Stochastic Resonance in Unsaturated Piecewise Nonlinear Bistable System Under Multiplicative and Additive Noise for Bearing Fault Diagnosis

With regard to the fault diagnosis, the stochastic resonance (SR) method takes advantage of noise imbedded in vibration signals while most traditional methods suppress or eliminate noise to enhance weak fault characteristics. In this paper, a novel piecewise nonlinear bistable SR (PNBSR) is proposed...

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Main Authors: Gang Zhang, Dayun Hu, Tianqi Zhang
Format: Article
Language:English
Published: IEEE 2019-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8703050/
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spelling doaj-da153ebc2e464ddd9da9b10e900c78952021-03-29T22:53:51ZengIEEEIEEE Access2169-35362019-01-017584355844810.1109/ACCESS.2019.29141388703050Stochastic Resonance in Unsaturated Piecewise Nonlinear Bistable System Under Multiplicative and Additive Noise for Bearing Fault DiagnosisGang Zhang0Dayun Hu1https://orcid.org/0000-0003-2609-7886Tianqi Zhang2School of Communication and Information Engineering, Chongqing University of Posts and Telecommunications, Chongqing, ChinaSchool of Communication and Information Engineering, Chongqing University of Posts and Telecommunications, Chongqing, ChinaSchool of Communication and Information Engineering, Chongqing University of Posts and Telecommunications, Chongqing, ChinaWith regard to the fault diagnosis, the stochastic resonance (SR) method takes advantage of noise imbedded in vibration signals while most traditional methods suppress or eliminate noise to enhance weak fault characteristics. In this paper, a novel piecewise nonlinear bistable SR (PNBSR) is proposed and its corresponding potential function called piecewise nonlinear bistable system (PNBS) overcomes the output saturation disadvantage which bothers the classical bistable system (CBS). The output saturation limits the enhancement capability for extracting fault characteristics of classical bistable SR (CBSR). Satisfying the adiabatic condition, the expression of the output signal-to-noise (SNR) of PNBSR is derived and compared with the output SNR of CBSR. Considered the multiplicative and additive noise, two methods are applied to extract characteristic frequency from simulated harmonic vibration signal and actual bearing fault signals. The SNR increase (SNRI) is chosen as the index for evaluating the performance of CBSR and PNBSR in experimental simulations. The diagnosis results indicate that the proposed PNBSR method is superior to the CBSR by analyzing SNRI and the effect of extracting fault characteristics.https://ieeexplore.ieee.org/document/8703050/Stochastic resonanceoutput saturationmultiplicative noisepiecewise nonlinear bistable systembearing fault diagnosis
collection DOAJ
language English
format Article
sources DOAJ
author Gang Zhang
Dayun Hu
Tianqi Zhang
spellingShingle Gang Zhang
Dayun Hu
Tianqi Zhang
Stochastic Resonance in Unsaturated Piecewise Nonlinear Bistable System Under Multiplicative and Additive Noise for Bearing Fault Diagnosis
IEEE Access
Stochastic resonance
output saturation
multiplicative noise
piecewise nonlinear bistable system
bearing fault diagnosis
author_facet Gang Zhang
Dayun Hu
Tianqi Zhang
author_sort Gang Zhang
title Stochastic Resonance in Unsaturated Piecewise Nonlinear Bistable System Under Multiplicative and Additive Noise for Bearing Fault Diagnosis
title_short Stochastic Resonance in Unsaturated Piecewise Nonlinear Bistable System Under Multiplicative and Additive Noise for Bearing Fault Diagnosis
title_full Stochastic Resonance in Unsaturated Piecewise Nonlinear Bistable System Under Multiplicative and Additive Noise for Bearing Fault Diagnosis
title_fullStr Stochastic Resonance in Unsaturated Piecewise Nonlinear Bistable System Under Multiplicative and Additive Noise for Bearing Fault Diagnosis
title_full_unstemmed Stochastic Resonance in Unsaturated Piecewise Nonlinear Bistable System Under Multiplicative and Additive Noise for Bearing Fault Diagnosis
title_sort stochastic resonance in unsaturated piecewise nonlinear bistable system under multiplicative and additive noise for bearing fault diagnosis
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2019-01-01
description With regard to the fault diagnosis, the stochastic resonance (SR) method takes advantage of noise imbedded in vibration signals while most traditional methods suppress or eliminate noise to enhance weak fault characteristics. In this paper, a novel piecewise nonlinear bistable SR (PNBSR) is proposed and its corresponding potential function called piecewise nonlinear bistable system (PNBS) overcomes the output saturation disadvantage which bothers the classical bistable system (CBS). The output saturation limits the enhancement capability for extracting fault characteristics of classical bistable SR (CBSR). Satisfying the adiabatic condition, the expression of the output signal-to-noise (SNR) of PNBSR is derived and compared with the output SNR of CBSR. Considered the multiplicative and additive noise, two methods are applied to extract characteristic frequency from simulated harmonic vibration signal and actual bearing fault signals. The SNR increase (SNRI) is chosen as the index for evaluating the performance of CBSR and PNBSR in experimental simulations. The diagnosis results indicate that the proposed PNBSR method is superior to the CBSR by analyzing SNRI and the effect of extracting fault characteristics.
topic Stochastic resonance
output saturation
multiplicative noise
piecewise nonlinear bistable system
bearing fault diagnosis
url https://ieeexplore.ieee.org/document/8703050/
work_keys_str_mv AT gangzhang stochasticresonanceinunsaturatedpiecewisenonlinearbistablesystemundermultiplicativeandadditivenoiseforbearingfaultdiagnosis
AT dayunhu stochasticresonanceinunsaturatedpiecewisenonlinearbistablesystemundermultiplicativeandadditivenoiseforbearingfaultdiagnosis
AT tianqizhang stochasticresonanceinunsaturatedpiecewisenonlinearbistablesystemundermultiplicativeandadditivenoiseforbearingfaultdiagnosis
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