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首页> 外文期刊>Journal of Fluid Mechanics >Pore-scale mass and reactant transport in multiphase porous media flows
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Pore-scale mass and reactant transport in multiphase porous media flows

机译:多相多孔介质流中的孔尺度质量和反应物传输

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Reactive processes associated with multiphase flows play a significant role in mass transport in unsaturated porous media. For example, the effect of reactions on the solid matrix can affect the formation and stability of fingering instabilities associated with the invasion of a buoyant non-wetting fluid. In this study, we focus on the formation and stability of capillary channels of a buoyant non-wetting fluid (developed because of capillary instabilities) and their impact on the transport and distribution of a reactant in the porous medium. We use a combination of pore-scale numerical calculations based on a multiphase reactive lattice Boltzmann model (LBM) and scaling laws to quantify (i) the effect of dissolution on the preservation of capillary instabilities, (ii) the penetration depth of reaction beyond the dissolution/melting front, and (iii) the temporal and spatial distribution of dissolution/melting under different conditions (concentration of reactant in the non-wetting fluid, injection rate). Our results show that, even for tortuous non-wetting fluid channels, simple scaling laws assuming an axisymmetrical annular flow can explain (i) the exponential decay of reactant along capillary channels, (ii) the dependence of the penetration depth of reactant on a local Péclet number (using the non-wetting fluid velocity in the channel) and more qualitatively (iii) the importance of the melting/reaction efficiency on the stability of non-wetting fluid channels. Our numerical method allows us to study the feedbacks between the immiscible multiphase fluid flow and a dynamically evolving porous matrix (dissolution or melting) which is an essential component of reactive transport in porous media.
机译:与多相流相关的反应过程在不饱和多孔介质的质量传输中起着重要作用。例如,反应对固体基质的影响可影响与漂浮的非润湿性流体的侵入相关的指法不稳定性的形成和稳定性。在这项研究中,我们重点研究浮力非湿润流体(由于毛细血管的不稳定性而产生)的毛细通道的形成和稳定性,以及它们对多孔介质中反应物的运输和分布的影响。我们结合基于多相反应性格子Boltzmann模型(LBM)和比例定律的孔尺度数值计算来量化(i)溶出度对毛细管不稳定性的影响,(ii)反应渗透深度超过溶解/熔化前沿,以及(iii)在不同条件下(非润湿液中反应物的浓度,注入速率)溶解/熔化的时间和空间分布。我们的结果表明,即使对于曲折的非润湿流体通道,假设轴对称环形流动的简单比例定律也可以解释(i)反应物沿毛细管通道的指数衰减,(ii)反应物渗透深度对局部渗透率的依赖性Péclet数(使用通道中的非润湿流体速度),更定性地(iii)熔融/反应效率对非润湿流体通道稳定性的重要性。我们的数值方法使我们能够研究不混溶的多相流体流与动态演化的多孔基质(溶解或熔融)之间的反馈,而多孔基质是多孔介质中反应性运输的重要组成部分。

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