying time, avoiding the agglomeration of the materials or the falling off of the agents due to long-term moisture, and at the same time improving the film forming speed on the surface of the materials. One side of the bottom of the tank shell is fixedly connected to the discharge valve, and finally the materials are discharged outward from the side of the discharge valve, thereby facilitating subsequent processing. The side of the outer side of the tank shell near the anti-damage device is fixedly connected to the filter plate. During the rotation of the anti-damage device, the outer side of the filter plate is rubbed to achieve the effect of frictional stripping of the materials, reducing material blockage, and avoiding affecting the ventilation effect of the pneumatic device.
[0006] Preferably, the protective device includes a protective frame, the bottom of which is fixedly connected to a connecting post, the outer side of which is sheathed with a first spring, and the outer side of which is slidably connected to a composite device. When material enters from the feed pipe and contacts the composite device, the weight of the material causes the composite device to slide on the connecting post, compressing the first spring, thereby achieving a shock-absorbing and buffering effect, thereby reducing the collision pressure between the material and the components, thereby reducing the damage rate of the material, protecting the integrity of the material, preventing breakage, alleviating the impact during material transportation, stabilizing the flow rate, protecting the equipment, and improving the uniformity of feeding.
[0007] Preferably, the composite device includes a circular plate, the outer side of which is fixedly connected to a soft gel plate, which is made of silicone material and has good wear resistance and buffering effect, thereby reducing the wear between the material and the components, thereby extending the service life of the components and reducing the bumps on the materials. The outer side of the soft gel plate away from the circular plate is fixedly connected to a composite frame, and the material is flexibly contacted with the soft gel plate, and falls in a step-by-step manner or reduces the drop, so as to reduce the collision force between the materials and protect the integrity of the material shape. The bottom of the soft gel plate is fixedly connected to a support rod. When the material collides with the circular plate, the circular plate controls the support rod to slide on the outside of the composite frame to drive the soft gel plate to be squeezed. During the squeezing process of the support rod, the second spring is compressed to play a role of shock absorption and buffering. The outer side of the support rod is slidably connected to the outer side of the composite frame, and the outer side of the support rod is sleeved with a second spring.
[0008] Preferably, the rotating mechanism includes a rotating frame body, which is provided with multiple rotating mechanisms to further improve the rotating stirring operation, enhance the fluidity of materials, and improve the mixing efficiency. The outer side of the rotating frame body is fixedly connected to the outer side of the tank shell, and the side of the rotating frame body away from the tank shell is fixedly connected to the second motor, and the connecting shaft is controlled by the second motor to drive the rotating frame mechanism to rotate, and the component stirs the material and medicine at the bottom of the equipment, thereby increasing the material mixing efficiency, avoiding the precipitation of materials and medicines affecting the material mixing quality, eliminating bottom sedimentation, avoiding material "dead corners", enhancing material fluidity, and improving mixing efficiency. Bottom stirring can avoid the medicine from solidifying or agglomerating at the bottom. The output end of the second motor is fixedly connected to the connecting shaft, and the outer side of the connecting shaft is rotatably connected to the outer side of the rotating frame body, and the side of the connecting shaft away from the second motor is fixedly connected to the rotating frame mechanism.
[0009] Preferably, the rotating frame mechanism includes an external connection end, the outer side of the external connection end is fixedly connected to a rotating bracket, the outer side of the rotating bracket is slidably connected to a connecting block, and one side of the outer side of the connecting block is fixedly connected to a silicone frame, and the silicone frame is made of silicone material, so as to increase the wear resistance and buffering effect of the components, avoid damage to the material when the silicone frame rotates and stirs, and reduce the material damage rate. A third spring is provided on the side of the outer side of the connecting block close to the silicone frame. When the silicone frame contacts the material, the silicone frame drives the connecting block to slide on the outer side of the rotating bracket to squeeze the third spring, thereby achieving a certain shock-absorbing and buffering effect, reducing the impact pressure on the material, and avoiding damage to the material caused by excessive stirring pressure.
[0010] Preferably, the anti-damage device includes an anti-damage frame, the inner side of the anti-damage frame is fixedly connected to the outer side of the central rotating shaft, and the outer side of the anti-damage frame is fixedly connected to a folding rubber plate. During the rotation of the central rotating shaft, the centrifugal force generated by the rotation drives the spherical block to move on the inner side of the folding rubber plate toward the side of the friction mechanism, thereby achieving the effect of extending the component, thereby increasing the stirring range of the component and improving the mixing effect of the material and the agent. At the same time, the folding rubber plate is made of rubber material, thereby increasing the ductility of the component and improving the toughness of the component, thereby reducing the wear on the material during the stirring process and reducing the material damage rate. The folding rubber plate is provided with a spherical block inside. As the central rotating shaft stops rotating, the spherical block is redistributed on the inner side of the folding rubber plate, thereby facilitating the contraction of the component. The friction mechanism is attached to the inner wall surface of the equipment as the component extends. The outer side of the folding rubber plate away from the anti-damage frame is fixedly connected to the friction mechanism. When the friction mechanism rotates with the central rotating shaft, it rubs and cleans one side of the filter plate to avoid clogging of the holes.
