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Robust optimization of foam-filled thin-walled structure based on sequential Kriging metamodel

机译:基于顺序克里格元模型的泡沫填充薄壁结构的鲁棒优化

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摘要

Deterministic optimization has been successfully applied to a range of design problems involving foam-filled thin-walled structures, and to some extent gained significant confidence for the applications of such structures in automotive, aerospace, transportation and defense industries. However, the conventional deterministic design could become less meaningful or even unacceptable when considering the perturbations of design variables and noises of system parameters. To overcome this drawback, a robust design methodology is presented in this paper to address the effects of parametric uncertainties of foam-filled thinwalled structure on design optimization, in which different sigma criteria are adopted to measure the variations. The Kriging modeling technique is used to construct the corresponding surrogate models of mean and standard deviation for different crashworthiness criteria. A sequential sampling approach is introduced to improve the fitness accuracy of these surrogate models. Finally, a gradient-based sequential quadratic program (SQP) method is employed from 20 different initial points to obtain a quasi-global robust optimum solution. The optimal solutions were verified by using the Monte Carlo simulation. The results show that the presented robust optimization method is fairly effective and efficient, the crashworthiness and robustness of the foam-filled thin-walled structure can be improved significantly.
机译:确定性优化已成功应用于涉及泡沫填充薄壁结构的一系列设计问题,并且在某种程度上获得了对此类结构在汽车,航空航天,运输和国防工业中应用的信心。但是,当考虑设计变量的扰动和系统参数的噪声时,常规的确定性设计可能变得没有意义甚至无法接受。为了克服这一缺点,本文提出了一种鲁棒的设计方法,以解决泡沫填充薄壁结构的参数不确定性对设计优化的影响,其中采用不同的sigma准则来测量变化。 Kriging建模技术用于针对不同的耐撞性标准构建相应的均值和标准差的替代模型。引入了顺序采样方法以提高这些替代模型的适应度准确性。最后,从20个不同的初始点开始采用基于梯度的顺序二次程序(SQP)方法来获得拟全局鲁棒最优解。通过使用蒙特卡洛模拟验证了最优解。结果表明,所提出的鲁棒性优化方法是相当有效和高效的,泡沫填充薄壁结构的耐撞性和鲁棒性可以得到显着改善。

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