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首页> 外文期刊>Composite Structures >Robust design optimization of variable angle tow composite plates for maximum buckling load in the presence of uncertainties
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Robust design optimization of variable angle tow composite plates for maximum buckling load in the presence of uncertainties

机译:在存在不确定性的情况下,可变角度拖曳复合材料板的稳健设计优化可最大屈曲载荷

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摘要

A robust design optimization algorithm is proposed for variable angle tow composite structures in the presence of uncertainties in the constituent material properties and applied loads. The proposed algorithm uses a stochastic perturbation method to propagate these uncertainties through to the simulated structural response, measured in terms of buckling load. The expected value plus a selected number of standard deviations of the response in the form of a bi-criteria problem. To describe the curvilinear fibres, two types of fibre path function, namely linear- and nonlinear-variation formulae, are adopted to illustrate the proposed methodology. A comparison between the resulting robust designs and deterministic designs is made, and changes to the final designs of fibre tow paths arising from the inclusion of uncertainty are discussed. It is shown that the robust designs outperform the deterministic designs under real-world situations that include uncertainties.
机译:针对组成材料特性和施加载荷存在不确定性的情况,提出了一种可变角度拖曳复合结构的鲁棒设计优化算法。所提出的算法使用随机扰动方法将这些不确定性传播到模拟结构响应中,该结构响应以屈曲载荷来衡量。期望值加上选定数量的双标准问题形式的响应标准偏差。为了描述曲线纤维,采用两种类型的纤维路径函数,即线性和非线性变化公式,来说明所提出的方法。比较了最终的鲁棒性设计和确定性设计,并讨论了由于不确定性而导致的光纤拖曳路径最终设计的变化。结果表明,在包含不确定性的现实情况下,稳健设计的性能优于确定性设计。

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