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Research on Fault Diagnosis of Turbine Based on Similarity Measures between Interval-Valued Intuitionistic Fuzzy Sets

机译:基于相似性措施的间歇性直观模糊集合的涡轮机故障诊断研究

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This paper presents a novel fault diagnosis method of turbine based on interval-valued intuitionistic fussy sets (IVIFSs) theory. In this paper, the concept of IVIFS is introduced, and the distance between two IVIFSs is defined. Then, the similarity degree between the detecting sample and the knowledge of system fault is evaluated in the fault diagnosis of turbine vibration by means of the similarity measures among IVIFSs. The larger the value of similarity measure, the more the similarity between the detecting sample and a type of fault knowledge. The value of similarity measure is ranked and the most possible type of vibration fault is determined according to the similarity degree. The example of steam turbine generator setpsilas fault diagnosis demonstrates the validity and reasonability of the proposed method.
机译:本文提出了一种基于间隔估值的直觉挑剔套装(IVIFS)理论的涡轮机的新型故障诊断方法。在本文中,引入了IVIF的概念,定义了两个IVIF之间的距离。然后,通过IVIF之间的相似性测量,在涡轮振动的故障诊断中评估检测样本与系统故障知识之间的相似度。相似度测量值越大,检测样本与一种故障知识之间的相似性越多。相似度测量的值被排名,并且根据相似度确定最佳类型的振动故障。蒸汽轮发电机塞子赛故障诊断的例子证明了该方法的有效性和合理性。

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