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Modeling of EM Wave Coherent Scattering From a Rough Multilayered Medium With the Scalar Kirchhoff Approximation for GPR Applications

机译:从粗糙多层介质与GPR应用的标量kirchhoff近似的粗糙多层介质模拟EM波相干散射

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摘要

This article presents a new asymptotic modeling of electromagnetic (EM) wave coherent scattering from a rough multilayered medium, based on the scalar Kirchhoff-tangent plane approximation. The proposed EM model is developed to simulate a realistic ground-penetrating radar (GPR) signal that considers the interface roughness of the multilayer. It allows us to investigate the influence of the interface roughness on the amplitude of the GPR echoes coming from the multilayered medium. Sounded multilayered medium generally has a low contrast between the successive layers, so that the multiple reflections inside each layer may be neglected; this assumption will be evaluated. The very low computational burden of this EM method is an important advantage as compared with a rigorous numerical method. First, numerical results in the frequency domain are presented to validate the proposed model, by comparison with a reference method based on the Method of Moments (MoM). Then, numerical results in the time domain are presented to analyze the behavior and performance of this new method, and the impact of both the interface roughness and the medium conductivity on the results.
机译:本文基于标量kirchhoff-切线平面近似,从粗糙的多层介质中提出了一种新的渐近模型的电磁(EM)波相干散射。开发了所提出的EM模型,以模拟现实的地面穿透雷达(GPR)信号,该信号考虑多层的界面粗糙度。它允许我们研究界面粗糙度对来自多层介质的GPR回波幅度的影响。响声多层介质通常在连续层之间具有低对比度,使得可以忽略每个层内的多个反射;将评估此假设。与严格的数值方法相比,这种EM方法的极低计算负担是一个重要的优势。首先,提出了频域中的数值结果以验证所提出的模型,与基于时刻(MOM)的参考方法进行比较。然后,提出了时间域中的数值结果,以分析这种新方法的行为和性能,以及界面粗糙度和介质电导率对结果的影响。

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