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Abstract:
风电机组滚动轴承振动信号微弱故障特征易被背景噪声和其他频率干扰,提取难度较大。针对此类问题,提出一种增强型的形态学滤波及故障诊断方法。算法构造了一种新的形态学综合顶帽变换(morphological comprehensive filter-hat transform,MCFHT),将其用于强背景噪声下目标信号的故障脉冲提取,并通过非线性滤波器幅频响应考察其滤波性质,为振动检测中故障脉冲的提取提供理论依据;针对MCFHT变换滤波尺度选择问题,通过分析原振动信号自身振动特性,给出了一种自适应的尺度计算策略,有效提高了滤波处理的效率和性能;提出一种改进的包络导数能量算子用于增强形态学滤波后信号中故...
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振动与冲击
Year: 2021
Issue: 04
Volume: 40
Page: 212-220
Cited Count:
WoS CC Cited Count: 0
SCOPUS Cited Count:
ESI Highly Cited Papers on the List: 0 Unfold All
WanFang Cited Count:
Chinese Cited Count:
30 Days PV: 9
Affiliated Colleges: