An automated fertilization apparatus for strawberry cultivation
By introducing mixing components and spiral guide channels into automated fertilization equipment for strawberry cultivation, combined with an artificial intelligence monitoring head, the problem of uneven mixing of fertilizer and water has been solved, achieving efficient and uniform fertilization and promoting healthy strawberry growth.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- SHENYANG AGRI UNIV
- Filing Date
- 2024-11-19
- Publication Date
- 2026-05-15
AI Technical Summary
In existing automated fertilization equipment, the mixing efficiency of fertilizer and water is low, resulting in uneven fertilizer distribution, which affects the uniformity of strawberry growth and increases production costs.
The system employs a mixing assembly and spiral guide channel design, combined with an AI monitoring head, to ensure thorough mixing of fertilizer and water; and uses limit wheels and a spring structure to ensure stable movement of the fertilization equipment on the slide rail.
It improves the mixing efficiency of fertilizer and water, ensures uniform fertilization, reduces waste, and enhances the growth quality and yield of strawberries.
Smart Images

Figure CN119366377B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of strawberry cultivation and fertilization technology, specifically to an automated fertilization device for strawberry cultivation. Background Technology
[0002] Strawberry cultivation refers to the use of agricultural techniques and methods to cultivate strawberry plants under specific soil and environmental conditions in order to obtain fruit. Strawberries are a popular fruit, loved for their vibrant color, sweet taste, and rich nutritional value. In order to accurately calculate the required types and amounts of fertilizer based on the specific nutrient needs of the soil and the crop's growth stage, automated fertilization equipment for strawberry cultivation is needed. This precision fertilization can improve fertilizer utilization, reduce waste, and ensure that strawberries receive the nutrients they need.
[0003] Fertilization equipment includes drip irrigation fertilization systems, sprinkler irrigation fertilization systems, and foliar spraying equipment. These automated fertilization devices can improve the accuracy, efficiency, and consistency of fertilization in strawberry cultivation. Depending on the planting scale, soil conditions, and climate, selecting the appropriate equipment can significantly improve planting results and economic benefits. In the use of sprinkler irrigation fertilization systems, fertilizer is sprayed onto the crops along with water through the sprinkler system, providing wide coverage and uniform fertilization. It is suitable for large-scale strawberry cultivation or other crops that require uniform irrigation and fertilization.
[0004] However, existing technologies still present some challenges in automated fertilization processes, one of the most prominent being the low mixing efficiency of fertilizer and water. Traditional mixing devices typically add fertilizer directly into the tank, where it is not adequately agitated or rotated, instead spreading naturally in the water. Due to differences in fertilizer particle density and water flow velocity, the fertilizer settles and diffuses at varying speeds within the tank, resulting in some fertilizer settling while others float randomly with the current. This uneven distribution makes it difficult for water and fertilizer to fully mix in a short time. Insufficient mixing can lead to uneven fertilizer distribution during irrigation, affecting the balanced growth of strawberries and causing fertilizer waste, thus increasing production costs. This problem urgently needs to be addressed through more advanced mixing device designs to improve fertilization efficiency and precision, meeting the demands of modern agriculture for automation and intelligence. Summary of the Invention
[0005] To address the shortcomings of existing technologies, this invention provides an automated fertilization device for strawberry cultivation, which solves the problem that simply putting waste directly into the tank causes the fertilizer to diffuse and fail to mix with water in a timely manner.
[0006] To achieve the above objectives, the present invention provides the following technical solution: an automated fertilization device for strawberry cultivation, comprising a greenhouse frame, a movable component inside the greenhouse frame, a spraying component inside the greenhouse frame, a mixing tank on one side of the greenhouse frame, a stirring component on the top of the mixing tank, a water injection ring fixedly connected inside the mixing tank, a connecting pipe fixedly connected to the outer wall of the water injection ring, a water outlet inside the water injection ring, a material collection tank fixedly connected inside the mixing tank, a spiral guide groove inside the material collection tank, a fertilizer ring pipe fixedly connected inside the material collection tank, a connecting pipe fixedly connected to the outer wall of the fertilizer ring pipe, a water outlet fixedly connected to the inner wall of the connecting pipe, a detection component inside the greenhouse frame, and an output component on the outer wall of the mixing tank.
