Effect of the Denoising on Acoustic Emission Signals

Author:

Chiementin X.1,Mba D.2,Charnley B.2,Lignon S.1,Dron J. P.1

Affiliation:

1. GRESPI, Groupe de Recherche En Sciences Pour l'Ingénieur, Université de Reims Champagne-Ardenne, Moulin de la Housse, 51687 Reims Cedex 2, France

2. Turbomachinery Group, School of Engineering, Cranfield University, Cranfield, Bedfordshire MK43 0AL, UK

Abstract

The acoustic emission (AE) technology is growing in its applicability to bearing defect diagnosis. Several publications have shown its effectiveness for earlier detection of bearing defects than vibration analysis. In the latter instance, detection and monitoring of defects can be achieved through temporal statistical indicators, which can further be improved by application of denoising techniques. This paper investigates the application of temporal statistical indicators for AE detection of bearing defects on a purposely built test-rig and assesses the effectiveness of various denoising techniques in improving sensitivity to early defect detection. It is concluded that the denoising methods offer significant improvements in identifying defects with AE, especially the self-adaptive noise cancellation method.

Publisher

ASME International

Subject

General Engineering

Reference28 articles.

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2. Truth, Lies Acoustic Emission and Process Machines;Sikorska;Proc. Inst. Mech. Eng., Part E: J. Process Mech. Eng.

3. Condition Monitoring of Slow-Speed Rolling Element Bearings Using Stress Waves;Jamaludin;Proc. Inst. Mech. Eng., Part E: J. Process Mech. Eng.

4. McFadden, P. D., and Smith, J. D., 1983, “Acoustic Emission Transducers for the Vibration Monitoring of Bearings at Low Speeds,” Cambridge University, Engineering Department, CUED/C-Mech, Technical Report.

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