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A Comprehensive Study of Vibration Signals for a Thin Shell Structure Using Enhanced Independent Component Analysis and Experimental Validation

机译:利用增强的独立分量分析和实验验证对薄壳结构振动信号进行综合研究

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摘要

Vibration source information (source number, source waveforms, and source contributions) of gears, bearings, motors, and shafts is very important for machinery condition monitoring, fault diagnosis, and especially vibration monitoring and control. However, it has been a challenging to effectively extract the source information from the measured mixed vibration signals without a priori knowledge of the mixing mode and sources. In this paper, we propose source number estimation, source separation, and source contribution evaluation methods based on an enhanced independent component analysis (EICA). The effects of nonlinear mixing mode and different source number on source separation are studied with typical vibration signals, and the effectiveness of the proposed methods is validated by numerical case studies and experimental studies on a thin shell test bed. The conclusions show that the proposed methods have a high accuracy for thin shell structures. This research benefits for application of independent component analysis (ICA) to solve the vibration monitoring and control problems for thin shell structures and provides important references for machinery condition monitoring and fault diagnosis.
机译:齿轮,轴承,电动机和轴的振动源信息(源编号,源波形和源贡献)对于机械状态监视,故障诊断,尤其是振动监视和控制非常重要。然而,在不事先了解混合模式和源的情况下,从测量的混合振动信号中有效地提取源信息是一项挑战。在本文中,我们提出了基于增强的独立分量分析(EICA)的源数量估计,源分离和源贡献评估方法。通过典型振动信号研究了非线性混合模式和不同源数对源分离的影响,并通过数值案例研究和薄壳试验台上的实验研究验证了所提方法的有效性。结论表明,该方法对薄壳结构具有较高的精度。该研究有益于应用独立分量分析(ICA)解决薄壳结构的振动监测和控制问题,并为机械状态监测和故障诊断提供重要参考。

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