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首页> 外文期刊>Advances in Mathematical Physics >Nonlinear Hydroelastic Interaction among a Floating Elastic Plate, Water Waves, and Exponential Shear Currents
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Nonlinear Hydroelastic Interaction among a Floating Elastic Plate, Water Waves, and Exponential Shear Currents

机译:浮动弹性板,水波和指数剪切电流之间的非线性水液相互作用

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Nonlinear hydroelastic interaction among a floating elastic plate, a train of deepwater waves, and a current which decays exponentially with depth is studied analytically. We introduce a stream function to obtain the governing equation with the dynamic boundary condition expressing a balance among the hydrodynamic, the shear currents, elastic, and inertial forces. We use the Dubreil-Jacotin transformation to reformulate the unknown free surface as a fixed location in the calculations. The convergent analytical series solutions for the floating plate deflection are obtained with the aid of the homotopy analysis method (HAM). The effects of the shear current are discussed in detail. It is found that the phase speed decreases with the increase of the vorticity parameter in the opposing current, while the phase speed increases with the increase of the vorticity parameter in the aiding current. Larger vorticity tends to increase the horizontal velocity. In the opposing current, the horizontal velocity under the wave crest delays more quickly as the depth increases than that of waves under the wave trough, while in the aiding current case, there is the opposite effect. Furthermore, the larger vorticity can sharpen the hydroelastic wave crest and smooth the trough on an opposing current, while it produces an opposite effect on an aiding current.
机译:浮动弹性板的非线性水液相互作用,深水波列车以及深度衰减的电流在分析中进行了分析。我们引入了一种流功能,以获得具有在流体动力学,剪切电流,弹性和惯性力之间的平衡的动态边界条件的控制方程。我们使用Dubreil-jacotin转换将未知的自由表面重构为计算中的固定位置。借助于同型分析方法(火腿)获得浮动板偏转的收敛分析序列溶液。详细讨论剪切电流的效果。结果发现,随着相对电流中的涡度参数的增加,相位速度降低,而相速度随着辅助电流中的涡流参数的增加而增加。较大的涡度倾向于增加水平速度。在相对的电流中,波峰下的水平速度随着波浪在波槽下的波的深度增加而延迟的水平速度更快,而在辅助电流壳体中,存在相反的效果。此外,较大的涡度可以锐化液体波动波峰并将槽平滑在相反的电流上,同时它产生对辅助电流的相反影响。

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