[0011] Preferably, the friction mechanism includes a friction frame, an outer side of the friction frame is provided with an arc groove, and a receiving shaft is slidably connected between the opposite surfaces of the arc groove. When the friction column contacts the inner wall of the equipment, the receiving shaft slides inside the arc groove to make the telescopic rod squeeze the fourth spring, thereby playing a shock-absorbing and buffering role, reducing the vibration amplitude of the component, improving the stability of the component, and avoiding affecting the rotation effect of the component. The outer side of the receiving shaft is rotatably connected to the friction column, and the central rotating shaft drives the friction column to rotate, and the friction column rubs the inner wall of the equipment, thereby achieving the effect of cleaning the material on the inner wall of the equipment, reducing the material from entering the pneumatic device through the filter plate, avoiding corrosion of the equipment, and thus extending the service life of the equipment. The outer side of the receiving shaft is fixedly connected to a connecting block, and one side of the outer side of the connecting block is fixedly connected to the telescopic rod, and the outer side of the telescopic rod is sleeved with a fourth spring.
[0012] Preferably, the pneumatic device includes a pneumatic duct, and the side of the pneumatic duct adjacent to the air outlet adopts an inclined structure, so that when equipment materials or liquids accidentally enter, it is convenient to discharge them later due to the drop, thereby keeping the inside of the equipment clean and avoiding affecting the airflow effect. The outside of the pneumatic duct is fixedly connected to a fan, and wind force is generated by the fan. The airflow flows inside the pneumatic duct, and the wind force enters the inside of the equipment through the air outlet, thereby achieving the effect of air-drying materials and agents, thereby improving the film-forming efficiency of the material surface, preventing and controlling pests and diseases, reducing losses, improving material resistance, promoting growth, improving agent utilization, reducing costs and pollution, and mixing medicines can reduce the pollution of soil and water sources by medicines, and also reduce damage to non-target organisms. The pneumatic duct A grille cover is fixedly connected to the side of the outside close to the fan, and the grille cover serves to block the entry of external impurities to avoid affecting the operating efficiency during the drying process. A funnel plate is fixedly connected to the side of the inner wall of the grille cover close to the fan, and the narrower side of the funnel plate faces the scraping mechanism, so as to reduce the entry of impurities and encourage the impurities to be discharged outward along with the movement of the funnel plate structure. A scraping mechanism is fixedly connected to the side of the inner wall of the grille cover away from the funnel plate, and the airflow drives the scraping mechanism to rotate inside the grille cover, rubbing the inner wall of the grille cover, so as to avoid clogging of the holes and affecting the subsequent air intake efficiency. An air outlet is provided on the side of the outside of the pneumatic duct close to the tank shell, which is evenly distributed through multiple air outlets to increase the air intake volume, thereby maintaining continuous air drying efficiency.
[0013] Preferably, the scraping mechanism includes a rotating shaft, a rotating column rotatably connected to the outer side of the rotating shaft, a scraping bracket fixedly connected to the outer side of the rotating column, a scraping column rotatably connected to the outer side of the scraping bracket on the side away from the rotating shaft, and a paddle fixedly connected to the outer side of the rotating column away from the scraping bracket. Wind impacts the paddle, which drives the rotating column to rotate, causing the scraping bracket to control the scraping column to rub against the inner wall of the component, thereby cleaning impurities from the inner wall of the component and preventing impurities from clogging the holes after long-term operation, thereby preventing the subsequent operation of the equipment from being affected.
[0014] Preferably, the inner side of the scraper bracket is fixedly connected with a connecting rod, and the connecting rod drives the fifth spring to support the friction column, so as to reduce the amplitude of the component, thereby improving the stability of the component and avoiding affecting the subsequent operation effect of the component. The outer side of the connecting rod is sleeved with a fifth spring, and the outer side of the connecting rod is fixedly connected with a scraper shell on the side away from the fifth spring, and the inner side of the scraper shell is fixedly connected with a friction block. When the scraper column rotates with friction with the inner wall of the component, the scraper column frictionally adapts to the friction block, and the friction block cleans impurities on the surface of the scraper column to avoid excessive adhesion of impurities and avoid affecting the subsequent friction effect of the component.