[0007] Preferably, the stirring assembly includes a second motor, the outer wall of which is fixedly connected to the top of the mixing tank, a stirring shaft is fixedly connected to the output end of the second motor, stirring blades are fixedly connected to the outer wall of the stirring shaft, a connecting column is fixedly connected to the outer wall of the stirring shaft, and a cone is fixedly connected to one end of the connecting column.
[0008] The movable component includes a slide rail, both ends of which are fixedly connected inside the greenhouse frame. A connecting frame is provided on the top of the slide rail, and a motor is fixedly connected to one side of the connecting frame. A rotating shaft is fixedly connected to the output end of the motor, and a moving wheel is fixedly connected to the outer wall of the rotating shaft. The outer wall of the moving wheel is slidably connected to the outer wall of the slide rail.
[0009] Preferably, the spraying assembly includes a fertilizer tube, the outer wall of which is fixedly connected to the bottom of the connecting frame, and atomizing nozzles arranged in a linear array are fixedly connected to the outer wall of the fertilizer tube.
[0010] Preferably, the detection component includes a monitoring head, and a bracket is fixedly connected to the outer wall of the monitoring head, with one end of the bracket fixedly connected to the outer wall of the fertilizer pipe.
[0011] Preferably, the output component includes a water cup, an input end of which is fixedly connected to a discharge pipe, one end of which is fixedly connected to the inside of a mixing tank, and an output end of which is fixedly connected to a fertilizer pipe, one end of which is fixedly connected to the inside of a fertilizer pipe.
[0012] Preferably, a limiting rail is fixedly connected inside the greenhouse frame, and a lifting ring is slidably connected to the outer wall of the limiting rail, with the bottom of the lifting ring fixedly connected to the outer wall of the fertilizer pipe.
[0013] Preferably, the connecting frame has a fixedly connected limit post inside, the limit post has symmetrically arranged sliding limit wheels on its outer wall, and the limit post has a spring sleeved on its outer wall.
[0014] Preferably, the limiting wheel is fitted into the outer wall of the slide rail, and both ends of the spring are fixedly connected between the sliders.
[0015] Working Principle: When using this automated fertilization equipment for strawberry cultivation, the monitoring head first monitors the growth status of the strawberries planted in the greenhouse frame in real time. Combined with artificial intelligence, it analyzes the growth and mixes the required fertilizer. Water then enters the water injection ring through connecting pipe one and sprays out from outlet one onto the inner wall of the mixing tank. Outlet one is set at a 45° angle to the outer wall of the water injection ring, causing the water to rotate and form a vortex. Liquid fertilizer enters the fertilizer ring through connecting pipe two and is then sprayed out through outlet two. The two outlets create a spiral vortex within the aggregation tank, agglomerating the fertilizer and reducing its diffusion. Simultaneously, the output of motor two drives the stirring shaft to rotate. The stirring shaft then drives the conical tank to rotate via the connecting column, causing water to flow into the conical tank from the smaller opening and out from the larger opening, increasing the water flow speed. At the same time, the stirring blades rotate clockwise, thoroughly mixing and diluting the fertilizer and water. The fertilizer then flows upwards from the bottom of the aggregation tank and the mixing tank. The fertilizer flows smoothly and is drawn back into the mixing tank from the top by the stirring blades, improving the mixing efficiency. Simultaneously, the fertilizer and water form a vortex on the inner wall of the mixing tank with the aid of a spiral guide groove. Then, the motor output drives a rotating wheel via a shaft, which in turn drives the fertilizer tube to slide along the outer wall of the slide rail. At the same time, the water cup input draws out the proportioned fertilizer from the mixing tank through the discharge pipe, then pumps it into the fertilizer tube through the water cup output and finally sprays it out from the atomizing nozzle. The rotating wheel then moves the atomizing nozzle forward to evenly fertilize the strawberries planted within the greenhouse frame. The fertilizer tube is connected to the slide rail via rotating wheels on a connecting frame, and is fitted against the transverse outer wall of the slide rail by a limiting wheel inside the connecting frame. The limiting wheel is limited by a slider on the outer wall of the limiting post and supported by spring tension, ensuring the limiting wheel is firmly engaged with the outer wall of the slide rail to limit the connecting frame and prevent misalignment. This achieves the effect of adapting to slide rails with different spacing and improves operational stability.
