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Optimal Resonant Band Demodulation Based on an Improved Correlated Kurtosis and Its Application in Bearing Fault Diagnosis

机译:基于改进相关峰度的最优共振带解调及其在轴承故障诊断中的应用

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The kurtosis-based indexes are usually used to identify the optimal resonant frequency band. However, kurtosis can only describe the strength of transient impulses, which cannot differentiate impulse noises and repetitive transient impulses cyclically generated in bearing vibration signals. As a result, it may lead to inaccurate results in identifying resonant frequency bands, in demodulating fault features and hence in fault diagnosis. In view of those drawbacks, this manuscript redefines the correlated kurtosis based on kurtosis and auto-correlative function, puts forward an improved correlated kurtosis based on squared envelope spectrum of bearing vibration signals. Meanwhile, this manuscript proposes an optimal resonant band demodulation method, which can adaptively determine the optimal resonant frequency band and accurately demodulate transient fault features of rolling bearings, by combining the complex Morlet wavelet filter and the Particle Swarm Optimization algorithm. Analysis of both simulation data and experimental data reveal that the improved correlated kurtosis can effectively remedy the drawbacks of kurtosis-based indexes and the proposed optimal resonant band demodulation is more accurate in identifying the optimal central frequencies and bandwidth of resonant bands. Improved fault diagnosis results in experiment verified the validity and advantage of the proposed method over the traditional kurtosis-based indexes.
机译:基于峰度的索引通常用于识别最佳谐振频段。但是,峰度只能描述瞬态脉冲的强度,不能区分轴承振动信号中周期性产生的脉冲噪声和重复性瞬态脉冲。结果,它可能导致在识别谐振频带,解调故障特征以及因此进行故障诊断方面导致不准确的结果。鉴于这些缺点,本文重新定义了基于峰度和自相关函数的相关峰度,并提出了一种基于轴承振动信号平方包络谱的改进的相关峰度。同时,本文提出了一种最优的共振带解调方法,该方法通过将复杂的Morlet小波滤波器和粒子群优化算法相结合,可以自适应地确定最佳的共振频带并准确地解调滚动​​轴承的瞬态故障特征。对仿真数据和实验数据的分析表明,改进的相关峰度可以有效地弥补基于峰度的指标的弊端,并且所提出的最佳共振带解调可以更准确地识别共振带的最佳中心频率和带宽。实验中改进的故障诊断结果证明了该方法相对于基于峰度的传统指标的有效性和优势。

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