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Geomorphology of desert sand dunes: A review of recent progress

机译:沙漠沙丘的地貌学:近期研究进展

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Through the 1980s and 1990s studies of the geomorphology of desert sand dunes were dominated by field studies of wind flow and sand flow over individual dunes. Alongside these there were some attempts numerically to model dune development as well as some wind tunnel studies that investigated wind flow over dunes. As developments with equipment allowed, field measurements became more sophisticated. However, by the mid-1990s it was clear that even these more complex measurements were still unable to explain the mechanisms by which sand is entrained and transported. Most importantly, the attempt to measure the stresses imposed by the wind on the sand surface proved impossible, and the use of shear (or friction) velocity as a surrogate for shear stress also failed to deliver. At the same time it has become apparent that turbulent structures in the flow may be as or more important in explaining sand flux. In a development paralleled in fluvial geomorphology, aeolian geomorphologists have attempted to measure and model turbulent structures over dunes. Progress has recently been made through the use of more complex numerical models based on computational fluid dynamics (CFD). Some of the modelling work has also suggested that notions of dune 'equilibrium' form may not be particularly helpful. This range of recent developments has not meant that field studies are now redundant. For linear dunes careful observations of individual dunes have provided important data about how the dunes develop but in this particular field some progress has been made through ground-penetrating radar images of the internal structure of the dunes. The paradigm for studies of desert dune geomorphology for several decades has been that good quality empirical data about wind flow and sand flux will enable us to understand how dunes are created and maintain their form. At least some of the difficulty in the past arose from the plethora of undirected data generated by largely inductive field studies. More recently, attention has shifted-although not completely-to modelling approaches, and very considerable progress has been made in developing models of dune development. It is clear, however, that the models will continue to require accurate field observations in order for us to be able to develop a clear understanding of desert sand dune geomorphology. (c) 2006 Elsevier B.V. All rights reserved.
机译:在1980年代和1990年代,对沙漠沙丘地貌的研究一直以对单个沙丘的风流和沙流的野外研究为主导。除了这些,还有一些数值模拟沙丘发展的尝试,以及一些风洞研究,研究了沙丘上的风流。随着设备的发展,现场测量变得越来越复杂。但是,到1990年代中期,很明显,即使是这些更复杂的测量也仍然无法解释夹带和运输沙粒的机理。最重要的是,测量风在沙面上施加的应力的尝试被证明是不可能的,并且使用剪切(或摩擦)速度作为剪切应力的替代物也未能实现。同时,很明显,在解释砂流方面,流动中的湍流结构可能同样重要。在与河流地貌学平行发展的过程中,风沙地貌学家试图对沙丘上的湍流结构进行测量和建模。最近,通过使用基于计算流体动力学(CFD)的更复杂的数值模型已经取得了进展。一些建模工作还表明,沙丘“平衡”形式的概念可能并不是特别有用。最近的发展范围并不意味着现在的实地研究是多余的。对于线性沙丘,对各个沙丘的仔细观察已经提供了有关沙丘如何发展的重要数据,但是在这个特定领域,通过穿透沙丘内部结构的雷达图像已经取得了一些进展。几十年来,研究沙丘地貌的范例是,关于风流和沙流的高质量经验数据将使我们能够了解沙丘是如何形成并保持其形态的。过去至少有一些困难是由大量归纳性现场研究产生的大量无方向性数据引起的。最近,注意力虽然没有完全转移到建模方法上,但是在开发沙丘开发模型方面已经取得了相当大的进步。但是,很明显,这些模型将继续需要准确的野外观察,以便我们能够对沙漠沙丘的地貌有一个清晰的了解。 (c)2006 Elsevier B.V.保留所有权利。

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