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Novel decoupled framework for reliability-based design optimization of structures using a robust shifting technique

机译:新颖的解耦框架,用于使用可靠的移位技术对结构进行基于可靠性的设计优化

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In a reliability-based design optimization (RBDO), computation of the failure probability (P-f) at all design points through the process may suitably be avoided at the early stages. Thus, to reduce extensive computations of RBDO, one could decouple the optimization and reliability analysis. The present work proposes a new methodology for such a decoupled approach that separates optimization and reliability analysis into two procedures which significantly improve the computational efficiency of the RBDO. This technique is based on the probabilistic sensitivity approach (PSA) on the shifted probability density function. Stochastic variables are separated into two groups of desired and non-desired variables. The three-phase procedure may be summarized as: Phase 1, apply deterministic design optimization based on mean values of random variables; Phase 2, move designs toward a reliable space using PSA and finding a primary reliable optimum point; Phase 3, applying an intelligent self-adaptive procedure based on cubic B-spline interpolation functions until the targeted failure probability is reached. An improved response surface method is used for computation of failure probability. The proposed RBDO approach could significantly reduce the number of analyses required to less than 10% of conventional methods. The computational efficacy of this approach is demonstrated by solving four benchmark truss design problems published in the structural optimization literature.
机译:在基于可靠性的设计优化(RBDO)中,可以在早期阶段适当避免整个过程中所有设计点的故障概率(P-f)的计算。因此,为了减少RBDO的大量计算,可以使优化和可靠性分析脱钩。本工作提出了一种用于这种解耦方法的新方法,该方法将优化和可靠性分析分为两个过程,从而显着提高了RBDO的计算效率。该技术基于移动概率密度函数上的概率敏感性方法(PSA)。随机变量分为两组期望值和非期望值。三相过程可以概括为:阶段1,基于随机变量的平均值进行确定性设计优化;第二阶段,使用PSA将设计移至可靠的空间,并找到主要的可靠最佳点;阶段3,应用基于三次B样条插值函数的智能自适应过程,直到达到目标故障概率。改进的响应面法用于计算故障概率。提出的RBDO方法可以将所需的分析数量大大减少到不到传统方法的10%。通过解决结构优化文献中发布的四个基准桁架设计问题,证明了该方法的计算效率。

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