延时井间探地雷达全波形反演表征含水层流动和输运过程

P. Haruzi, J. Schmäck, J. van der Kruk, H. Vereecken, J. Vanderborght, A. Klotzsche
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引用次数: 0

摘要

时域井间探地雷达全波形反演已被证明是一种高分辨率表征地下和含水层的有力工具。全波形反演能够提供所研究介质的相对介电常数和电导率,因此能够改善地下表征。到目前为止,大多数研究都是在稳定状态下进行的,流动和输运过程的相关性一直很困难。在这项研究中,我们研究了如何使用井间GPR FWI来绘制和量化砾石含水层中的不同示踪剂,这些示踪剂不仅会影响地下介电常数,还会影响电导率。因此,我们的主要重点是利用现实的含水层运输模型来研究盐示踪剂的影响。利用合成时移探地雷达数据,对不同的全波形反演和启动模型策略进行分析,找出重建示踪运动的最佳方法。首先对正盐示踪的实验数据进行了研究,重点研究了有效源小波估计和延时全波形反演结果的优化。最初的结果显示了优先流动路径的指标,并且大多数示踪剂在含水层底部移动得更快,而在含水层上部可以观察到缓慢的运动。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Time-lapse crosshole GPR full-waveform inversion to characterize flow and transport processes in aquifers
Time-domain crosshole GPR full-waveform inversion has proven to be a powerful tool to characterize the subsurface and aquifers with a high resolution. The full-waveform inversion is able to provide both the relative permittivity and the electrical conductivity of the investigated medium and is therefore able to improve subsurface characterization. Until now, most of the studies have been performed in a steady state and correlations to flow and transport processes have been difficult. In this study, we investigate how the crosshole GPR FWI can be used to map and quantify different tracers in a gravel aquifer, that not only affect the permittivity of the subsurface, but also the electrical conductivity. Thereby, our main focus is to investigate the effect of a salt tracer using a realistic aquifer transport model. Synthetic time-lapse GPR data are used to analyze different full-waveform inversions and starting model strategies to find the method that reconstructs the tracer movement best. First experimental data using a positive salt tracer are investigated with a focus on the effective source wavelet estimation and optimization of the time-lapse full-waveform inversion results. First results show indicators for preferential flow paths and that most of the tracer travels faster at the bottom of the aquifer, while in the upper part a slow movement could be observed.
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