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Hydrogeophysics and remote sensing for the design of hydrogeological conceptual models in hard rocks - Sardón catchment (Spain)

机译:用于硬岩水文地质概念模型设计的水文地球物理和遥感-Sardón集水区(西班牙)

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摘要

Hard rock aquifers are highly heterogeneous and hydrogeologically complex. To contribute to the design of hydrogeological conceptual models of hard rock aquifers, we propose a multi-techniques methodology based on a downward approach that combines remote sensing (RS), non-invasive hydrogeophysics and hydrogeological field data acquisition. The proposed methodology is particularly suitable for data scarce areas. It was applied in the pilot research area of Sardón catchment (80 km2) located west of Salamanca (Spain). The area was selected because of hard-rock hydrogeology, semi-arid climate and scarcity of groundwater resources.The proposed methodology consisted of three main steps. First, we detected the main hydrogeological features at the catchment scale by processing: (i) a high resolution digital terrain model to map lineaments and to outline fault zones; and (ii) high-resolution, multispectral satellite QuickBird and WorldView-2 images to map the outcropping granite. Second, we characterized at the local scale the hydrogeological features identified at step one with: i) ground penetrating radar (GPR) to assess groundwater table depth complementing the available monitoring network data; ii) 2D electric resistivity tomography (ERT) and frequency domain electromagnetic (FDEM) to retrieve the hydrostratigraphy along selected survey transects; iii) magnetic resonance soundings (MRS) to retrieve the hydrostratigraphy and aquifer parameters at the selected survey sites. In the third step, we drilled 5 boreholes (25 to 48 m deep) and performed slug tests to verify the hydrogeophysical interpretation and to calibrate the MRS parameters. Finally, we compiled and integrated all acquired data to define the geometry and parameters of the Sardón aquifer at the catchment scale. In line with a general conceptual model of hard rock aquifers, we identified two main hydrostratigraphic layers: a saprolite layer and a fissured layer. Both layers were intersected and drained by fault zones that control the hydrogeology of the catchment. The spatial discontinuities of the saprolite layer were well defined by RS techniques while subsurface geometry and aquifer parameters by hydrogeophysics. The GPR method was able to detect shallow water table at depth between 1 and 3 m b.g.s. The hydrostratigraphy and parameterization of the fissured layer remained uncertain because ERT and FDEM geophysical methods were quantitatively not conclusive while MRS detectability was restricted by low volumetric water content. The proposed multi-technique methodology integrating cost efficient RS, hydrogeophysics and hydrogeological field investigations allowed us to characterize geometrically and parametrically the Sardón hard rock aquifer system, facilitating the design of hydrogeological conceptual model of the area.
机译:硬岩含水层高度非均质,水文地质复杂。为了对硬岩含水层的水文地质概念模型的设计做出贡献,我们提出了一种基于向下方法的多技术方法论,该方法结合了遥感(RS),非侵入性水文地球物理和水文地质现场数据采集。所提出的方法特别适合于数据稀缺的地区。它被应用在位于西班牙萨拉曼卡以西的Sardón集水区(80 km2)的试验研究区域。选择该地区的原因是硬岩水文地质,半干旱气候和地下水资源稀缺。拟议的方法包括三个主要步骤。首先,我们通过处理在集水区范围内检测到主要的水文地质特征:(i)高分辨率数字地形模型,用于绘制线状图和勾勒断层带; (ii)高分辨率的多光谱卫星QuickBird和WorldView-2图像,用于绘制出露花岗岩。其次,我们在本地范围内对第一步中确定的水文地质特征进行了特征描述:i)探地雷达(GPR)以评估地下水位深度,以补充可用的监测网络数据; ii)二维电阻率层析成像(ERT)和频域电磁层析成像(FDEM),以沿选定的测量断面检索水文地层; iii)磁共振测深(MRS),用于在选定的勘测地点检索水文地层和含水层参数。在第三步中,我们钻了5个钻孔(25至48 m深),并进行了段塞测试,以验证水文地球物理解释并校准MRS参数。最后,我们汇总并整合了所有采集的数据,以定义流域尺度下Sardón含水层的几何形状和参数。根据硬岩含水层的一般概念模型,我们确定了两个主要的水文地层:腐泥土层和裂隙层。这两层均由控制流域水文地质的断层带相交并排干。腐泥土层的空间不连续性通过RS技术得到了很好的定义,而地下几何形状和含水层参数则通过水文地球物理得以很好地定义。 GPR方法能够检测出1-3 m b.g.s的浅水位。裂隙层的水文地层学和参数化仍然不确定,因为ERT和FDEM地球物理方法在定量上不是结论性的,而MRS的可探测性受到低体积水含量的限制。所提出的多技术方法论结合了经济高效的RS,水文地球物理和水文地质调查,使我们能够对Sardón硬岩含水层系统进行几何和参数表征,从而为该地区的水文地质概念模型的设计提供了便利。

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