论文标题
基于物联网的低成本土壤水分和土壤温度监测系统
IoT- Based Low-Cost Soil Moisture and Soil Temperature Monitoring System
论文作者
论文摘要
土壤水分(SM)被称为孔隙空间内有限量的水分子,它是水电过程的关键参数。土壤水分水的行为在响应地形,土壤特征和气候下在空间和时间上变化[1]。土壤水分受到各种水电学因子的监督,这些水力学因素因深度而垂直变化,横向横向横跨陆地形状,并暂时反馈到气候。高分辨率表面和地下土壤水分观察的精确监测和定量非常重要[13]。本文强调了在浦那IITM上进行的现场工作的结果,其中我们使用Raspberry Pi和物联网(IoT)开发了土壤水分和温度测量系统。该开发分为三个阶段,第一阶段包括与微处理器的传感器组装。通过无线传感器网络的低成本系统,数据生成和通信的部署是第二阶段的一部分。最后,第三阶段包括使用移动应用程序和数据服务器的实时数据可视化,以分析土壤水分和温度。通过部署的传感器获得的土壤水分曲线高度相关(r = .9),其原位重量测量值,其根平方误(RMSE)约为3.1%。同样,温度观测值与原位标准温度观察相匹配。在这里,我们介绍了初步结果,并将准确性与最新传感器进行比较。
Soil moisture (SM) is referred to as a finite amount of water molecules within the pore spaces and it is a crucial parameter of Hydro-Meteorological processes. The behaviour of soil moisture water changes spatially and temporally in response to topography, soil characteristics, and climate[1]. Soil moisture is overseen by various hydro-meteorological factors that vary vertically with depth, laterally across terrestrial shapes, and temporarily in feedback to the climate. The precise monitoring and quantification of high-resolution surface and subsurface soil moisture observations are very important [13]. This paper highlights the outcomes of the fieldwork carried out at IITM, Pune, wherein we have developed a soil moisture and temperature measurement system using Raspberry Pi and the Internet of things (IoT). The development is classified into three stages, the first stage includes the assembly of the sensor with the microprocessor. The deployment of the low-cost system, data generation, and communication through a wireless sensor network is part of the second stage. Finally, the third stage includes real-time data visualization using a mobile application and data server for analysing soil moisture and temperature. The soil moisture profile obtained through the sensor deployed is highly correlated (r=.9) with in-situ gravimetric observations, having a root mean square error (RMSE) of about 3.1%. Similarly, the temperature observations are well-matched with the in-situ standard temperature observation. Here we present the preliminary results and compare the accuracy with the state-of-the-art sensors.