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Source separation using independent component analysis techniques for machine fault detection in the presence of background noise

机译:在存在背景噪声的情况下,使用独立分量分析技术进行机器故障检测的源分离

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Early and accurate fault detection on a machine is crucial in preventive maintenance in order to prevent accidents that may be catastrophe to the user. However, direct measurement using vibrometer is common usage which may impractical in an industry that uses many rotating machines. In this paper, we evaluate the independent component analysis techniques which is time-, frequency-domain and multistage ICA for remote condition monitoring by analyzing sound emitted from the machines. We used electrical water pumps with normal, and intentionally introduced faults to the pumps with unbalanced, misaligned and bearing defect. These machines worked simultaneously and then recorded in an anechoic chamber to obtain the baseline data and then at an open area to simulate the real plant situation. We assumed that the sounds mixed convolutively at which required microphone array as sensor as an interface before separation. The results suggest that the proposed technique performed accurately in mean-square-error (MSE) sense. This implies that the proposed technique may be suitable for further implementation in real plant setting with adverse environment to replace current technique using direct measurement.
机译:在机器上提前和准确的故障检测对于预防性维护至关重要,以防止可能对用户灾难的事故。然而,使用振动器的直接测量是使用许多旋转机器的行业中可能不切实际的常用使用。在本文中,我们通过分析从机器发出的声音来评估独立的分量分析技术,该技术是用于远程条件监测的时间,频域和多级ICA。我们用正常的电气泵,故意将故障引入泵,不平衡,未对准和轴承缺陷。这些机器同时工作,然后在一个AneChice室中录制,以获得基线数据,然后在开放区域进行模拟实际植物情况。我们假设声音混合了卷合性地将麦克风阵列作为传感器作为分离前的界面。结果表明,所提出的技术在均方误差(MSE)感觉中准确地进行。这意味着所提出的技术可以适用于具有不利环境的实际工厂设置中的进一步实现,以使用直接测量来更换电流技术。

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