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A time-dependent reliability analysis method based on neural network response surface

机译:基于神经网络响应表面的时间依赖性可靠性分析方法

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Uncertainty exists widely in the engineering field, and the reliability of products has time-dependent characteristics due to the accumulation of product use time and material performance degradation. Traditional time-dependent reliability solutions such as span rate and Monte Carlo are difficult to be applied in engineering practice due to their complex principles and low computational efficiency. Therefore, this paper proposes a time-dependent reliability analysis method based on neural network response surface learned form the idea of limit value. This method uses inverse reliability sampling and establishes a response surface model between the design variables and the limit value of the limit state function to convert the time-dependent reliability into time-invariant reliability. Then, the traditional method is used to solve the time-dependent reliability, which improves calculation efficiency and accuracy of time-dependent reliability analysis. Finally, two examples are used to verify the effectiveness of the method.
机译:在工程领域中存在不确定性,由于产品使用时间和材料性能降解的积累,产品的可靠性具有时间依赖性特性。由于其复杂的原理和低计算效率,难以在工程学实践中应用诸如跨度和蒙特卡罗等传统的时间依赖性可靠性解决方案。因此,本文提出了一种基于神经网络响应表面的时间依赖性可靠性分析方法,从而了解了极限值的思想。该方法使用逆可靠性采样,并在设计变量和极限状态功能的极限值之间建立响应面模型,以将时间相关的可靠性转换为时间不变的可靠性。然后,传统方法用于解决时间依赖性可靠性,这提高了计算效率和时间依赖性可靠性分析的准确性。最后,使用两个示例来验证方法的有效性。

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