[0015] The present invention provides a damage-resistant medicine mixing device for improving the sprout rate of fresh corn. It has the following beneficial effects:
[0016] 1. The damage-proof drug mixing device for improving the sprout rate of fresh corn is designed through a tank device. The drug feed pipe is used to enter the drug. Generally, the drug is of liquid type. The material enters the tank shell from the top of the feed pipe. The material collides with the protective device during its descent from the feed pipe, thereby achieving the effect of shock absorption and buffering on the material, slowing down the descent speed of the material, thereby reducing the damage rate of the material, reducing mechanical damage to the seeds, and protecting the activity of the seeds. The material and the drug are mixed inside the tank shell, and the central shaft is controlled by the first motor to rotate. The central shaft drives the anti-damage device to rotate, thereby achieving the mixing operation of the material, thereby improving the mixing effect of the material and the drug. The anti-damage device reduces damage to the material during the mixing process, thereby improving the utilization rate of the material and the operating efficiency of the equipment. Secondly, during the rotation of the anti-damage device The outer side of the filter plate is rubbed to achieve the effect of frictional stripping of the material, reduce material blockage, and avoid affecting the ventilation effect of the pneumatic device. A rotating mechanism is provided at the bottom of the tank shell, and the bottom of the equipment is stirred by the rotating mechanism to increase the material mixing efficiency, avoid the precipitation of materials and reagents affecting the material mixing quality, eliminate bottom sedimentation, avoid material "dead corners", enhance material fluidity, and improve mixing efficiency. Bottom stirring can prevent the reagent from solidifying or agglomerating at the bottom. After the material is mixed, the material is flushed by the pneumatic device to achieve the effect of rapid air drying of the material, thereby accelerating drying and solidifying the attachment of the reagent, which can take away the moisture on the surface of the material, shorten the drying time, avoid the material from agglomerating or the reagent falling off due to long-term moisture, and at the same time increase the film forming speed on the material surface. Finally, the material is discharged outward from one side of the discharge valve, which is convenient for subsequent processing.
[0017] 2. The damage-proof medicine mixing device for improving the germination rate of fresh corn is designed with a composite device. When the material collides with the circular plate, the circular plate controls the support rod to slide on the outside of the composite frame to drive the soft gelatin plate to be squeezed. During the squeezing process of the support rod, the second spring is compressed to play a shock-absorbing and buffering role. The soft gelatin plate is made of silicone material, which has good wear resistance and buffering effect, thereby reducing the wear between the material and the components, thereby extending the service life of the components and reducing the collision with the material. The material is in flexible contact with the soft gelatin plate, falls in a step-by-step manner or reduces the drop, thereby reducing the collision force between the materials and protecting the integrity of the material shape.
[0018] 3. The damage-resistant drug mixing device for improving the sprout rate of fresh corn is designed with an damage-resistant device. During the rotation of the central shaft, the centrifugal force generated by the rotation drives the spherical blocks to move on the inner side of the folding rubber plate toward the side of the friction mechanism, thereby achieving the effect of extending the component, thereby increasing the stirring range of the component and improving the mixing effect of the material and the agent. At the same time, the folding rubber plate is made of rubber material to increase the ductility of the component and improve the toughness of the component, thereby reducing the wear on the material during the stirring process and reducing the material damage rate. As the central shaft stops rotating, the spherical blocks are redistributed on the inner side of the folding rubber plate to facilitate the contraction of the component. The friction mechanism extends and fits onto the inner wall surface of the equipment. When the friction mechanism rotates with the central shaft, it rubs and cleans one side of the filter plate to avoid clogging of the holes.
[0019] 4. The damage-proof drug mixing device for improving the bud rate of fresh corn is designed with a pneumatic device. The fan generates wind force, and the air flow flows inside the pneumatic duct. The wind force enters the interior of the equipment through the air outlet, thereby achieving the effect of air-drying the material and the drug, thereby improving the film-forming efficiency of the material surface, preventing and controlling pests and diseases, reducing losses, improving the material's resistance to stress, promoting growth, improving the utilization rate of the drug, reducing costs and pollution. Drug mixing can reduce the pollution of the drug to the soil and water sources, and also reduce the damage to non-target organisms. The multiple air outlets are evenly distributed to increase the air intake, thereby maintaining continuous air drying. Efficiency, the side of the pneumatic duct adjacent to the air outlet adopts an inclined structure, so that when equipment materials or liquids accidentally enter, they are easily discharged due to the subsequent drop, thereby keeping the inside of the equipment clean and avoiding affecting the airflow effect. The grille cover plays a role in blocking the entry of external impurities, avoiding affecting the operating efficiency during the air drying process. The airflow drives the scraping mechanism to rotate inside the grille cover, rubbing the inner wall of the grille cover, so as to avoid clogging of the holes and affecting the subsequent air intake efficiency. The narrower side of the funnel plate faces the scraping mechanism, so as to reduce the entry of impurities and prompt the impurities to move outward along with the funnel plate structure.
[0020] 5. The damage-proof medicine mixing device for improving the germination rate of fresh corn is designed with a scraping mechanism. The wind impacts the paddle plate, and the paddle plate drives the rotating column to rotate, so that the scraping bracket controls the scraping column to rub the inner wall of the component, thereby cleaning the impurities on the inner wall of the component, avoiding the adhesion of impurities to the holes and clogging after long-term operation, and preventing the subsequent equipment operation from being affected. When the scraping column rotates with friction with the inner wall of the component, the scraping column rubs and adapts to the friction block, and the friction block cleans the impurities on the surface of the scraping column, avoiding excessive adhesion of impurities and avoiding affecting the subsequent friction effect of the component. Secondly, the connecting rod drives the fifth spring to support the friction column, thereby reducing the amplitude of the component, thereby improving the stability of the component and avoiding affecting the subsequent operation effect of the component. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1This is a schematic diagram of the external structure of the damage-proof drug mixing device for improving the sprout rate of fresh corn according to the present invention;
[0022] Figure 2 This is a schematic cross-sectional view of the damage-resistant medicine mixing device for high fresh corn sprout rate according to the present invention;
[0023] Figure 3 This is a schematic diagram of the cross-sectional structure of the tank device of the present invention;
[0024] Figure 4 Schematic diagram of the cross-sectional structure of the protective device of the present invention;
[0025] Figure 5 This is a schematic structural diagram of the rotating frame mechanism of the present invention;
[0026] Figure 6 Schematic diagram of the cross-sectional structure of the anti-injury device of the present invention;
[0027] Figure 7 Schematic diagram of the friction mechanism structure of the present invention;
[0028] Figure 8 Schematic diagram of the cross-sectional structure of the pneumatic device of the present invention;
[0029] Figure 9 This is a schematic structural diagram of the scraping mechanism of the present invention;
[0030] Figure 10 It is a schematic diagram of the partial structure of the scraping mechanism of the present invention.
