Improved long‐span bridge modeling using data‐driven identification of vehicle‐induced vibrations

dc.contributor.authorCheynet, Etienne
dc.contributor.authorDaniotti, Nicolò
dc.contributor.authorJakobsen, Jasna Bogunović
dc.contributor.authorSnaebjornsson, Jonas Thor
dc.contributor.authorJakobsen, Jasna Bogunovic
dc.contributor.departmentVerkfræðideild
dc.date.accessioned2025-11-17T08:18:59Z
dc.date.available2025-11-17T08:18:59Z
dc.date.issued2020-06-01
dc.description.abstractPublisher's version (útgefin grein)The paper introduces a procedure to automatically identify key vehicle characteristics from vibrations data collected on a suspension bridge. The primary goal is to apply a model of the dynamic displacement response of a long-span suspension bridge to traffic loading, suitable for automatic identification of the vehicle passage over the bridge. The second goal is to improve the estimation of the structural damping of the bridge deck by utilizing the free-decay displacement response induced by the passing vehicles. The vehicles responsible for a significant bridge vertical response are first identified using an outlier analysis and a clustering algorithm. Utilizing a moving mass model, the equivalent mass and speed of each vehicle, as well as its arrival time, are assessed in a least-squares sense. The computed vertical displacement response shows a remarkably good agreement with the full-scale data in terms of peak values and root-mean-square values of the displacement histories. The data acquired on the Lysefjord Bridge (Norway) indicate that the contribution of heavy traffic loading to the combined effects of wind and traffic excitation may be significant even at mean wind speeds above 10 m s(-1). The critical damping ratios of the most significant vibrational modes of the Lysefjord Bridge are studied for low wind velocities, using the time-decomposition technique and the traffic-induced free-decay response of the bridge deck. The structural damping ratios estimated this way are found to be more accurate than those obtained with an automated covariance-driven stochastic subspace identification algorithm applied to the same dataset.Norwegian Public Roads Administration"Peer Revieweden
dc.description.versionPeer revieweden
dc.format.extent18
dc.format.extent5200808
dc.format.extent
dc.identifier.citationCheynet, E, Daniotti, N, Jakobsen, J B, Snaebjornsson, J T & Jakobsen, J B 2020, 'Improved long‐span bridge modeling using data‐driven identification of vehicle‐induced vibrations', Structural Control and Health Monitoring, vol. 27, no. 9, e2574. https://doi.org/10.1002/stc.2574en
dc.identifier.doi10.1002/stc.2574
dc.identifier.issn1545-2255
dc.identifier.other144904735
dc.identifier.otherc8c9f28d-a932-4069-870f-ab56b10ef918
dc.identifier.otherCore: 355148781
dc.identifier.otherCore: 429829187
dc.identifier.other85087305075
dc.identifier.other000543539400001
dc.identifier.otherORCID: /0000-0003-4391-9925/work/120481582
dc.identifier.otherresearchoutputwizard: hdl.handle.net/20.500.11815/2265
dc.identifier.urihttps://hdl.handle.net/20.500.11815/6033
dc.language.iso
dc.relation.ispartofseriesStructural Control and Health Monitoring; 27(9)en
dc.relation.urlhttps://publons.com/wos-op/publon/32704432/en
dc.rightsinfo:eu-repo/semantics/openAccessen
dc.subjectMechanics of Materialsen
dc.subjectCivil and Structural Engineeringen
dc.subjectBuilding and Constructionen
dc.subjectAmbient vibrations monitoringen
dc.subjectFull-scale measurementsen
dc.subjectLong-span bridgesen
dc.subjectMoving massen
dc.subjectTraffic loadingen
dc.subjectAflfræðien
dc.subjectByggingarverkfræðien
dc.subjectBurðarþolsfræðien
dc.subjectMannvirkjagerðen
dc.subjectTitringuren
dc.subjectUmhverfisvöktunen
dc.subjectEftirliten
dc.subjectMælingaren
dc.subjectHengibrýren
dc.subjectUmferðarmálen
dc.subjectÞyngden
dc.subjectNorwayen
dc.subjectNoreguren
dc.subjectVDP::Bygg-, anleggs- og transportteknologi: 532en
dc.subjectVDP::Building, construction and transport technology: 532en
dc.subjectMechanics of Materialsen
dc.subjectCivil and Structural Engineeringen
dc.subjectBuilding and Constructionen
dc.subjectAmbient vibrations monitoringen
dc.subjectFull-scale measurementsen
dc.subjectLong-span bridgesen
dc.subjectMoving massen
dc.subjectTraffic loadingen
dc.subjectAflfræðien
dc.subjectByggingarverkfræðien
dc.subjectBurðarþolsfræðien
dc.subjectMannvirkjagerðen
dc.subjectTitringuren
dc.subjectUmhverfisvöktunen
dc.subjectEftirliten
dc.subjectMælingaren
dc.subjectHengibrýren
dc.subjectUmferðarmálen
dc.subjectÞyngden
dc.subjectNorwayen
dc.subjectNoreguren
dc.subjectCivil and Structural Engineeringen
dc.subjectSafety, Risk, Reliability and Qualityen
dc.titleImproved long‐span bridge modeling using data‐driven identification of vehicle‐induced vibrations
dc.type/dk/atira/pure/researchoutput/researchoutputtypes/contributiontojournal/articleen

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