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首页> 外文期刊>European Journal of Mechanics, B. Fluids >Evolution of deep-water waves under wind forcing and wave breaking effects: Numerical simulations and experimental assessment
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Evolution of deep-water waves under wind forcing and wave breaking effects: Numerical simulations and experimental assessment

机译:强风和破波作用下深水波的演化:数值模拟和实验评估

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摘要

The evolution of two-dimensional dispersive focusing wave groups in deep water under wind forcing and wave breaking effects is investigated numerically and measurements collected from wind-wave experiments are used to evaluate the numerical simulations. Wind forcing is modeled by introducing into the dynamic boundary condition a surface slope coherent pressure distribution, which is expressed through Miles' shear instability theory and Jeffreys' sheltering model. To activate Jeffreys' model in simulating waves evolving under wind forcing, an air flow separation criterion depending on wind speed and wave steepness is proposed. Direct comparisons of the measurements and the simulations are made by including the wind-driven current in the simulations. To simulate breaking waves, an eddy viscosity model is incorporated into a system of nonlinear evolution equations to dissipate wave energy and to predict surface elevation after breaking. For wave groups under no wind action, the eddy viscosity model simulates well the energy dissipation in breaking waves and predicts well the surface elevation after breaking. Under the weaker wind forcing condition, after consideration of the wind-driven current, the numerical model produces satisfying predictions. As the wind forcing becomes stronger, the disparity between the experiments and the simulations becomes more evident while the numerical results are still regarded as acceptable. The relative importances of the Miles' and the Jeffreys' models for waves under wind forcing are discussed through additional numerical tests.
机译:数值研究了在强迫和破波作用下深水中二维分散聚焦波群的演化,并利用风波实验收集的测量结果对数值模拟进行了评估。通过在动态边界条件中引入表面坡度相干压力分布来模拟风强迫,这通过Miles的剪切不稳定性理论和Jeffreys的掩蔽模型来表示。为了激活杰弗里斯在强迫作用下模拟波浪的模型,提出了一种基于风速和波浪陡度的气流分离准则。通过将风驱动电流包括在仿真中,可以对测量和仿真进行直接比较。为了模拟破碎波,将涡流粘度模型合并到非线性演化方程系统中,以耗散波浪能并预测破碎后的表面高度。对于无风作用下的波浪群,涡流粘度模型很好地模拟了破碎浪中的能量耗散,并很好地预测了破碎后的表面高度。在较弱的风力条件下,考虑风驱动电流后,数值模型可得出令人满意的预测。随着风力的增强,实验和模拟之间的差异变得更加明显,而数值结果仍被认为是可以接受的。通过额外的数值测试,讨论了Miles和Jeffreys模型在风力作用下的相对重要性。

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