Pechlivani Eleftheria Maria, Papadimitriou Athanasios, Pemas Sotirios, Ntinas Georgios, Tzovaras Dimitrios
Center for Research and Technology Hellas, Information Technologies Institute, 6th km Charilaou-Thermi Road, 57001 Thessaloniki, Greece.
Hellenic Agricultural Organization-DIMITRA, Sustainable Agricultural Structures & Renewable Energy Resources Lab, Institute of Plant Breeding & Genetic Resources, 57001 Thessaloniki, Greece.
Micromachines (Basel). 2023 Aug 30;14(9):1698. doi: 10.3390/mi14091698.
The agricultural sector faces numerous challenges in ensuring optimal soil health and environmental conditions for sustainable crop production. Traditional soil analysis methods are often time-consuming and labor-intensive, and provide limited real-time data, making it challenging for farmers to make informed decisions. In recent years, Internet of Things (IoT) technology has emerged as a promising solution to address these challenges by enabling efficient and automated soil analysis and environmental monitoring. This paper presents a 3D-printed IoT-based Agro-toolbox, designed for comprehensive soil analysis and environmental monitoring in the agricultural domain. The toolbox integrates various sensors for both soil and environmental measurements. By deploying this tool across fields, farmers can continuously monitor key soil parameters, including pH levels, moisture content, and temperature. Additionally, environmental factors such as ambient temperature, humidity, intensity of visible light, and barometric pressure can be monitored to assess the overall health of agricultural ecosystems. To evaluate the effectiveness of the Agro-toolbox, a case study was conducted in an aquaponics floating system with rocket, and benchmarking was performed using commercial tools that integrate sensors for soil temperature, moisture, and pH levels, as well as for air temperature, humidity, and intensity of visible light. The results showed that the Agro-toolbox had an acceptable error percentage, and it can be useful for agricultural applications.
农业部门在确保为可持续作物生产提供最佳土壤健康和环境条件方面面临诸多挑战。传统的土壤分析方法往往耗时且费力,并且提供的实时数据有限,这使得农民难以做出明智的决策。近年来,物联网(IoT)技术作为一种有前景的解决方案出现,通过实现高效、自动化的土壤分析和环境监测来应对这些挑战。本文介绍了一种基于物联网的3D打印农业工具箱,专为农业领域的全面土壤分析和环境监测而设计。该工具箱集成了用于土壤和环境测量的各种传感器。通过在田间部署这个工具,农民可以持续监测关键土壤参数,包括pH值、含水量和温度。此外,还可以监测环境因素,如环境温度、湿度、可见光强度和气压,以评估农业生态系统的整体健康状况。为了评估农业工具箱的有效性,在一个种植火箭生菜的鱼菜共生漂浮系统中进行了案例研究,并使用集成了土壤温度、湿度和pH值传感器以及空气温度、湿度和可见光强度传感器的商业工具进行了基准测试。结果表明,该农业工具箱的误差百分比可接受,对农业应用很有用。