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Reinforcement layout and sizing optimization of composite submarine sail structures

机译:复合海底帆结构的钢筋布局和尺寸优化

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摘要

A topology optimization approach that makes use of nonlinear design variable-to-sizing relationship is presented. A finite element (FE) model is used to describe the loaded structure, but unlike the microstructure approach, the decision is whether an element in the continuum should have maximum or minimum cross-sectional dimension while its material density and moduli are held constant. This approach is applied to reinforcement layout optimization of a very large and geometrically complex Composite Advanced Sail (CAS) structure under an asymmetric wave slap loading condition. A high-complexity model in the form of multilayered shell and a low-complexity model in the form of stiffened shell are developed for the layout optimization of the CAS and solved for minimum strain energy. The effects of constraints such as buckling instability on optimal placement of internal stiffeners are also explored. Based on the results of the layout optimization, a new FE model of the CAS is developed and optimized for minimum weight. Depending upon the degree of variability in skin thickness, the results show a weight saving of up to 19% over the original model.
机译:提出了一种利用非线性设计变量与尺寸关系的拓扑优化方法。有限元(FE)模型用于描述加载的结构,但与微结构方法不同,决定是连续体中的元素应具有最大还是最小的横截面尺寸,同时使其材料密度和模量保持恒定。该方法适用于非对称波浪拍击载荷条件下非常大且几何形状复杂的复合高级帆(CAS)结构的钢筋布局优化。开发了多层壳形式的高复杂度模型和加劲壳形式的低复杂度模型,以优化CAS的布局,并解决了最小应变能的问题。还探讨了诸如屈曲不稳定性之类的约束对内部加强筋最佳放置的影响。根据布局优化的结果,开发并优化了CAS的新有限元模型,以最小化重量。根据皮肤厚度的变化程度,结果表明,与原始模型相比,重量减轻了多达19%。

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