Fertilizing device for scutellaria baicalensis planting
By designing a fertilizer applicator with a transmission mechanism and cam vibration, the problems of clogging and uneven application caused by fertilizer agglomeration were solved, achieving efficient fertilizer crushing and uniform application, thus improving the fertilization efficiency of Scutellaria baicalensis cultivation.
Patent Information
- Application Number
- CN202520455543.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-17
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2035-03-17
AI Technical Summary
Existing fertilization devices suffer from poor crushing effect, complex operation, and low work efficiency. In particular, fertilizer clumping in Scutellaria baicalensis cultivation leads to nozzle blockage and uneven fertilization.
A fertilizer application device was designed, comprising a trolley, rubber wheels, pulleys, mixing blades, and a screen. The mixing blades are driven to rotate by a transmission mechanism, and the material is fed out by cam vibration, thereby achieving the crushing and uniform mixing of fertilizer.
It improves fertilizer crushing efficiency and application uniformity, reduces the risk of clogging, and enhances the efficiency and effectiveness of the fertilization process.
Smart Images

Figure CN223859727U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of Scutellaria baicalensis cultivation, specifically to a fertilization device for Scutellaria baicalensis cultivation. Background Technology
[0002] The base fertilizer for Scutellaria baicalensis should mainly consist of organic fertilizers, such as well-rotted farmyard manure and stable manure. These organic fertilizers are rich in nutrients, which can meet the nutrient requirements of Scutellaria baicalensis during its growth. At the same time, organic fertilizers can also improve soil structure and increase soil fertility, providing a good soil environment for the growth of Scutellaria baicalensis.
[0003] Fertilizers often clump together during production, processing, storage, and transportation, causing numerous difficulties for storage, transportation, and use. Severely clumped fertilizers are difficult to break up, and partial clumps are detrimental to mechanical fertilization, easily clogging nozzles. All of these factors cause inconvenience in fertilization. Only after the fertilizer is broken up can plants fully absorb its fertility. Current fertilization devices suffer from poor breaking up effects, complex operation, and low work efficiency. Summary of the Invention
[0004] The purpose of this invention is to provide a fertilization device for Scutellaria baicalensis cultivation, so as to solve the above-mentioned defects caused by the prior art.
[0005] A fertilization device for Scutellaria baicalensis cultivation includes a trolley, rubber wheels, and a sieve screen. A cover plate is connected to the top of the trolley, a push rod is connected to one side of the trolley, and unloading pipes are symmetrically connected to the bottom of the trolley. A transmission mechanism is provided on the outside of the trolley, which drives the mixing blades inside the trolley to rotate, thereby completing the fertilizer processing. A mixing mechanism is provided inside the trolley to sieve and mix the materials injected into the trolley, thereby preventing the injected fertilizer from clumping and affecting the fertilization effect.
[0006] Preferably, the transmission mechanism includes a rubber wheel, a first pulley, a belt, and a second pulley. The first pulley is connected to one side of the rubber wheel, the belt is connected to the outer side of the first pulley, and the second pulley is connected to the other side of the belt. The rubber wheel is positioned directly below the trolley.
[0007] Preferably, the first pulley is connected to the outer side of the second pulley via a belt connected to its outer side.
[0008] Preferably, the second pulley is connected to the mixing blades via a mixing shaft connected to one side.
[0009] Preferably, the mixing mechanism includes a mixing shaft, mixing blades, a screen, support bars, and a cam. A trolley is connected through the outer side of the mixing shaft, and the mixing blades are connected to the outer side of the mixing shaft. A screen is positioned directly above the mixing blades, and support bars are connected to both sides of the screen. A rubber wheel is connected to one side of the cam by a bearing. The screen and the support bars are symmetrically arranged inside the trolley.
[0010] Preferably, the trolley is connected to the outer side of the screen tray via symmetrically arranged internal support strips.
