前进滑面顶部的通量和巴恰沙丘的边缘线曲率

IF 2.4 3区 工程技术 Granular Matter Pub Date : 2024-09-13 DOI:10.1007/s10035-024-01464-w
Jakob Leck
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引用次数: 0

摘要

摘要 巴尼奥尔德关于形状不变的移动沙丘边缘线通量的二维论证被推广到三维。这是通过将滑移面描述为具有不寻常的 Dirichlet 边界条件的 eikonal 方程的解来实现的,其中边界的一部分需要确定。在势流假设的基础上,通过求解泊松方程,并在不参考风廓线或沙通量定律的情况下,根据运动学求得堆上的通量。Sauermann 等人(《地貌学》36:47-62,2000 年)的实地观测结果可以将其与边缘线通量相匹配,从而从其他四个参数中解释出巴丘五个测量形状参数中的一个,即边缘线曲率。更一般地说,这里提出的边缘线通量公式可以作为给定高度和通量剖面中边缘线位置的演化方程,条件是崩蚀过程比地表演化的其他过程快得多。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Flux atop an advancing slip face and the brink line curvature of barchan dunes

A two-dimensional argument by Bagnold for the flux over the brink line of a shape-invariantly moving dune is generalized to three dimensions. This is achieved by describing the slip face as the solution to an eikonal equation with an unusual Dirichlet boundary condition where part of the boundary is to be determined. With the assumption of potential flow the flux over a heap is obtained based on kinematics, by solving a Poisson equation and without making reference to the wind profile or sand flux laws. Matching it with the brink line flux can be used in the results of field observations by Sauermann et al. (Geomorphology 36:47–62, 2000) to explain one of the five measured shape parameters of a barchan, the brink line curvature, from the other four. More generally the brink line flux formula proposed here could serve as an evolution equation for the brink line position in a given height and flux profile, in the limit that the avalanching processes are much faster than the rest of the surface evolution.

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来源期刊
Granular Matter
Granular Matter MATERIALS SCIENCE, MULTIDISCIPLINARY-MECHANICS
CiteScore
4.30
自引率
8.30%
发文量
95
期刊介绍: Although many phenomena observed in granular materials are still not yet fully understood, important contributions have been made to further our understanding using modern tools from statistical mechanics, micro-mechanics, and computational science. These modern tools apply to disordered systems, phase transitions, instabilities or intermittent behavior and the performance of discrete particle simulations. >> Until now, however, many of these results were only to be found scattered throughout the literature. Physicists are often unaware of the theories and results published by engineers or other fields - and vice versa. The journal Granular Matter thus serves as an interdisciplinary platform of communication among researchers of various disciplines who are involved in the basic research on granular media. It helps to establish a common language and gather articles under one single roof that up to now have been spread over many journals in a variety of fields. Notwithstanding, highly applied or technical work is beyond the scope of this journal.
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