An Effective and Affordable Internet of Things (IoT) Scale System to Measure Crop Water Use

J. Payero
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Abstract

Scales are widely used in many agricultural applications, ranging from weighing crops at harvest to determine crop yields to regularly weighing animals to determine growth rate. In agricultural research applications, there is a long history of measuring crop water use (evapotranspiration [ET]) using a particular type of scale called weighing lysimeters. Typically, weighing lysimeters require very accurate data logging systems that tend to be expensive. Recent developments in open-source technologies, such as micro-controllers and Internet of Things (IoT) platforms, have created opportunities for developing effective and affordable ways to monitor crop water use and transmit the data to the Internet in near real-time. Therefore, this study aimed to create an affordable Internet of Things (IoT) scale system to measure crop ET. A scale system to monitor crop ET was developed using an Arduino-compatible microcontroller with cell phone communication, electronic load cells, an Inter-Integrated Circuit (I2C) multiplexer, and analog-to-digital converters (ADCs). The system was powered by a LiPo battery, charged by a small (6 W) solar panel. The IoT scale system was programmed to collect data from the load cells at regular time intervals and send the data to the ThingSpeak IoT platform. The system performed successfully during indoor and outdoor experiments conducted in 2023 at the Clemson University Edisto Research and Education Center, Blackville, SC. Calibrations relating the measured output of the scale load cells to changes in mass resulted in excellent linear relationships during the indoor (r2 = 1.0) and outdoor experiments (r2 = 0.9994). The results of the outdoor experiments showed that the IoT scale system could accurately measure changes in lysimeter mass during several months (Feb to Jun) without failure in data collection or transmission. The changes in lysimeter mass measured during that period reflected the same trend as concurrent soil moisture data measured at a nearby weather station. The changes in lysimeter mass measured with the IoT scale system during the outdoor experiment were accurate enough to derive daily and hourly crop ET and even detect what appeared to be dew formation during the morning hours. The IoT scale system can be built using open-source, off-the-shelf electronic components which can be purchased online and easily replaced or substituted. The system can also be developed at a fraction of the cost of data logging, communication, and visualization systems typically used for lysimeter and scale applications.
测量作物用水量的有效且经济实惠的物联网 (IoT) 规模系统
衡器广泛应用于许多农业领域,从收获时称量作物以确定作物产量,到定期称量动物以确定生长速度,不一而足。在农业研究应用中,使用一种称为称重式蒸散量计的特殊衡器测量作物用水量(蒸散量 [ET])的历史悠久。通常情况下,称重式蒸发蒸腾仪需要非常精确的数据记录系统,而这些系统往往价格昂贵。微控制器和物联网(IoT)平台等开源技术的最新发展为开发有效且经济实惠的方法来监测作物用水量并将数据近乎实时地传输到互联网创造了机会。因此,本研究旨在创建一个经济实惠的物联网规模系统来测量作物蒸散发。本研究开发了一套用于监测作物蒸散发的称重系统,该系统采用了与 Arduino 兼容的微控制器,带有手机通信功能、电子称重传感器、集成电路 (I2C) 多路复用器和模数转换器 (ADC)。系统由一个锂聚合物电池供电,由一个小型(6 瓦)太阳能电池板充电。物联网称重系统经过编程,可定时从称重传感器收集数据,并将数据发送到 ThingSpeak 物联网平台。该系统于 2023 年在南卡罗来纳州布莱克维尔的克莱姆森大学埃迪斯托研究与教育中心进行的室内和室外实验中表现出色。在室内实验(r2 = 1.0)和室外实验(r2 = 0.9994)中,衡器称重传感器的测量输出与质量变化之间的校准产生了良好的线性关系。室外实验结果表明,物联网称重系统可以在几个月(2 月至 6 月)内准确测量莱西米质量的变化,而不会出现数据收集或传输失败的情况。在此期间测量到的莱西米质量变化与附近气象站测量到的同期土壤湿度数据反映了相同的趋势。在室外实验期间,使用物联网称重系统测量到的浸润计质量变化非常精确,足以推算出作物每日和每小时的蒸散发,甚至还能检测到早上似乎有露水形成。物联网称重系统可以使用开源、现成的电子元件来构建,这些元件可以在网上购买,并且易于更换或替换。该系统的开发成本仅为通常用于溶液计和秤应用的数据记录、通信和可视化系统的一小部分。
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