[0011] Compared with the prior art, the present invention has the following advantages:
[0012] 1. The utility model is not only simple in structure and low in manufacturing cost, but also drives the pulley on the same side to rotate through the pulley on one side of the rubber wheel. The pulley drives the mixing blade on one side to rotate, thereby mixing and proportioning different fertilizer materials. At the same time, the rubber wheel drives the cam connected to the shaft on one side to rotate.
[0013] 2. The mixing shaft drives the mixing blades on one side to rotate, which fully divides and crushes the screened fertilizer, making it better mixed. This results in more uniform application of fertilizer elements during the fertilization process. The cam continuously vibrates the inside of the cart, which can speed up the passage of fertilizer through the screen, thereby greatly improving the screening efficiency. Attached Figure Description
[0014] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0015] Figure 2 This is a schematic diagram of the cross-sectional structure of the trolley in this utility model.
[0016] Figure 3 This is a side view of the trolley structure in this utility model.
[0017] Figure 4 This is a top-section schematic diagram of the trolley structure in this utility model.
[0018] in:
[0019] 1. Trolley; 2. Cover plate; 3. Push rod; 4. Discharge pipe; 5. Rubber wheel; 6. Belt pulley one; 7. Belt; 8. Belt pulley two; 9. Transmission mechanism; 10. Mixing mechanism; 11. Mixing shaft; 12. Mixing blade; 13. Screening disc; 14. Support bar; 15. Cam. Detailed Implementation
[0020] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0021] like Figures 1 to 4 As shown, a fertilization device for Scutellaria baicalensis cultivation includes a trolley 1, rubber wheels 5, and a sieve screen 13. A cover plate 2 is connected to the top of the trolley 1, a push rod 3 is connected to one side of the trolley 1, and unloading pipes 4 are symmetrically connected to the bottom of the trolley 1. A transmission mechanism 9 is provided on the outside of the trolley 1. The transmission mechanism 9 drives the mixing blades 12 inside the trolley 1 to rotate, thereby completing the fertilizer processing. A mixing mechanism 10 is provided inside the trolley 1. The mixing mechanism 10 screens and mixes the materials injected into the trolley 1, thereby preventing the injected fertilizer from clumping and affecting the fertilization effect.
[0022] In this embodiment, the transmission mechanism 9 includes a rubber wheel 5, a first pulley 6, a belt 7, and a second pulley 8. The first pulley 6 is connected to one side of the rubber wheel 5, the belt 7 is connected to the outer side of the first pulley 6, and the second pulley 8 is connected to the other side of the belt 7. The rubber wheel 5 is located directly below the trolley 1, and the rubber wheel 5 rotates through the first pulley 6 located on one side to perform transmission processing on the first pulley 6.
[0023] In this embodiment, the first pulley 6 is connected to the outside of the second pulley 8 via the outer belt 7, and the second pulley 8 on one side is rotated by the belt 7.
[0024] In this embodiment, the second pulley 8 is connected to the mixing blade 12 via the mixing shaft 11 connected to one side. The second pulley 8 drives the mixing blade 12 on one side to rotate, thereby mixing materials of different proportions.
[0025] In this embodiment, the mixing mechanism 10 includes a mixing shaft 11, mixing blades 12, a screen 13, support bars 14, and a cam 15. A trolley 1 is connected through the outer side of the mixing shaft 11, and the mixing blades 12 are connected to the outer side of the mixing shaft 11. The screen 13 is arranged directly above the mixing blades 12, and support bars 14 are connected to both sides of the screen 13. A rubber wheel 5 is connected to one side of the cam 15. The screen 13 and the support bars 14 are symmetrically arranged inside the trolley 1. The screen 13 is used to screen agglomerated materials.
[0026] In this embodiment, the trolley 1 is connected to the outside of the screen tray 13 by symmetrically arranged internal support strips 14. The support strips 14 are used to position the two sides of the screen tray 13, which facilitates the positioning of screen trays 13 with different mesh sizes.
