Ryu Jae Hyeon, Baek Jeonghyun, Subah Zarin
University of Idaho, Boise, ID 83702, USA.
National Institute of Agricultural Sciences, Rural Development Administration, Jeonju 54875, Republic of Korea.
HardwareX. 2025 Jan 18;21:e00625. doi: 10.1016/j.ohx.2025.e00625. eCollection 2025 Mar.
An alternative food production system using hydroponics is proposed to grow vegetables in a controlled environment that is implementable in space. The proposed system is an autonomous, modular, scalable, and soilless food production platform (ASFP) that can be installed in a spacecraft by meeting requirements and constraints set by the National Aeronautics and Space Administration (NASA). A suite of Internet of Things (IoT) sensors was used to monitor indoor climate as well as water quality in ASFP. Average values of air temperature and relative humidity in the environmentally-controlled room are maintained between 20-24 °C and 48-62 %, while water quality components, including dissolved oxygen (DO, ppm), electrical conductivity (EC, µS/m), pH, and water temperature (WT, Celsius) are monitored by the IoT sensor in real-time during the growing period. Repeated measure analysis is also performed to evaluate the plant growth performance. The result indicates that plant growth is attributed significantly to pH and EC values. A real-time data visualization and sharing platform is another avenue for the space farming ecosystem in the years to come.
提出了一种使用水培法的替代粮食生产系统,用于在可控环境中种植蔬菜,该系统可在太空中实施。所提出的系统是一个自主、模块化、可扩展的无土粮食生产平台(ASFP),通过满足美国国家航空航天局(NASA)设定的要求和限制,可以安装在航天器中。一套物联网(IoT)传感器用于监测ASFP中的室内气候以及水质。环境控制室中的空气温度和相对湿度的平均值保持在20-24°C和48-62%之间,而水质成分,包括溶解氧(DO,ppm)、电导率(EC,µS/m)、pH值和水温(WT,摄氏度)在生长期间由物联网传感器实时监测。还进行了重复测量分析以评估植物生长性能。结果表明,植物生长显著归因于pH值和EC值。实时数据可视化和共享平台是未来几年太空农业生态系统的另一条途径。