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Determination of Aquifer Geometry Through Geophysical Methods: A Case Study From Quetta Valley, Pakistan

机译:通过地球物理方法确定含水层几何形状的研究:以巴基斯坦奎塔谷为例

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Due to increase in population and agricultural activities, the aquifer of Quetta Valley is under tremendous stress and the water table is declining at an increasing rate. This situation necessitates evaluation of the aquifer system, for which information about geometry of the aquifer is a prerequisite. However, there are no drilling-to-bedrock data available; therefore, electrical resistivity, seismic reflection and gravity methods were employed to determine geometry of the aquifer. Interpretation of vertical electrical soundings provided information about the depth-tobedrock at some specific points, whereas seismic reflection delineated bedrock topography along two lines. The depths to bedrock inferred from electrical resistivity and seismic reflection data were used as constraints in the modeling of gravity data. 2.75D gravity models were constructed along lines with a regular spacing. Map of depth-to-bedrock was prepared by contouring the depth given by the gravity models. Combination of these geophysical methods depicted the geometry of the aquifer. This example shows that in a similar geological setting proper integration of geophysical exploration methods can determine the aquifer geometry with an acceptable reliability and at an appropriate cost.
机译:由于人口和农业活动的增加,奎达河谷的含水层承受着巨大的压力,地下水位呈下降趋势。这种情况需要对含水层系统进行评估,而有关含水层几何形状的信息是先决条件。但是,没有可用的钻探至基岩数据。因此,采用电阻率,地震反射和重力法确定含水层的几何形状。垂直电测深的解释提供了有关某些特定点的基岩深度的信息,而地震反射则沿两条线描绘了基岩的地形。从电阻率和地震反射数据推断出的基岩深度被用作重力数据建模的约束条件。 2.75D重力模型是沿着规则间距的线构建的。通过勾勒重力模型给出的深度来绘制深度到基岩的地图。这些地球物理方法的组合描绘了含水层的几何形状。该示例表明,在类似的地质环境中,地球物理勘探方法的正确整合可以以可接受的可靠性和适当的成本确定含水层的几何形状。

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