2015
DOI: 10.1515/acgeo-2015-0008
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Hydrodynamic Equilibrium for Sediment Transport and Bed Response to Wave Motion

Abstract: An experimental and theoretical identification of hydrodynamic equilibrium for sediment transport and bed response to wave motion are considered. The comparison between calculations and the results of laboratory experiments indicates the linear relation between sediment transport rate and the thickness z m of bed layer in which sediments are in apparent rectilinear motion. This linear relationship allows to use the first order "upwind" numerical scheme of FDM ensuring an accurate solution of equation for chang… Show more

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Cited by 10 publications
(4 citation statements)
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“…Theoretical foundations of sediment transport modeling were formulated by Kaczmarek [33], who presented the concept of a multilayer continuous description of sediment concentration and velocity distributions. This concept was later extended by Kaczmarek and Ostrowski [34] to describe the transport of homogeneous sediments under wave-current conditions and by Kaczmarek et al [35] to describe the transport of granulometrically heterogeneous sediments under wave-current conditions, as well as by Kaczmarek et al [36,37] to describe morphological changes. The theoretical basis on the multilayer model of transport of granulometrically heterogeneous sediments under both wave and flow conditions is summarized by Kaczmarek et al [32,38,39].…”
Section: Introductionmentioning
confidence: 99%
“…Theoretical foundations of sediment transport modeling were formulated by Kaczmarek [33], who presented the concept of a multilayer continuous description of sediment concentration and velocity distributions. This concept was later extended by Kaczmarek and Ostrowski [34] to describe the transport of homogeneous sediments under wave-current conditions and by Kaczmarek et al [35] to describe the transport of granulometrically heterogeneous sediments under wave-current conditions, as well as by Kaczmarek et al [36,37] to describe morphological changes. The theoretical basis on the multilayer model of transport of granulometrically heterogeneous sediments under both wave and flow conditions is summarized by Kaczmarek et al [32,38,39].…”
Section: Introductionmentioning
confidence: 99%
“…Agreement within plus/minus a factor of two of measurements is achieved. Here, the experimental data come from small-scale flumes (Kaczmarek 2004, Kaczmarek et al 2015 and full-scale flumes (Schretlen 2012, Dohmen-Janssen & Hanes 2002, where both the effect due to the presence of bed forms (Kaczmarek 2004, Kaczmarek et al 2015 and the streaming effect (Schretlen 2012, Dohmen-Janssen & Hanes 2002 on sediment transport are expected. These effects can influence the modelled sediment transport mainly in the inner layer.…”
Section: Calculation Results Against Measurementsmentioning
confidence: 99%
“…The consistency of the results does not depend on the scale of experiments (full-scale or small-scale). The measurements analysed include those for symmetrical waves described by Stokes' first approximation (Kaczmarek 2004, Kaczmarek et al 2015 and those for asymmetrical waves described by Stokes' second approximation (Schretlen 2012, Dohmen-Janssen & Hanes 2002.…”
Section: Calculation Results Against Measurementsmentioning
confidence: 99%
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