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首页> 外文期刊>International Journal for Numerical Methods in Engineering >Post optimization for accurate and efficient reliability-based design optimization using second-order reliability method based on importance sampling and its stochastic sensitivity analysis
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Post optimization for accurate and efficient reliability-based design optimization using second-order reliability method based on importance sampling and its stochastic sensitivity analysis

机译:基于重要性抽样的二阶可靠性方法及其随机敏感性分析的后优化,用于基于准确度和效率的可靠性优化设计

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摘要

In this study, a post optimization technique for a correction of inaccurate optimum obtained using first-order reliability method (FORM) is proposed for accurate reliability-based design optimization (RBDO). In the proposed method, RBDO using FORM is first performed, and then the proposed second-order reliability method (SORM) is performed at the optimum obtained using FORM for more accurate reliability assessment and its sensitivity analysis. In the proposed SORM, the Hessian of a performance function is approximated by reusing derivatives information accumulated during previous RBDO iterations using FORM, indicating that additional functional evaluations are not required in the proposed SORM. The proposed SORM calculates a probability of failure and its first-order and second-order stochastic sensitivity by applying the importance sampling to a complete second-order Taylor series of the performance function. The proposed post optimization constructs a second-order Taylor expansion of the probability of failure using results of the proposed SORM. Because the constructed Taylor expansion is based on the reliability method more accurate than FORM, the corrected optimum using this Taylor expansion can satisfy the target reliability more accurately. In this way, the proposed method simultaneously achieves both efficiency of FORM and accuracy of SORM. Copyright (c) 2015 John Wiley & Sons, Ltd.
机译:在这项研究中,提出了一种用于校正使用一阶可靠性方法(FORM)获得的不正确最优值的后优化技术,用于基于精确可靠性的设计优化(RBDO)。在提出的方法中,首先执行使用FORM的RBDO,然后在使用FORM获得的最优值下执行提出的二阶可靠性方法(SORM),以进行更准确的可靠性评估及其灵敏度分析。在拟议的SORM中,性能函数的Hessian通过使用FORM重用在先前RBDO迭代过程中积累的导数信息来近似得出,这表明在拟议的SORM中不需要其他功能评估。拟议的SORM通过将重要性采样应用于性能函数的完整二阶Taylor级数来计算故障概率及其一阶和二阶随机敏感性。拟议的后期优化使用拟议的SORM结果构造了故障概率的二阶泰勒展开式。因为构造的泰勒展开式基于可靠性的方法比FORM更准确,所以使用此泰勒展开式的校正最优值可以更准确地满足目标可靠性。这样,所提出的方法同时实现了FORM的效率和SORM的精度。版权所有(c)2015 John Wiley&Sons,Ltd.

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