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Non-probabilistic reliability-based design optimization of stiffened shells under buckling constraint

机译:基于屈曲约束的加筋壳基于非概率可靠性的设计优化

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Stiffened shells are affected by numerous uncertainty factors, such as the variations of manufacturing tolerance, material properties and environment aspects, etc. Due to the expensive experimental cost of stiffened shell, only a limited quantity of statistics about its uncertainty factors are available. In this case, an unjustified assumption of probabilistic model may result in misleading outcomes of reliability-based design optimization (RBDO), and the non-probabilistic convex method is a promising alternative. In this study, a hybrid non-probabilistic convex method based on single-ellipsoid convex model is proposed to minimize the weight of stiffened shells with uncertain-but-bounded variations, where the adaptive chaos control (ACC) method is applied to ensure the robustness of search process of single-ellipsoid convex model, and the particle swarm optimization (PSO) algorithm together with smeared stiffener model are utilized to guarantee the global optimum design. A 3 m-diameter benchmark example illustrates the advantage of the proposed method over RBDO and deterministic optimum methods for stiffened shell with uncertain-but-bounded variations. (C) 2015 Elsevier Ltd. All rights reserved.
机译:加劲壳受到许多不确定性因素的影响,例如制造公差,材料特性和环境方面的变化等。由于加劲壳的实验费用昂贵,因此只能获得关于其不确定性因素的有限统计数据。在这种情况下,对概率模型的不合理假设可能会导致基于可靠性的设计优化(RBDO)产生误导性结果,而非概率凸方法是一种有前途的替代方法。在研究中,提出了一种基于单椭球凸模型的混合非概率凸方法,以最小化具有不确定但有界变化的加劲壳的重量,并采用自适应混沌控制(ACC)方法来确保鲁棒性对单椭球凸模型的搜索过程进行了优化,并结合粒子群优化算法(PSO)和涂抹加劲肋模型来保证全局最优设计。一个3 m直径的基准示例说明了所提出的方法相对于RBDO的优势,以及对于不确定但有界变化的加劲壳的确定性最佳方法。 (C)2015 Elsevier Ltd.保留所有权利。

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