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Evaluating competitive sorption mechanisms of volatile organic chemical mixtures in soils and sediments using polymers and zeolites.

机译:使用聚合物和沸石评估土壤和沉积物中挥发性有机化学混合物的竞争性吸附机理。

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摘要

Volatile organic chemicals (VOCs) such as chlorinated compounds are among the most problematic groundwater contaminants. Prior research suggests that VOC mixtures compete for micropore sorption sites present in soils and sediments. It is hypothesized that the size and polarity of these micropores control competitive sorption and mass transfer rates of sorbate mixtures. To test this hypothesis, aqueous isotherms and desorption kinetic profiles for trichloroethylene (TCE) and tetrachloroethylene (PCE), either alone or in a mixture, were measured at 30°C for three natural solids, two polymers, and four zeolites. The polymers and zeolites were used as surrogates for the different sorption environments in natural solids. Isotherm results for natural solids and polymers suggest that competition between TCE and PCE in soils and sediments is controlled by competition for hydrophobic micropores in condensed organic matter, and isotherm results for zeolites indicate that smaller more hydrophobic micropores result in stronger competition. Desorption kinetic results show that in general diffusion of TCE is faster in the presence of PCE and vice versa, suggesting that the presence of each sorbate reduces the adsorption potential of the micropore sorption sites and hence increases the diffusion rates for both sorbates. These results support the hypothesis that competitive sorption and mass transfer rates of VOC mixtures in the subsurface are controlled by the properties of the micropore sorption sites in soils and sediments.
机译:挥发性有机化学品(VOC),例如氯化化合物,是最成问题的地下水污染物之一。先前的研究表明,VOC混合物竞争存在于土壤和沉积物中的微孔吸附位点。假设这些微孔的大小和极性控制着吸附物混合物的竞争性吸附和传质速率。为了检验该假设,在30°C下对三种天然固体,两种聚合物和四种沸石的三氯乙烯(TCE)和四氯乙烯(PCE)的水等温线和解吸动力学曲线进行了测量。聚合物和沸石被用作天然固体中不同吸附环境的替代物。天然固体和聚合物的等温线结果表明,土壤和沉积物中TCE和PCE之间的竞争受凝结有机物中疏水性微孔的竞争控制,而沸石的等温线结果表明,疏水性较小的较小微孔会导致更强的竞争。解吸动力学结果表明,一般而言,在PCE的存在下,TCE的扩散较快,反之亦然,这表明每种吸附剂的存在都会降低微孔吸附位点的吸附电位,从而提高两种吸附剂的扩散速率。这些结果支持以下假设:地下的VOC混合物的竞争性吸附和传质速率受土壤和沉积物中微孔吸附位点的特性控制。

著录项

  • 作者

    Li, Jun.;

  • 作者单位

    University of Illinois at Urbana-Champaign.;

  • 授予单位 University of Illinois at Urbana-Champaign.;
  • 学科 Engineering Environmental.
  • 学位 Ph.D.
  • 年度 2002
  • 页码 88 p.
  • 总页数 88
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 环境污染及其防治;
  • 关键词

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