2023
DOI: 10.1029/2023jf007155
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Modeling Multi‐Fraction Coastal Aeolian Sediment Transport With Horizontal and Vertical Grain‐Size Variability

Abstract: Sediment available for aeolian transport in coastal settings is characterized by a grain-size distribution that is typically described with a range of grain-size fractions (Krumbein, 1934). Grain size affects aeolian sediment transport due to the larger drag and lift force that is necessary to displace coarser grains (Durán et al., 2011;Sarre, 1987). Grain size also alters the creep and saltation trajectory of sediment (e.g., Cheng et al., 2015;Zhang et al., 2021). Therefore, different grain-size fractions lea… Show more

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Cited by 5 publications
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“…AeoLiS models sediment transport and morphological changes associated with wind-driven sediment transport in coastal systems, including capabilities to introduce supply limitations associated with moisture and sediment texture effects, as well as spatial variability in bed shear stress driven by topographic effects on flow acceleration and by vegetation presence. Recent applications of the AeoLiS model have demonstrated capabilities to specifically simulate multi-fraction wind-driven sediment transport [37], barchan and parabolic dunes [38], vegetative effects on sediment trapping [25], and artificial dune evolution [39]. AeoLiS aims to characterize the dominant processes contributing to wind-driven dune growth in coastal systems, but it has not directly included marine effects on beach and dune erosion.…”
Section: Previous Modeling Work Synthesizing Physical and Ecological ...mentioning
confidence: 99%
“…AeoLiS models sediment transport and morphological changes associated with wind-driven sediment transport in coastal systems, including capabilities to introduce supply limitations associated with moisture and sediment texture effects, as well as spatial variability in bed shear stress driven by topographic effects on flow acceleration and by vegetation presence. Recent applications of the AeoLiS model have demonstrated capabilities to specifically simulate multi-fraction wind-driven sediment transport [37], barchan and parabolic dunes [38], vegetative effects on sediment trapping [25], and artificial dune evolution [39]. AeoLiS aims to characterize the dominant processes contributing to wind-driven dune growth in coastal systems, but it has not directly included marine effects on beach and dune erosion.…”
Section: Previous Modeling Work Synthesizing Physical and Ecological ...mentioning
confidence: 99%