Seismic fragility analysis of bridge response due to spatially varying ground motions

2015 ◽  
Vol 4 (4) ◽  
pp. 297-316 ◽  
Author(s):  
C. Kun ◽  
B. Li ◽  
N. Chouw
2016 ◽  
Vol 16 (05) ◽  
pp. 1550010 ◽  
Author(s):  
Chao Li ◽  
Hong Hao ◽  
Hongnan Li ◽  
Kaiming Bi

This paper studies the time-dependent seismic fragility of reinforced concrete bridges with chloride induced corrosion under spatially varying ground motions. The time-varying characteristic of the chloride corrosion current density and the uncertainties related to the structural, material and corrosion parameters are both considered in the probabilistic finite element modeling of the example RC bridge at different time steps during its life-cycle. Spatially varying ground motions at different bridge supports are stochastically simulated and used as inputs in the fragility analysis. Seismic fragility curves of the corroded RC bridge at different time steps are generated using the probabilistic seismic demand analysis (PSDA) method. Numerical results indicate that both chloride induced corrosion and ground motion spatial variations have a significant effect on the bridge structural seismic fragility. As compared to the intact bridge, the mean peak ground accelerations (PGAs) of the fragility curves of the RC bridge decrease by approximately 40% after 90 years since the initiation of corrosion. Moreover, the effect of ground motion spatial variations changes along with the process of chloride induced corrosion owing to the structural stiffness degradation. Neglecting seismic ground motion spatial variations may not lead to an accurate estimation of the lifetime seismic fragility of RC bridges with chloride induced corrosion.


Abstract. Seismic fragility analysis is essential for seismic risk assessment of structures. This study focuses on the damage probability assessment of the mid-story isolation buildings with different locations of the isolation system. To this end, the performance-based fragility analysis method of the mid-story isolation system is proposed, adopting the maximum story drifts of structures above and below the isolation layer and displacement of the isolation layer as performance indicators. Then, the entire process of the mid-story isolation system, from the initial elastic state to the elastic-plastic state, then to the limit state, is simulated on the basis of the incremental dynamic analysis method. Seismic fragility curves are obtained for mid-story isolation buildings with different locations of the isolation layer, each with fragility curves for near-field and far-field ground motions, respectively. The results indicate that the seismic fragility probability subjected to the near-field ground motions is much greater than those subjected to the far-field ground motions. In addition, with the increase of the location of the isolation layer, the dominant components for the failure of mid-story isolated structures change from superstructure and isolation system to substructure and isolation system.


2019 ◽  
Vol 189 ◽  
pp. 106326 ◽  
Author(s):  
Mohsen Abyani ◽  
Mohammad Reza Bahaari ◽  
Mohammad Zarrin ◽  
Mohsen Nasseri

2019 ◽  
Vol 21 (5) ◽  
pp. 1959-1972
Author(s):  
Guobin Bu ◽  
Fangcheng Liu ◽  
Jia Bin ◽  
Zhe Zhang

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