2024
DOI: 10.1088/1361-6501/ad8593
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Enhanced fault diagnosis of segmented asymmetric stochastic resonance in rotating machinery under strong noise environment

Baokun Han,
Xuhao Man,
Zongzhen Zhang
et al.

Abstract: In industrial applications, strong noise hampers the extraction of reliable features from mechanical equipment, crucial for detecting faults. Stochastic resonance, unlike other methods, enhances weak signals effectively in noisy environments. However, it often suffers from oversaturation, a common issue when used to improve signal clarity.Therefore, this study introduces a method to prevent saturation with piecewise asymmetric stochastic resonance. A novel potential function is used. This allows the derivation… Show more

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