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Depth estimates of anomalous subsurface sources using 2D/3D modeling of potential field data: implications for groundwater dynamics in the Ziway-Shala Lakes Basin, Central Main Ethiopian Rift

机译:使用潜在现场数据的2D / 3D建模的异常地下源的深度估计:中央埃塞俄比亚河流河马湖流域地下水动态的影响

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摘要

Quantitative analysis of potential field data are made in the Ziway-Shala lakes basin over an area bounded by 38°00′ E - 39°30′ E and 7°00′ N - 8°30’ N. Most previous geophysical studies in the region under consideration focus on mapping the deep crustal structures and undulation of the Moho depth. Only few studies are targeted at mapping the shallow subsurface structures. The main focus of this paper is mapping geometries of the major lithological and structural units of the shallow subsurface using gravity and magnetic data. The ultimate objective of the research is to understand the hydrogeological dynamics of the region through mapping interfaces geometries. Automatic inversions, 2D joint forward modeling and 3D inversion are the major techniques employed. The 2D Werner de-convolution based on both gravity and magnetic data along the rift axis showed source depths tending to deepen northwards. Source depths estimates determined by Source Parameter Imaging also showed similar tendency. This is further strengthened by the joint 2D forward modeling of gravity and magnetic data which showed the top of the basement is sloping northwards. The result of the 3D gravity interface inversion agrees with results of the above mentioned depth estimation techniques. Finally, the gravity power spectral analysis resulted in two depth estimates, 1.53 km and 2.87 km which approximate the positions of two density interfaces. The shallow depth interface is thought to presumably delineate the low density Fluvio-lacustrine sediments including the rift floor volcanic units and crystalline basement. Our investigation results agree with the results of previous seismic studies which identified low velocity (“sediment-volcanic”) horizon in the rift floor with low resolution. The information obtained with regard to water balance of the basin, salinity level of the lakes and the conceptual hydrological flow model appears to reveal that the groundwater flow in the study region is controlled by subsurface structures, particularly, the mapped interface topographies.
机译:在ZIWAY-Shala湖泊盆地上,在界定的区域中,在38°00'e-39°30'e和7°00'n-8°30'NN的区域上进行定量分析。最先前的地球物理研究正在考虑的地区重点绘制了映射深层地壳结构和起伏的Moho深度。只有很少的研究瞄准绘制浅层地下结构。本文的主要焦点是使用重力和磁性数据绘制浅地下的主要岩性和结构单元的几何形状。研究的最终目标是通过映射界面几何形状来了解该地区的水文动态。自动反转,2D联合前进建模和3D反演是所用的主要技术。基于沿着裂缝轴的重力和磁数据的2D Werner去卷积显示了北向北加深的源深度。由源参数成像确定的源深度估计也显示出类似的趋势。通过表现出地下室顶部的重力和磁性数据的关节2D前向模型进一步加强了这一点,这是北方地下室的顶部。 3D重力接口反转的结果与上述深度估计技术的结果同意。最后,重力功率谱分析导致了两个深度估计,1.53公里和2.87公里,近似于两个密度接口的位置。浅景深界面被认为是绘制低密度氟化术沉积物,包括裂缝底部火山单元和结晶地下室。我们的调查结果同意以前的地震研究的结果,该研究鉴定了裂缝的低速(“沉积物 - 火山”)地平线,具有低分辨率。关于盆地水平,湖泊的盐度水平和概念水文流动模型获得的信息似乎揭示了研究区的地下水流量由地下结构控制,特别是映射界面拓扑。

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