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Incorporating Layer- And Local-scale Heterogeneities In Numerical Simulation Of Unsaturated Flow And Tracer Transport

机译:在不饱和流和示踪剂传输的数值模拟中纳入层和局部尺度的异质性

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This study characterizes layer- and local-scale heterogeneities in hydraulic parameters (i.e., matrix permeability and porosity) and investigates the relative effect of layer- and local-scale heterogeneities on the uncertainty assessment of unsaturated flow and tracer transport in the unsaturated zone of Yucca Mountain, USA. The layer-scale heterogeneity is specific to hydrogeologic layers with layerwise properties, while the local-scale heterogeneity refers to the spatial variation of hydraulic properties within a layer. A Monte Carlo method is used to estimate mean, variance, and 5th, and 95th percentiles for the quantities of interest (e.g., matrix saturation and normalized cumulative mass arrival). Model simulations of unsaturated flow are evaluated by comparing the simulated and observed matrix saturations. Local-scale heterogeneity is examined by comparing the results of this study with those of the previous study that only considers layer-scale heterogeneity. We find that local-scale heterogeneity significantly increases predictive uncertainty in the percolation fluxes and tracer plumes, whereas the mean predictions are only slightly affected by the local-scale heterogeneity. The mean travel time of the conservative and reactive tracers to the water table in the early stage increases significantly due to the local-scale heterogeneity, while the influence of local-scale heterogeneity on travel time gradually decreases over time. Layer-scale heterogeneity is more important than local-scale heterogeneity for simulating overall tracer travel time, suggesting that it would be more cost-effective to reduce the layer-scale parameter uncertainty in order to reduce predictive uncertainty in tracer transport.
机译:这项研究表征了水力参数中层和局部尺度的非均质性(即基质渗透率和孔隙度),并研究了层和局部尺度的非均质性对尤卡非饱和带非饱和流和示踪剂运移不确定性评估的相对影响。美国山。层尺度的非均质性特定于具有分层特性的水文地质层,而局部尺度的非均质性是指层内水力特性的空间变化。蒙特卡罗方法用于估计感兴趣量的平均值,方差以及第5个百分位数和第95个百分位数(例如,矩阵饱和度和归一化的累积质量到达量)。通过比较模拟饱和度和观察到的饱和度来评估非饱和流动的模型模拟。通过将本研究的结果与仅考虑层规模异质性的先前研究的结果进行比较,来检验局部尺度异质性。我们发现,局部尺度的异质性显着增加了渗流和示踪羽流的预测不确定性,而平均预测受局部尺度的异质性的影响很小。由于局部尺度的非均质性,保守示踪剂和反应性示踪剂到水位的平均早期传播时间显着增加,而局部尺度的非均质性对传播时间的影响随着时间的推移逐渐减小。为了模拟示踪剂的传播时间,层尺度的异质性比局部尺度的异质性更为重要,这表明减少层尺度参数的不确定性以降低示踪剂运输的预测不确定性将更具成本效益。

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