[0027] In practical application, this fertilization device for Scutellaria baicalensis cultivation includes the following functions:
[0028] Step 1: The operator first installs the screen tray 13 of the corresponding mesh size inside the trolley 1. The screen tray 13 is positioned on both sides by the support strip 14 inside the trolley 1. The screen tray 13 and the support strip 14 are positioned on the outside by screws. The operator pours bio-fertilizer and other fertilizers onto the surface of the screen tray 13 and uses the screen tray 13 to screen the materials. The operator then breaks up any clumps of fertilizer on the surface of the screen tray 13 with a shovel.
[0029] Step 2: The operator then holds the push rod 3 and uses the push rod 3 to move the rubber wheel 5 at the bottom of the cart 1. The shaft connected to one side of the rubber wheel 5 drives the pulley 6 on one side to rotate. The pulley 6 drives the belt 7 connected to the outside and the pulley 8 on the same side to rotate. The pulley 8 drives the mixing shaft 11 on one side to rotate. The mixing shaft 11 drives the mixing blade 12 on one side to rotate.
[0030] Step 3: The mixing shaft 11 drives the mixing blades 12 on one side to rotate, and the mixing blades 12 mix the sieved material. Then, by opening the discharge pipe 4, the fertilizer inside the trolley is directly discharged through the discharge pipes 4 on both sides when it is pushed to move. At the same time, the rubber wheel 5 drives the cam 15 on one side to rotate.
[0031] Step 4: During the rotation of the cam 15, the bottom of the trolley 1 is vibrated, thereby accelerating the material feeding speed and preventing the material from being blocked inside the unloading pipe 4 or adhering to the inside of the trolley 1 during the conveying process. This prevents the material from being stuck inside the trolley 1 and completes the fertilizer application process.
[0032] Therefore, the above-disclosed embodiments are merely illustrative in all respects and are not the only ones. All modifications within the scope of this utility model or its equivalents are included in this utility model.
Claims
1. A fertilization device for Scutellaria baicalensis cultivation, characterized in that: The device includes a trolley (1), rubber wheels (5), and a screen (13). A cover plate (2) is connected to the top of the trolley (1), a push rod (3) is connected to one side of the trolley (1), and a discharge pipe (4) is symmetrically connected to the bottom of the trolley (1). A transmission mechanism (9) is provided on the outside of the trolley (1). The transmission mechanism (9) drives the mixing blades (12) inside the trolley (1) to rotate, thereby completing the fertilizer processing. A mixing mechanism (10) is provided inside the trolley (1). The mixing mechanism (10) screens and mixes the material injected into the trolley (1), thereby preventing the injected fertilizer from clumping and affecting the fertilization effect.
2. The fertilization device for Scutellaria baicalensis cultivation according to claim 1, characterized in that: The transmission mechanism (9) includes a rubber wheel (5), a first pulley (6), a belt (7), and a second pulley (8). The first pulley (6) is connected to one side of the rubber wheel (5), the belt (7) is connected to the outside of the first pulley (6), and the second pulley (8) is connected to the other side of the belt (7). The rubber wheel (5) is located directly below the trolley (1).
3. A fertilization device for Scutellaria baicalensis cultivation according to claim 2, characterized in that: The first pulley (6) is connected to the outside of the second pulley (8) via the belt (7) connected to the outside.
4. A fertilization device for Scutellaria baicalensis cultivation according to claim 2, characterized in that: The second pulley (8) is connected to the mixing blade (12) via a mixing shaft (11) connected to one side.
5. A fertilization device for Scutellaria baicalensis cultivation according to claim 1, characterized in that: The mixing mechanism (10) includes a mixing shaft (11), mixing blades (12), a screen (13), a support bar (14), and a cam (15). A trolley (1) is connected through the outside of the mixing shaft (11). The mixing blades (12) are connected to the outside of the mixing shaft (11). The screen (13) is arranged directly above the mixing blades (12). The support bars (14) are connected to both sides of the screen (13). A rubber wheel (5) is connected to one side of the cam (15). The screen (13) is symmetrically arranged inside the trolley (1). The support bars (14) are symmetrically arranged inside the trolley (1).
6. A fertilization device for Scutellaria baicalensis cultivation according to claim 1, characterized in that: The trolley (1) is connected to the outside of the screen tray (13) through symmetrically arranged internal support strips (14).