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Modeling seasonal redox dynamics and the corresponding fate of the pharmaceutical residue phenazone during artificial recharge of groundwater

机译:在地下水的人工补给过程中模拟季节性氧化还原动力学和药物残留酚a的去向

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摘要

Reactive multicomponent transport modeling was used to investigate and quantify the factors that affect redox zonation and the fate of the pharmaceutical residue phenazone during artificial recharge of groundwater at an infiltration site in Berlin, Germany. The calibrated model and the corresponding sensitivity analysis demonstrated that temporal and spatial redox zonation at the study site was driven by seasonally changing, temperature-dependent organic matter degradation rates. Breakthrough of phenazone at monitoring wells occurred primarily during the warmer summer months, when anaerobic conditions developed. Assuming a redox-sensitive phenazone degradation behavior the model results provided an excellent agreement between simulated and measured phenazone concentrations. Therefore, the fate of phenazone was shown to be indirectly controlled by the infiltration water temperature through its effect on the aquifer's redox conditions. Other factors such as variable residence times appeared to be of less importance.
机译:使用反应性多组分迁移模型研究和量化了在德国柏林的一个渗透点人工补给地下水期间,影响氧化还原分区和药物残留酚f命运的因素。校准的模型和相应的敏感性分析表明,研究地点的时空氧化还原分区受季节变化,温度相关的有机物降解速率的驱动。菲扎酮在监测井中的突破主要发生在厌氧条件发展的夏季夏季。假设氧化还原敏感的phenazone降解行为,模型结果在模拟和测量的phenazone浓度之间提供了极好的一致性。因此,非那zone的命运通过其对含水层氧化还原条件的影响而被间接地显示为受渗透水温度控制。诸如可变的停留时间之类的其他因素似乎不太重要。

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