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首页> 外文期刊>Journal of geophysical research. Solid earth: JGR >Modeling of electro-osmosis of dilute electrolyte solutions in silica microporous media
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Modeling of electro-osmosis of dilute electrolyte solutions in silica microporous media

机译:二氧化硅微孔介质中稀电解质溶液的电渗建模

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[1] Physicochemical transport due to electro-osmosis of dilute electrolyte solutions (<1 x 10~(-3) mol/L) through microporous media with granular random microstructures has been modeled in this work by our three-step numerical framework. First, the three-dimensional microstructures of porous media are reproduced by a random generation growth method. Second, the effects of chemical adsorption and electrical dissociation at the solid-liquid interfaces are modeled to determine the electrical boundary conditions, which vary with the ionic concentration, pH, and temperature. Finally, the nonlinear governing equations for electrokinetic transport are solved using a highly efficient lattice Poisson-Boltzmann algorithm. The simulation results indicate that the electro-osmotic permeability through the granular microporous media increases monotonically with the porosity, ionic concentration, pH, and temperature. When the surface electric potential is higher than about -50 mV, the electro-osmotic permeability exponentially increases with the electric potential. The electro-osmotic permeability increases with the bulk ionic concentration even though the surface zeta potential decreases correspondingly, which deviates from the conclusions based on the thin layer model. The electro-osmotic permeability increases exponentially with pH and linearly with temperature. The present modeling results improve our understanding of hydrodynamic and electrokinetic transport in geophysical systems and help guide the design of porous electrodes in microenergy systems.
机译:[1]在这项工作中,我们的三步数值框架模拟了由于稀电解质溶液(<1 x 10〜(-3)mol / L)电渗透通过具有颗粒状随机微结构的微孔介质而引起的物理化学传输。首先,通过随机世代生长法再现多孔介质的三维微观结构。其次,对固液界面上化学吸附和电离解的影响进行建模,以确定电边界条件,该条件随离子浓度,pH和温度的变化而变化。最后,使用高效的格子Poisson-Boltzmann算法求解电动输送的非线性控制方程。模拟结果表明,通过颗粒微孔介质的电渗渗透率随孔隙率,离子浓度,pH和温度的增加而单调增加。当表面电势高于约-50mV时,电渗透率随电势成指数增加。即使表面ζ电势相应降低,电渗渗透率也随着整体离子浓度的增加而增加,这与基于薄层模型的结论有所不同。电渗渗透率随pH呈指数增长,随温度呈线性增长。目前的建模结果提高了我们对地球物理系统中流体动力和电动传输的理解,并有助于指导微能系统中多孔电极的设计。

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