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The Implementation of a Low Power Environmental Monitoring and Soil Moisture Measurement System Based on UHF RFID

机译:基于UHF RFID的低功率环境监测和土壤水分测量系统的实施

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摘要

A smart sensor label based on the integration of ultra high frequency (UHF) radio frequency identification (RFID) technology and sensors is presented. The label is composed of a semi-active system that measures temperature, light, relative humidity and gravimetric water content (GWC) in the soil. The deployed system provides a simple, cost effective solution to monitor and control the growing of plants in modern agriculture and is intended be a part of a smart wireless sensor network (WSN) for agricultural monitoring. This paper is focused on analysis and development of a moisture sensor to measure GWC. It is based on a capacitance measurement solution, the accuracy of which is enhanced using several sensor driving frequencies. Thanks to the cancellation of supply voltage variations, the modeling of the GWC sensor and readout circuit was correct. The results we measured were close to modeled values. The maximum measurement resolution of the capacitive moisture sensor was 0.07 pF. To get the GWC from measured capacitance, a scale was used to weigh the mass of water in the soil. The comparison between capacitance measurement and calculated soil GWC is presented. The RFID measurement system has energy harvesting capabilities and an ultra-low power microcontroller, which uses embedded software to control the measurement properties. The microcontroller has to choose the appropriate model depending on the measured amplitude and chosen frequency to calculate the actual voltage on the sensing capacitor.
机译:提出了一种基于超高频(UHF)射频识别(RFID)技术和传感器的集成的智能传感器标签。该标签由半主动系统组成,可测量土壤中的温度,光,相对湿度和重量含水量(GWC)。部署的系统提供了一种简单,具有成本效益的解决方案,可以监控和控制现代农业的植物的生长,并且是用于农业监测的智能无线传感器网络(WSN)的一部分。本文专注于分析和开发湿度传感器以测量GWC。它基于电容测量解决方案,其精度通过多个传感器驱动频率增强。由于取消供电电压变化,GWC传感器和读出电路的建模是正确的。我们测量的结果接近建模值。电容式湿度传感器的最大测量分辨率为0.07pf。为了从测量的电容中获得GWC,使用尺度来称量土壤中的水质。提出了电容测量和计算土壤GWC之间的比较。 RFID测量系统具有能量收集功能和超低功耗微控制器,它使用嵌入式软件来控制测量属性。微控制器必须根据测量的幅度和所选择的频率选择合适的模型来计算传感电容器上的实际电压。

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