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Dynamic Reliability Assessment for Multi-State Systems Utilizing System-Level Inspection Data

机译:利用系统级检查数据对多状态系统进行动态可靠性评估

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摘要

Traditional time-based reliability assessment methods evaluate the reliability of a multi-state system (MSS) from a population or a statistical perspective that the reliability of a system is computed purely based upon historical time-to-failure data collected from a large population of identical components or systems. These methods, however, fail to characterize the stochastic behaviors of a specific individual system. In this paper, by utilizing system-level observation history, a dynamic reliability assessment method for MSSs is put forth. The proposed recursive Bayesian formula is able to dynamically update the reliability function of a specific MSS over time by incorporating system-level inspection data. The dynamic reliability function, state probabilities, and remaining useful life distribution of an MSS in residual lifetime are derived for two common cases: the degradation of components follows a homogeneous continuous time Markov process, and a non-homogeneous continuous time Markov process. The effectiveness and accuracy of the proposed method are demonstrated via two numerical examples.
机译:传统的基于时间的可靠性评估方法从总体上或从统计角度评估多状态系统(MSS)的可靠性,即系统的可靠性完全基于从大量总体数据中收集的历史故障时间数据来计算相同的组件或系统。但是,这些方法无法描述特定单个系统的随机行为。本文利用系统级的观测历史,提出了一种动态可靠性评估方法。通过结合系统级检查数据,提出的递归贝叶斯公式能够随着时间动态更新特定MSS的可靠性功能。在以下两种常见情况下,得出了MSS的动态可靠性函数,状态概率和剩余使用寿命的剩余使用寿命分布:组件的退化遵循均匀的连续时间马尔可夫过程,以及非均匀的连续时间马尔可夫过程。通过两个数值例子证明了该方法的有效性和准确性。

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