Modeling multidomain hydraulic properties of shrink-swell soils

dc.contributor.authorStewart, Ryan D.
dc.contributor.authorAbou Najm, Majdi R.
dc.contributor.authorRupp, David E.
dc.contributor.authorSelker, John S.
dc.contributor.departmentDepartment of Civil and Environmental Engineering
dc.contributor.facultyMaroun Semaan Faculty of Engineering and Architecture (MSFEA)
dc.contributor.institutionAmerican University of Beirut
dc.date.accessioned2025-01-24T11:26:57Z
dc.date.available2025-01-24T11:26:57Z
dc.date.issued2016
dc.description.abstractShrink-swell soils crack and become compacted as they dry, changing properties such as bulk density and hydraulic conductivity. Multidomain models divide soil into independent realms that allow soil cracks to be incorporated into classical flow and transport models. Incongruously, most applications of multidomain models assume that the porosity distributions, bulk density, and effective saturated hydraulic conductivity of the soil are constant. This study builds on a recently derived soil shrinkage model to develop a new multidomain, dual-permeability model that can accurately predict variations in soil hydraulic properties due to dynamic changes in crack size and connectivity. The model only requires estimates of soil gravimetric water content and a minimal set of parameters, all of which can be determined using laboratory and/or field measurements. We apply the model to eight clayey soils, and demonstrate its ability to quantify variations in volumetric water content (as can be determined during measurement of a soil water characteristic curve) and transient saturated hydraulic conductivity, Ks (as can be measured using infiltration tests). The proposed model is able to capture observed variations in Ks of one to more than two orders of magnitude. In contrast, other dual-permeability models assume that Ks is constant, resulting in the potential for large error when predicting water movement through shrink-swell soils. Overall, the multidomain model presented here successfully quantifies fluctuations in the hydraulic properties of shrink-swell soil matrices, and are suitable for use in physical flow and transport models based on Darcy's Law, the Richards Equation, and the advection-dispersion equation. © 2016. American Geophysical Union. All Rights Reserved.
dc.identifier.doihttps://doi.org/10.1002/2016WR019336
dc.identifier.eid2-s2.0-84991633860
dc.identifier.urihttp://hdl.handle.net/10938/26738
dc.language.isoen
dc.publisherBlackwell Publishing Ltd
dc.relation.ispartofWater Resources Research
dc.sourceScopus
dc.subjectDual permeability
dc.subjectHydraulic conductivity
dc.subjectInfiltration
dc.subjectShrink-swell soils
dc.subjectVertisols
dc.subjectWater content
dc.subjectCracks
dc.subjectFlow of fluids
dc.subjectPetroleum reservoirs
dc.subjectRain
dc.subjectShrinkage
dc.subjectSoil moisture
dc.subjectSoil surveys
dc.subjectSoil testing
dc.subjectSoils
dc.subjectAdvection-dispersion equation
dc.subjectDual permeability model
dc.subjectDual-permeability
dc.subjectSaturated hydraulic conductivity
dc.subjectSoil hydraulic properties
dc.subjectSoil-water characteristic curve
dc.subjectVolumetric water content
dc.subjectAdvection-diffusion equation
dc.subjectBulk density
dc.subjectConnectivity
dc.subjectDarcy law
dc.subjectDual porosity
dc.subjectGravimetry
dc.subjectHydraulic property
dc.subjectPermeability
dc.subjectRichards equation
dc.subjectSoil cracking
dc.subjectSoil water potential
dc.subjectSwell
dc.subjectVertisol
dc.subjectWater flow
dc.titleModeling multidomain hydraulic properties of shrink-swell soils
dc.typeArticle

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