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Bottom boundary layer forced by finite amplitude long and short surface waves motions

机译:由有限振幅长而短表面波动运动的底部边界层

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A multiple-scale perturbation approach is implemented to solve the Navier-Stokes equations while including bottom boundary layer effects under a single wave and under two interacting waves. In this approach, fluid velocities and the pressure field are decomposed into two components: a potential component and a rotational component. In this study, the two components are exist throughout the entire water column and each is scaled with appropriate length and time scales. A one-way coupling between the two components is implemented. The potential component is assumed to be known analytically or numerically a prior, and the rotational component is forced by the potential component. Through order of magnitude analysis, it is found that the leading-order coupling between the two components occurs through the vertical convective acceleration. It is shown that this coupling plays an important role in the bottom boundary layer behavior. Its effect on the results is discussed for different wave-forcing conditions: purely harmonic forcing and impurely harmonic forcing. The approach is then applied to derive the governing equations for the bottom boundary layer developed under two interacting wave motions. Both motions-the shorter and the longer wave-are decomposed into two components, potential and rotational, as it is done in the single wave. Test cases are presented wherein two different wave forcings are simulated: (1) two periodic oscillatory motions and (2) short waves interacting with a solitary wave. The analysis of the two periodic motions indicates that nonlinear effects in the rotational solution may be significant even though nonlinear effects are negligible in the potential forcing. The local differences in the rotational velocity due to the nonlinear vertical convection coupling term are found to be on the order of 30% of the maximum boundary layer velocity for the cases simulated in this paper. This difference is expected to increase with the increase in wave nonl
机译:实现了多级扰动方法以解决Navier-Stokes方程,同时包括在单个波下方的底部边界层效果,并且在两个相互作用波下。在这种方法中,流体速度和压力场被分解成两个部件:潜在的部件和旋转部件。在本研究中,在整个水柱中存在两个组件,每个组件都以适当的长度和时间尺度缩放。实现了两个组件之间的单向耦合。假设潜在的部件在分析或数字上是先前的,并且旋转分量被潜在的部件强制。通过幅度分析的顺序,发现通过垂直对流加速发生两个部件之间的前导耦合。结果表明,该耦合在底部边界层行为中起重要作用。它对不同的波浪强迫条件讨论了对结果的影响:纯度谐波迫使和谐波强制不足。然后应用该方法以导出在两个相互作用波动运动下开发的底部边界层的控制方程。两个动作 - 较短和较长的波浪 - 分解成两个组件,电位和旋转,因为它在单波中完成。提出了测试用例,其中模拟了两个不同的波强制:(1)两个周期性振荡运动和(2)与孤立波相互作用的短波。两个周期运动的分析表明,即使在潜在的强制上忽略不计,旋转溶液中的非线性效应可能是显着的。由于非线性垂直对流耦合术语导致的旋转速度的局部差异是大约在本文中模拟的案例最大边界层速度的30%的量级。预计这种差异将随着波浪非的增加而增加

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