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Online probabilistic operational safety assessment of multi-mode engineering systems using Bayesian methods

机译:贝叶斯方法的多模式工程系统在线概率运行安全评估

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摘要

In the past decades, engineering systems become more and more complex, and generally work at different operational modes. Since incipient fault can lead to dangerous accidents, it is crucial to develop strategies for online operational safety assessment. However, the existing online assessment methods for multi-mode engineering systems commonly assume that samples are independent, which do not hold for practical cases. This paper proposes a probabilistic framework of online operational safety assessment of multi-mode engineering systems with sample dependency. To begin with, a Caussian mixture model (GMM) is used to characterize multiple operating modes. Then, based on the definition of safety index (SI), the SI for one single mode is calculated. At last, the Bayesian method is presented to calculate the posterior probabilities belonging to each operating mode with sample dependency. The proposed assessment strategy is applied in two examples: one is the aircraft gas turbine, another is an industrial dryer. Both examples illustrate the efficiency of the proposed method.
机译:在过去的几十年中,工程系统变得越来越复杂,并且通常在不同的操作模式下工作。由于初期故障可能导致危险事故,因此制定在线运行安全评估策略至关重要。但是,现有的用于多模式工程系统的在线评估方法通常假定样本是独立的,在实际情况下不适用。本文提出了一种基于样本的多模式工程系统在线运行安全评估的概率框架。首先,使用高斯混合模型(GMM)表征多种工作模式。然后,基于安全指数(SI)的定义,计算一种单一模式的SI。最后,提出了贝叶斯方法,以样本依赖为基础,计算了每种工作模式的后验概率。拟议的评估策略在两个示例中得到应用:一个是飞机燃气轮机,另一个是工业干燥机。这两个例子都说明了该方法的有效性。

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