Exploring Marine and Aeolian Controls on Coastal Foredune Growth Using a Coupled Numerical Model

沙丘 风积作用 进积 海滩形态动力学 陆上 泥沙输移 地质学 瘟疫 海岸 海洋学 沉积物 增值(金融) 过度冲洗 沉积预算 环境科学 地貌学 障壁岛 沉积沉积环境 物理 构造盆地 天体物理学 地球化学
作者
Nicholas Cohn,Bas Hoonhout,Evan B. Goldstein,Sierd de Vries,Laura J. Moore,Orencio Durán,Peter Ruggiero
出处
期刊:Journal of Marine Science and Engineering [Multidisciplinary Digital Publishing Institute]
卷期号:7 (1): 13-13 被引量:91
标识
DOI:10.3390/jmse7010013
摘要

Coastal landscape change represents aggregated sediment transport gradients from spatially and temporally variable marine and aeolian forces. Numerous tools exist that independently simulate subaqueous and subaerial coastal profile change in response to these physical forces on a range of time scales. In this capacity, coastal foredunes have been treated primarily as wind-driven features. However, there are several marine controls on coastal foredune growth, such as sediment supply and moisture effects on aeolian processes. To improve understanding of interactions across the land-sea interface, here the development of the new Windsurf-coupled numerical modeling framework is presented. Windsurf couples standalone subaqueous and subaerial coastal change models to simulate the co-evolution of the coastal zone in response to both marine and aeolian processes. Windsurf is applied to a progradational, dissipative coastal system in Washington, USA, demonstrating the ability of the model framework to simulate sediment exchanges between the nearshore, beach, and dune for a one-year period. Windsurf simulations generally reproduce observed cycles of seasonal beach progradation and retreat, as well as dune growth, with reasonable skill. Exploratory model simulations are used to further explore the implications of environmental forcing variability on annual-scale coastal profile evolution. The findings of this work support the hypothesis that there are both direct and indirect oceanographic and meteorological controls on coastal foredune progradation, with this new modeling tool providing a new means of exploring complex morphodynamic feedback mechanisms.
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