Uncertainty Quantification in Constitutive Models of Highway Bridge Components: Seismic Bars and Elastomeric Bearings

Author:

Pinto Francisco J.1ORCID,Toledo José2,Birrell Matías1,Bazáez Ramiro3,Hernández Francisco4,Astroza Rodrigo1

Affiliation:

1. Facultad de Ingeniería y Ciencias Aplicadas, Universidad de los Andes, Santiago 7620001, Chile

2. Techint Engineering and Construction, Santiago 7560742, Chile

3. Departamento de Obras Civiles, Universidad Técnica Federico Santa María, Valparaíso 2390123, Chile

4. Department of Civil Engineering, Universidad de Chile, Santiago 8370449, Chile

Abstract

Bridges are essential structures in the logistic chain of countries, making it critical to design them to be as resilient as possible. One way to achieve this is through performance-based seismic design (PBSD), which involves using nonlinear Finite Element (FE) models to predict the response and potential damage of different structural components under earthquake excitations. Nonlinear FE models need accurate constitutive models of material and components. Among them, seismic bars and laminated elastomeric bearings play an important role in a bridge’s response to earthquakes; therefore, properly validated and calibrated models should be proposed. Only default parameter values from the early development of the constitutive models widely used by researchers and practitioners for these components tend to be used, and low identifiability of its governing parameters and the high cost of generating reliable experimental data have prevented a thorough probabilistic characterization of their model parameters. To address this issue, this study implements a Bayesian probabilistic framework using Sequential Monte Carlo (SMC) for updating the parameters of constitutive models of seismic bars and elastomeric bearings and proposes joint probability density functions (PDF) for the most influential parameters. The framework is based on actual data from comprehensive experimental campaigns. The PDFs are obtained from independent tests conducted on different seismic bars and elastomeric bearings, to then consolidate all the information in a single PDF for each modeling parameter by means of the conflation methodology, where the mean, coefficient of variation, and correlation between calibrated parameters are obtained for each bridge component. Finally, findings show that the incorporation of model parameter uncertainty through a probabilistic framework will allow for a more accurate prediction of the response of bridges under strong earthquakes.

Funder

National Research and Development Agency

Publisher

MDPI AG

Subject

General Materials Science

Reference33 articles.

1. SEAOC (1995). A Framework of Performance-Based Seismic Engineering of Buildings, Structural Engineers Association of California.

2. ASCE (2014). Seismic Design of Piers and Wharves, ASCE.

3. Tall Building Initiative (TBI) (2017). Guidelines for Performance-Based Seismic Design of Tall Buildings, TBI.

4. Nonlinear Finite Element Modeling and Response Analysis of the Collapsed Alto Rio Building in the 2010 Chile Maule Earthquake;Zhang;Struct. Tall Spec. Build.,2017

5. Preliminary Analysis of the Seismic Response of Bridges during the Chilean 27 February 2010 Earthquake;Hube;Obras Proy. Rev. Ing. Civ.,2010

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