AccScience Publishing / AJWEP / Volume 14 / Issue 2 / DOI: 10.3233/AJW-170019
RESEARCH ARTICLE

Influence of Various Dispersion Coefficients on  Contaminant Migration in a Fracture-matrix System with Skin Formation

N. Natarajan1
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1 Department of Civil Engineering, Dr. Mahalingam College of Engineering Pollachi, Tamil Nadu – 642003, India
AJWEP 2017, 14(2), 91–101; https://doi.org/10.3233/AJW-170019
Submitted: 16 August 2016 | Revised: 19 March 2017 | Accepted: 19 March 2017 | Published: 15 April 2017
© 2017 by the Author(s). This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution -Noncommercial 4.0 International License (CC-by the license) ( https://creativecommons.org/licenses/by-nc/4.0/ )
Abstract

Subsurface contamination due to transient migration of chemicals through weathered fractures is a  serious problem in hard rock terrains. In this paper, a numerical model has been used to analyse the effect of  various dispersion coefficients on the movement of contaminants in a fracture-matrix system with skin formation.  A constant continuous source of contaminants is considered at the inlet of a set of parallel fractures and an implicit  finite difference technique has been used to solve the model. The transport of contaminants with constant dispersion  coefficients were compared with those subjected to distance and time dependent dispersion. Sensitivity analysis  has been conducted to study the effect of different fluid velocities, fracture-skin porosities, fracture-skin diffusion  coefficients, fracture aperture, retardation factors, and dispersivity–distance ratio on solute transport mechanism  within the system. Results suggest that the solute mass retained in the fracture is higher when time-dependent  dispersion coefficients are used which may be due to seasonal conditioning of the rocks. When constant dispersion  coefficient is considered, the reduction in the solute mass with increment in the fracture-skin porosity is gradual  unlike other cases.The solute mass retained in the fracture increases with increase in dispersivity–distance ratio  for time-dependent dispersion coefficients.

Keywords
Fracture-skin
time-dependent dispersion
distance-dependent dispersion
solute transport
numerical model
Conflict of interest
The authors declare they have no competing interests.
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Asian Journal of Water, Environment and Pollution, Electronic ISSN: 1875-8568 Print ISSN: 0972-9860, Published by AccScience Publishing