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垂直气培种植系统营养液供应装置的设计

Design of a nutrient solution supply device for a vertical aeroponic cultivation system.

作者信息

He Yihan, Zhang Xinghua, Wang Ting, Tan Xinyu, Liu Shuguang

机构信息

Yantai Institute, China Agricultural University, Yantai, China.

出版信息

Front Plant Sci. 2025 Jul 3;16:1615927. doi: 10.3389/fpls.2025.1615927. eCollection 2025.

Abstract

Aeroponic cultivation systems provide precise environmental control for plant growth, effectively block the reproductive pathways of root diseases and pests, and facilitate efficient water resource recycling, thereby offering a scalable technical solution for intensive, high-yield, and sustainable agricultural production. Aiming to address the complex underground pipelines and excessive spray nozzles in fixed-pipeline nutrient solution supply systems of conventional vertical aeroponic cultivation, this study proposes a vertical aeroponic cultivation paradigm for large-scale production that can be applied to mobile nutrient solution supply modes. This study analyzes the structural components and operational workflow of the vertical aeroponic cultivation system, and the structural components, operational principles and technical specifications of the dedicated nutrient solution supply device. Transient dynamic analysis is conducted using ANSYS Workbench 2025 R1 (student) software, thereby yielding the equivalent stress/strain distributions on the body frame at 0.15 m/s, and on the spray bracket at 0.4 m/s. The simulation results demonstrate that both structures maintain stress within material limits and without significant concentration areas, with minimal strain levels meeting operational requirements. The Box-Behnken experimental design methodology is adopted to establish flow rate of the spray nozzles, moving speed of the spray nozzles, and vertical height from the test points on the legs of the trapezoidal cross-section of the cultivation bed to the ground as experimental factors, with nutrient solution coverage rate as evaluation indicator. The experimental results are analyzed using Design Expert 13.0 software to establish a regression model and conduct optimization analysis. The optimization results indicate that with a flow rate of 3 L/min for the spray nozzles and a moving speed of 0.38 m/s for the spray nozzles, the nutrient solution coverage rates on the legs of the trapezoidal cross-section of the cultivation bed reach >90% for both vertical height positions (0.1 m and 1.4 m from ground). This configuration ensures >90% nutrient solution coverage rate across the entire legs of the trapezoidal cross-section of the cultivation bed. Verification experiments confirm nutrient solution coverage rates at the respective test points are 90.33% and 91.52%, which is in accordance with the practical application requirements. This study will serve to diversify aeroponic production methodologies, expand development potential for commercial aeroponics, and provide valuable insights for technological dissemination.

摘要

气培种植系统为植物生长提供精确的环境控制,有效阻断根病和害虫的繁殖途径,并促进高效的水资源循环利用,从而为集约化、高产和可持续农业生产提供了一种可扩展的技术解决方案。针对传统垂直气培种植固定管道营养液供应系统中复杂的地下管道和过多的喷头问题,本研究提出了一种适用于移动营养液供应模式的大规模生产垂直气培种植范式。本研究分析了垂直气培种植系统的结构组成和运行工作流程,以及专用营养液供应装置的结构组成、工作原理和技术规格。使用ANSYS Workbench 2025 R1(学生版)软件进行瞬态动力学分析,从而得出车身框架在0.15 m/s时以及喷头支架在0.4 m/s时的等效应力/应变分布。模拟结果表明,两种结构的应力均保持在材料极限范围内,且无明显的应力集中区域,应变水平最小,满足运行要求。采用Box-Behnken实验设计方法,将喷头的流量、喷头的移动速度以及栽培床梯形横截面支腿上测试点到地面的垂直高度作为实验因素,以营养液覆盖率作为评价指标。使用Design Expert 13.0软件对实验结果进行分析,建立回归模型并进行优化分析。优化结果表明,当喷头流量为3 L/min、喷头移动速度为0.38 m/s时,栽培床梯形横截面支腿在两个垂直高度位置(距地面0.1 m和1.4 m)的营养液覆盖率均达到>90%。这种配置确保了栽培床梯形横截面整个支腿上的营养液覆盖率>90%。验证实验证实,各个测试点的营养液覆盖率分别为90.33%和91.52%,符合实际应用要求。本研究将有助于丰富气培生产方法,拓展商业气培的发展潜力,并为技术传播提供有价值的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6751/12267193/8140afd8095a/fpls-16-1615927-g001.jpg

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