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A novel non-probabilistic reliability-based design optimization algorithm using enhanced chaos control method

机译:一种新的基于非混沌可靠性的改进混沌控制设计优化算法

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摘要

In this study, an efficient and robust algorithm of non-probabilistic reliability-based design optimization (NRBDO) is proposed based on convex model. In this double-nested optimization model, the inner loop concerns a Min-max problem for the evaluation of reliability index, where the target performance approach is applied to substitute the Min-max problem. To improve the convergence rate, an enhanced chaos control (ECC) method is developed on the basis of chaotic dynamics theory, which can check and re-update the control factor by the Wolfe-Powell criterion. To further enhance the optimization efficiency, a novel NRBDO algorithm is developed based on the proposed ECC, where HL-RF algorithm is applied at the initial stage of this algorithm, while ECC is used to improve the robustness once the oscillation or chaotic behavior is identified. Three mathematical examples, one numerical example and one complex engineering problem, i. e. axially compressed stiffened shells in launch vehicles, are utilized to demonstrate the robustness and efficiency of the proposed method by comparison with other existing methods. Results indicate that the proposed method is particularly suitable for complicated engineering problems without prior knowledge of uncertainty distributions, which is expected to be utilized in the structural design of future launch vehicles. (C) 2017 Elsevier B. V. All rights reserved.
机译:本文基于凸模型,提出了一种基于非概率可靠性的优化设计(NRBDO)的高效鲁棒算法。在这种双重嵌套的优化模型中,内部循环涉及用于评估可靠性指标的最小-最大问题,其中使用目标性能方法替代最小-最大问题。为了提高收敛速度,在混沌动力学理论的基础上,提出了一种增强的混沌控制方法,可以利用沃尔夫-鲍威尔准则对控制因子进行检查和更新。为了进一步提高优化效率,在提出的ECC的基础上开发了一种新颖的NRBDO算法,其中在该算法的初始阶段应用HL-RF算法,而一旦识别出振荡或混沌行为,则使用ECC来提高鲁棒性。 。三个数学示例,一个数值示例和一个复杂的工程问题,即e。与其他现有方法相比,利用运载火箭中的轴向压缩加劲壳来证明所提出方法的鲁棒性和效率。结果表明,所提出的方法特别适用于没有先验不确定性分布知识的复杂工程问题,预计将在未来运载火箭的结构设计中利用该方法。 (C)2017 Elsevier B.V.保留所有权利。

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