Modeling the dynamics of aeolian meter-scale bedforms induced by bed heterogeneities

C Camille Rambert (Physique et Mécanique des Milieux Hétérogènes) J Joanna M. Nield (School of Geography and Environmental Science) C Clément Narteau (Université Paris Cité) P Pauline Delorme (Laboratoire de Géologie) G Giles F. S. Wiggs (School of Geography and the Environment) M Matthew C. Baddock (Department of Geography and Environment) J Jim Best (Departments of Earth Science and Environmental Change) K Kenneth T. Christensen (Department of Mechanical Engineering) P Philippe Claudin (Physique et Mécanique des Milieux Hétérogènes)

Abstract

Desert surfaces are typically nonuniform, with individual sand dunes generally surrounded by gravel or nonerodible beds. Similarly, beaches vary in composition and moisture that enhances cohesion between the grains. These bed heterogeneities affect the aeolian transport properties greatly and can then influence the emergence and dynamics of bedforms. Here, we propose a model that describes how, due to transport capacity being greater on consolidated than erodible beds, patches of sand can grow, migrate, and spread to form bedforms with meter-scale length. Our approach has a quantitative agreement with high-resolution spatiotemporal observations, where conventional theory would predict the disappearance of these small bedforms. A crucial component of the model is that the transport capacity does not instantly change from one bed configuration to another. Instead, transport capacity develops over a certain distance, which thereby determines the short-term evolution of the bedform. The model predicts various stages in the development of these meter-scale bedforms, and explains how the evolution of bed elevation profiles observed in the field depends on the duration of the wind event and the intensity of the incoming sand flux. Our study thus sheds light on the initiation and dynamics of early-stage bedforms by establishing links between surface properties, emerging sand patterns, and protodunes, commonly observed in coastal and desert landscapes.

Article Details

Volume / Issue Vol. 122, Issue 20
Published May 20, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (9)

C

Camille Rambert

Physique et Mécanique des Milieux Hétérogènes

J

Joanna M. Nield

School of Geography and Environmental Science

C

Clément Narteau

Université Paris Cité

P

Pauline Delorme

Laboratoire de Géologie

G

Giles F. S. Wiggs

School of Geography and the Environment

M

Matthew C. Baddock

Department of Geography and Environment

J

Jim Best

Departments of Earth Science and Environmental Change

K

Kenneth T. Christensen

Department of Mechanical Engineering

P

Philippe Claudin

Physique et Mécanique des Milieux Hétérogènes