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CONFIDENCE-BASED METHOD FOR RELIABILITY-BASED DESIGN OPTIMIZATION

机译:基于置信度的可靠性设计优化方法

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摘要

An accurate input probabilistic model is necessary to obtain a trustworthy result in the reliability analysis and the reliability-based design optimization (RBDO). However, the accurate input probabilistic model is not always available. Very often only insufficient input data are available in practical engineering problems. When only the limited input data are provided, uncertainty is induced in the input probabilistic model and this uncertainty propagates to the reliability output which is defined as the probability of failure. Then, the confidence level of the reliability output will decrease. To resolve this problem, the reliability output is considered to have a probability distribution in this paper. The probability of the reliability output is obtained as a combination of consecutive conditional probabilities of input distribution type and parameters using Bayesian approach. The conditional probabilities that are obtained under certain assumptions and Monte Carlo simulation (MCS) method is used to calculate the probability of the reliability output. Using the probability of the reliability output as constraint, a confidence-based RBDO (C-RBDO) problem is formulated. In the new probabilistic constraint of the C-RBDO formulation, two threshold values of the target reliability output and the target confidence level are used. For effective C-RBDO process, the design sensitivity of the new probabilistic constraint is derived. The C-RBDO is performed for a mathematical problem with different numbers of input data and the result shows that C-RBDO optimum designs incorporate appropriate conservative-ness according to the given input data.
机译:一个准确的输入概率模型对于在可靠性分析和基于可靠性的设计优化(RBDO)中获得可信赖的结果是必不可少的。但是,准确的输入概率模型并非始终可用。在实际的工程问题中,通常只有很少的输入数据可用。当仅提供有限的输入数据时,在输入概率模型中会引起不确定性,并且此不确定性会传播到可靠性输出,该可靠性输出被定义为发生故障的概率。然后,可靠性输出的置信度将降低。为了解决这个问题,本文认为可靠性输出具有概率分布。可靠性输出的概率是使用贝叶斯方法将输入分布类型和参数的连续条件概率组合而成的。在某些假设和蒙特卡洛模拟(MCS)方法下获得的条件概率用于计算可靠性输出的概率。以可靠性输出的概率为约束条件,提出了基于置信度的RBDO(C-RBDO)问题。在C-RBDO公式的新概率约束中,使用了目标可靠性输出和目标置信度的两个阈值。对于有效的C-RBDO过程,推导了新的概率约束的设计敏感性。针对具有不同数量输入数据的数学问题执行C-RBDO,结果表明C-RBDO最佳设计根据给定的输入数据结合了适当的保守性。

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