首页> 外文会议>ASME international conference on ocean, offshore and arctic engineering >A NONLINEAR NUMERICAL ALGORITHM FOR TIME-DOMAIN HYDRODYNAMIC SIMULATIONS OF VESSEL MOTIONS IN THE PRESENCE OF WAVES
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A NONLINEAR NUMERICAL ALGORITHM FOR TIME-DOMAIN HYDRODYNAMIC SIMULATIONS OF VESSEL MOTIONS IN THE PRESENCE OF WAVES

机译:一种非线性数值数值算法在波浪存在下血管运动的时域流体动力模拟

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Linear approaches have been traditionally employed to simulate the dynamic behavior of floating vessels and its interaction with regular or irregular waves. Some difficulties arise when large waves and vessel motions occur. Under these circumstances, the linear assumptions to compute the restoring and wave forces, which are computed on the mean position of body and water surface, are not capable of accurately representing the physics of the interactions between waves and vessels.Hydrostatic analysis of generic hull forms has already been implemented with a geometrical face representation of the hull and also internal ballast and oil tanks [1]. With the goal of improving the modeling the non-linear computation of hydrostatic in waves (at the instantaneous free surface) is implemented, thus using a generic geometric modeling of the hull to perform hydrodynamic simulations of vessel motions in the presence of waves. Additionally, for the computation of the instantaneous non-linear Froude-Krylov force (6 DOF time-domain model) the contribution of each geometrical face to the global Froude-Krylov force is calculated at the exact relative position of the vessel and the incident waves. After computing the relative position of each face, possibly being cut at the free surface, the pressure at the wetted face centers determines the contribution to the integral calculation.The paper presents the main aspects of the proposed methodology and highlights its capabilities and differences with respect to the linear approach. Complementarily, comparisons with model experiments are discussed.
机译:传统上采用线性方法来模拟浮动容器的动态行为及其与常规或不规则波的相互作用。当大浪和血管运动发生时出现一些困难。在这种情况下,计算在体和水表面的平均位置计算的恢复和波力的线性假设,不能准确地表示波浪和血管之间的相互作用的物理。通用船体形式的脱水分析已经用船体的几何面观,以及内部镇流器和油箱[1]。利用改善模型的模型,实施了静液压的静液压(在瞬时自由表面)上实现,因此使用船体的通用几何建模在波的存在下进行血管运动的流体动力模拟。另外,对于瞬时非线性FRoude-Krylov力(6 DOF时域模型)的计算,在血管和入射波的确切位置计算每个几何面对全球FRoude-Krylov力的贡献。在计算每个面部的相对位置之后,可能在自由表面切割,湿润面中心的压力决定了对整体计算的贡献。本文提出了所提出的方法的主要方面,并突出其能力和差异到线性方法。互补地,讨论了与模型实验的比较。

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