[0016] This invention provides an automated fertilization device for strawberry cultivation. It has the following beneficial effects:
[0017] 1. This invention uses a detection head to automatically mix fertilizer based on the growth status of strawberries. Liquid fertilizer enters the fertilizer ring pipe through a connecting pipe, causing it to form a spiral vortex in the collection tank. Simultaneously, water flows into the cone from the smaller opening and out from the larger opening, increasing the water flow rate. This achieves the effect of improving mixing efficiency by using artificial intelligence to mix fertilizer and increase water flow rate. It solves the problem of traditional mixing devices that simply put waste into the tank, resulting in fertilizer diffusion that cannot be timely mixed with water, thus improving the reaction rate of automated fertilization equipment.
[0018] 2. This invention uses a limiting wheel inside the connecting frame that fits against the outer wall of the slide rail. The limiting wheel is limited by a slider on the outer wall of the limiting post and supported by the tension of a spring, so that the limiting wheel can be firmly locked onto the outer wall of the slide rail to limit the connecting frame and prevent misalignment. This achieves the effect of stable fixation on the slide rail and adaptability to slide rails of different sizes. It solves the problem that when the mobile device of the automated fertilization equipment moves on the slide rail, it is easy to misalign and slip because the transmission is only directly transmitted through the contact of the moving wheel. This improves the fertilization efficiency of the automated fertilization equipment. Attached Figure Description
[0019] Figure 1 This is a perspective view of the present invention;
[0020] Figure 2 This is a schematic diagram of the slide rail structure of the present invention;
[0021] Figure 3 This is a schematic diagram of the atomizing nozzle structure of the present invention;
[0022] Figure 4 This is a schematic diagram of the internal structure of the connecting frame of the present invention;
[0023] Figure 5 This is a schematic diagram of the internal structure of the mixing tank of the present invention;
[0024] Figure 6 This is a schematic diagram of the cone-shaped barrel structure of the present invention;
[0025] Figure 7 This is a schematic diagram of the fertilizer ring pipe structure of the present invention. Detailed Implementation
[0026] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0027] Please see the appendix Figure 1 Appendix Figure 5 -Appendix Figure 7This invention provides an automated fertilization device for strawberry cultivation, including a greenhouse frame 1. A moving component is installed inside the greenhouse frame 1 to move the spraying equipment within the greenhouse, improving the uniformity of fertilizer coverage. The spraying component inside the greenhouse frame 1 evenly sprays the mixed water and fertilizer onto the strawberry plants, ensuring uniform absorption. A mixing tank 18 is installed on one side of the greenhouse frame 1 to hold and mix the water and fertilizer, ensuring thorough mixing and preventing fertilizer sedimentation or uneven diffusion. A stirring assembly is installed at the top to continuously stir the materials inside the mixing tank, ensuring the continuity and uniformity of the mixing process and preventing fertilizer sedimentation. A water injection ring 28 is fixedly connected inside the mixing tank 18. The water injection ring 28 sprays water into the mixing tank 18 through evenly distributed outlets, ensuring uniform water flow. A connecting pipe 30 is fixedly connected to the outer wall of the water injection ring 28 to connect a water source to the water injection ring 28, ensuring a continuous water supply. An outlet 29 is opened inside the water injection ring 28 to evenly spray water into the mixing tank. Within mixing tank 18, to improve water flow and mixing efficiency, a material-gathering tank 26 is fixedly connected inside the mixing tank 18. The material-gathering tank 26 is used to concentrate and mix fertilizer and water, ensuring effective fertilizer distribution and reducing fertilizer waste. A spiral guide channel 27 is opened inside the material-gathering tank 26 to guide the water flow and fertilizer to form a vortex, improving mixing efficiency. A fertilizer ring pipe 31 is fixedly connected inside the material-gathering tank 26. The fertilizer ring pipe 31 is used to transport fertilizer and evenly spray fertilizer into the tank through the outlet inside the ring pipe. The outer wall of the fertilizer ring pipe 31 is fixedly connected to... Connecting pipe 2 32 is used to transport fertilizer from the storage tank to the fertilizer ring pipe 31. Water outlet 2 33 is fixedly connected inside the connecting pipe 2 32. Water outlet 2 33 is used to spray fertilizer evenly into the fertilizer collection tank 26 to ensure uniform distribution of fertilizer. The greenhouse frame 1 is equipped with a detection component. The detection component is used to monitor the growth status and environmental parameters of strawberries in real time and provide data support to optimize the fertilization plan. The outer wall of the mixing tank 18 is equipped with an output component. The output component is used to transport the mixed water and fertilizer solution to the spraying component to realize automated fertilization.
