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Modelling and evaluation of HF-RFID signal propagation characterisations under material properties variation

机译:材料特性变化下的HF-RFID信号传播特性建模与评估

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摘要

Previous electromagnetic (EM) wave-based approaches to evaluate material physical properties are focused on applications of GHz and THz. High-frequency radio-frequency identification (HF-RFID, 13.56 MHz) is low-cost and mostly used as communication solution. Material properties variation can be affected by damage (such as defects or fatigue). In this study, the authors present a preliminary study that applies HF-RFID on non-destructive testing and evaluation. The evaluation model of HF-RFID signal propagation characterisations under material EM properties variation is demonstrated. Simulations and experiments for oil debris monitoring and metal surface defect detection are demonstrated and simulations are in good agreement with experiment results. (i) In oil debris monitoring experiment, as the debris amount in the 25 ml breaker increases from 0.0 to 2.0 g, penetration signal decreases by 7.8% and reflected signal increases by 174.3%. (ii) In metal surface defect experiment, as the defect size increases from 1 to 5 mm, reflected signal decreases by 1.0%. The authors' work also presents a blueprint for non-destructive testing method using other high-frequency devices.
机译:先前基于电磁波(EM)的评估材料物理特性的方法主要集中在GHz和THz的应用上。高频射频识别(HF-RFID,13.56 MHz)价格低廉,主要用作通信解决方案。材料性能变化会受到损坏(例如缺陷或疲劳)的影响。在这项研究中,作者提出了一项将HF-RFID应用于无损检测和评估的初步研究。阐述了材料电磁特性变化下的HF-RFID信号传播特性评估模型。演示了油污监测和金属表面缺陷检测的仿真与实验,仿真结果与实验结果吻合良好。 (i)在油渣监测实验中,当25毫升破碎机中的渣油量从0.0克增加到2.0克时,穿透信号减少7.8%,反射信号增加174.3%。 (ii)在金属表面缺陷实验中,随着缺陷尺寸从1毫米增加到5毫米,反射信号降低1.0%。作者的工作还提出了使用其他高频设备的无损检测方法的蓝图。

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