基于残差估计的故障参数隔离方法

Sachin Kumar, E. Dolev, M. Pecht, M. Pompetzki
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引用次数: 4

摘要

提出了一种基于残差估计的马氏距离检测和故障隔离的故障诊断方法。故障性能参数隔离方法是基于残差MD值的分析。残差值是通过取两种不同情况下估计的MD值之间的差值来计算的:第一种情况是存在某个性能参数时,第二种情况是不存在该性能参数时。每个参数的MD值的残差是利用几个实验的训练数据作为实验设计概念计划的训练数据分析的一部分来获得的,以分析每个参数的影响。分析了各参数残差MD值的分布,建立了95%的概率范围。该范围表示参数对健康系统MDs的预期贡献,并用于识别导致系统异常行为的参数。低于95%概率范围下界的参数被认为是异常行为的候选参数,残差值最低的参数被隔离为故障参数。在计算机上进行了一个案例研究,以证明和测试所提出的新方法隔离故障参数的能力。
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A residual estimation based approach for isolating faulty parameters
This paper presents a new residual estimation based diagnostic approach that includes detection and fault isolation using the Mahalanobis distance (MD). The faulty performance parameter isolation approach is based on the analysis of residual MD values. The residual value is calculated by taking the difference between MD values estimated in two different scenarios: first, when a performance parameter is present, and second, when that performance parameter is absent. The residual of the MD values for each parameter is obtained by using training data from several experiments as part of the training data analysis planned by the design-of-experiment concept to analyze the impact of each parameter. The distribution of residual MD values for each parameter is analyzed and a 95% probabilistic range is established. This range represents the expected contribution by parameters toward a healthy system's MDs, and it is used to identify the parameters that are responsible for the anomalous behavior of a system. Parameters that fall below the lower bound of the 95% probabilistic range are considered candidates for the anomalous behavior, and the parameter that has the lowest residual value is isolated as the faulty parameter. A case study on computers is presented to demonstrate and test the suggested new approach's ability to isolate faulty parameters.
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