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A GIS-based aquifer vulnerability assessment in the basement complex terrain of southwestern Nigeria

机译:尼日利亚西南部地下复杂地形中基于GIS的含水层脆弱性评估

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Aquifer contamination risk is a major challenge confronting the sustainability of groundwater resources in the basement environment of sub-Saharan Africa. This study adopted a GIS-based fuzzy logic model to assess the vulnerability of basement aquifers across a basin in southwestern Nigeria. Hydro-environmental setting of the studied basin was represented by twelve parameters, viz: pro-aquifer medium, water table depth, drainage density, lineament density, topsoil, aquifer depth, aquifer HC, lithology, landuse, vegetation index, slope and aquifer LUC. Sensitivity analyses were undertaken to determine the significance and individual contributions of the model parameters to aquifer vulnerability. In addition, the study demonstrated scientific methods of constructing independent model parameters. The studied basin is characterized by patches of very high aquifer vulnerability in the west owing to low protective capacity and high anthropogenic imprints. The eastern part is dominated by moderate aquifer vulnerability, while the elevated central part portrays low aquifer vulnerability due to low anthropogenic imprints. Highest aquifer vulnerability is attributed to slope, while vegetation index, aquifer LUC and pro-aquifer medium also pose high impact on aquifer vulnerability. Vulnerability index is highly sensitive to the combined removal of pro-aquifer medium and water table depth, while the least sensitivity is attributed to the removal of lineament density layer. Pro-aquifer medium, water table depth, drainage density, lineament density, topsoil, aquifer depth and aquifer HC constitute a set of parameters that can explain aquifer vulnerability in the basement environment. However, pro-aquifer medium and water table depth are the most important environmental variables that determine aquifer vulnerability across the study area. The adoption of geophysical techniques has provided scientific means of constructing the model parameters. The employed GIS procedure paved way for a more objective intrinsic aquifer vulnerability analysis.
机译:含水层污染风险是撒哈拉以南非洲地下环境中地下水资源可持续性面临的主要挑战。这项研究采用了基于GIS的模糊逻辑模型来评估尼日利亚西南部盆地整个盆地地下蓄水层的脆弱性。该研究盆地的水环境设置由十二个参数表示,即:含水层前介质,地下水位深度,排水密度,线质密度,表土,含水层深度,含水层HC,岩性,土地利用,植被指数,坡度和含水层LUC 。进行了敏感性分析,以确定模型参数对含水层脆弱性的重要性和个别贡献。此外,研究证明了构造独立模型参数的科学方法。该研究盆地的特征是由于保护能力低和人为印记高而在西部具有很高的含水层脆弱性。东部地区以中等含水层脆弱性为主,而中部较高的区域则由于人为烙印较低而具有较低的含水层脆弱性。最高的含水层脆弱性归因于坡度,而植被指数,含水层LUC和前含水层介质对含水层脆弱性也有很大影响。脆弱性指数对含水层前介质和地下水位深度的联合去除高度敏感,而敏感性最低的是对衬里密度层的去除。前含水层介质,地下水位深度,排水密度,底质密度,表土,含水层深度和含水层HC构成了一组参数,可以解释地下室环境中含水层的脆弱性。但是,有利于含水层的介质和地下水位深度是决定整个研究区域含水层脆弱性的最重要的环境变量。地球物理技术的采用为构造模型参数提供了科学手段。所采用的GIS程序为更客观的固有含水层脆弱性分析铺平了道路。

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