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Imaging geochemical heterogeneities using inverse reactive transport modeling: An example relevant for characterizing arsenic mobilization and distribution

机译:使用逆反应传输模型对地球化学异质性进行成像:一个与表征砷动员和分布有关的示例

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The spatial distribution of reactive minerals in the subsurface is often a primary factor controlling the fate and transport of contaminants in groundwater systems. However, direct measurement and estimation of heterogeneously distributed minerals are often costly and difficult to obtain. While previous studies have shown the utility of using hydrologic measurements combined with inverse modeling techniques for tomography of physical properties including hydraulic conductivity, these methods have seldom been used to image reactive geochemical heterogeneities. In this study, we focus on As-bearing reactive minerals as aquifer contaminants. We use synthetic applications to demonstrate the ability of inverse modeling techniques combined with mechanistic reactive transport models to image reactive mineral lenses in the subsurface and quantify estimation error using indirect, commonly measured groundwater parameters. Specifically, we simulate the mobilization of arsenic via kinetic oxidative dissolution of As-bearing pyrite due to dissolved oxygen in the ambient groundwater, which is an important mechanism for arsenic release in groundwater both under natural conditions and engineering applications such as managed aquifer recharge and recovery operations. The modeling investigation is carried out at various scales and considers different flow-through domains including (i) a ID lab-scale column (SO cm), (ii) a 2D lab-scale setup (60 cm x 30 cm) and (iii) a 2D field scale domain (20 nix 4 m). In these setups, synthetic dissolved oxygen data and forward reactive transport simulations are used to image the spatial distribution of As-bearing pyrite using the Principal Component Geostatistical Approach (PCGA) for inverse modeling. (C) 2015 Elsevier Ltd. All rights reserved.
机译:地下活性矿物的空间分布通常是控制地下水系统中污染物命运和运移的主要因素。但是,直接测量和估算非均质分布的矿物通常很昂贵,而且很难获得。尽管先前的研究表明将水文测量与逆建模技术相结合对包括水力传导率在内的物理特性进行层析成像的实用性,但这些方法很少用于成像反应性地球化学异质性。在这项研究中,我们重点研究含砷反应性矿物质作为含水层污染物。我们使用合成应用程序来证明逆建模技术与机械反应性传输模型相结合的能力,以对地下的反应性矿物透镜成像,并使用间接的,通常测量的地下水参数来量化估计误差。具体而言,我们模拟了由于环境地下水中溶解的氧而导致的含砷黄铁矿的动态氧化溶解引起的砷迁移,这是自然条件和工程应用(如蓄水层补给和回收)中地下水中砷释放的重要机制。操作。建模研究在各种规模下进行,并考虑了不同的流通领域,包括(i)ID实验室规模的色谱柱(SO cm),(ii)二维实验室规模的装置(60 cm x 30 cm)和(iii) )2D场标度域(20 nix 4 m)。在这些设置中,使用主分量地统计方法(PCGA)进行逆向建模,使用合成的溶解氧数据和正向反应性运输模拟来成像含砷黄铁矿的空间分布。 (C)2015 Elsevier Ltd.保留所有权利。

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