[0031] In the figure: 1. tank device; 2. anti-damage device; 3. pneumatic device; 4. first motor; 11. tank body; 12. feed pipe; 13. discharge valve; 14. connecting end; 15. central rotating shaft; 16. medicine feed pipe; 17. protective device; 18. filter plate; 19. rotating mechanism; 171. protective frame; 172. connecting column; 173. first spring; 174. composite device; 1741. circular plate; 1742. soft gel board; 1743. support rod; 1744. second spring; 1745. composite frame; 191. rotating frame; 192. second motor; 193. connecting shaft; 194. rotating frame mechanism; 1941. external terminal; 1942. rotating bracket; 1943. Connecting block; 1944. Third spring; 1945. Silicone frame; 21. Anti-damage frame; 22. Folding rubber plate; 23. Spherical block; 24. Friction mechanism; 241. Friction frame; 242. Supporting shaft; 243. Friction column; 244. Connecting block; 245. Telescopic rod; 246. Fourth spring; 247. Arc groove; 31. Pneumatic duct; 32. Fan; 33. Air outlet; 34. Grille cover; 35. Funnel plate; 36. Scraping mechanism; 361. Rotating shaft; 362. Rotating column; 363. Paddle board; 364. Scraping bracket; 365. Scraping column; 366. Connecting rod; 367. Fifth spring; 368. Scraping shell; 369. Friction block. DETAILED DESCRIPTION
[0032] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0033] The first embodiment, as Figures 1 to 5 As shown, the present invention provides a technical solution: an anti-damage type medicine mixing device for improving the sprout rate of fresh corn, comprising a tank device 1, an anti-damage device 2 fixedly connected to the interior of the tank device 1, a first motor 4 fixedly connected to the bottom of the tank device 1, and a pneumatic device 3 fixedly connected to the outside of the tank device 1;
[0034] The tank device 1 includes a tank shell 11, the top of the tank shell 11 is fixedly connected to a feed pipe 12, the top of the tank shell 11 is fixedly connected to a protective device 17 on one side near the feed pipe 12, the bottom of the tank shell 11 is fixedly connected to the outside of the first motor 4, the bottom of the inner wall of the tank shell 11 is fixedly connected to a connecting end 14, the inner side of the connecting end 14 is rotatably connected to a central rotating shaft 15, the bottom of the central rotating shaft 15 is fixedly connected to the output end of the first motor 4, the outer side of the central rotating shaft 15 is fixedly connected to the inner side of the anti-damage device 2, one side of the outside of the tank shell 11 is fixedly connected to a drug feed pipe 16, the outside of the tank shell 11 is fixedly connected to a rotating mechanism 19, one side of the bottom of the tank shell 11 is fixedly connected to a discharge valve 13, and the side of the outside of the tank shell 11 near the anti-damage device 2 is fixedly connected to a filter plate 18. The medicine inlet pipe 16 is used to enter the medicine. Generally, the medicine is of liquid type. The material enters the tank shell 11 from the top of the feed pipe 12. The material collides with the protective device 17 during the process of descending from the feed pipe 12, thereby achieving the effect of shock absorption and buffering of the material, slowing down the descent speed of the material, thereby reducing the damage rate of the material, reducing mechanical damage to the seeds, and protecting the activity of the seeds. The material and the medicine are mixed inside the tank shell 11, and the central shaft 15 is controlled to rotate by the first motor 4. The central shaft 15 drives the anti-damage device 2 to rotate, thereby achieving the stirring operation of the material, thereby improving the mixing effect of the material and the medicine. The anti-damage device 2 reduces the damage to the material during the stirring and mixing of the material, thereby improving the utilization rate of the material and the operating efficiency of the equipment. Secondly, the anti-damage device 2 rubs the outer side of the filter plate 18 during the rotation. , so as to achieve the effect of frictional stripping of materials, reduce material blockage, and avoid affecting the ventilation effect of the pneumatic device 3. A rotating mechanism 19 is provided at the bottom of the tank shell 11, and the bottom of the equipment is stirred by the rotating mechanism 19, so as to increase the material mixing efficiency, avoid the precipitation of materials and reagents affecting the material mixing quality, eliminate bottom sedimentation, avoid material "dead corners", enhance material fluidity, and improve mixing efficiency. Bottom stirring can prevent the reagent from solidifying or agglomerating at the bottom. After the materials are mixed, the materials are flushed by the pneumatic device 3 to achieve the effect of quickly drying the materials, thereby accelerating drying, solidifying the attachment of the reagent, taking away the water vapor on the surface of the material, shortening the drying time, avoiding agglomeration of the material or the falling off of the reagent due to long-term moisture, and at the same time increasing the film forming speed on the material surface. Finally, the material is discharged outward from the side of the discharge valve 13, which is convenient for subsequent processing.
