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HYDROELASTIC RESPONSE OF A SHIP STRUCTURAL DETAIL TO SEAKEEPING LOADS USING A TOP-DOWN SCHEME

机译:使用自上而下的方案对船舶结构细节的船舶结构细节的水力响应

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In order to investigate the local response of a ship structure, it is necessary to transfer the seakeeping loading to a 3DFEM model of the structure. A common approach is to transfer the sea-keeping loads calculated by a BEM method to the FEM model. Following the need to take into account the dynamic response of the ship to the wave excitation, some methods based on a modal approach have been recently developed that include the dry structural modes in the hydro-structure coupling procedure and allow to compute the springing and whipping response of the ship structure to the seakeeping loads. In the context of the fatigue life assessment of a structural detail, a very fine FE model is required. A very large number of seakeeping loading cases also need to be considered to account for all the conditions encountered by the ship through its life. It becomes then clear that because of the CPU time issue, the whole FE model can not be very fine. This is why a hierarchical top-down analysis procedure is commonly used, in which the global ship structure is modelled in a coarse manner using one finite element between web frames. The structural details are modelled separately using a fine meshing. Such top-down methods are commonly used for the estimation of the quasi-static response of structural details to the seakeeping loads. This paper presents a methodology in which a top-down method is used to estimate the springing response of a ship structural detail loaded with wave pressure, and its fatigue life. The global dry structural modes are transferred to the detail fine model using the shape functions of the finite elements of the global model. The hydrodynamic pressures are computed directly on the fine mesh model, avoiding any interpolation error. The imposed displacements at the fine mesh boundary are computed using the same method that is used to transfer the structural mode shapes, and the local pressure induced loads and inertia loads are applied on the fine mesh nodes. This method is applied for the calculation of the elongation of a strain gauge which is installed in the passage way of an ultra large container ship.
机译:为了调查船舶结构的局部响应,有必要将海守装载转移到结构的3DFEM模型。一种常见的方法是将通过BEM方法计算的海上载荷转移到FEM模型。在需要考虑到船舶的动态响应到波浪励磁之后,最近开发了基于模态方法的一些方法,其中包括水性结构耦合程序中的干结构模式,并允许计算弹簧和鞭打船舶结构对海守负荷的响应。在结构细节的疲劳寿命评估的背景下,需要一种非常精细的FE模型。大量的海守装载案件也需要被认为是船舶通过其生命所遇到的所有条件。它变得明确说,由于CPU时间问题,整个FE模型不能很好。这就是为什么通常使用分层自上而下分析过程的原因,其中全局船舶结构以粗略的方式使用幅材帧之间的一个有限元素建模。结构细节使用细啮合单独建模。这种自上而下的方法通常用于估计结构细节对海守负荷的准静态响应。本文介绍了一种方法,其中自上而下的方法用于估计船舶结构细节的弹性响应,其载有波浪压力,以及其疲劳寿命。使用全局模型的有限元的形状函数将全局干燥结构模式转移到细节精细模型。流体动力学压力直接在细网格模型上计算,避免任何插值误差。使用用于传输结构模式形状的相同方法计算精细网格边界处的施加位移,并且局部压力感应负载和惯性载荷施加在细网状节点上。该方法应用于计算以超大型集装箱船的通道方式安装的应变计的伸长率。

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