English

Coevolving aerodynamic and impact ripples on Earth

Geophysics 2025-01-22 v1 Soft Condensed Matter Fluid Dynamics

Abstract

Windblown sand creates multiscale bedforms on Earth, Mars, and other planetary bodies. According to conventional wisdom, decameter-scale dunes and decimeter-scale ripples emerge via distinct mechanisms on Earth: a hydrodynamic instability related to a phase shift between the turbulent flow and the topography, and a granular instability related to a synchronization of hopping grains with the topography. Here, we report the reproducible creation of coevolving centimeter and decimeter-scale ripples on fine-grained monodisperse sand beds in ambient-air and low-pressure wind-tunnels, revealing two adjacent mesoscale growth instabilities. Their morphological traits and our quantitative grain-scale numerical simulations authenticate the smaller structures as impact ripples but point at a hydrodynamic origin for the larger ones. This suggests that the aeolian transport layer would have to partially respond to the topography on a scale comparable to the average hop length, hence faster than previously thought, but consistent with the phase lag of the inferred aeolian sand flux relative to the wind. Hydrodynamic modelling supports the existence of hydrodynamic aerodynamic ripples on Earth, connecting them mechanistically to megaripples and to the debated Martian ripples. We thereby propose a unified framework for mesoscale granular bedforms found across the Solar System.

Keywords

Cite

@article{arxiv.2501.10643,
  title  = {Coevolving aerodynamic and impact ripples on Earth},
  author = {Hezi Yizhaq and Katharina Tholen and Lior Saban and Nitzan Swet and Conner Lester and Simone Silvestro and Keld R. Rasmussen and Jonathan P. Merrison and Jens J. Iversen and Gabriele Franzese and Klaus Kroy and Thomas Pähtz and Orencio Durán and Itzhak Katra},
  journal= {arXiv preprint arXiv:2501.10643},
  year   = {2025}
}
R2 v1 2026-06-28T21:10:01.319Z