[0035] The protective device 17 includes a protective frame 171, the bottom of which is fixedly connected to a connecting post 172. A first spring 173 is sleeved on the outer side of the connecting post 172, and a composite device 174 is slidably connected to the outer side of the connecting post 172. When material enters the feed pipe 12, it contacts the composite device 174. The weight of the material causes the composite device 174 to slide on the connecting post 172, squeezing the first spring 173. This achieves a shock-absorbing and buffering effect, thereby reducing the collision pressure between the material and the components, thereby reducing the damage rate of the material, protecting the integrity of the material, preventing breakage, alleviating the impact of material transportation, stabilizing the flow rate, protecting the equipment, and improving the uniformity of feeding.
[0036] The composite device 174 includes a circular plate 1741, the outer side of the circular plate 1741 is fixedly connected to a gelatinous soft plate 1742, the outer side of the gelatinous soft plate 1742 away from the circular plate 1741 is fixedly connected to a composite frame 1745, the bottom of the gelatinous soft plate 1742 is fixedly connected to a support rod 1743, the outer side of the support rod 1743 is slidably connected to the outer side of the composite frame 1745, and the outer side of the support rod 1743 is sleeved with a second spring 1744. When the material collides with the circular plate 1741, the circular plate 1741 controls the support rod 1743 to slide on the outside of the composite frame 1745 to drive the soft gel plate 1742 to be squeezed. During the squeezing process of the support rod 1743, the second spring 1744 is compressed to play a shock-absorbing and buffering role. The soft gel plate 1742 is made of silicone material, which has good wear resistance and buffering effect, thereby reducing the wear between the material and the components, thereby extending the service life of the components and reducing the collision with the material. The material is in flexible contact with the soft gel plate 1742, falls in a step-by-step manner or reduces the drop, thereby reducing the collision force between the materials and protecting the integrity of the material shape.
[0037] The rotating mechanism 19 includes a rotating frame 191. The outer side of the rotating frame 191 is fixedly connected to the outer side of the tank shell 11. A second motor 192 is fixedly connected to the side of the rotating frame 191 away from the tank shell 11. The output end of the second motor 192 is fixedly connected to a connecting shaft 193. The outer side of the connecting shaft 193 is rotatably connected to the outer side of the rotating frame 191. The side of the connecting shaft 193 away from the second motor 192 is fixedly connected to a rotating frame mechanism 194. The second motor 192 controls the connecting shaft 193 to drive the rotating frame mechanism 194 to rotate. The components stir the materials and reagents at the bottom of the equipment, thereby increasing the material mixing efficiency, preventing the sedimentation of the materials and reagents from affecting the material mixing quality, eliminating bottom sedimentation, avoiding material "dead corners", enhancing material fluidity, and improving mixing efficiency. Bottom stirring can prevent the reagents from solidifying or agglomerating at the bottom. By providing multiple rotating mechanisms 19, the rotation and stirring operation is further improved, the material fluidity is enhanced, and the mixing efficiency is improved.
[0038] The rotating frame mechanism 194 includes an external connection end 1941, fixedly connected to a rotating bracket 1942 on the outside of the external connection end 1941. A connecting block 1943 is slidably connected to the outside of the rotating bracket 1942. A silicone frame 1945 is fixedly connected to the outside of the connecting block 1943. A third spring 1944 is sleeved on the side of the connecting block 1943 adjacent to the silicone frame 1945. The silicone frame 1945 is made of silicone to increase its wear resistance and cushioning effect, preventing damage to the material during its rotation and stirring, thereby reducing the material damage rate. Furthermore, when the silicone frame 1945 comes into contact with the material, it drives the connecting block 1943 to slide outside the rotating bracket 1942, squeezing the third spring 1944. This provides a certain degree of shock absorption and buffering, reducing the impact pressure on the material and preventing damage caused by excessive stirring pressure.
