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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science >Wigner–Ville distribution based on cyclic spectral density and the application in rolling element bearings diagnosis
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Wigner–Ville distribution based on cyclic spectral density and the application in rolling element bearings diagnosis

机译:基于循环频谱密度的Wigner-Ville分布及其在滚动轴承诊断中的应用

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摘要

The vibration signals of rolling element bearings are random cyclostationary when they have faults. Also, statistical properties of the signals change periodically with time. The accurate analysis of time-varying signals is an essential pre-requisite for the fault diagnosis and hence safe operation of rolling element bearings. The Wigner distribution is probably most widely used among the Cohen’s class in order to describe how the spectral content of a signal changes over time. However, the basic nature of such signals causes significant interfering cross-terms, which do not permit a straightforward interpretation of the energy distribution. To overcome this difficulty, the Wigner–Ville distribution (WVD) based on the cyclic spectral density (CSD) is discussed in this article. It is shown that the improved WVD, based on CSD of a long time series, can render the time–frequency distribution less susceptible to noise, and restrain the cross-terms in the time–frequency domain. Simulation and experiment of the rolling element-bearing fault diagnosis are performed, and the results indicate the validity of WVD based on CSD in time–frequency analysis for bearing fault detection.
机译:滚动轴承出现故障时,其振动信号是随机循环平稳的。同样,信号的统计属性会随时间周期性变化。准确地分析时变信号是故障诊断以及滚动轴承安全运行的基本前提。 Wigner分布可能是Cohen类中使用最广泛的一种,用于描述信号的频谱含量如何随时间变化。但是,此类信号的基本性质会导致明显的干扰项,从而无法直接解释能量分布。为了克服这个困难,本文讨论了基于循环光谱密度(CSD)的Wigner-Ville分布(WVD)。结果表明,基于较长时间序列的CSD改进的WVD可以使时频分布不易受噪声影响,并可以限制时频域中的交叉项。进行了滚动轴承故障诊断的仿真和实验,结果表明基于CSD的WVD在时频分析中对轴承故障检测的有效性。

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