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Quantitative structure - Property relationships for enhancing predictions of synthetic organic chemical removal from drinking water by granular activated carbon

机译:定量结构-属性关系可增强对颗粒状活性炭从饮用水中去除有机合成化学物质的预测

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Granular activated carbon is a frequently explored technology for removing synthetic organic contaminants from drinking water sources. The success of this technology relies on a number of factors based not only on the adsorptive properties of the contaminant but also on properties of the water itself, notably the presence of substances in the water which compete for adsorption sites. Because it is impractical to perform field-scale evaluations for all possible contaminants, the pore surface diffusion model (PSDM) has been developed and used to predict activated carbon column performance using single-solute isotherm data as inputs. Many assumptions are built into this model to account for kinetics of adsorption and competition for adsorption sites. This work further evaluates and expands this model, through the use of quantitative structure-property relationships (GSPRs) to predict the effect of natural organic matter fouling on activated carbon adsorption of specific contaminants. The GSPRs developed are based on a combination of calculated topographical indices and quantum chemical parameters. The QSPRs were evaluated in terms of their statistical predictive ability,the physical significance of the descriptors, and by comparison with field data. The QSPR-enhanced PSDM was judged to give results better than what could previously be obtained.
机译:粒状活性炭是从饮用水源中去除合成有机污染物的一项经常探索的技术。该技术的成功取决于许多因素,这些因素不仅基于污染物的吸附特性,还取决于水本身的特性,尤其是水中竞争竞争吸附位点的物质的存在。由于对所有可能的污染物进行现场规模的评估是不切实际的,因此开发了孔表面扩散模型(PSDM),并使用单溶质等温线数据作为输入来预测活性炭柱的性能。该模型中建立了许多假设,以说明吸附动力学和对吸附位的竞争。这项工作通过使用定量结构-性质关系(GSPR)来预测和评估天然有机物质结垢对特定污染物的活性炭吸附的影响,从而进一步评估和扩展了该模型。所开发的GSPR基于计算出的地形指数和量子化学参数的组合。对QSPR的统计预测能力,描述符的物理意义以及与现场数据的比较对其进行了评估。判定QSPR增强的PSDM所产生的结果要好于以前获得的结果。

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