解决多孔介质中横向混合和反应的孔隙尺度浓度梯度问题

IF 4 2区 环境科学与生态学 Q1 WATER RESOURCES
Paiman Shafabakhsh , Tanguy Le Borgne , François Renard , Gaute Linga
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引用次数: 0

摘要

混合限制反应是天然多孔介质和工程多孔介质中各种过程的核心。最近的研究进展表明,孔隙尺度上的流动所维持的浓度梯度会在很大范围内影响反应传输机制的宏观反应速率。然而,目前的模拟方法难以解决孔隙尺度下流体混合驱动的浓度梯度问题。在此,我们介绍一种计算方法,用于解析混合受限反应中孔隙尺度的浓度梯度。我们考虑了一个稳态反应传输问题,其特点是反应流体在多孔材料中平行流动。给定孔隙空间的网格表示法和稳定的速度场,我们使用稳定有限元法,结合适应局部标量梯度的网格细化,求解保守标量输运的稳定平流-扩散方程。在此求解的基础上,假设流体中存在瞬时反应动力学,我们推断出参与不可逆双分子反应的物种分布。我们将均匀流动的结果与分析解进行了比较,从而验证了该方法,然后将其用于模拟三维随机珠块和贝里亚砂岩样本中的混合限制反应。孔隙空间内的混沌流动会导致持续的浓度梯度,我们的数值框架可以捕捉到这种梯度。结果表明,该方法能够模拟复杂多孔介质中的横向混合和混合受限反应,并提供自下而上的数值数据,以改进对更大尺度有效反应速率的预测。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Resolving pore-scale concentration gradients for transverse mixing and reaction in porous media

Resolving pore-scale concentration gradients for transverse mixing and reaction in porous media

Mixing-limited reactions are central to a wide range of processes in natural and engineered porous media. Recent advances have shown that concentration gradients sustained by flow at the pore-scale influence macroscopic reaction rates over a large range of reactive transport regimes. Yet, resolving concentration gradients driven by fluid mixing at the pore-scale is challenging with current simulation methods. Here, we introduce a computational methodology to resolve concentration gradients at the pore scale in mixing-limited reactions. We consider a steady-state reactive transport problem characterized by reactive fluids flowing in parallel in a porous material. Given a mesh representation of the pore space and a steady velocity field, we solve the steady advection-diffusion equation for conservative scalar transport using a stabilized finite-element method combined with mesh refinement adapted to local scalar gradients. Based on this solution and assuming instantaneous reaction kinetics in the fluid, we infer the distribution of species involved in an irreversible bi-molecular reaction. We validate the method by comparing our results for uniform flow with analytical solutions and then apply it to simulate mixing-limited reactions in a three-dimensional random bead pack and Berea sandstone sample. Chaotic flow within the pore space leads to sustained concentration gradients, which are captured by our numerical framework. The results underscore the ability of the methodology to simulate transverse mixing and mixing-limited reactions in complex porous media and to provide bottom-up numerical data to improve the prediction of effective reaction rates at larger scales.

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来源期刊
Advances in Water Resources
Advances in Water Resources 环境科学-水资源
CiteScore
9.40
自引率
6.40%
发文量
171
审稿时长
36 days
期刊介绍: Advances in Water Resources provides a forum for the presentation of fundamental scientific advances in the understanding of water resources systems. The scope of Advances in Water Resources includes any combination of theoretical, computational, and experimental approaches used to advance fundamental understanding of surface or subsurface water resources systems or the interaction of these systems with the atmosphere, geosphere, biosphere, and human societies. Manuscripts involving case studies that do not attempt to reach broader conclusions, research on engineering design, applied hydraulics, or water quality and treatment, as well as applications of existing knowledge that do not advance fundamental understanding of hydrological processes, are not appropriate for Advances in Water Resources. Examples of appropriate topical areas that will be considered include the following: • Surface and subsurface hydrology • Hydrometeorology • Environmental fluid dynamics • Ecohydrology and ecohydrodynamics • Multiphase transport phenomena in porous media • Fluid flow and species transport and reaction processes
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