[0028] The mixing assembly includes a second motor 21, which provides power to the mixing shaft 22 to ensure continuous mixing of the water-fertilizer solution in the mixing tank 18. The outer wall of the second motor 21 is fixedly connected to the top of the mixing tank 18, and the output end of the second motor 21 is fixedly connected to the mixing shaft 22. The mixing shaft 22 is used to transmit the rotational power of the motor to make the mixing blade 23 rotate. The mixing blade 23 is fixedly connected to the outer wall of the mixing shaft 22. The mixing blade 23 is used to fully mix the water and fertilizer to improve the mixing efficiency. The outer wall of the mixing shaft 22 is fixedly connected to a connecting column 24, which is used to support and drive the cone 25 to rotate. One end of the connecting column 24 is fixedly connected to the cone 25, which is used to accelerate the water flow and further improve the mixing efficiency. The detection assembly includes a monitoring head 11, which is used to monitor the strawberry growth status and environmental data in real time. The outer wall of the monitoring head 11 is fixedly connected to a bracket 10, which is used to support the monitoring head 11. One end of the bracket 10 is fixedly connected to the outer wall of the fertilizer pipe 8 to ensure that the monitoring head 11 is in the appropriate position for monitoring.
[0029] Specifically, the monitoring head 11 can monitor the growth of strawberries planted inside the greenhouse frame 1 in real time, and combine advanced artificial intelligence technology to accurately analyze the growth data of the strawberries, dynamically adjusting the fertilizer ratio to best suit their growth needs. Subsequently, through the intelligent control system, water quickly enters the water injection ring 28 through connecting pipe 30 and is sprayed out through outlets 29 arranged at a 45° angle on the outer wall of the water injection ring 28. Due to the tilt angle of the outlets 29, the water flow drives the water injection ring 28 to rotate rapidly during spraying, thus forming a strong vortex effect on the inner wall of the mixing tank 18, ensuring uniform distribution and continuous circulation of the water flow. Simultaneously, liquid fertilizer is transported to the fertilizer ring pipe 31 through connecting pipe 32, and then evenly sprayed out from outlet 33. With the annular arrangement of outlets 33, the liquid fertilizer forms a strong spiral vortex within the collection tank 26, effectively concentrating the fertilizer inside the collection tank 26 and reducing waste caused by fertilizer diffusion. Based on this, the output end of motor 21 drives the stirring shaft 22 to rotate continuously, and the stirring shaft 22 drives the cone 25 to rotate synchronously through the connecting column 24. Since the cone 25 is designed with the smaller opening facing inward, after the water flows into the cone 25, it flows out at high speed through the larger opening, thus significantly increasing the flow rate of the water. At the same time, the stirring blade 23 rotates clockwise, pushing the water flow and fertilizer to mix and dilute thoroughly, ensuring that every drop of water and fertilizer can achieve a highly uniform fusion. The mixed fertilizer flows upward through the bottom of the collection tank 26, and is guided by the spiral guide groove 27, further enhancing the vortex effect, making the mixing of fertilizer and water more thorough. The fertilizer mixture is drawn back into the mixing tank 18 for circulation and stirring in the collection tank 26 through continuous spiral motion, greatly improving the overall mixing efficiency, and ultimately ensuring that the fertilizer can be delivered evenly and quickly to the roots of the strawberry, promoting its healthy growth.
