Coupled electrohydrodynamic transport in rough fractures: a generalized lubrication theory

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dc.contributor.author Dewangan, Mainendra Kumar
dc.contributor.author Ghosh, Uddipta
dc.contributor.author Le Borgne, Tanguy
dc.contributor.author Meheust, Yves
dc.coverage.spatial United Kingdom
dc.date.accessioned 2022-05-25T14:35:51Z
dc.date.available 2022-05-25T14:35:51Z
dc.date.issued 2022-07
dc.identifier.citation Dewangan, Mainendra Kumar; Ghosh, Uddipta; Le Borgne, Tanguy and Meheust, Yves, "Coupled electrohydrodynamic transport in rough fractures: a generalized lubrication theory", Journal of Fluid Mechanics, DOI: 10.1017/jfm.2022.306, vol. 942, Jul. 2022. en_US
dc.identifier.issn 0022-1120
dc.identifier.issn 1469-7645
dc.identifier.uri https://doi.org/10.1017/jfm.2022.306
dc.identifier.uri https://repository.iitgn.ac.in/handle/123456789/7758
dc.description.abstract Fractures provide pathways for fluids and solutes through crystalline rocks and low permeability materials, thus playing a key role in many subsurface processes and applications. In small aperture fractures, solute transport is strongly impacted by the coupling of electrical double layers at mineral-fluid interfaces to bulk ion transport. Yet, most models of flow and transport in fractures ignore these effects. Solving such coupled electrohydrodynamic in realistic three-dimensional (3-D) fracture geometries poses computational challenges which have so far limited our understanding of those electro-osmotic effects’ impact. Starting from the Poisson-Nernst-Planck-Navier-Stokes (PNPNS) equations and using a combination of rescaling, asymptotic analysis and the Leibniz rule, we derive a set of nonlinearly coupled conservation equations for the local fluxes of fluid mass, solute mass and electrical charges. Their solution yields the fluid pressure, solute concentration and electrical potential fields. The model is validated by comparing its predictions to the solutions of the PNPNS equations in 3-D rough fractures. Application of the model to realistic rough fracture geometries evidences several phenomena hitherto not reported in the literature, including: (i) a dependence of the permeability and electrical conductivity on the fracture walls’ charge density, (ii) local (sometimes global) flow reversal, and (iii) spatial heterogeneities in the concentration field without any imposed concentration gradient. This new theoretical framework will allow systematically addressing large statistics of fracture geometry realizations of given stochastic parameters, to infer the impact of the geometry and various hydrodynamic and electrical parameters on the coupled transport of fluid and ions in rough fractures.
dc.description.statementofresponsibility by Mainendra Kumar Dewangan, Uddipta Ghosh, Tanguy Le Borgne and Yves Meheust
dc.format.extent vol. 942
dc.language.iso en_US en_US
dc.publisher Cambridge University Press en_US
dc.subject Electrokinetic flows en_US
dc.subject Lubrication theory en_US
dc.subject Stokesian dynamics en_US
dc.subject Coupled electrohydrodynamic en_US
dc.subject Fractures en_US
dc.title Coupled electrohydrodynamic transport in rough fractures: a generalized lubrication theory en_US
dc.type Article en_US
dc.relation.journal Journal of Fluid Mechanics


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