Identification of the Most Fragile Component for a Typical RC Bridge Using Seismic Fragility Curves
This paper identifies the most fragile component of a typical reinforced concrete (RC) continuous girder bridge through the seismic fragility analysis. The typical bridge, Liang-Zi River bridge located in Shandong Province of China, is taken as the case study. The Cloud analysis approach is adopted...
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Faculty of Mechanical Engineering in Slavonski Brod, Faculty of Electrical Engineering in Osijek, Faculty of Civil Engineering in Osijek
2020-01-01
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Online Access: | https://hrcak.srce.hr/file/340458 |
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doaj-bc9a8e0166f74c7a88c02480445b4b8d2020-11-25T02:26:55ZengFaculty of Mechanical Engineering in Slavonski Brod, Faculty of Electrical Engineering in Osijek, Faculty of Civil Engineering in Osijek Tehnički Vjesnik1330-36511848-63392020-01-012714652Identification of the Most Fragile Component for a Typical RC Bridge Using Seismic Fragility CurvesYang Liu*0Da-Gang Lu1Ming-Gang Huang2Key Laboratory of Deep Underground Science and Engineering (Ministry of Education), Sichuan University, Chengdu, ChinaHarbin Institute of Technology, Harbin, ChinaHarbin Institute of Technology, Harbin, ChinaThis paper identifies the most fragile component of a typical reinforced concrete (RC) continuous girder bridge through the seismic fragility analysis. The typical bridge, Liang-Zi River bridge located in Shandong Province of China, is taken as the case study. The Cloud analysis approach is adopted to construct the probabilistic seismic demand models (PSDMs). Both of the record-to-record uncertainty in ground motions and the structural model uncertainty are considered in the PSDMs by using several approaches such as the selection of real ground motion records from the NGA-West2 database and the Latin Hypercube Sampling (LHS) approach. The damage limit states defined refer to piers and bearings which are commonly regarded as the fragile components. Furthermore, the seismic fragility curves of components and the bridge system are developed. Results show that the middle piers are more fragile than the side piers; the bearings are more fragile than piers; it is different from experiences that the fixed bearings at the top of the middle pier are not always more fragile than sliding bearings at both of the transverse and longitudinal loading conditions.https://hrcak.srce.hr/file/340458fragile componentnumerical simulationRC continuous girder bridgeseismic fragilityuncertainty |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Yang Liu* Da-Gang Lu Ming-Gang Huang |
spellingShingle |
Yang Liu* Da-Gang Lu Ming-Gang Huang Identification of the Most Fragile Component for a Typical RC Bridge Using Seismic Fragility Curves Tehnički Vjesnik fragile component numerical simulation RC continuous girder bridge seismic fragility uncertainty |
author_facet |
Yang Liu* Da-Gang Lu Ming-Gang Huang |
author_sort |
Yang Liu* |
title |
Identification of the Most Fragile Component for a Typical RC Bridge Using Seismic Fragility Curves |
title_short |
Identification of the Most Fragile Component for a Typical RC Bridge Using Seismic Fragility Curves |
title_full |
Identification of the Most Fragile Component for a Typical RC Bridge Using Seismic Fragility Curves |
title_fullStr |
Identification of the Most Fragile Component for a Typical RC Bridge Using Seismic Fragility Curves |
title_full_unstemmed |
Identification of the Most Fragile Component for a Typical RC Bridge Using Seismic Fragility Curves |
title_sort |
identification of the most fragile component for a typical rc bridge using seismic fragility curves |
publisher |
Faculty of Mechanical Engineering in Slavonski Brod, Faculty of Electrical Engineering in Osijek, Faculty of Civil Engineering in Osijek |
series |
Tehnički Vjesnik |
issn |
1330-3651 1848-6339 |
publishDate |
2020-01-01 |
description |
This paper identifies the most fragile component of a typical reinforced concrete (RC) continuous girder bridge through the seismic fragility analysis. The typical bridge, Liang-Zi River bridge located in Shandong Province of China, is taken as the case study. The Cloud analysis approach is adopted to construct the probabilistic seismic demand models (PSDMs). Both of the record-to-record uncertainty in ground motions and the structural model uncertainty are considered in the PSDMs by using several approaches such as the selection of real ground motion records from the NGA-West2 database and the Latin Hypercube Sampling (LHS) approach. The damage limit states defined refer to piers and bearings which are commonly regarded as the fragile components. Furthermore, the seismic fragility curves of components and the bridge system are developed. Results show that the middle piers are more fragile than the side piers; the bearings are more fragile than piers; it is different from experiences that the fixed bearings at the top of the middle pier are not always more fragile than sliding bearings at both of the transverse and longitudinal loading conditions. |
topic |
fragile component numerical simulation RC continuous girder bridge seismic fragility uncertainty |
url |
https://hrcak.srce.hr/file/340458 |
work_keys_str_mv |
AT yangliu identificationofthemostfragilecomponentforatypicalrcbridgeusingseismicfragilitycurves AT daganglu identificationofthemostfragilecomponentforatypicalrcbridgeusingseismicfragilitycurves AT mingganghuang identificationofthemostfragilecomponentforatypicalrcbridgeusingseismicfragilitycurves |
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1724845166907359232 |