首页> 外文期刊>Journal of Waterway, Port, Coastal and Ocean Engineering >Physical and Numerical Modeling of Wave-by-Wave Overtopping along a Truncated Plane Beach
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Physical and Numerical Modeling of Wave-by-Wave Overtopping along a Truncated Plane Beach

机译:沿截短的平面海滩沿波浪乘法的物理和数值建模

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摘要

Wave-by-wave and cumulative overtopping data from fixed planar impermeable smooth beaches will be presented from random wave experiments and compared with predictions from two nonlinear shallow water equations (NLSWE) models, Australian National University and Geoscience Australia (ANUGA) and Simulating WAves till SHore (SWASH). These models have been tested and used by many researchers in various coastal processes studies. However, the capability of the models has not been tested when modeling wave-by-wave overtopping processes, and there is relatively limited validation for cumulative or time-averaged overtopping. The verified numerical models will be used to perform a parametric study on the relationship between overtopping and beach slope (β), which has not been well resolved in the literature. This paper shows that the models provide reliable estimates of nearshore wave transformation and run-up, which includes the shoreline motion on a nontruncated beach, with SWASH modeling wave shoaling accurately. For the experimental configuration of a beach that was truncated with a sharp vertical edge, ANUGA provided more reliable estimates of wave-by-wave and cumulative overtopping and predicted total overtopping volumes without bias and within a few percent on the average overall. For wave-by-wave and cumulative overtopping SWASH is sensitive to the bathymetry at the overtopping edge, under predicting total overtopping volumes by approximately 25% for a sharp vertical edge but overpredicting by approximately 20% for a flat crest followed by a downward slope. A detailed investigation indicated that partial reflection occurred at the overtopping edge in the SWASH model for some configurations of the bathymetry, which lead to overestimated depths but reduced durations for positive discharge. The influence of β on the ANUGA model run-up predictions and overtopping will be investigated and compared with empirical formulations. The ANUGA predictions for run-up were consistent with the empirical formulations for low β and were linearly proportional to ji (tan p), but were proportional to β at a smaller power for a higher β, which differed from the relationship given in some empirical models. For a given beach crest elevation (z_c) with a sharp vertical edge and fixed wave conditions, the numerical ANUGA model and empirical model predictions for overtopping were approximately linearly proportional to tan β, but the exact power varied depending on the chosen model. This was in contrast to some of the existing empirical models (when this dependency was explicit), but it was consistent with the analytical SWASH solution when written for positive volume flux (V_o) and deficit in the freeboard (R-z_c) scaling. The numerical predictions from ANUGA agreed well with the empirical models. The modeling provided a new interpretation of the influence of the β on overtopping in the empirical EurOtop formulation, where the complete influence of β is not explicitly provided.
机译:来自固定平面不透水光滑海滩的波浪逐波和累积概述数据将从随机波实验中提出,与来自两个非线性浅水方程式(Nlswe)模型,澳大利亚国家大学和地球科学澳大利亚(Anuga)的预测相比,并模拟波岸上(旋转)。各种沿海流程研究中的许多研究人员已经过测试和使用这些模型。然而,在逐波泛型工艺建模时尚未测试模型的能力,并且对累积或时间平均初始化的验证相对有限。经过验证的数值模型将用于对旧版和海滩斜率(β)之间的关系进行参数研究,这在文献中并未得到很好地解决。本文表明,该模型提供了对近岸波形变换和升降机的可靠估计,包括在非触发海滩上的海岸线运动,旋转旋转频率浅滩浅。对于用尖锐的垂直边缘截断的海滩的实验配置,Anuga提供了更可靠的波浪和累积概述的估计,并预测总差异的总幅度,并且在整体平均值的百分比内。对于波波和累积的速率旋转敏感,在初始化边缘的浴序列上敏感,在预测尖锐的垂直边缘的总速度大约25%,但是对于平坦的峰值,其次是向下倾斜的尺寸约为20%。详细的研究表明,扫描模型中的跨越边缘发生的部分反射,用于浴约定的一些配置,这导致高估深度但持续的阳性放电持续时间。将研究β对Anuga模型升降预测和拓展的影响,并与实证制剂进行比较。用于延伸的Anuga预测与低β的经验制剂一致,并且与Ji(TaN P)线性成比例,但是与较高的β的β成比例,这与一些经验中给出的关系不同楷模。对于具有尖锐的垂直边缘和固定波条件的给定海滩嵴高度(Z_C),对超流的数值anuga模型和经验模型预测与TANβ大致线性成比例,但根据所选模型而变化的精确功率。这与一些现有的经验模型相反(当该依赖性明确时),但是当在黑板(R-Z_C)缩放中写入的正音量通量(V_O)和缺陷时,它与分析扫描解决方案一致。 Anuga的数值预测与经验模型很好。该建模提供了对β对实证欧洲运动蛋白质制剂中的β的影响的新解释,其中没有明确提供β的完全影响。

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