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A two-way coupled model for the co-transport of two different colloids in porous media. | LitMetric

A two-way coupled model for the co-transport of two different colloids in porous media.

J Contam Hydrol

Stuttgart Center for Simulation Science (SIMTECH), Integrated Research Training Group SFB 1313, Stuttgart University, Germany; Department of Earth Sciences, Utrecht University, 3584, CB, Utrecht, The Netherlands.

Published: January 2022

AI Article Synopsis

  • The study challenges the traditional one-way coupling models in colloid transport, proposing a two-way coupled model that considers interactions between large and small colloids.
  • The model incorporates factors such as colloid interactions with grain surfaces and the kinetics of heteroaggregation and deposition.
  • Evaluations against experimental data show the two-way model effectively simulates most transport conditions, although it has limitations with specific combinations like montmorillonite-adenovirus and Staphylococcus aureus-graphene oxide nanoparticles.

Article Abstract

Models for the co-transport of two different colloids commonly assume a one-way coupling. This is because often a large colloid and small colloid are involved. Therefore, they assume that the spread of smaller colloid is affected by the transport of larger colloids, but not the other way around. However, a number of studies have shown that this assumption is not valid, even for large and small colloids. Therefore, in this study, a two-way coupled model is developed to simulate the co-transport of two different colloids in porous media and their effect on each other. We have considered the interactions of the two colloids with the grain surface, kinetics of heteroaggregation (of the two colloids), and heteroaggregate deposition onto the grain surface. We assumed a first-order kinetic model to represent heteroaggregate formation and its deposition on the grain surface. The model is evaluated by fitting the experimental data reported in four different papers from the literature on the co-transport of clay colloids and viruses, bacteria and graphene oxide nanoparticles, and clay colloids and graphene oxide nanoparticles. The model performance is compared with the commonly-used one-way coupled model. The two-way coupled model is found to satisfactorily simulate most of the experimental conditions reported in the above papers, except for the co-transport of montmorillonite-adenovirus, and Staphylococcus aureus- graphene oxide nanoparticles.

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Source
http://dx.doi.org/10.1016/j.jconhyd.2021.103922DOI Listing

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