[0039] The second embodiment, based on the first embodiment, see Figures 6 and 7 As shown, the anti-injury device 2 includes an anti-injury frame 21, the inner side of the anti-injury frame 21 is fixedly connected to the outer side of the central rotating shaft 15, the outer side of the anti-injury frame 21 is fixedly connected to a folding rubber plate 22, a spherical block 23 is provided inside the folding rubber plate 22, and the outer side of the folding rubber plate 22 away from the anti-injury frame 21 is fixedly connected to a friction mechanism 24. During the rotation of the central shaft 15, the centrifugal force generated by the rotation drives the spherical blocks 23 to move on the inner side of the folded rubber plate 22 toward the side of the friction mechanism 24, thereby achieving the effect of extending the component, thereby increasing the stirring range of the component and improving the mixing effect of the material and the agent. At the same time, the folded rubber plate 22 is made of rubber material to increase the ductility of the component and improve the toughness of the component, thereby reducing the wear on the material during the stirring process and reducing the material damage rate. As the central shaft 15 stops rotating, the spherical blocks 23 are redistributed on the inner side of the folded rubber plate 22 to facilitate the contraction of the component. The friction mechanism 24 extends and fits onto the inner wall surface of the equipment. When the friction mechanism 24 rotates with the central shaft 15, it rubs and cleans one side of the filter plate 18 to avoid clogging of the holes.
[0040] The friction mechanism 24 includes a friction frame body 241, an arc-shaped groove 247 is opened on the outer side of the friction frame body 241, a receiving shaft 242 is slidably connected between the opposite surfaces of the arc-shaped groove 247, a friction column 243 is rotatably connected to the outer side of the receiving shaft 242, a connecting block 244 is fixedly connected to the outer side of the connecting shaft 242, a telescopic rod 245 is fixedly connected to one side of the outer side of the connecting block 244, and a fourth spring 246 is sleeved on the outer side of the telescopic rod 245. When the friction column 243 contacts the inner wall of the equipment, the receiving shaft 242 slides inside the arc groove 247 to make the telescopic rod 245 squeeze the fourth spring 246, thereby playing a role of shock absorption and buffering, reducing the vibration amplitude of the component, improving the stability of the component, and avoiding affecting the rotation effect of the component. The central shaft 15 drives the friction column 243 to rotate, and the friction column 243 rubs the inner wall of the equipment, thereby achieving the effect of cleaning the material on the inner wall of the equipment, reducing the material from passing through the filter plate 18 into the interior of the pneumatic device 3, avoiding corrosion of the equipment, and thus extending the service life of the equipment.
[0041] The third embodiment, based on the first and second embodiments, see Figures 8 to 10 As shown, the pneumatic device 3 includes a pneumatic duct 31, the outer side of the pneumatic duct 31 is fixedly connected to a fan 32, the side of the outside of the pneumatic duct 31 close to the fan 32 is fixedly connected to a grille cover 34, the side of the inner wall of the grille cover 34 close to the fan 32 is fixedly connected to a funnel plate 35, the side of the inner wall of the grille cover 34 away from the funnel plate 35 is fixedly connected to a scraping mechanism 36, and an air outlet 33 is provided on the side of the outside of the pneumatic duct 31 close to the tank shell 11. The wind is generated by the fan 32, and the airflow flows inside the pneumatic duct 31. The wind enters the interior of the equipment through the air outlet 33, thereby achieving the effect of air-drying the material and the agent, thereby improving the film-forming efficiency of the material surface, preventing and controlling pests and diseases, reducing losses, improving the material resistance, promoting growth, improving the utilization rate of the agent, reducing costs and pollution, and mixing the agent can reduce the pollution of the agent to the soil and water sources, and also reduce the damage to non-target organisms. The multiple air outlets 33 are evenly distributed to increase the air intake volume, thereby maintaining continuous air drying efficiency. The side of the pneumatic duct 31 adjacent to the air outlet 33 An inclined structure is adopted so that when materials or liquids accidentally enter the equipment, they can be discharged later due to the drop, thereby keeping the interior of the equipment clean and avoiding affecting the airflow effect. The grille cover 34 plays a role in blocking the entry of external impurities to avoid affecting the working efficiency during the air drying process. The airflow drives the scraping mechanism 36 to rotate inside the grille cover 34, rubbing the inner wall of the grille cover 34 to avoid clogging of the holes and affecting the subsequent air intake efficiency. The narrower side of the funnel plate 35 faces the scraping mechanism 36, so as to reduce the entry of impurities and promote the impurities to be discharged outward along with the movement of the funnel plate 35 structure.
[0042] The scraping mechanism 36 includes a rotating shaft 361, rotatably connected to a rotating post 362 on the outside of the rotating shaft 361. A scraping bracket 364 is fixedly connected to the outside of the rotating post 362. A scraping post 365 is rotatably connected to the outside of the scraping bracket 364 on the side away from the rotating shaft 361. A paddle 363 is fixedly connected to the outside of the rotating post 362 on the side away from the scraping bracket 364. Wind impacts the paddle 363, which drives the rotating post 362 to rotate, causing the scraping bracket 364 to control the scraping post 365 to rub against the inner wall of the component, thereby cleaning impurities from the inner wall of the component and preventing impurities from clogging the holes after long-term operation, thereby preventing subsequent equipment operation from being affected.
[0043] A connecting rod 366 is fixedly connected to the inside of the scraper bracket 364. A fifth spring 367 is sleeved around the outside of the connecting rod 366. A scraper housing 368 is fixedly connected to the outside of the connecting rod 366, away from the fifth spring 367. A friction block 369 is fixedly connected to the inside of the scraper housing 368. As the scraper post 365 rotates against the inner wall of the component, it rubs against the friction block 369, cleaning impurities from the scraper post 365's surface and preventing them from excessively adhering and potentially affecting subsequent friction. Furthermore, the connecting rod 366 drives the fifth spring 367 to support the friction block 369, thereby reducing component vibration, thereby improving component stability and preventing any impact on subsequent operation.
