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开发用于无土农业生产系统的嵌入式软件和控制套件。

Development of an Embedded Software and Control Kit to Be Used in Soilless Agriculture Production Systems.

机构信息

Department of Agricultural Machinery and Technologies Engineering, Faculty of Agriculture, Ankara University, 06135 Ankara, Turkey.

出版信息

Sensors (Basel). 2023 Apr 3;23(7):3706. doi: 10.3390/s23073706.

Abstract

Traditional agricultural methods, which are still adopted today, depend on many factors. Food production processes face serious risks, such as limited clean water resources and supplements such as phosphorus, in addition to weather conditions due to climate change, the distribution of pests and soil-borne diseases, and increasing demand due to population growth, which can lead to famine. In particular, there may be cases where the soil nutrient content is insufficient and the soil structure is not suitable for cultivation. Therefore, soilless farming techniques have become popular, where the producer is entirely in control of the process. Additionally, many factors affect conventional farming techniques, including restrictions on land suitable for agriculture, climate-increased transportation costs from production areas to central regions, and environmental sanctions. Therefore, soilless farming techniques and the use of technology have rapidly gained importance. The use of technology has two crucial parameters: hardware and software. Today, no device can simultaneously control the electrical conductivity, pH, dissolved oxygen, and temperature of the solution in systems cultivated with soilless farming techniques. The present study was conducted to find a solution to the needs in this area. An automatic control system was developed and tested, employing a microcontroller, various sensors, appropriate open-source codes, and original software. Electrical conductivity (EC), power of hydrogen (pH), dissolved oxygen (DO), and temperature (T) values were determined successfully by the developed control system. The area where the experiment was conducted is a fully controlled and closed area established within Ankara University. The ambient temperature was 22 °C and the humidity was 39%. The coordinates of the experimental area are 39.962013 and 32.867491. Three different artificial lighting intensities (165.6 µmol m s, 248.4 µmol m s, and 331.2 µmol m s) and a desired photoperiod duration can be applied to the site.

摘要

传统的农业方法,即使在今天仍然被采用,也依赖于许多因素。除了气候变化导致的天气条件、害虫和土壤传播疾病的分布以及人口增长导致的需求增加等因素外,粮食生产过程还面临着严重的风险,例如有限的清洁水资源和磷等补充剂。特别是,可能存在土壤养分含量不足和土壤结构不适合种植的情况。因此,无土栽培技术变得流行起来,生产者完全可以控制整个过程。此外,许多因素会影响传统的农业技术,包括适合农业的土地限制、从生产区到中心区域的增加的气候运输成本以及环境制裁。因此,无土栽培技术和技术的使用迅速变得重要起来。技术的使用有两个关键参数:硬件和软件。如今,没有任何设备可以同时控制无土栽培技术培养系统中的溶液的电导率、pH 值、溶解氧和温度。本研究旨在找到满足这一领域需求的解决方案。开发并测试了一个自动控制系统,该系统采用微控制器、各种传感器、适当的开源代码和原始软件。开发的控制系统成功地确定了电导率 (EC)、氢离子浓度 (pH)、溶解氧 (DO) 和温度 (T) 值。进行实验的区域是安卡拉大学内建立的一个完全受控和封闭的区域。环境温度为 22°C,湿度为 39%。实验区域的坐标为 39.962013 和 32.867491。可以向该地点施加三种不同的人工照明强度(165.6 µmol m s、248.4 µmol m s 和 331.2 µmol m s)和所需的光照持续时间。

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