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AuthorAvci O.
AuthorAbdeljaber O.
AuthorKiranyaz, Mustafa Serkan
AuthorSassi S.
AuthorIbrahim A.
AuthorGabbouj M.
Available date2022-04-26T12:31:17Z
Publication Date2022
Publication NameConference Proceedings of the Society for Experimental Mechanics Series
ResourceScopus
Identifierhttp://dx.doi.org/10.1007/978-3-030-76335-0_7
URIhttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85115138222&doi=10.1007%2f978-3-030-76335-0_7&partnerID=40&md5=e402a503bc5eb9e6f953178a8cd29327
URIhttp://hdl.handle.net/10576/30583
AbstractThis paper presents a novel real-time rotating machinery damage monitoring system. The system detects, quantifies, and localizes damage in ball bearings in a fast and accurate way using one-dimensional convolutional neural networks (1D-CNNs). The proposed method has been validated with experimental work not only for single damage but also for multiple damage cases introduced onto ball bearings in laboratory environment. The two 1D-CNNs (one set for the interior bearing ring and another set for the exterior bearing ring) were trained and tested under the same conditions for torque and speed. It is observed that the proposed system showed excellent performance even with the severe additive noise. The proposed method can be implemented in practical use for online defect detection, monitoring, and condition assessment of ball bearings and other rotatory machine elements.
Languageen
PublisherSpringer
SubjectAdditive noise
Ball bearings
Convolution
Convolutional neural networks
Electronic assessment
Monitoring
Rings (components)
Rotating machinery
Structural analysis
Structural dynamics
Bearing rings
Condition assessments
Damage monitoring
Defect detection
Laboratory environment
Multiple damages
Practical use
Rotatory machines
Damage detection
TitleOne-Dimensional Convolutional Neural Networks for Real-Time Damage Detection of Rotating Machinery
TypeConference Paper
Pagination73-83
dc.accessType Abstract Only


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