[0044] During use, the medicine feed pipe 16 is used to enter the medicine, which is generally liquid. The material enters the tank shell 11 from the top of the feed pipe 12. The material collides with the protective device 17 during the process of descending from the feed pipe 12, thereby achieving the effect of shock absorption and buffering of the material, slowing down the descent speed of the material, thereby reducing the damage rate of the material, reducing mechanical damage to the seeds, and protecting the activity of the seeds. The material and the medicine are mixed inside the tank shell 11, and the central shaft 15 is controlled to rotate by the first motor 4. The central shaft 15 drives the anti-damage device 2 to rotate, thereby achieving the stirring operation of the material, thereby improving the mixing effect of the material and the medicine, and the anti-damage device 2 reduces the damage to the material during the stirring and mixing process. , thereby improving the utilization rate of materials and improving the operating efficiency of the equipment. Secondly, during the rotation of the anti-damage device 2, the outer side of the filter plate 18 is rubbed to achieve the effect of frictional stripping of materials, reduce material blockage, and avoid affecting the ventilation effect of the pneumatic device 3. A rotating mechanism 19 is provided at the bottom of the tank shell 11. The rotating mechanism 19 is used to stir the bottom of the equipment to increase the material mixing efficiency, avoid the precipitation of materials and reagents affecting the material mixing quality, eliminate bottom sedimentation, avoid material "dead corners", enhance material fluidity, and improve mixing efficiency. Bottom stirring can prevent the reagent from solidifying or agglomerating at the bottom. After the materials are mixed, the materials are flushed by the pneumatic device 3 to achieve the effect of quickly drying the materials. This accelerates drying and solidifies the adhesion of the agent, which can take away the moisture on the surface of the material, shorten the drying time, and avoid the material from caking or the agent falling off due to long-term moisture. At the same time, it increases the film-forming speed on the surface of the material. The pneumatic device 3 generates wind through the fan 32, and the air flow flows inside the pneumatic duct 31. The wind enters the interior of the equipment through the air outlet 33, thereby achieving the effect of air-drying the material and the agent, thereby improving the film-forming efficiency on the surface of the material, preventing and controlling pests and diseases, reducing losses, improving the material's resistance to stress, promoting growth, improving the utilization rate of the agent, reducing costs and pollution, and mixing the agent can reduce the pollution of the agent to the soil and water sources, and also reduce the damage to non-target organisms. It is evenly distributed through multiple air outlets 33 to increase the air intake, thereby maintaining continuous To improve the air drying efficiency, the side of the pneumatic duct 31 adjacent to the air outlet 33 adopts an inclined structure, so that when material or liquid accidentally enters the equipment, it is convenient to discharge it due to the drop, thereby keeping the inside of the equipment clean and avoiding affecting the air flow effect. The grille cover 34 plays a role in blocking the entry of external impurities to avoid affecting the operating efficiency during the air drying process. The airflow drives the scraping mechanism 36 to rotate inside the grille cover 34, rubbing the inner wall of the grille cover 34 to avoid clogging of the holes and affecting the subsequent air intake efficiency. The narrower side of the funnel plate 35 faces the scraping mechanism 36, so as to reduce the entry of impurities and promote the impurities to be discharged outward along with the movement of the funnel plate 35 structure. Finally, the material is discharged outward from the side of the discharge valve 13, which is convenient for subsequent processing.
[0045] Obviously, the embodiments described are only some of the embodiments of the present invention, not all of them. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field and related fields without making creative efforts should fall within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described and explained in the present invention shall be implemented in accordance with conventional means in the field unless otherwise specified or limited.
Claims
1. A damage-resistant drug mixing device for improving the sprout rate of fresh corn, characterized in that: The invention comprises a tank device (1), wherein an anti-damage device (2) is fixedly connected to the interior of the tank device (1), a first motor (4) is fixedly connected to the bottom of the tank device (1), and a pneumatic device (3) is fixedly connected to the outside of the tank device (1); The tank device (1) comprises a tank shell (11), a feed pipe (12) is fixedly connected to the top of the tank shell (11), a protective device (17) is fixedly connected to the side of the top of the tank shell (11) close to the feed pipe (12), the bottom of the tank shell (11) is fixedly connected to the outside of the first motor (4), a connecting end (14) is fixedly connected to the bottom of the inner wall of the tank shell (11), the inner side of the connecting end (14) is rotatably connected to a central rotating shaft (15), and the central rotating shaft The bottom of the tank shell (15) is fixedly connected to the output end of the first motor (4), the outer side of the central rotating shaft (15) is fixedly connected to the inner side of the anti-damage device (2), the outer side of the tank shell (11) is fixedly connected to the drug feed pipe (16), the outer side of the tank shell (11) is fixedly connected to the rotating mechanism (19), the bottom side of the tank shell (11) is fixedly connected to the discharge valve (13), and the outer side of the tank shell (11) close to the anti-damage device (2) is fixedly connected to the filter plate (18).
