【2h】

Direct numerical simulations of aeolian sand ripples

机译:风沙波动的直接数值模拟

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摘要

Aeolian sand beds exhibit regular patterns of ripples resulting from the interaction between topography and sediment transport. Their characteristics have been so far related to reptation transport caused by the impacts on the ground of grains entrained by the wind into saltation. By means of direct numerical simulations of grains interacting with a wind flow, we show that the instability turns out to be driven by resonant grain trajectories, whose length is close to a ripple wavelength and whose splash leads to a mass displacement toward the ripple crests. The pattern selection results from a compromise between this destabilizing mechanism and a diffusive downslope transport which stabilizes small wavelengths. The initial wavelength is set by the ratio of the sediment flux and the erosion/deposition rate, a ratio which increases linearly with the wind velocity. We show that this scaling law, in agreement with experiments, originates from an interfacial layer separating the saltation zone from the static sand bed, where momentum transfers are dominated by midair collisions. Finally, we provide quantitative support for the use of the propagation of these ripples as a proxy for remote measurements of sediment transport.
机译:风沙床表现出由地形和沉积物传输之间的相互作用导致的有规律的波纹模式。迄今为止,它们的特性与风带入盐中对谷物的地面冲击所引起的re运输有关。通过对与风相互作用的晶粒的直接数值模拟,我们发现,不稳定性最终由共振的晶粒轨迹驱动,该晶粒轨迹的长度接近波纹波长,并且其飞溅导致向波纹峰的质量位移。模式选择是由这种去稳定机制与稳定小波长的扩散下坡传输之间的折衷结果而产生的。初始波长由沉积物通量与侵蚀/沉积速率之比设定,该比率随风速线性增加。我们表明,与实验相一致,该比例定律起源于将盐分带与静态沙床分开的界面层,其中动量传递受空中碰撞的支配。最后,我们为利用这些波纹的传播提供了定量支持,作为对沉积物迁移进行远程测量的代理。

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