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实验和建模对非均相多孔介质中混合限制反应传输的深入了解:停滞区的作用。

Experimental and modeling insights into mixing-limited reactive transport in heterogeneous porous media: Role of stagnant zones.

机构信息

Eastern Institute for Advanced Study, Eastern Institute of Technology, Ningbo, China; Guangdong Provincial Key Laboratory of Soil and Groundwater Pollution Control, School of Environmental Science and Engineering, Southern University of Science and Technology, Shenzhen, China.

Eastern Institute for Advanced Study, Eastern Institute of Technology, Ningbo, China.

出版信息

Water Res. 2024 Nov 15;266:122383. doi: 10.1016/j.watres.2024.122383. Epub 2024 Sep 3.

Abstract

The understanding of mixing-controlled reactive dynamics in heterogeneous porous media remains limited, presenting significant challenges for modeling subsurface contaminant transport processes and for designing cost-effective environmental remedial efforts. The complexity of accurately observing, measuring, and modeling mixing-limited reactive transport has led to inadequate exploration of these critical processes. This study investigates the mixing and reaction kinetics affected by stagnant zones, which are commonly found in alluvial aquifers-aquitards and fracture-matrix systems. By conducting experiments involving conservative and bimolecular reactive transport through porous media within translucent chambers filled with two sizes of glass beads and under varying flow rates, we explored the effects of grain size and hydrodynamic conditions. Using a high-resolution camera, we monitored the concentration changes of conservative and reactive tracers, with subsequent interpretation through three-dimensional numerical simulations. The outcomes revealed the emergence of distinct mixing interfaces within both mobile and stagnant zones, culminating in a bi-peaked plume formation. Notably, the mixing and reaction times in media containing stagnant zones were found to be approximately 10 times longer than in homogeneous media. These findings, through experimental and modeling efforts, advance our understanding of mixing-limited reactive transport phenomena within heterogeneous media, underscoring the significant role of stagnant zones-a topic previously underexplored.

摘要

混合控制的反应动力学在多相多孔介质中的理解仍然有限,为模拟地下污染物运移过程和设计具有成本效益的环境补救措施带来了重大挑战。准确观察、测量和模拟混合限制反应传输的复杂性导致对这些关键过程的探索不足。本研究调查了由停滞区影响的混合和反应动力学,停滞区普遍存在于冲积含水层-含水层和裂缝-基质系统中。通过在充满两种大小玻璃珠的半透明室中进行保守和双分子反应传输的实验,并在不同的流速下进行实验,我们研究了粒径和水动力条件的影响。使用高分辨率摄像机监测保守和反应示踪剂的浓度变化,并通过三维数值模拟进行后续解释。结果表明,在移动区和停滞区都出现了明显的混合界面,最终形成双峰羽流。值得注意的是,在含有停滞区的介质中的混合和反应时间比在均匀介质中大约长 10 倍。这些通过实验和建模努力得出的发现,加深了我们对多相介质中混合限制反应传输现象的理解,突出了停滞区的重要作用,这是一个以前研究不足的主题。

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