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Simultaneous estimation of local-scale and flow path-scale dual-domain mass transfer parameters using geoelectrical monitoring

机译:利用地电监测同时估算局部尺度和流径尺度双域传质参数

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摘要

Anomalous solute transport, modeled as rate-limited mass transfer, has an observable geoelectrical signature that can be exploited to infer the controlling parameters. Previous experiments indicate the combination of time-lapse geoelectrical and fluid conductivity measurements collected during ionic tracer experiments provides valuable insight into the exchange of solute between mobile and immobile porosity. Here, we use geoelectrical measurements to monitor tracer experiments at a former uranium mill tailings site in Naturita, Colorado. We use nonlinear regression to calibrate dual-domain mass transfer solute-transport models to field data. This method differs from previous approaches by calibrating the model simultaneously to observed fluid conductivity and geoelectrical tracer signals using two parameter scales: effective parameters for the flow path upgradient of the monitoring point and the parameters local to the monitoring point. We use regression statistics to rigorously evaluate the information content and sensitivity of fluid conductivity and geophysical data, demonstrating multiple scales of mass transfer parameters can simultaneously be estimated. Our results show, for the first time, field-scale spatial variability of mass transfer parameters (i.e., exchange-rate coefficient, porosity) between local and upgradient effective parameters; hence our approach provides insight into spatial variability and scaling behavior. Additional synthetic modeling is used to evaluate the scope of applicability of our approach, indicating greater range than earlier work using temporal moments and a Lagrangian-based Damkohler number. The introduced Eulerian-based Damkohler is useful for estimating tracer injection duration needed to evaluate mass transfer exchange rates that range over several orders of magnitude.
机译:建模为速率受限的传质的异常溶质运移具有可观察到的地电特征,可用于推断控制参数。先前的实验表明,在离子示踪剂实验过程中收集的随时间推移的地电和流体电导率测量值的组合,为深入了解流动性和固定性孔隙之间的溶质交换提供了宝贵的见识。在这里,我们使用地电测量来监视科罗拉多州Naturita的一家铀矿尾矿场中的示踪剂实验。我们使用非线性回归来校准双域传质溶质传输模型到现场数据。此方法与以前的方法不同,它使用两个参数标度同时对观察到的流体电导率和地电示踪剂信号进行校准,同时对模型进行校准:用于监测点流动路径升级的有效参数和监测点局部的参数。我们使用回归统计数据来严格评估流体电导率和地球物理数据的信息含量和敏感性,证明可以同时估算多个尺度的传质参数。我们的结果首次显示了局部和升级有效参数之间传质参数(即交换率系数,孔隙率)的现场尺度空间变异性;因此,我们的方法可以洞悉空间变异性和缩放行为。其他合成模型用于评估我们方法的适用范围,与使用时间矩和基于拉格朗日的Damkohler数的早期工作相比,表明了更大的范围。引入的基于Eulerian的Damkohler可用于估算示踪剂注入持续时间,以评估在几个数量级范围内的传质交换速率。

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  • 来源
    《Water resources research》 |2013年第9期|5615-5630|共16页
  • 作者单位

    Office of Groundwater, Branch of Geophysics, U.S. Geological Survey, 11 Sherman Place, Unit 5015, Storrs, CT 06269, USA;

    Office of Groundwater, Branch of Geophysics, U.S. Geological Survey, Storrs, Connecticut, USA;

    Office of Groundwater, Branch of Geophysics, U.S. Geological Survey, Storrs, Connecticut, USA;

    Water Mission Area, National Research Program, U.S. Geological Survey, Menlo Park, California, USA;

    Office of Groundwater, Branch of Geophysics, U.S. Geological Survey, Storrs, Connecticut, USA;

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