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An assessment of the rate limited liquid-liquid interphase mass transfer in DNAPL source-zones: Modeling techniques and applications in site characterization.

机译:DNAPL源区速率受限的液-液相间传质的评估:建模技术及其在现场表征中的应用。

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摘要

Remediation of dense nonaqueous phase liquids (DNAPLs) remains an important challenge for the environmental engineering community. Many characterization and remediation technologies rely on the mass transfer of solutes between the aqueous and DNAPL phases. Therefore, accurate description of the solute mass transfer rate is essential to the design and implementation of these applications. This research focused on modeling studies to quantify rate-limited interphase mass transfer between liquid-liquid phases within DNAPL source zones in laboratory and field-scale applications. Numerical modeling of experimental data from laboratory scale column experiments indicated that intra-NAPL diffusion offered negligible resistance to interphase mass transfer. Thus, a linear driving force approximation of aqueous phase diffusion adequately described interphase partitioning within homogeneous source zones. The effect of source zone heterogeneities on the effective mass transfer rate coefficient was explored through a series of 2D simulations. A predictive model for the upscaled mass transfer coefficient was developed and verified. The immobile phase spreading in the vertical direction, Reynolds number, pool fraction, and the effective organic phase saturation were identified as the parameters controlling partitioning rates. 3D field scale simulation of push-pull tracer tests was used to investigate the hypothesis that solute partitioning in heterogeneous source zones could be effectively described using the rate-limited model developed here, in contrast to the current practice based on a local equilibrium assumption. For the examples considered herein, the upscaled model was capable of estimating the overall NAPL saturation with less than three percent error, but not the pool fraction or the vertical spreading of NAPL.;Results of this research may be used to estimate the mass exchange rate between the separate liquid phases in heterogeneous porous media and improve our understanding of the transport of partitioning solutes in DNAPL source zones. The models developed in this research, based on rate-limited partitioning as opposed to the current approach of using local equilibrium models, provide more precise methods to analyze field scale partitioning tracer tests. Partitioning tracer tests in conjunction with other site characterization methods provide techniques to quantity the presence and distribution of NAPL in the subsurface. Future research in this area should focus on diversifying and increasing number of 3D simulations over a broader range of parameter values, i.e. saturation and mass distribution metrics, to further explore the predictive potential of the developed model for estimating spatial distribution of the organic phase.
机译:稠密非水相液体(DNAPL)的修复仍然是环境工程界的一项重要挑战。许多表征和修复技术依赖于水相和DNAPL相之间溶质的传质。因此,准确描述溶质传质速率对于这些应用的设计和实现至关重要。这项研究的重点是建模研究,以量化实验室和现场应用中DNAPL源区内液-液相之间速率受限的相间传质。来自实验室规模的柱实验的实验数据的数值模型表明,NAPL内扩散对相间传质的阻力可忽略不计。因此,水相扩散的线性驱动力近似值充分描述了均相源区内的相间分配。通过一系列二维模拟,探索了源区非均质性对有效传质速率系数的影响。建立并验证了提升传质系数的预测模型。固定相在垂直方向上的扩散,雷诺数,池分数和有效有机相饱和度被确定为控制分配速率的参数。推挽式示踪剂测试的3D场尺度模拟用于研究以下假设:与基于局部平衡假设的当前实践相比,使用此处开发的速率限制模型可以有效描述异质源区域中的溶质分配。对于此处考虑的示例,升级后的模型能够以不到3%的误差估计总NAPL饱和度,但不能估计池分数或NAPL的垂直展宽。在非均质多孔介质中分离的液相之间进行分离,提高了我们对DNAPL源区中分配溶质迁移的理解。本研究中开发的模型基于速率受限的分区,与当前使用局部均衡模型的方法相反,该模型提供了更精确的方法来分析现场规模分区示踪剂测试。分区示踪剂测试与其他站点表征方法相结合,提供了对地下NAPL的存在和分布进行定量的技术。该领域的未来研究应集中于在更广泛的参数值范围(即饱和度和质量分布指标)上多样化和增加3D模拟的数量,以进一步探索已开发模型在预测有机相空间分布方面的预测潜力。

著录项

  • 作者

    Boroumand, Ali.;

  • 作者单位

    Tufts University.;

  • 授予单位 Tufts University.;
  • 学科 Geology.;Engineering Environmental.;Hydrology.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 220 p.
  • 总页数 220
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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