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Fully Nonlinear Simulation Of Wave Interaction With Fixed And Floating Flared Structures

机译:固定和浮动喇叭形结构波相互作用的完全非线性模拟

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The interaction between fully nonlinear water waves in a wave tank and fixed or floating structures with vertical and flared side surfaces is investigated. The higher-order boundary element method is used to solve the mixed boundary value problem in an Eulerian formulation at each time step. The time stepping scheme updates the boundary conditions on the free water surface and body surface, based on a Lagrangian description. In order to increase the efficiency of the calculation, the domain decomposition technique is implemented, with continuity conditions enforced on the interface between adjacent subdomains by an iterative procedure. For the calculation of wave forces acting on structures, some auxiliary functions are used, instead of predicting the time derivative of the potential directly. By means of these auxiliary functions, the coupled fluid-structure interaction can be decoupled easily, so that the calculation of body motions becomes independent of the hydrodynamic force. In addition, mesh regridding using the Laplace smoothing technique and interpolation are applied on the free surface to avoid possible numerical instabilities. Numerical results are obtained for the wave interactions with vertical cylinders and flared structures at different wave numbers, in which the bodies are fixed, freely floating in one direction and totally freely floating, respectively. The effect of different flared shapes on the forces, wave run-up and body motions is also studied.
机译:研究了波箱中完全非线性的水波与具有垂直和张开侧面的固定或浮动结构之间的相互作用。高阶边界元法用于解决每个时间步长的欧拉公式中的混合边值问题。时间步长方案基于拉格朗日描述更新了自由水表面和身体表面的边界条件。为了提高计算效率,实施了域分解技术,并通过迭代过程在相邻子域之间的接口上施加了连续性条件。为了计算作用在结构上的波浪力,使用了一些辅助函数,而不是直接预测电势的时间导数。通过这些辅助功能,可以轻松地将耦合的流固耦合解耦,从而使人体运动的计算与流体动力无关。此外,在自由表面上应用了使用拉普拉斯平滑技术和插值法进行的网格重新网格化,以避免可能的数值不稳定性。获得了在不同波数下与垂直圆柱体和喇叭形结构的波浪相互作用的数值结果,其中,物体是固定的,分别在一个方向上自由漂浮,并且在完全自由上漂浮。还研究了不同喇叭形的形状对力,波浪起伏和身体运动的影响。

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