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Constraining 3-D electrical resistance tomography with GPR reflection data for improved aquifer characterization

机译:用GPR反射数据约束3-D电阻层析成像以改善含水层特征

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摘要

Surface-based ground penetrating radar (GPR) and electrical resistance tomography (ERT) are common tools for aquifer characterization, because both methods provide data that are sensitive to hydrogeologically relevant quantities. To retrieve bulk subsurface properties at high resolution, we suggest incorporating structural information derived from GPR reflection data when inverting surface ERT data. This reduces resolution limitations, which might hinder quantitative interpretations. Surface-based GPR reflection and ERT data have been recorded on an exposed gravel bar within a restored section of a previously channelized river in northeastern Switzerland to characterize an underlying gravel aquifer. The GPR reflection data acquired over an area of 240 × 40 m map the aquifer's thickness and two internal sub-horizontal regions with different depositional patterns. The interface between these two regions and the boundary of the aquifer with the underlying clay are incorporated in an unstructured ERT mesh. Subsequent inversions are performed without applying smoothness constraints across these boundaries. Inversion models obtained by using these structural constraints contain subtle resistivity variations within the aquifer that are hardly visible in standard inversion models as a result of strong vertical smearing in the latter. In the upper aquifer region, with high GPR coherency and horizontal layering, the resistivity is moderately high (> 300 Ωm). We suggest that this region consists of sediments that were rearranged during more than a century of channelized flow. In the lower low coherency region, the GPR image reveals fluvial features (e.g., foresets) and generally more heterogeneous deposits. In this region, the resistivity is lower (~ 200 Ωm), which we attribute to increased amounts of fines in some of the well-sorted fluvial deposits. We also find elongated conductive anomalies that correspond to the location of river embankments that were removed in 2002.
机译:基于地面的探地雷达(GPR)和电阻层析成像(ERT)是表征含水层的常用工具,因为这两种方法都提供对水文地质相关量敏感的数据。为了以高分辨率检索整体地下属性,我们建议在反转表面ERT数据时合并从GPR反射数据得出的结构信息。这减少了分辨率限制,这可能会妨碍定量解释。基于表面的GPR反射和ERT数据已记录在瑞士东北部先前渠道化河流恢复段的裸露砾石条上,以表征底层砾石含水层。在240×40 m的区域上采集的GPR反射数据映射了含水层的厚度以及两个内部亚水平区域,具有不同的沉积模式。这两个区域之间的界面以及含水层与下层粘土的边界被合并到非结构化ERT网格中。在不对这些边界应用平滑约束的情况下执行后续反演。通过使用这些结构约束获得的反演模型包含了含水层内的细微电阻率变化,这是标准反演模型中由于强烈的垂直拖尾而几乎看不到的。在具有较高GPR相干性和水平分层的上部含水层区域,电阻率适度较高(> 300Ωm)。我们建议该区域由沉积物组成,这些沉积物在一个多世纪的通道化流动过程中进行了重新排列。在较低的低相干性区域中,GPR图像显示出河流特征(例如前兆)和通常较不均匀的沉积物。在该区域,电阻率较低(〜200Ωm),这归因于某些分类良好的河流沉积物中细粉量的增加。我们还发现与2002年拆除的河堤位置相对应的细长导电异常。

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