首页> 外文期刊>Continental Shelf Research: A Companion Journal to Deep-Sea Research and Progress in Oceanography >Wave runup parameterization for sandy, gravel and platform beaches in a fetch-limited, large estuarine system
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Wave runup parameterization for sandy, gravel and platform beaches in a fetch-limited, large estuarine system

机译:桑迪,砾石和平台海滩的波浪流程参数化,在获取有限的大型河口系统中

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Empirical models of wave runup are commonly derived from open beaches, but their applicability in fetch-limited, sheltered environments are yet to be properly assessed. Based on original video-derived runup observations on 5 beaches with distinct morphodynamic states in the Estuary and Gulf of St. Lawrence (EGSL), this paper presents a runup analysis at the regional scale. A wide range of environmental parameters (varying wave climate, beach slopes, tidal range) and beach types (platform-beach, with and without nearshore bars, sandy/gravel) are considered. A total of 430 15 min timestacks have been analyzed over 35 different days across a 3 year survey. Runup, setup, incident (f > 0.05 Hz) and infragravity (f < 0.05 Hz) swash are regressed against offshore wave characteristics and beach slope. Results indicate that the influence of the hydrodynamic parameters on wave runup, setup and swash is a function of offshore wave height and wavelength. While hydrodynamic forcing explain most of the coastal water level components variability, setup and swash are affected differently by the beach slope. The role of the beach morphology on wave setup can be parameterized through the inverse function of the beach slope, while swash height is written as the square root of the beach slope. The parameterizations of R-2% for the EGSL beaches have been validated against a new set of observations. Overall, the hydrodynamic forcing is the dominant driver of wave runup, but including the beach slope improves the understanding of the runup components. The original formulations offer a strong potential for runup assessment on various morphological fetch-limited coastal environments.
机译:波浪运行的经验模型通常来自开放式海滩,但它们在获取限制的适用性,避难的环境中尚未得到适当的评估。基于原有的视频衍生的流动观测,在河口和圣劳伦斯(EGSL)的河口和海湾的不同形态动力学国家,本文提出了区域规模的运行分析。考虑了广泛的环境参数(不同的波浪气候,海滩斜坡,潮汐范围)和海滩类型(平台 - 海滩,有和没有近岸酒吧,桑迪/砾石)。在3年的调查中,共分析了430个15分钟的时间表。运行,设置,事件(F> 0.05 Hz)和IntribArvity(F <0.05 Hz)旋转速率,对海上波特性和海滩斜率回归。结果表明,流体动力学参数对波浪,设置和旋转的影响是近海波高度和波长的函数。虽然流体动力学强制解释了大多数沿海水位部件,但海滩坡度的不同地受到不同的影响。通过海滩斜坡的逆功能来参数化海滩形态的作用,而旋转斜率被写为海滩斜坡的平方根。 EGSL海滩R-2%的参数化已针对一组新的观察验证。总体而言,流体动力学强制是波浪运行的主导驱动因素,但包括海滩斜率可提高对运行组件的理解。原始配方对各种形态学获取有限的沿海环境提供了强有力的潜力。

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