2. The damage-resistant drug mixing device for improving the sprout rate of fresh corn according to claim 1, characterized in that: The protective device (17) comprises a protective frame (171), the bottom of the protective frame (171) is fixedly connected to a connecting column (172), the outer side of the connecting column (172) is sleeved with a first spring (173), and the outer side of the connecting column (172) is slidably connected to a composite device (174).
3. The damage-resistant drug mixing device for improving the sprout rate of fresh corn according to claim 2, characterized in that: The composite device (174) includes a circular plate (1741), the outer side of the circular plate (1741) is fixedly connected to a soft gelatin plate (1742), the outer side of the soft gelatin plate (1742) away from the circular plate (1741) is fixedly connected to a composite frame (1745), the bottom of the soft gelatin plate (1742) is fixedly connected to a support rod (1743), the outer side of the support rod (1743) is slidably connected to the outer side of the composite frame (1745), and the outer side of the support rod (1743) is sleeved with a second spring (1744).
4. The damage-resistant drug mixing device for improving the sprout rate of fresh corn according to claim 1, characterized in that: The rotating mechanism (19) comprises a rotating frame (191), the outer side of the rotating frame (191) is fixedly connected to the outer side of the tank shell (11), the side of the outer side of the rotating frame (191) away from the tank shell (11) is fixedly connected to a second motor (192), the output end of the second motor (192) is fixedly connected to a connecting shaft (193), the outer side of the connecting shaft (193) is rotatably connected to the outer side of the rotating frame (191), and the side of the outer side of the connecting shaft (193) away from the second motor (192) is fixedly connected to a rotating frame mechanism (194).
5. The damage-resistant drug mixing device for improving the sprout rate of fresh corn according to claim 4, characterized in that: The rotating frame mechanism (194) includes an external connection end (1941), the outer side of the external connection end (1941) is fixedly connected to a rotating bracket (1942), the outer side of the rotating bracket (1942) is slidably connected to a connecting block (1943), one side of the outer side of the connecting block (1943) is fixedly connected to a silicone frame (1945), and a third spring (1944) is sleeved on one side of the outer side of the connecting block (1943) close to the silicone frame (1945).
6. The damage-resistant drug mixing device for improving the sprout rate of fresh corn according to claim 1, characterized in that: The anti-injury device (2) includes an anti-injury frame (21), the inner side of the anti-injury frame (21) is fixedly connected to the outer side of the central rotating shaft (15), the outer side of the anti-injury frame (21) is fixedly connected to a folding rubber plate (22), a spherical block (23) is provided inside the folding rubber plate (22), and a friction mechanism (24) is fixedly connected to the outer side of the folding rubber plate (22) away from the anti-injury frame (21).
7. The damage-resistant drug mixing device for improving the sprout rate of fresh corn according to claim 6, characterized in that: The friction mechanism (24) includes a friction frame (241), an arcuate groove (247) is provided on the outer side of the friction frame (241), a receiving shaft (242) is slidably connected between the opposite surfaces of the arcuate groove (247), a friction column (243) is rotatably connected to the outer side of the receiving shaft (242), a connecting block (244) is fixedly connected to the outer side of the connecting shaft (242), a telescopic rod (245) is fixedly connected to one side of the outer side of the connecting block (244), and a fourth spring (246) is sleeved on the outer side of the telescopic rod (245).
8. The damage-resistant drug mixing device for improving the sprout rate of fresh corn according to claim 1, characterized in that: The pneumatic device (3) comprises a pneumatic duct (31), the outer side of the pneumatic duct (31) is fixedly connected to a fan (32), the outer side of the pneumatic duct (31) close to the fan (32) is fixedly connected to a grille cover (34), the inner wall of the grille cover (34) close to the fan (32) is fixedly connected to a funnel plate (35), the inner wall of the grille cover (34) away from the funnel plate (35) is fixedly connected to a scraping mechanism (36), and the outer side of the pneumatic duct (31) close to the tank shell (11) is provided with an air outlet (33).
9. The damage-resistant drug mixing device for improving the sprout rate of fresh corn according to claim 8, characterized in that: The scraping mechanism (36) comprises a rotating shaft (361), a rotating column (362) is rotatably connected to the outer side of the rotating shaft (361), a scraping bracket (364) is fixedly connected to the outer side of the rotating column (362), a scraping column (365) is rotatably connected to the outer side of the scraping bracket (364) away from the rotating shaft (361), and a paddle (363) is fixedly connected to the outer side of the rotating column (362) away from the scraping bracket (364).
10. The damage-resistant drug mixing device for increasing the sprout rate of fresh corn according to claim 9, characterized in that: The inner side of the scraping bracket (364) is fixedly connected to a connecting rod (366), the outer side of the connecting rod (366) is sleeved with a fifth spring (367), the outer side of the connecting rod (366) away from the fifth spring (367) is fixedly connected to a scraping shell (368), and the inner side of the scraping shell (368) is fixedly connected to a friction block (369).