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Simulation of soil moisture profiles using K(h) from coupling experimental retention curves and one-step outflow data

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dc.contributor.author Argyrokastritis, I en
dc.contributor.author Kargas, G en
dc.contributor.author Kerkides, P en
dc.date.accessioned 2014-06-06T06:49:32Z
dc.date.available 2014-06-06T06:49:32Z
dc.date.issued 2009 en
dc.identifier.issn 09204741 en
dc.identifier.uri http://dx.doi.org/10.1007/s11269-009-9432-3 en
dc.identifier.uri http://62.217.125.90/xmlui/handle/123456789/4654
dc.subject Diffusivity en
dc.subject Hydraulic properties en
dc.subject Infiltration en
dc.subject One-step outflow en
dc.subject.other Diffusivities en
dc.subject.other Experimental data en
dc.subject.other Flux conditions en
dc.subject.other Green-Ampt en
dc.subject.other Hydraulic properties en
dc.subject.other Moisture profiles en
dc.subject.other Moisture retention curve en
dc.subject.other Porous Media en
dc.subject.other Retention curve en
dc.subject.other Richards Equation en
dc.subject.other Sand mixture en
dc.subject.other Sandy clay soil en
dc.subject.other Soil matric potential en
dc.subject.other Soil moisture profiles en
dc.subject.other Vertical infiltration en
dc.subject.other Volumetric water content en
dc.subject.other Wetting fronts en
dc.subject.other Clay en
dc.subject.other Diffusion en
dc.subject.other Groundwater en
dc.subject.other Hydraulic conductivity en
dc.subject.other Moisture determination en
dc.subject.other Permittivity en
dc.subject.other Porous materials en
dc.subject.other Seepage en
dc.subject.other Soil mechanics en
dc.subject.other Soil moisture en
dc.subject.other Solute transport en
dc.subject.other Water content en
dc.subject.other Soil surveys en
dc.subject.other diffusivity en
dc.subject.other hydraulic conductivity en
dc.subject.other infiltration en
dc.subject.other matric potential en
dc.subject.other outflow en
dc.subject.other porous medium en
dc.subject.other retention en
dc.subject.other Richards equation en
dc.subject.other soil moisture en
dc.subject.other water content en
dc.title Simulation of soil moisture profiles using K(h) from coupling experimental retention curves and one-step outflow data en
heal.type journalArticle en
heal.identifier.primary 10.1007/s11269-009-9432-3 en
heal.publicationDate 2009 en
heal.abstract In the present work, the effect on the soil moisture profiles development and the cumulative infiltration when three different equations for calculating the diffusivity versus volumetric water content, D(θ) function, from one-step outflow experimental data are used, is investigated. These D(θ) functions are coupled with moisture retention curves θ(h) (h being the soil matric potential) obtained independently for the determination of the hydraulic conductivity function K(θ) or K(h). The so obtained hydraulic conductivity function, together with θ(h), were employed in solving Richards equation numerically under constant flux conditions in one dimensional vertical infiltration process. Two different porous materials were used for this investigation. It is shown that the three different equations used for the prediction of K(h) have no significant effect on the shape of the moisture profiles for the sand mixture and that a Green-Ampt advancement of the wetting front is observed. For the case of sandy clay soil there are some noticeable differences in the moisture profiles and their shape is comparatively more effusive. Also, one could mention that for both porous media the time of incipient ponding (T) differentiates among the three equations used. © Springer Science+Business Media B.V. 2009. en
heal.journalName Water Resources Management en
dc.identifier.issue 15 en
dc.identifier.volume 23 en
dc.identifier.doi 10.1007/s11269-009-9432-3 en
dc.identifier.spage 3255 en
dc.identifier.epage 3266 en


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