Seismic fragility estimates for corroding reinforced concrete bridges

被引:54
|
作者
Zhong, Jinquan [1 ]
Gardoni, Paolo [1 ]
Rosowsky, David [1 ]
机构
[1] Texas A&M Univ, Zachry Dept Civil Engn, College Stn, TX 77843 USA
关键词
bridges; cracking; corrosion; stiffness; reinforced concrete; PROBABILISTIC CAPACITY MODELS; PITTING CORROSION; STRUCTURAL RELIABILITY; DEMAND MODELS; METALS;
D O I
10.1080/15732470903241881
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Seismic fragility of reinforced concrete (RC) bridges is defined as the conditional probability that the seismic demand exceeds the corresponding capacity, specified for a certain performance level, for given seismic intensity measures. However, the structural properties of RC bridges change over time due to the onset of corrosion in the reinforcing steel. Therefore, seismic fragility of RC bridges changes during a bridge lifetime. This paper proposes a method to estimate the seismic fragility of corroding RC bridges. Structural capacities are defined using probabilistic models for deformation and shear capacities of RC columns. Probabilistic models are also used to estimate the corresponding demands for given seismic intensity measures. The capacity and demand models are then combined with probabilistic models for chloride-induced corrosion and time-dependent corrosion rate to model the dependency on time of the seismic fragility of RC bridges. In particular, the loss of reinforcing steel is modelled as a function of the thickness of the cover concrete for each reinforcing bar in the RC columns. The stiffness degradation in the cover concrete over time due to corrosion-induced cracking is also considered in the fragility estimates. Seismic fragility estimates are then formulated at the column, bent, and bridge levels. The fragility formulations properly incorporate the uncertainties in the capacity and demand models, and the inexactness (or model error) in modelling the material deterioration. The proposed method accounts for the variation of structural capacity and seismic demand over time due to the effects of corrosion in the reinforcing steel. As an application, seismic fragility estimates are developed for a corroding RC bridge with 11 two-column bents over a 100-year period.
引用
收藏
页码:55 / 69
页数:15
相关论文
共 50 条
  • [41] Seismic fragility of lightly reinforced concrete frames with masonry infills
    Jeon, Jong-Su
    Park, Ji-Hun
    DesRoches, Reginald
    [J]. EARTHQUAKE ENGINEERING & STRUCTURAL DYNAMICS, 2015, 44 (11): : 1783 - 1803
  • [42] Development of seismic fragility curves for reinforced concrete tall buildings
    Bakhshi, A.
    Ansari, M.
    [J]. EURODYN 2014: IX INTERNATIONAL CONFERENCE ON STRUCTURAL DYNAMICS, 2014, : 2939 - 2946
  • [43] Seismic fragility assessment of ductile reinforced concrete building frames
    Apu, Nibas
    Sinha, Ravi
    [J]. INTERNATIONAL JOURNAL OF DISASTER RESILIENCE IN THE BUILT ENVIRONMENT, 2021, 12 (04) : 425 - 442
  • [44] The effects of earthquake incidence angle on the seismic fragility of reinforced concrete box-girder bridges of unequal pier heights
    Rezaei, Hossein
    Arabestani, Shahrouz
    Akbari, Reza
    Noroozinejad Farsangi, Ehsan
    [J]. STRUCTURE AND INFRASTRUCTURE ENGINEERING, 2022, 18 (02) : 278 - 293
  • [45] Seismic fragility of reinforced concrete bridge columns utilizing ductile fiber-reinforced concrete covers
    Wang, Hanmin
    Ranade, Ravi
    Okumus, Pinar
    [J]. STRUCTURE AND INFRASTRUCTURE ENGINEERING, 2023, 19 (05) : 708 - 730
  • [46] Effects of various modeling uncertainty parameters on the seismic response and seismic fragility estimates of the aging highway bridges
    Li, Huihui
    Li, Lifeng
    Zhou, Guojie
    Xu, Liang
    [J]. BULLETIN OF EARTHQUAKE ENGINEERING, 2020, 18 (14) : 6337 - 6373
  • [47] Impact of seismic excitation direction on the fragility analysis of horizontally curved concrete bridges
    Feng, Ruiwei
    Wang, Xiaowei
    Yuan, Wancheng
    Yu, Juanya
    [J]. BULLETIN OF EARTHQUAKE ENGINEERING, 2018, 16 (10) : 4705 - 4733
  • [48] Probabilistic seismic demand model for curved reinforced concrete bridges
    Tondini, Nicola
    Stojadinovic, Bozidar
    [J]. BULLETIN OF EARTHQUAKE ENGINEERING, 2012, 10 (05) : 1455 - 1479
  • [49] Influence of scour effects on the seismic response of reinforced concrete bridges
    Wang, Zhenghua
    Duenas-Osorio, Leonardo
    Padgett, Jamie E.
    [J]. ENGINEERING STRUCTURES, 2014, 76 : 202 - 214
  • [50] Seismic assessment of existing reinforced-concrete arch bridges
    Franetovic, Marin
    Ivankovic, Ana Mandic
    [J]. GRADEVINAR, 2014, 66 (08): : 691 - 703