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Blade Tip Timing: from Raw Data to Parameters Identification

机译:刀片技巧计时:从原始数据到参数识别

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Blade Tip Timing (BTT) methods have been increasingly implemented for blade health monitoring. However, most of them are based on the prior knowledge that the resonance's location is known. Since real BTT test usually takes more than ten hours, it's unrealistic to Figure out every resonance from the measured raw data manually. Furthermore, BTT data analysis suffers from its inherent under-sampled and non-uniform shortcoming. In this paper, we present a simple yet effective method for BTT-based blade health monitoring. The method starts with an automatic resonance recognition, where cross-correlation and Savitzky Golay filter are used to locate the resonance region. Then an adaptively reweighted least-squares periodogram algorithm is designed to identify parameters of the resonant vibration. The effectiveness of the algorithm was tested using both simulation and real test data.
机译:刀片尖端计时(BTT)方法已越来越多地用于刀片健康状况监视。然而,它们中的大多数是基于已知共振位置的现有知识。由于实际的BTT测试通常需要十多个小时,因此手动从测量的原始数据中找出每个共振是不现实的。此外,BTT数据分析还存在固有的欠采样和不均匀缺陷。在本文中,我们提出了一种简单而有效的方法,用于基于BTT的刀片健康状况监测。该方法从自动共振识别开始,其中使用互相关和Savitzky Golay滤波器来定位共振区域。然后,设计了一种自适应加权最小二乘周期图算法,以识别共振振动的参数。使用仿真和实际测试数据测试了算法的有效性。

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