Damage detection in an operating Vestas V27 wind turbine blade by use of outlier analysis

M. D. Ulriksen, D. Tcherniak, L. Damkilde
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引用次数: 27

Abstract

The present paper explores the application of a well-established vibration-based damage detection method to an operating Vestas V27 wind turbine blade. The blade is analyzed in a total of four states, namely, a healthy one plus three damaged ones in which trailing edge openings of increasing sizes are introduced. In each state, the blade is subjected to controlled actuator hits, yielding forced vibrations that are measured in a total of 12 accelerometers; of which 11 are used for damage detection. The dimensionality of these acceleration data is reduced by means of principal component analysis (PCA), and then a reduced set of selected principal scores are employed as damage features in the Mahalanobis metric in order to detect damage-induced anomalies.
使用离群值分析对运行中的Vestas V27风力涡轮机叶片进行损伤检测
本文探讨了一种成熟的基于振动的损伤检测方法在运行中的Vestas V27风机叶片中的应用。对叶片进行了四种状态的分析,即健康状态和引入增大尺寸尾缘开口的三种损伤状态。在每一种状态下,叶片都受到可控的致动器撞击,产生强制振动,这些振动由12个加速度计测量;其中11个用于损伤检测。通过主成分分析(PCA)对这些加速度数据进行降维,然后将降维后的主分数集作为损伤特征,应用于马氏度指标中,以检测损伤异常。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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