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Bayesian structural identification of a long suspension bridge considering temperature and traffic load effects

Jesus, Andre; Brommer, Peter; Westgate, Robert; Koo, Ki; Brownjohn, James; Laory, Irwanda

Authors

Peter Brommer

Robert Westgate

Ki Koo

James Brownjohn

Irwanda Laory



Abstract

© The Author(s) 2018. This article presents a probabilistic structural identification of the Tamar bridge using a detailed finite element model. Parameters of the bridge cables initial strain and bearings friction were identified. Effects of temperature and traffic were jointly considered as a driving excitation of the bridge’s displacement and natural frequency response. Structural identification is performed with a modular Bayesian framework, which uses multiple response Gaussian processes to emulate the model response surface and its inadequacy, that is, model discrepancy. In addition, the Metropolis–Hastings algorithm was used as an expansion for multiple parameter identification. The novelty of the approach stems from its ability to obtain unbiased parameter identifications and model discrepancy trends and correlations. Results demonstrate the applicability of the proposed method for complex civil infrastructure. A close agreement between identified parameters and test data was observed. Estimated discrepancy functions indicate that the model predicted the bridge mid-span displacements more accurately than its natural frequencies and that the adopted traffic model was less able to simulate the bridge behaviour during traffic congestion periods.

Citation

Jesus, A., Brommer, P., Westgate, R., Koo, K., Brownjohn, J., & Laory, I. (2019). Bayesian structural identification of a long suspension bridge considering temperature and traffic load effects. Structural Health Monitoring, 18(4), 1310-1323. https://doi.org/10.1177/1475921718794299

Journal Article Type Article
Acceptance Date Aug 7, 2018
Online Publication Date Sep 3, 2018
Publication Date Jul 1, 2019
Deposit Date Aug 21, 2019
Publicly Available Date Aug 22, 2019
Journal Structural Health Monitoring
Print ISSN 1475-9217
Electronic ISSN 1741-3168
Publisher SAGE Publications
Peer Reviewed Peer Reviewed
Volume 18
Issue 4
Pages 1310-1323
DOI https://doi.org/10.1177/1475921718794299
Public URL https://uwe-repository.worktribe.com/output/2127132

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