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3D characterization of an aquifer using full-waveform inversion and amplitude analysis

机译:使用全波形反演和幅度分析对含水层进行3D表征

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For accurate prediction of flow and contaminant transport in aquifers, a high resolution method is necessary, that is able to detect small-scale high-contrast layers. Such layers can act as low-velocity waveguides in the GPR signal and can be related to a zone of preferential flow or impermeable clay lenses. Here, we characterize a saturated gravel aquifer in 3D by applying 2D full-waveform inversion and an amplitude analysis approach that explores the information content present in the measured GPR data. The full-waveform inversion results of the permittivity and conductivity show decimeter-scale high resolution images and similar results at the borehole crossing and at the intersection of the diagonal planes. In all six planes, a high permittivity layer between 5m–6m depth was resolved, which acted due to the high contrast to the surrounding as a low-velocity waveguide indicating a zone of higher porosity. The amplitude analysis of the measured data showed significant wave propagation for transmitter located in and outside this zone. By using this information, the method was able to detect the waveguide layers and their boundaries in the measured data, which were confirmed by the full-waveform inversion results. Permeability logs indicate a zone of preferential flow between 5m–6m depth, which shows a good agreement with the high permittivity/porosity zone detected by the full-waveform inversion
机译:为了准确预测含水层中的水流和污染物运移,需要一种高分辨率方法,该方法能够检测出小规模的高对比度层。这样的层可以充当GPR信号中的低速波导,并且可以与优先流动的区域或不可渗透的粘土透镜相关。在这里,我们通过应用2D全波形反演和幅值分析方法来表征3D中的饱和砾石含水层,该方法探索了测量的GPR数据中存在的信息内容。介电常数和电导率的全波形反演结果显示了分米尺度的高分辨率图像,并且在井眼交叉处和对角线平面的相交处具有相似的结果。在所有六个平面中,解析了5m–6m深度之间的高介电常数层,这是由于与周围环境形成的高对比度,导致了低速波导的作用,表明孔隙率较高。对测得数据的幅度分析表明,位于该区域内外的发射机都有明显的波传播。通过使用此信息,该方法能够检测到波导层及其在测量数据中的边界,这些已通过全波形反演结果得到了证实。渗透率测井表明在5m–6m深度之间存在优先流动区,这与通过全波形反演检测到的高介电常数/孔隙率区具有很好的一致性

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