Εμφάνιση απλής εγγραφής

dc.creatorEbrahimian H., Astroza R., Conte J.P., Papadimitriou C.en
dc.date.accessioned2023-01-31T07:37:03Z
dc.date.available2023-01-31T07:37:03Z
dc.date.issued2018
dc.identifier10.1002/stc.2128
dc.identifier.issn15452255
dc.identifier.urihttp://hdl.handle.net/11615/71246
dc.description.abstractThis paper presents a new framework for output-only nonlinear system and damage identification of civil structures. This framework is based on nonlinear finite element (FE) model updating in the time-domain, using only the sparsely measured structural response to unmeasured or partially measured earthquake excitation. The proposed framework provides a computationally feasible approach for structural health monitoring and damage identification of civil structures when accurate measurement of the input seismic excitations is challenging (e.g., buildings with significant foundation rocking and bridges with piers in deep water) or the measured seismic excitations are erroneous and/or distorted by significant measurement error (e.g., malfunctioning sensors). Grounded on Bayesian inference, the proposed framework estimates the unknown FE model parameters and the ground acceleration time histories simultaneously, using the sparse measured dynamic response of the structure. Two approaches are presented in this study to solve the joint structural system parameter and input identification problem: (a) a sequential maximum likelihood estimation approach, which reduces to a sequential nonlinear constrained optimization method, and (b) a sequential maximum a posteriori estimation approach, which reduces to a sequential iterative extended Kalman filtering method. Both approaches require the computation of FE response sensitivities with respect to the unknown FE model parameters and the values of base acceleration at each time step. The FE response sensitivities are computed efficiently using the direct differentiation method. The two proposed approaches are validated using the seismic response of a 5-story reinforced concrete building structure, numerically simulated using a state-of-the-art mechanics-based nonlinear structural FE modeling technique. The simulated absolute acceleration response time histories of 3 floors and the relative (to the base) roof displacement response time histories of the building to a bidirectional horizontal seismic excitation are polluted with artificial measurement noise. The noisy responses of the structure are then used to estimate the unknown FE model parameters characterizing the nonlinear material constitutive laws of the concrete and reinforcing steel and the (assumed) unknown time history of the ground acceleration in the longitudinal direction of the building. The same nonlinear FE model of the structure is used to simulate the structural response and to estimate the dynamic input and system parameters. Thus, modeling uncertainty is not considered in this paper. Although the validation study demonstrates the estimation accuracy of both approaches, the sequential maximum a posteriori estimation approach is shown to be significantly more efficient computationally than the sequential maximum likelihood estimation approach. Copyright © 2018 John Wiley & Sons, Ltd.en
dc.language.isoenen
dc.sourceStructural Control and Health Monitoringen
dc.source.urihttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85041010998&doi=10.1002%2fstc.2128&partnerID=40&md5=147081cc81322c3991fe055ca79c3728
dc.subjectBayesian networksen
dc.subjectConcrete bridgesen
dc.subjectConcrete buildingsen
dc.subjectConcretesen
dc.subjectConstrained optimizationen
dc.subjectDamage detectionen
dc.subjectFinite element methoden
dc.subjectInference enginesen
dc.subjectIterative methodsen
dc.subjectKalman filtersen
dc.subjectMaximum likelihooden
dc.subjectMaximum likelihood estimationen
dc.subjectNonlinear analysisen
dc.subjectNonlinear control systemsen
dc.subjectNonlinear systemsen
dc.subjectReinforced concreteen
dc.subjectResponse time (computer systems)en
dc.subjectSeismic responseen
dc.subjectSeismologyen
dc.subjectStructural health monitoringen
dc.subjectStructures (built objects)en
dc.subjectTime domain analysisen
dc.subjectUncertainty analysisen
dc.subjectBayesian methodsen
dc.subjectDirect differentiation methodsen
dc.subjectInput estimationen
dc.subjectNon-linear finite element modelen
dc.subjectOutput onlyen
dc.subjectParameter estimationen
dc.subjectJohn Wiley and Sons Ltden
dc.titleBayesian optimal estimation for output-only nonlinear system and damage identification of civil structuresen
dc.typejournalArticleen


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