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Macroporal heterogeneity influence on solute transport process in porous media: experiments on model soil and modeling with Lattice-Boltzmann method

机译:大孔异质性对多孔介质中溶质运移过程的影响:模型土壤实验和Lattice-Boltzmann方法建模

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Flow and solute transport modeling in porous media is an important issue for the monitoring of pollutant contaminations in soils or retention ponds. It is often necessary to take into account macroporal type heterogeneities. For this purpose, several numerical models use double or multi permeability concepts in order to characterize different permeabilities of a porous medium. However classical models seem to underestimate the impact of the preferential path induced by a macropore. This impact has to be extended in the surrounding porous matrix for the good fitting of experimental data. This study proposes to understand hydraulic and mass exchange mechanisms between the macropore and the porous matrix, by using a model porous media made of glass beads, and by using the lattice-Boltzmann method for flow simulations. First results show the influence of flow rate on the apparition of an inflection on breakthrough curves. Results show that molecular diffusion, higher in this case, causes higher mass transfer from the macropore to the porous matrix. Moreover, simulations show that the preferential flow is extended to the porous matrix in a zone having the same dimension than the macropore. These results emphasize that the macropore influence has to be extented in the porous matrix for flow and the diffusive exchange zone depends on the molecular diffusion coefficient of the tracer.
机译:多孔介质中的流动和溶质运移模型是监测土壤或保留池中污染物污染的重要问题。通常必须考虑大孔类型的异质性。为此,几个数值模型使用双重或多重渗透率概念来表征多孔介质的不同渗透率。然而,经典模型似乎低估了大孔诱导的优先路径的影响。为了更好地拟合实验数据,必须在周围的多孔基质中扩大这种影响。本研究建议通过使用由玻璃珠制成的模型多孔介质,以及通过使用格子-玻尔兹曼方法进行流动模拟,来了解大孔与多孔基质之间的水力和质量交换机制。最初的结果显示了流速对突破曲线上拐角的影响。结果表明,在这种情况下,较高的分子扩散会导致从大孔到多孔基质的更高质量转移。而且,模拟显示优先流动在具有与大孔相同尺寸的区域中延伸到多孔基质。这些结果强调,必须在多孔基质中扩大大孔的流动影响,并且扩散交换区取决于示踪剂的分子扩散系数。

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