Guignier L, Niiya H, Nishimori H, Lague D, Valance A
Institut de Physique de Rennes, CNRS UMR 6251, Université de Rennes 1, 35042 Rennes cedex, France.
Phys Rev E Stat Nonlin Soft Matter Phys. 2013 May;87(5):052206. doi: 10.1103/PhysRevE.87.052206. Epub 2013 May 24.
We develop a reduced complexity model for three-dimensional sand dunes, based on a simplified description of the longitudinal and lateral sand transport. The spatiotemporal evolution of a dune migrating over a nonerodible bed under unidirectional wind is reduced to the dynamics of its crest line, providing a simple framework for the investigation of three-dimensional dunes, such as barchan and transverse dunes. Within this model, we derive analytical solutions for barchan dunes and investigate the stability of a rectilinear transverse dune against lateral fluctuations. We show, in particular, that the latter is unstable only if the lateral transport on the dune slip face prevails over that on the upwind face. We also predict the wavelength and the characteristic time that control the subsequent evolution of an unstable transverse dune into a wavy ridge and the ultimate fragmentation into barchan dunes.
我们基于对纵向和横向沙输运的简化描述,开发了一种用于三维沙丘的低复杂度模型。在单向风作用下,沙丘在不可侵蚀床面上迁移的时空演化被简化为其脊线的动力学,为研究诸如新月形沙丘和横向沙丘等三维沙丘提供了一个简单的框架。在这个模型中,我们推导了新月形沙丘的解析解,并研究了直线形横向沙丘相对于横向波动的稳定性。特别地,我们表明,只有当沙丘滑面上的横向输运超过迎风面上的横向输运时,后者才是不稳定的。我们还预测了控制不稳定横向沙丘随后演变成波浪状脊以及最终破碎成新月形沙丘的波长和特征时间。