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Accuracy Bounds and Measurements of a Contactless Permittivity Sensor for Gases Using Synchronized Low-Cost mm-Wave Frequency Modulated Continuous Wave Radar Transceivers

机译:使用同步低成本毫米波频率调制连续波雷达收发器的气体非接触式介电常数传感器的精度范围和测量

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摘要

A primary concern in a multitude of industrial processes is the precise monitoring of gaseous substances to ensure proper operating conditions. However, many traditional technologies are not suitable for operation under harsh environmental conditions. Radar-based time-of-flight permittivity measurements have been proposed as alternative but suffer from high cost and limited accuracy in highly cluttered industrial plants. This paper examines the performance limits of low-cost frequency-modulated continuous-wave (FMCW) radar sensors for permittivity measurements. First, the accuracy limits are investigated theoretically and the Cramér-Rao lower bounds for time-of-flight based permittivity and concentration measurements are derived. In addition, Monte-Carlo simulations are carried out to validate the analytical solutions. The capabilities of the measurement concept are then demonstrated with different binary gas mixtures of Helium and Carbon Dioxide in air. A low-cost time-of-flight sensor based on two synchronized fully-integrated millimeter-wave (MMW) radar transceivers is developed and evaluated. A method to compensate systematic deviations caused by the measurement setup is proposed and implemented. The theoretical discussion underlines the necessity of exploiting the information contained in the signal phase to achieve the desired accuracy. Results of various permittivity and gas concentration measurements are in good accordance to reference sensors and measurements with a commercial vector network analyzer (VNA). In conclusion, the proposed radar-based low-cost sensor solution shows promising performance for the intended use in demanding industrial applications.
机译:在众多工业过程中,主要关注的是对气态物质的精确监控,以确保适当的操作条件。但是,许多传统技术不适合在恶劣的环境条件下运行。已经提出了基于雷达的飞行时间介电常数测量方法,但在高度混乱的工业工厂中,该方法成本高昂且精度有限。本文探讨了用于电容率测量的低成本调频连续波(FMCW)雷达传感器的性能极限。首先,从理论上研究精度极限,并得出基于飞行时间的介电常数和浓度测量的Cramér-Rao下界。另外,进行了蒙特卡洛模拟以验证分析解决方案。然后,用空气中氦气和二氧化碳的不同二元气体混合物证明了测量概念的能力。开发并评估了基于两个同步的完全集成毫米波(MMW)雷达收发器的低成本飞行时间传感器。提出并实现了一种补偿由测量装置引起的系统偏差的方法。理论讨论强调了利用信号相位中包含的信息来实现所需精度的必要性。各种介电常数和气体浓度的测量结果均与参考传感器和商用矢量网络分析仪(VNA)的测量结果完全一致。总之,所提出的基于雷达的低成本传感器解决方案在要求苛刻的工业应用中具有预期的性能。

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