Numerical evaluation of a full-wave antenna model for near-field applications

A. Tran, C. Warren, F. André, S. Lambot
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引用次数: 13

Abstract

In this study, we numerically evaluated a full-wave antenna model for near-field conditions using GprMax3D. The antenna is effectively characterized by a series of source and field points and global reflection/transmission coefficients, which enables us to take the maximum benefit of using analytical solutions of Maxwell' equations to noticeably reduce computation time compared to the numerical approach. The full-wave GPR model was calibrated by a series of numerical experiments above an infinite perfect electrical conductor (PEC). The calibration results provided a very good agreement with GprMax3D modeled data with a correlation coefficient of approximately 0.9995. Afterwards, the model was applied to estimate the dielectric permittivity and conductivity of an artificial medium based on GPR data obtained from the GprMax3D model. Full-wave inversion provided quite accurate estimations. The average relative errors of the dielectric permittivity and conductivity were lower than 0.28% and 11.5%, respectively. Our modeling approach shows a great potential to apply full-wave inversion for characterizing the electrical properties of the subsurface from near- and far-field radar measurements.
近场全波天线模型的数值评价
在这项研究中,我们使用GprMax3D对近场条件下的全波天线模型进行了数值评估。天线的有效特征是一系列的源和场点以及全局反射/透射系数,这使我们能够最大限度地利用麦克斯韦方程组的解析解,与数值方法相比,显著减少计算时间。通过在无限完美导体上的一系列数值实验,对全波探地雷达模型进行了标定。标定结果与GprMax3D模型数据吻合良好,相关系数约为0.9995。然后,基于GprMax3D模型获得的探地雷达数据,应用该模型估算了人工介质的介电常数和电导率。全波反演提供了相当精确的估计。介质介电常数和电导率的平均相对误差分别小于0.28%和11.5%。我们的建模方法显示了应用全波反演来表征近场和远场雷达测量的地下电学特性的巨大潜力。
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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