The impact of microscale physics in continuous time random walks for hydrodynamic dispersion in disordered media

Fuente: arXiv
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Main Authors: Yu, Xiangnan, Dentz, Marco, Sun, HongGuang, Zhang, Yong
Format: Preprint
Published: 2023
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author Yu, Xiangnan
Dentz, Marco
Sun, HongGuang
Zhang, Yong
author_facet Yu, Xiangnan
Dentz, Marco
Sun, HongGuang
Zhang, Yong
contents The continuous time random walk (CTRW) approach has been widely applied to model large-scale non-Fickian transport in the flow through disordered media. Often, the underlying microscopic transport mechanisms and disorder characteristics are not known, and their effect on large-scale solute dispersion is encoded by a heavy-tailed transition time distribution. Here we study how the microscale physics manifests in the CTRW framework, and how it affects solute dispersion. To this end, we consider transport in disordered media with random sorption and random flow properties. Both disorder mechanisms can give rise to anomalous particle transport. We present the CTRW models corresponding to each of these physical scenarios to discuss the different manifestations of microscale heterogeneity on large-scale dispersion depending on the particle injection modes. The combined impact of random sorption and advection is studied with a novel CTRW model that explicitly represents both microscale disorder mechanisms. While random advection and sorption may show similar large-scale transport behaviors, they can be clearly distinguished in their response to uniform injection conditions, and, in general, to initial particle distributions that are not flux-weighted. These findings highlight the importance of the microscale physics for the interpretation and prediction of anomalous dispersion phenomena in disordered media.
format Preprint
id arxiv_https___arxiv_org_abs_2308_10577
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle The impact of microscale physics in continuous time random walks for hydrodynamic dispersion in disordered media
Yu, Xiangnan
Dentz, Marco
Sun, HongGuang
Zhang, Yong
Fluid Dynamics
Statistical Mechanics
Geophysics
76S05, 60G, 60J
The continuous time random walk (CTRW) approach has been widely applied to model large-scale non-Fickian transport in the flow through disordered media. Often, the underlying microscopic transport mechanisms and disorder characteristics are not known, and their effect on large-scale solute dispersion is encoded by a heavy-tailed transition time distribution. Here we study how the microscale physics manifests in the CTRW framework, and how it affects solute dispersion. To this end, we consider transport in disordered media with random sorption and random flow properties. Both disorder mechanisms can give rise to anomalous particle transport. We present the CTRW models corresponding to each of these physical scenarios to discuss the different manifestations of microscale heterogeneity on large-scale dispersion depending on the particle injection modes. The combined impact of random sorption and advection is studied with a novel CTRW model that explicitly represents both microscale disorder mechanisms. While random advection and sorption may show similar large-scale transport behaviors, they can be clearly distinguished in their response to uniform injection conditions, and, in general, to initial particle distributions that are not flux-weighted. These findings highlight the importance of the microscale physics for the interpretation and prediction of anomalous dispersion phenomena in disordered media.
title The impact of microscale physics in continuous time random walks for hydrodynamic dispersion in disordered media
topic Fluid Dynamics
Statistical Mechanics
Geophysics
76S05, 60G, 60J
url https://arxiv.org/abs/2308.10577