[0030] Please see the appendix Figure 2 The moving component includes a slide rail 2, both ends of which are fixedly connected inside the greenhouse frame 1. The slide rail 2 provides a smooth moving path for the connecting frame 4, ensuring the stable operation of the fertilization equipment inside the greenhouse. The connecting frame 4 is installed on the top of the slide rail 2, connecting the moving component and the spraying component to ensure even delivery of fertilizer and water. A motor 5 is fixedly connected to one side of the connecting frame 4, providing power to the rotating shaft 6 to drive the moving component to move on the slide rail 2. The output end of the motor 5 is fixedly connected to the rotating shaft 6, which transmits electricity. The machine's power drives the rotating wheels 7 to rotate. The rotating shaft 6 has the rotating wheels 7 fixedly connected to its outer wall. The rotating wheels 7 are responsible for moving along the slide rail 2, ensuring smooth sliding of the equipment and preventing deviation or shaking during fertilization. The outer wall of the rotating wheels 7 is slidably connected to the outer wall of the slide rail 2. This sliding connection ensures smooth movement of the equipment and prevents jamming or blockage. The spraying assembly includes a fertilizer pipe 8, which is used to transport the fertilizer solution, ensuring even distribution of fertilizer. The outer wall of the fertilizer pipe 8 is fixedly connected to the bottom of the connecting frame 4, ensuring the fertilizer... The fertilizer pipe 8 is securely fixed to prevent displacement or damage during equipment movement. Atomizing nozzles 9 arranged in a linear array are fixedly connected to the outer wall of the fertilizer pipe 8. These nozzles atomize the fertilizer solution and spray it evenly onto the strawberry plants, improving the uniformity and coverage of fertilization and ensuring the strawberries receive sufficient nutrients. The output component includes a water cup 19, which extracts the mixed fertilizer solution from the mixing tank 18, ensuring a smooth fertilization process. An outlet pipe 20 is fixedly connected to the input end of the water cup 19, and the outlet pipe 20 is used to discharge the fertilizer solution from the mixing tank 18. The fertilizer solution in the water cup 19 is transported to the water cup 19 to ensure that the solution does not leak during the transportation process. One end of the discharge pipe 20 is fixedly connected to the inside of the mixing tank 18 to ensure that the fertilizer solution can smoothly enter the water cup 19 from the mixing tank 18. The output end of the water cup 19 is fixedly connected to the fertilizer pipe 12, which is used to transport the fertilizer solution in the water cup 19 to the fertilizer pipe 8 to ensure that the fertilizer can be smoothly sprayed onto the strawberries. One end of the fertilizer pipe 12 is fixedly connected to the inside of the fertilizer pipe 8 to ensure that the fertilizer solution flows smoothly from the water cup 19 into the fertilizer pipe 8 to complete the fertilization process.
[0031] Specifically, the output of motor 5 drives the moving wheel 7 to rotate efficiently via a precisely connected rotating shaft 6. The moving wheel 7 moves smoothly against the outer wall of the slide rail 2, thereby causing the fertilizer tube 8 to slide smoothly on the slide rail 2. This movement makes fertilizer delivery more precise and smooth, ensuring the continuity and stability of the fertilization process. At the same time, the input end of the water cup 19 extracts the precisely proportioned and uniformly stirred fertilizer liquid from the mixing tank 18 through the discharge pipe 20, which is seamlessly connected to the mixing system, ensuring the homogeneity of the fertilizer. Subsequently, the fertilizer is reliably delivered to the fertilizer tube 12 through the output end of the water cup 19. After being efficiently pumped by the fertilizer tube 12, the fertilizer liquid finally enters the fertilizer tube 8 and is evenly and finely sprayed out through the atomizing nozzle 9. Throughout the fertilization process, the moving wheel 7 continuously drives the atomizing nozzle 9 to move slowly forward on the track of the greenhouse frame 1, so that the fertilizer can evenly cover every strawberry plant grown in the greenhouse. The atomizing nozzle 9 uses a fine spraying method to evenly distribute liquid fertilizer in a mist form to the roots of the strawberry plants and the surrounding soil, ensuring full absorption and effective distribution of the fertilizer. This not only improves fertilizer utilization but also significantly promotes healthy growth and yield of strawberries. The entire fertilization process is precisely controlled by an automated system, achieving a highly efficient, uniform, and resource-saving intelligent fertilization effect.
