Multilayer medium technique for nondestructive EM-properties measurement of radar absorbing materials using flanged rectangular waveguide sensor and FDTD method

Abdul-Kadum A. Hassan
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Abstract

The mathematical truth associated with the simultaneous multiparameter measurement using reflection only sensors is that if there are n unknowns to be determined, we need at least n independent measurements to be able to solve even one of them. In this paper, multilayer medium technique is employed to produce the needed independent reflection coefficients for simultaneous nondestructive determination of complex permittivity and permeability of radar absorbing coatings at X-band of microwave frequency range. The technique is based on measuring two reflection coefficients of finite flange open-ended waveguide reflection sensor placed in close contact with the material under test backed by metal. The first reflection coefficient is measured using sample of material under test, while the second one is done to test again a combination of this sample followed by material sample with a known permittivity, permeability and thickness to form a multilayer medium sample. Finite-Difference Time-Domain (FDTD) method is applied to numerically formulate the aperture admittance and calculate reflection coefficients for the two cases. Both complex permittivity and permeability are extracted iteratively by imposing reflection coefficient value, both obtaining from FDTD modeling and measurement using Newton-Raphson method. The technique is used to measure EM-properties of radar absorbing coatings using Vector Network Analyzer. Preliminary results of ε* and μ* are in good agreement with published data. Through numerical simulations and measurement, it has demonstrated that the technique is promising for simultaneous nondestructive multiparameter (EM-properties and physical quantities) measurement of high loss materials and other applications such as thickness evaluation of layered media. The FDTD simulations and experiments results are presented.
基于法兰矩形波导传感器和时域有限差分法的雷达吸波材料电磁特性无损测量多层介质技术
与仅使用反射传感器的同时多参数测量相关的数学真理是,如果有n个未知数待确定,我们至少需要n个独立的测量才能解决其中一个问题。本文采用多层介质技术,在微波频率范围x波段同时无损测定雷达吸波涂层的复介电常数和磁导率,得到了所需的独立反射系数。该技术是基于测量有限法兰开放式波导反射传感器的两个反射系数,该传感器放置在与被测材料紧密接触的金属背面。第一次反射系数是用待测材料的样品测量的,第二次反射系数是用该样品与已知介电常数、渗透率和厚度的材料样品的组合再次测试,形成多层介质样品。采用时域有限差分(FDTD)方法对两种情况下的孔径导纳进行了数值计算,并计算了反射系数。复介电常数和磁导率分别由时域有限差分(FDTD)建模和牛顿-拉夫逊法测量得到,通过施加反射系数值迭代提取。利用矢量网络分析仪对雷达吸波涂层的电磁特性进行了测量。ε*和μ*的初步结果与已发表的数据吻合较好。通过数值模拟和测量,证明了该技术在高损耗材料的同时无损多参数(电磁特性和物理量)测量和其他应用,如层状介质的厚度评估方面的前景。给出了时域有限差分仿真和实验结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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