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An improved data fusion technique for faults diagnosis in rotating machines

机译:用于旋转机械故障诊断的改进数据融合技术

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The composite spectrum (CS) data fusion technique has been shown to simplify rotating machines faults diagnosis by earlier studies. Faults diagnosis with the earlier CS relied solely on the amplitudes of several harmonics of the machine speed, owing to the loss of phase information leading to its computation. The proposed improved CS applies the concept of cross power spectrum density for computing a poly-Coherent Composite Spectrum (pCCS) of a machine, which retains amplitude and phase information at all measurement locations. The present study compares the proposed pCCS method with the earlier CS method for faults diagnosis in rotating machines, using experimental data from a rotating rig. Results and observations show that the proposed pCCS offered a much better representation of the machines dynamics when compared to the earlier CS method and hence better fault diagnosis.
机译:复合频谱(CS)数据融合技术已被证明可以简化早期研究中的旋转机械故障诊断。早期CS的故障诊断仅依赖于机器速度的几个谐波的幅度,这是由于导致计算的相位信息丢失所致。所提出的改进的CS将交叉功率谱密度的概念用于计算机器的多相干复合谱(pCCS),该谱在所有测量位置都保留了幅度和相位信息。本研究使用旋转钻机的实验数据,将提出的pCCS方法与较早的CS方法进行旋转机械故障诊断进行了比较。结果和观察结果表明,与较早的CS方法相比,拟议的pCCS可以更好地表示机器动力学,因此可以更好地进行故障诊断。

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