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首页> 外文期刊>Journal of Contaminant Hydrology >Density-driven transport of gas phase chemicals in unsaturated soils
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Density-driven transport of gas phase chemicals in unsaturated soils

机译:密度驱动的非饱和土壤中气相化学物质的传输

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AbstractVariations of gas phase density are responsible for advective and diffusive transports of organic vapors in unsaturated soils. Laboratory experiments were conducted to explore dense gas transport (sulfur hexafluoride, SF6) from different source densities through a nitrogen gas-dry soil column. Gas pressures and SF6densities at transient state were measured along the soil column for three transport configurations (horizontal, vertically upward and vertically downward transport). These measurements and others reported in the literature were compared with simulation results obtained from two models based on different diffusion approaches: the dusty gas model (DGM) equations and a Fickian-type molar fraction-based diffusion expression. The results show that the DGM and Fickian-based models predicted similar dense gas density profiles which matched the measured data well for horizontal transport of dense gas at low to high source densities, despite the pressure variations predicted in the soil column were opposite to the measurements. The pressure evolutions predicted by both models were in trend similar to the measured ones for vertical transport of dense gas. However, differences between the dense gas densities predicted by the DGM and Fickian-based models were discernible for vertically upward transport of dense gas even at low source densities, as the DGM-based predictions matched the measured data better than the Fickian results did. For vertically downward transport, the dense gas densities predicted by both models were not greatly different from our experimental measurements, but substantially greater than the observations obtained from the literature, especially at high source densities. Further research will be necessary for exploring factors affecting downward transport of dense gas in soil columns. Use of the measured data to compute flux components of SF6showed that the magnitudes of diffusive flux component based on the Fickian-type diffusion expressions in terms of molar concentration, molar fraction and mass density fraction gradient were almost the same. However, they were greater than the result computed with the mass fraction gradient for >24% and the DGM-based result for more than one time. As a consequence, the DGM-based total flux of SF6was in magnitude greatly less than the Fickian result not only for horizontal transport (diffusion-dominating) but also for vertical transport (advection and diffusion) of dense gas. Particularly, the Fickian-based total flux was more than two times in magnitude as much as the DGM result for vertically upward transport of dense gas.HighlightsTwo models predict substantially different dense gas densities for vertically upward transport systems.The dense gas densities predicted by the DGM-based model are close to the observations for vertical transport systems.The magnitudes of flux components of dense gas can be assessed differently with formulations on different bases.
机译: 摘要 6 )。沿土壤柱测量了三种运输方式(水平,垂直向上和垂直向下运输)的瞬时状态下的气体压力和SF 6 密度。将这些测量结果和文献中报道的其他测量结果与从基于不同扩散方法的两个模型获得的模拟结果进行了比较:粉尘气体模型(DGM)方程和基于Fickian型摩尔分数的扩散表达式。结果表明,尽管土壤柱中预测的压力变化与测量结果相反,但基于DGM和Fickian的模型预测的相似的致密气体密度曲线与低至高源密度的致密气体水平输送的测量数据非常吻合。 。两种模型预测的压力变化趋势与稠密气体垂直传输的实测趋势相似。但是,即使在低气源密度下,DGM和基于Fickian的模型预测的稠密气体密度之间的差异也可用于垂直向上传输稠密气体,因为基于DGM的预测比Fickian结果更好地匹配了测量数据。对于垂直向下传输,这两个模型预测的致密气体密度与我们的实验测量值没有太大差异,但比从文献中获得的观测值要大得多,尤其是在高源密度下。为了探究影响土柱中高浓度气体向下输送的因素,有必要进行进一步的研究。利用测得的数据计算SF 6 的通量分量,结果表明,基于摩尔浓度的Fickian型扩散表达式,扩散通量分量的大小,摩尔分数和质量密度分数梯度几乎相同。但是,它们大于质量分数梯度大于24%和基于DGM的结果计算的结果超过一次。结果,基于DGM的SF 6 的总通量不仅在水平传输(以扩散为主)上,而且在数量上都比菲克结果小得多。用于高密度气体的垂直传输(对流和扩散)。特别是,基于Fickian的总通量在强度上是垂直向上传输致密气体的DGM结果的两倍多。 突出显示 对于垂直向上的运输系统,两个模型预测的致密气体密度会大不相同。 DGM预测的致密气体密度基于模型的模型接近垂直运输系统的观测结果。 可以根据不同的公式对稠密气体通量分量的大小进行不同的评估。 < / ce:list>

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