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Sparse Representation Based Frequency Detection and Uncertainty Reduction in Blade Tip Timing Measurement for Multi-Mode Blade Vibration Monitoring

机译:多模式叶片振动监测中基于稀疏表示的频率检测和叶尖正时测量中的不确定度降低

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摘要

The accurate monitoring of blade vibration under operating conditions is essential in turbo-machinery testing. Blade tip timing (BTT) is a promising non-contact technique for the measurement of blade vibrations. However, the BTT sampling data are inherently under-sampled and contaminated with several measurement uncertainties. How to recover frequency spectra of blade vibrations though processing these under-sampled biased signals is a bottleneck problem. A novel method of BTT signal processing for alleviating measurement uncertainties in recovery of multi-mode blade vibration frequency spectrum is proposed in this paper. The method can be divided into four phases. First, a single measurement vector model is built by exploiting that the blade vibration signals are sparse in frequency spectra. Secondly, the uniqueness of the nonnegative sparse solution is studied to achieve the vibration frequency spectrum. Thirdly, typical sources of BTT measurement uncertainties are quantitatively analyzed. Finally, an improved vibration frequency spectra recovery method is proposed to get a guaranteed level of sparse solution when measurement results are biased. Simulations and experiments are performed to prove the feasibility of the proposed method. The most outstanding advantage is that this method can prevent the recovered multi-mode vibration spectra from being affected by BTT measurement uncertainties without increasing the probe number.
机译:在涡轮机械测试中,在运行条件下准确监测叶片振动至关重要。叶片尖端定时(BTT)是一种很有前途的非接触式技术,用于测量叶片振动。但是,BTT采样数据本质上是欠采样的,并且受到一些测量不确定性的污染。通过处理这些欠采样的偏置信号如何恢复叶片振动的频谱是一个瓶颈问题。提出了一种减轻多模叶片振动频谱恢复中测量不确定度的BTT信号处理新方法。该方法可以分为四个阶段。首先,通过利用叶片振动信号在频谱上稀疏建立单个测量矢量模型。其次,研究了非负稀疏解的唯一性,以获得振动频谱。第三,对BTT测量不确定度的典型来源进行了定量分析。最后,提出了一种改进的振动频谱恢复方法,当测量结果有偏差时,可以保证保证水平的稀疏解。通过仿真和实验证明了该方法的可行性。最突出的优点是,该方法可以防止恢复的多模振动谱受到BTT测量不确定性的影响,而无需增加探针数量。

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