[0032] Please see the appendix Figure 1 - Appendix Figure 4The greenhouse frame 1 has a fixed internal connection to a limiting rail 3, which guides and restricts the movement range of the fertilization equipment, ensuring that the equipment runs along the fixed rail and avoids deviating from the fertilization path. A lifting ring 13 is slidably connected to the outer wall of the limiting rail 3, supporting the fertilization pipe 12 and allowing it to slide smoothly on the limiting rail 3. This ensures the fertilization pipe 12 remains stable during movement, preventing swaying or tilting. The bottom of the lifting ring 13 is fixedly connected to the outer wall of the fertilization pipe 12, ensuring a firm connection between the fertilization pipe 12 and the lifting ring 13, thus preventing displacement or loosening of the fertilization pipe 12 during movement. A connecting frame 4 has a fixed internal connection to a limiting post 14, which supports and guides the limiting wheel 16, ensuring stable operation of the limiting wheel 16 during sliding. The outer wall of the limiting post 14 is symmetrically arranged with sliding connections to the limiting wheel 16. The limiting wheel 16 slides and connects to the limiting post 14. The outer wall of the rail 2 is connected to ensure that the fertilizing equipment can move smoothly along the rail 2 and prevent unstable operation caused by the shift of the equipment's center of gravity. The outer wall of the limiting post 14 is fitted with a spring 17, which provides elasticity so that the limiting wheel 16 fits tightly against the outer wall of the rail 2, further improving the stability of the limiting wheel 16. The elasticity of the spring 17 ensures that the limiting wheel 16 always maintains close contact with the outer wall of the rail 2, preventing the limiting wheel 16 from loosening or shifting during sliding, and ensuring that the fertilizing equipment moves smoothly. The limiting wheel 16 is fitted into the outer wall of the rail 2. Through the precise fitting structure, the limiting wheel 16 effectively prevents the equipment from shifting and further enhances the stability of the equipment running on the rail 2. Both ends of the spring 17 are fixedly connected between the sliders 15 to ensure that the spring 17 can maintain appropriate tension on the limiting post 14, thereby continuously providing stable support for the limiting wheel 16.
[0033] Specifically, the fertilizer tube 8 is tightly connected to the slide rail 2 via the movable wheel 7 on the stable connecting frame 4. The movable wheel 7 rolls smoothly on the outer wall of the slide rail 2, ensuring that the movement of the fertilizer tube 8 within the greenhouse is more stable and precise. Simultaneously, a limiting wheel 16 is cleverly designed inside the connecting frame 4. The limiting wheel 16 is close to the transverse outer wall of the slide rail 2 and is flexibly connected to the outer wall of the limiting post 14 via the slider 15, achieving precise limiting control. To further enhance the stability of the limiting wheel 16, a spring 17 provides appropriate tension support, allowing the limiting wheel 16 to firmly engage with the outer wall of the slide rail 2, ensuring that the connecting frame 4 does not experience any misalignment or displacement during sliding. This allows the connecting frame 4 to adapt to slide rails 2 with different spacing, providing great flexibility. Regardless of changes in the spacing of the slide rails 2, the limiting wheel 16 can be precisely adjusted, maintaining the stable operation of the equipment on the track, thereby effectively improving the operational stability and reliability of the entire fertilization system. Furthermore, the tension adjustment function of spring 17 ensures sufficient flexibility and shock resistance during operation, preventing uneven fertilization caused by external vibrations or load changes. This structural optimization makes the fertilization process more efficient and safer, ensuring uniform fertilizer distribution in the strawberry growing environment and further improving crop growth quality and yield.
