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Simultaneous pressure and electro-osmosis driven flow in charged porous media: Pore-scale effects on mixing and dispersion

机译:带电多孔介质中同时压力和电渗透驱动流动:孔隙率对混合和分散的影响

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Electrokinetic effects in porous media play a key role in a number of natural and industrial processes. Applications such as enhanced oil recovery, soil remediation and even drug delivery are affected by the Coulombic forces created by the solid-fluid interfacial interactions. These electrokinetic effects promote the development of non-homogenous slipping flow over charged surfaces at the pore scale, which can have a significant impact in the hydrodynamics of tight porous materials. For transport of ionic solutions in such systems (e.g. transport of low salinity water in tight oil reservoirs), combined effect of hydrodynamic transport and electrokinetic transport would be expected. While transport in pressure-driven transport will be pronounced in high permeability flow pathways, transport due to electric fields (e.g. electro-osmosis) will be more pronounced in tight pores were electrical diffuse layer is not negligible. In this work, we explored the pore-scale hydrodynamic characteristics of charged porous media using computational fluid dynamics. Different flow driving mechanisms were studied, e.g. conventional pressure driven flow, pure electro-osmosis as well as their superposition under different amounts of charged material. We then analyzed the effect of these distinct flow regimes on the transport of a passive tracer, finding how different driving mechanism result in distinct dispersion and mixing characteristics. (C) 2019 Elsevier Inc. All rights reserved.
机译:多孔介质中的电动效应在许多自然和工业过程中发挥着关键作用。增强的采油,土壤修复甚至药物递送等应用受到通过固体流体界面相互作用产生的库仑力的影响。这些电动效应促进了孔隙尺度上的带电表面上的非均匀滑动流动的发展,这可能对紧密多孔材料的流体动力学产生显着影响。为了在这种系统中运输离子溶液(例如,低盐水储存的低盐水储存),预期流体动力运输和电动运输的组合效应。虽然在高渗透流动途径中,在压力驱动的运输中的运输将发音,但由于电场(例如电渗透)引起的运输将在紧密的孔中更明显是电漫射层的不可忽略层。在这项工作中,我们探讨了使用计算流体动力学的带电多孔介质的孔径流体动力学特征。研究了不同的流动驱动机制,例如,传统的压力驱动流动,纯电渗透,以及不同量的带电材料下的叠加。然后,我们分析了这些不同的流动制度对传输被动示踪剂的影响,发现了不同的驱动机构如何导致不同的分散和混合特性。 (c)2019 Elsevier Inc.保留所有权利。

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