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Solute transport in layered and heterogeneous soils.

机译:在层状和异质土壤中的溶质迁移。

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摘要

Better understanding of transport of dissolved chemicals in soils and aquifers is important to evaluate and remediate contaminated soils and aquifers. Because of the nature of heterogeneity of field porous media, studies on transport processes in non-homogeneous media are necessary. In this study, transport of solutes in layered and heterogeneous media was investigated using numerical approximations. For layered soils, transport properties were assumed homogeneous within individual layers but different between layers. For heterogeneous systems, either a time-dependent or distance-dependent dispersivity was considered to represent the effects of heterogeneity.;In a series of simulations of transport in two-layered soils, we found that breakthrough curves (BTCs) were similar regardless of the layering sequence for all reversible and irreversible solute retention mechanisms. Such findings were in agreement with results from laboratory experiments using tritium as a tracer and Ca and Mg as reactive solutes.;Field measured apparent dispersivity is often found to increase with time because of the heterogeneity of soils and aquifers. We proposed a fractal model to explain the time dependency of dispersivity. Our model indicates a nonlinear increase of variance of travel distance with time or mean travel distance, which implies a time-dependent dispersivity. Application of our model to three field experiments (the Cape Cod, the Borden, and the Columbus sites) indicates fractal behavior for all three cases.;The term “scale effects” is often used in the literature to refer to the dependency of dispersivity on either mean travel distance or distance from source. We presented a critical review on the ambiguity in definition of this term. We presented comparisons between transport processes in systems with time-dependent and distance-dependent dispersivities. Our results showed that enhanced spreading in BTCs consistently occurred in systems with time-dependent dispersivities.;Recently, a new governing equation, factional-order advection-dispersion equation (FADE) was proposed to describe transport processes in heterogeneous systems. We proposed a statistical method to justify the use of a FADE. A fractional order of 1.82 was confirmed to be necessary to describe the bromide plumes at the Cape Cod site.
机译:更好地了解土壤和含水层中溶解化学物质的运输方式对于评估和修复受污染的土壤和含水层非常重要。由于野外多孔介质的非均质性,有必要研究非均匀介质中的传输过程。在这项研究中,使用数值近似研究了溶质在层状和非均质介质中的传输。对于层状土壤,假定运输特性在各层内均一,但层间不同。对于非均质系统,考虑时间依赖性或距离依赖性的分散性来代表非均质性的影响。在一系列两层土壤中的输运模拟中,我们发现突破曲线(BTC)相似,而与所有可逆和不可逆溶质保留机制的分层顺序。这些发现与使用experiments作为示踪剂和Ca和Mg作为反应性溶质的实验室实验的结果相符。由于土壤和含水层的异质性,经常发现现场测量的表观分散性随时间增加。我们提出了一个分形模型来解释分散度的时间依赖性。我们的模型表明行进距离随时间或平均行进距离的方差呈非线性增加,这意味着时间依赖于分散性。我们的模型在三个现场实验中的应用(鳕鱼角,伯登角和哥伦布角)表明了这三种情况的分形行为。术语“尺度效应”在文献中经常用来指代分散度对表示行进距离或距源的距离。我们对该术语的含糊之处进行了严格的审查。我们介绍了具有时间相关和距离相关分散性的系统中运输过程之间的比较。我们的结果表明,BTC的扩展扩散在具有时间依赖性分散性的系统中持续发生。;最近,提出了一个新的控制方程,即派生级对流对流扩散方程(FADE)来描述异构系统中的传输过程。我们提出了一种统计方法来证明使用FADE的合理性。确认必须有分数为1.82的分数,才能描述鳕鱼角遗址中的溴化物羽流。

著录项

  • 作者

    Zhou, Liuzong.;

  • 作者单位

    Louisiana State University and Agricultural & Mechanical College.;

  • 授予单位 Louisiana State University and Agricultural & Mechanical College.;
  • 学科 Agriculture Agronomy.;Hydrology.;Agriculture Soil Science.;Environmental Sciences.
  • 学位 Ph.D.
  • 年度 2002
  • 页码 241 p.
  • 总页数 241
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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