Aerodynamic roughness of rippled beds under active saltation at Earth-to-Mars atmospheric pressures

Fuente: arXiv
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Autores principales: Alvarez, C. A., Lapôtre, M. G. A., Swann, C., Ewing, R. C., Jia, P., Claudin, P.
Formato: Preprint
Publicado: 2025
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author Alvarez, C. A.
Lapôtre, M. G. A.
Swann, C.
Ewing, R. C.
Jia, P.
Claudin, P.
author_facet Alvarez, C. A.
Lapôtre, M. G. A.
Swann, C.
Ewing, R. C.
Jia, P.
Claudin, P.
contents As winds blow over sand, grains are mobilized and reorganized into bedforms such as ripples and dunes. In turn, sand transport and bedforms affect the winds themselves. These complex interactions between winds and sediment render modeling of windswept landscapes challenging. A critical parameter in such models is the aerodynamic roughness length, $z_0$, defined as the height above the bed at which wind velocity predicted from the log law drops to zero. In aeolian environments, $z_0$ can variably be controlled by the laminar viscous sublayer, grain roughness, form drag from bedforms, or the saltation layer. Estimates of $z_0$ are used on Mars, notably, to predict wind speeds, sand fluxes, and global circulation patterns; yet, no robust measurements of $z_0$ have been performed over rippled sand on Mars to date. Here, we measure $z_0$ over equilibrated rippled sand beds with active saltation under atmospheric pressures intermediate between those of Earth and Mars. Extrapolated to Mars, our results suggest that $z_0$ over rippled beds and under active saltation may be dominated by form drag across a plausible range of wind velocities, reaching values up to 1 cm -- two orders of magnitude larger than typically assumed for flat beds under similar sediment transport conditions.
format Preprint
id arxiv_https___arxiv_org_abs_2506_13296
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Aerodynamic roughness of rippled beds under active saltation at Earth-to-Mars atmospheric pressures
Alvarez, C. A.
Lapôtre, M. G. A.
Swann, C.
Ewing, R. C.
Jia, P.
Claudin, P.
Geophysics
Fluid Dynamics
As winds blow over sand, grains are mobilized and reorganized into bedforms such as ripples and dunes. In turn, sand transport and bedforms affect the winds themselves. These complex interactions between winds and sediment render modeling of windswept landscapes challenging. A critical parameter in such models is the aerodynamic roughness length, $z_0$, defined as the height above the bed at which wind velocity predicted from the log law drops to zero. In aeolian environments, $z_0$ can variably be controlled by the laminar viscous sublayer, grain roughness, form drag from bedforms, or the saltation layer. Estimates of $z_0$ are used on Mars, notably, to predict wind speeds, sand fluxes, and global circulation patterns; yet, no robust measurements of $z_0$ have been performed over rippled sand on Mars to date. Here, we measure $z_0$ over equilibrated rippled sand beds with active saltation under atmospheric pressures intermediate between those of Earth and Mars. Extrapolated to Mars, our results suggest that $z_0$ over rippled beds and under active saltation may be dominated by form drag across a plausible range of wind velocities, reaching values up to 1 cm -- two orders of magnitude larger than typically assumed for flat beds under similar sediment transport conditions.
title Aerodynamic roughness of rippled beds under active saltation at Earth-to-Mars atmospheric pressures
topic Geophysics
Fluid Dynamics
url https://arxiv.org/abs/2506.13296