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Coupled hydromechanical and electromagnetic disturbances in unsaturated porous materials

A theory of cross-coupled flow equations in unsaturated soils is necessary to predict (1) electroosmotic flow with application to electroremediation and agriculture, (2) the electroseismic and the seismoelectric effects to develop new geophysical methods to characterize the vadose zone, and (3) the...

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Autores principales: Revil, A, Mahardika, H
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Blackwell Publishing Ltd 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3670401/
https://www.ncbi.nlm.nih.gov/pubmed/23741078
http://dx.doi.org/10.1002/wrcr.20092
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author Revil, A
Mahardika, H
author_facet Revil, A
Mahardika, H
author_sort Revil, A
collection PubMed
description A theory of cross-coupled flow equations in unsaturated soils is necessary to predict (1) electroosmotic flow with application to electroremediation and agriculture, (2) the electroseismic and the seismoelectric effects to develop new geophysical methods to characterize the vadose zone, and (3) the streaming current, which can be used to investigate remotely ground water flow in unsaturated conditions in the capillary water regime. To develop such a theory, the cross-coupled generalized Darcy and Ohm constitutive equations of transport are extended to unsaturated conditions. This model accounts for inertial effects and for the polarization of porous materials. Rather than using the zeta potential, like in conventional theories for the saturated case, the key parameter used here is the quasi-static volumetric charge density of the pore space, which can be directly computed from the quasi-static permeability. The apparent permeability entering Darcy's law is also frequency dependent with a critical relaxation time that is, in turn, dependent on saturation. A decrease of saturation increases the associated relaxation frequency. The final form of the equations couples the Maxwell equations and a simplified form of two-fluid phases Biot theory accounting for water saturation. A generalized expression of the Richard equation is derived, accounting for the effect of the vibration of the skeleton during the passage of seismic waves and the electrical field. A new expression is obtained for the effective stress tensor. The model is tested against experimental data regarding the saturation and frequency dependence of the streaming potential coupling coefficient. The model is also adapted for two-phase flow conditions and a numerical application is shown for water flooding of a nonaqueous phase liquid (NAPL, oil) contaminated aquifer. Seismoelectric conversions are mostly taking place at the NAPL (oil)/water encroachment front and can be therefore used to remotely track the position of this front. This is not the case for other geophysical methods.
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spelling pubmed-36704012013-06-03 Coupled hydromechanical and electromagnetic disturbances in unsaturated porous materials Revil, A Mahardika, H Water Resour Res Regular Articles A theory of cross-coupled flow equations in unsaturated soils is necessary to predict (1) electroosmotic flow with application to electroremediation and agriculture, (2) the electroseismic and the seismoelectric effects to develop new geophysical methods to characterize the vadose zone, and (3) the streaming current, which can be used to investigate remotely ground water flow in unsaturated conditions in the capillary water regime. To develop such a theory, the cross-coupled generalized Darcy and Ohm constitutive equations of transport are extended to unsaturated conditions. This model accounts for inertial effects and for the polarization of porous materials. Rather than using the zeta potential, like in conventional theories for the saturated case, the key parameter used here is the quasi-static volumetric charge density of the pore space, which can be directly computed from the quasi-static permeability. The apparent permeability entering Darcy's law is also frequency dependent with a critical relaxation time that is, in turn, dependent on saturation. A decrease of saturation increases the associated relaxation frequency. The final form of the equations couples the Maxwell equations and a simplified form of two-fluid phases Biot theory accounting for water saturation. A generalized expression of the Richard equation is derived, accounting for the effect of the vibration of the skeleton during the passage of seismic waves and the electrical field. A new expression is obtained for the effective stress tensor. The model is tested against experimental data regarding the saturation and frequency dependence of the streaming potential coupling coefficient. The model is also adapted for two-phase flow conditions and a numerical application is shown for water flooding of a nonaqueous phase liquid (NAPL, oil) contaminated aquifer. Seismoelectric conversions are mostly taking place at the NAPL (oil)/water encroachment front and can be therefore used to remotely track the position of this front. This is not the case for other geophysical methods. Blackwell Publishing Ltd 2013-02 2013-02-04 /pmc/articles/PMC3670401/ /pubmed/23741078 http://dx.doi.org/10.1002/wrcr.20092 Text en ©2013. American Geophysical Union. All Rights Reserved. http://creativecommons.org/licenses/by/2.5/ Re-use of this article is permitted in accordance with the Creative Commons Deed, Attribution 2.5, which does not permit commercial exploitation.
spellingShingle Regular Articles
Revil, A
Mahardika, H
Coupled hydromechanical and electromagnetic disturbances in unsaturated porous materials
title Coupled hydromechanical and electromagnetic disturbances in unsaturated porous materials
title_full Coupled hydromechanical and electromagnetic disturbances in unsaturated porous materials
title_fullStr Coupled hydromechanical and electromagnetic disturbances in unsaturated porous materials
title_full_unstemmed Coupled hydromechanical and electromagnetic disturbances in unsaturated porous materials
title_short Coupled hydromechanical and electromagnetic disturbances in unsaturated porous materials
title_sort coupled hydromechanical and electromagnetic disturbances in unsaturated porous materials
topic Regular Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3670401/
https://www.ncbi.nlm.nih.gov/pubmed/23741078
http://dx.doi.org/10.1002/wrcr.20092
work_keys_str_mv AT revila coupledhydromechanicalandelectromagneticdisturbancesinunsaturatedporousmaterials
AT mahardikah coupledhydromechanicalandelectromagneticdisturbancesinunsaturatedporousmaterials