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首页> 外文期刊>International Journal of Naval Architecture and Ocean Engineering >FEA based optimization of semi-submersible floater considering buckling and yield strength
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FEA based optimization of semi-submersible floater considering buckling and yield strength

机译:考虑屈曲和屈服强度的基于FEA的半潜浮子优化

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A semi-submersible structure has been widely used for offshore drilling and production of oil and gas. The small water plane area makes the structure very sensitive to weight increase in terms of payload and stability. Therefore, it is necessary to lighten the substructure from the early design stage. This study aims at an optimization of hull structure based on a sophisticated yield and buckling strength in accordance with classification rules. An in-house strength assessment system is developed to automate the procedure such as a generation of buckling panels, a collection of required panel information, automatic buckling and yield check and so on. The developed system enables an automatic yield and buckling strength check of all panels composing the hull structure at each iteration of the optimization. Design variables are plate thickness and stiffener section profiles. In order to overcome the difficulty of large number of design variables and the computational burden of FE analysis, various methods are proposed. The steepest descent method is selected as the optimization algorithm for an efficient search. For a reduction of the number of design variables and a direct application to practical design, the stiffener section variable is determined by selecting one from a pre-defined standard library. Plate thickness is also discretized at 0.5t interval. The number of FE analysis is reduced by using equations to analytically estimating the stress changes in gradient calculation and line search steps. As an endeavor to robust optimization, the number of design variables to be simultaneously optimized is divided by grouping the scantling variables by the plane. A sequential optimization is performed group by group. As a verification example, a central column of a semi-submersible structure is optimized and compared with a conventional optimization of all design variables at once.
机译:半潜式结构已被广泛用于海上钻探和油气生产。小水平面面积使该结构对有效载荷和稳定性方面的重量增加非常敏感。因此,有必要减轻早期设计阶段的子结构。本研究旨在根据分类规则,基于复杂的屈服强度和屈曲强度来优化船体结构。开发了一种内部强度评估系统,以使该过程自动化,例如生成屈曲面板,收集所需面板信息,自动屈曲和屈服检查等。所开发的系统能够在每次优化迭代时自动检查组成船体结构的所有面板的屈服和屈曲强度。设计变量是板厚度和加劲肋截面轮廓。为了克服大量设计变量的困难和有限元分析的计算负担,提出了多种方法。选择最速下降法作为用于有效搜索的优化算法。为了减少设计变量的数量并直接应用于实际设计中,通过从预定义标准库中选择一个来确定加劲肋截面变量。板厚也以0.5t的间隔离散。通过使用方程式来分析估计梯度计算和线搜索步骤中的应力变化,从而减少了有限元分析的次数。为了进行稳健的优化,要同时优化的设计变量的数量通过按平面对尺寸变量进行分组来划分。逐组进行顺序优化。作为验证示例,对半潜式结构的中心柱进行了优化,并与所有设计变量的常规优化立即进行了比较。

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