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首页> 外文期刊>Stochastic environmental research and risk assessment >Transport of kinetically sorbing solutes in heterogeneous sediments with multimodal conductivity and hierarchical organization across scales
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Transport of kinetically sorbing solutes in heterogeneous sediments with multimodal conductivity and hierarchical organization across scales

机译:动力学吸附溶质在非均质沉积物中的迁移及其跨尺度分布

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摘要

Solute transport in subsurface environments is controlled by geological heterogeneity over multiple scales. In reactive transport characterized by a low Damkohler number, it is also controlled by the rate of kinetic mass transfer. A theory for addressing the impact of sedimentary texture on the transport of kinetically sorbing solutes in heterogeneous porous formations is derived using the Lagrangian-based stochastic methodology. The resulting model represents the hierarchical organization of sedimentary textures and associated modes of log conductivity (K) for sedimentary units through a hierarchical Markov Chain. The model characterizes kinetic sorption using a spatially uniform linear reversible rate expression. Our main interest is to investigate the effect of sorption kinetics relative to the effects of K heterogeneity on the dispersion of a reactive plume. We study the contribution of each scale of stratal architecture to the dispersion of kinetically sorbing solutes in the case of a low Damkohler number. Examples are used to demonstrate the time evolution and relative contributions of the auto- and cross-transition probability terms to dispersion. Our analysis is focused on the model sensitivity to the parameters defined at each hierarchical level (scale) including the integral scales of K spatial correlation, the anisotropy ratio, the indicator correlation scales, and the contrast in mean K between facies defined at different scales. The results show that the anisotropy ratio and integral scales of K have negligible effect upon the longitudinal dispersion of sorbing solutes. Furthermore, dispersion of sorbing solutes depends mostly on indicator correlation scales, and the contrast of the mean conductivity between units at different scales.
机译:地下环境中的溶质运移受多个尺度上的地质异质性控制。在以低的达姆霍勒数为特征的反应性运输中,它也由动力学传质速率控制。使用基于拉格朗日的随机方法,得出了解决沉积质地对非均质多孔地层中动力学吸附溶质运移影响的理论。生成的模型表示沉积纹理的层次结构以及通过层次马尔可夫链的沉积单元的对数电导率(K)的相关模式。该模型使用空间均匀的线性可逆速率表达式来表征动力学吸附。我们的主要兴趣是研究相对于钾异质性对反应羽流分散性的吸附动力学影响。我们研究了在低达姆霍勒数的情况下,每层规模的体系结构对动力学吸附溶质分散的贡献。实例用于说明时间演变以及自和交叉转变概率项对色散的相对贡献。我们的分析集中在模型对每个分层级别(尺度)上定义的参数的敏感性上,这些参数包括K空间相关性的整体尺度,各向异性比,指示剂相关尺度以及在不同尺度下定义的相之间的平均K对比度。结果表明,各向异性比和K的整数比例对吸附质的纵向分散影响可忽略不计。此外,吸附溶质的分散主要取决于指示剂的相关标度,以及不同标度的单位之间的平均电导率的对比。

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    Department of Earth and Environmental Sciences, Wright State University, Dayton, OH 45435, USA;

    Department of Earth and Environmental Sciences, Wright State University, Dayton, OH 45435, USA;

    EES-16, Earth and Environmental Sciences Division, Los Alamos National Laboratory, Mailstop T003, Los Alamos, NM 87545, USA;

    Department of Mathematics and Statistic, Wright State Univeristy, 3640 Colonel Glenn Hwy, Dayton, OH 45435-0001, USA;

    Department of Earth and Environmental Sciences, Wright State University, Dayton, OH 45435, USA;

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