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Stiffener layout optimization of plate and shell structures for buckling problem by adaptive growth method

机译:自适应生长方法屈曲问题板材和壳体结构的加强筋布局优化

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摘要

Under axial pressure or shear load, thin-walled plate and shell structures are easily destroyed by buckling. This paper presents the design method for finding the optimal stiffener layout on thin-walled plate and shell structures against the buckling by using the adaptive growth method (AGM), which is based on the growth mechanism of branch systems in nature. Firstly, a mathematical model for optimization of the stiffener layout against buckling is established, and a Karush-Kuhn-Tucker (KKT)-based iteration formula is derived. Next, the stiffeners grow or degenerate from "seeds" according to the adaptive growth principle. Several examples, including imperforated and perforated rectangular plates with unilateral axial pressure and shear loading, are demonstrated to validate the effectiveness of the suggested method, and well-defined stiffener layouts are obtained. The results show that the stiffener layout is clear, and the buckling resistance performance of the optimized stiffened structures is greatly improved.
机译:在轴向压力或剪切载荷下,薄壁板和壳结构容易通过弯曲破坏。本文介绍了通过使用自适应生长方法(AGM)在屈曲和壳体结构上找到最佳加强筋布局的设计方法,这是基于分支系统本质上的生长机制。首先,建立了用于优化加强件布局的数学模型,得到karush-kuhn-tucker(KKT)基准的迭代公式。接下来,根据自适应生长原理,加强筋从“种子”生长或退化。有几个实例,包括具有单侧轴向压力和剪切载荷的渗透和穿孔的矩形板,以验证建议方法的有效性,并获得明确定义的加强件布局。结果表明,加强筋布局很清晰,大大提高了优化的加强结构的屈曲电阻性能。

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