[0034] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. An automated fertilization device for strawberry cultivation, comprising a greenhouse frame (1), characterized in that: The greenhouse frame (1) is equipped with a moving component and a spraying component. A mixing tank (18) is located on one side of the greenhouse frame (1). A stirring component is located on the top of the mixing tank (18). A water injection ring (28) is fixedly connected inside the mixing tank (18). A connecting pipe (30) is fixedly connected to the outer wall of the water injection ring (28). A water outlet (29) is opened inside the water injection ring (28). A material is fixedly connected inside the mixing tank (18). The material collection bucket (26) has a spiral guide groove (27) inside. The material collection bucket (26) is fixedly connected to a fertilizer ring pipe (31). The outer wall of the fertilizer ring pipe (31) is fixedly connected to a connecting pipe two (32). The inner wall of the connecting pipe two (32) is fixedly connected to a water outlet two (33). The greenhouse frame (1) is equipped with a detection component. The outer wall of the mixing bucket (18) is equipped with an output component. The water outlet one (29) is set at 45° with the water injection ring (28). The stirring assembly includes a second motor (21), the outer wall of which is fixedly connected to the top of the mixing tank (18). A stirring shaft (22) is fixedly connected to the output end of the second motor (21). A stirring blade (23) is fixedly connected to the outer wall of the stirring shaft (22). A connecting column (24) is fixedly connected to the outer wall of the stirring shaft (22). A cone barrel (25) is fixedly connected to one end of the connecting column (24). The moving component includes a slide rail (2), both ends of which are fixedly connected inside the greenhouse frame (1). A connecting frame (4) is provided on the top of the slide rail (2), and a motor (5) is fixedly connected to one side of the connecting frame (4). A rotating shaft (6) is fixedly connected to the output end of the motor (5). A moving wheel (7) is fixedly connected to the outer wall of the rotating shaft (6), and the outer wall of the moving wheel (7) is slidably connected to the outer wall of the slide rail (2).
2. The automated fertilization equipment for strawberry cultivation according to claim 1, characterized in that: The spraying assembly includes a fertilizer tube (8), the outer wall of which is fixedly connected to the bottom of the connecting frame (4), and the outer wall of the fertilizer tube (8) is fixedly connected to atomizing nozzles (9) arranged in a linear array.
3. The automated fertilization equipment for strawberry cultivation according to claim 1, characterized in that... The detection component includes a monitoring head (11), and a bracket (10) is fixedly connected to the outer wall of the monitoring head (11). One end of the bracket (10) is fixedly connected to the outer wall of the fertilizer pipe (8).
4. The automated fertilization equipment for strawberry cultivation according to claim 1, characterized in that: The output component includes a water cup (19), the input end of which is fixedly connected to a discharge pipe (20), one end of which is fixedly connected to the inside of a mixing tank (18), and the output end of the water cup (19) is fixedly connected to a fertilizer pipe (12), one end of which is fixedly connected to the inside of a fertilizer pipe (8).
5. The automated fertilization equipment for strawberry cultivation according to claim 1, characterized in that: The greenhouse frame (1) is fixedly connected to a limiting rail (3), and a hanging ring (13) is slidably connected to the outer wall of the limiting rail (3). The bottom of the hanging ring (13) is fixedly connected to the outer wall of the fertilizer pipe (12).
6. The automated fertilization equipment for strawberry cultivation according to claim 1, characterized in that: The connecting frame (4) is fixedly connected to a limiting post (14), and the outer wall of the limiting post (14) is symmetrically connected to a limiting wheel (16). The outer wall of the limiting post (14) is fitted with a spring (17).
7. An automated fertilization device for strawberry cultivation according to claim 6, characterized in that: The limiting wheel (16) is fitted into the outer wall of the slide rail (2), and both ends of the spring (17) are fixedly connected between the slider (15).