Εμφάνιση απλής εγγραφής

dc.creatorGaitanaros, S.en
dc.creatorKaraiskos, G.en
dc.creatorPapadimitriou, C.en
dc.creatorAravas, N.en
dc.date.accessioned2015-11-23T10:26:52Z
dc.date.available2015-11-23T10:26:52Z
dc.date.issued2010
dc.identifier10.1504/IJRS.2010.032446
dc.identifier.issn1479389X
dc.identifier.urihttp://hdl.handle.net/11615/27616
dc.description.abstractA Bayesian system identification methodology is presented for estimating the crack location, size and orientation in a structure using strain measurements. The Bayesian statistical approach combines information from measured data and analytical or computational models of structural behaviour to predict estimates of the crack characteristics along with the associated uncertainties, taking into account modelling and measurement errors. An optimal sensor location methodology is also proposed to maximise the information that is contained in the measured data for crack identification problems. For this, the most informative, about the condition of the structure, data are obtained by minimising the information entropy measure of the uncertainty in the crack parameter estimates. Both crack identification andotimal sensor location formulations lead to highly non-convex optimisation problems in which multiple local and global optima may exist. A hybrid optimisation method, based on evolutionary strategies and gradient-based techniques, is used to determine the global minima. The effectiveness of the proposed methodologies is illustrated using simulated data from a single crack in a thin plate subjected to static loading. Copyright © 2010 Inderscience Enterprises Ltd.en
dc.source.urihttp://www.scopus.com/inward/record.url?eid=2-s2.0-78651564933&partnerID=40&md5=825026021342c0b6cca4405766b78348
dc.subjectBayesian analysisen
dc.subjectCrack identificationen
dc.subjectInformation entropyen
dc.subjectSensor placementen
dc.subjectBayesianen
dc.subjectBayesian methodologyen
dc.subjectBayesian statistical approachen
dc.subjectComputational modelen
dc.subjectCrack locationen
dc.subjectCrack parametersen
dc.subjectEvolutionary strategiesen
dc.subjectGlobal minimaen
dc.subjectGlobaloptimumen
dc.subjectGradient baseden
dc.subjectMeasured dataen
dc.subjectOptimal sensor locationsen
dc.subjectOptimisation methoden
dc.subjectOptimisationsen
dc.subjectSensor locationen
dc.subjectSimulated dataen
dc.subjectSingle cracken
dc.subjectStatic loadingen
dc.subjectStructural behaviouren
dc.subjectSystem identificationsen
dc.subjectThin plateen
dc.subjectBayesian networksen
dc.subjectCracksen
dc.subjectEntropyen
dc.subjectEvolutionary algorithmsen
dc.subjectMeasurement errorsen
dc.subjectOptimizationen
dc.subjectSensorsen
dc.subjectStrain gagesen
dc.subjectStrain measurementen
dc.subjectUncertainty analysisen
dc.titleA Bayesian methodology for crack identification in structures using strain measurementsen
dc.typejournalArticleen


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