Seismic Damage Model of Bridge Piers Subjected to Biaxial Loading Considering the Impact of Energy Dissipation

The large degradation of the mechanical performance of hollow reinforced concrete (RC) bridge piers subjected to multi-dimensional earthquakes has not been thoroughly assessed. This paper aims to improve the existing seismic damage model to assess the seismic properties of tall, hollow RC piers subj...

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Main Authors: Shangshun Lin, Zhanghua Xia, Jian Xia
Format: Article
Language:English
Published: MDPI AG 2019-04-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/9/7/1481
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spelling doaj-3efb5bfe008742f2bf4b14d262d50aa92020-11-25T01:21:53ZengMDPI AGApplied Sciences2076-34172019-04-0197148110.3390/app9071481app9071481Seismic Damage Model of Bridge Piers Subjected to Biaxial Loading Considering the Impact of Energy DissipationShangshun Lin0Zhanghua Xia1Jian Xia2School of Civil Engineering, Fujian University of Technology, Fuzhou 350108, ChinaSchool of Civil Engineering, Fuzhou University, Fuzhou 350108, ChinaSchool of Civil Engineering, Fuzhou University, Fuzhou 350108, ChinaThe large degradation of the mechanical performance of hollow reinforced concrete (RC) bridge piers subjected to multi-dimensional earthquakes has not been thoroughly assessed. This paper aims to improve the existing seismic damage model to assess the seismic properties of tall, hollow RC piers subjected to pseudo-static, biaxial loading. Cyclic bilateral loading tests on fourteen 1/14-scale pier specimens with different slenderness ratios, axial load ratios, and transverse reinforcement ratios were carried out to investigate the damage propagation and the cumulative dissipated energy with displacement loads. By considering the influence of energy dissipation on structural damage, a new damage model (M-Usami model) was developed to assess the damage characteristics of hollow RC piers. The results present four consecutive damage stages during the loading process: (a) cracking on concrete surface, (b) yielding of longitudinal reinforcements; (c) spalling of concrete, and (d) collapsing of pier after the concrete crushed and the longitudinal bars ruptured due to the flexural failure. The damage level caused by the seismic waves can be reduced by designing specimens with a good seismic energy dissipation capacity. The theoretical damage index values calculated by the M-Usami model agreed well with the experimental observations. The developed M-Usami model can provide insights into the approaches to assessing the seismic damage of hollow RC piers subjected to bilateral seismic excitations.https://www.mdpi.com/2076-3417/9/7/1481hollow reinforced concrete piersseismic damage modelbilateral cyclic loading testcumulative hysteresis energycumulative damage
collection DOAJ
language English
format Article
sources DOAJ
author Shangshun Lin
Zhanghua Xia
Jian Xia
spellingShingle Shangshun Lin
Zhanghua Xia
Jian Xia
Seismic Damage Model of Bridge Piers Subjected to Biaxial Loading Considering the Impact of Energy Dissipation
Applied Sciences
hollow reinforced concrete piers
seismic damage model
bilateral cyclic loading test
cumulative hysteresis energy
cumulative damage
author_facet Shangshun Lin
Zhanghua Xia
Jian Xia
author_sort Shangshun Lin
title Seismic Damage Model of Bridge Piers Subjected to Biaxial Loading Considering the Impact of Energy Dissipation
title_short Seismic Damage Model of Bridge Piers Subjected to Biaxial Loading Considering the Impact of Energy Dissipation
title_full Seismic Damage Model of Bridge Piers Subjected to Biaxial Loading Considering the Impact of Energy Dissipation
title_fullStr Seismic Damage Model of Bridge Piers Subjected to Biaxial Loading Considering the Impact of Energy Dissipation
title_full_unstemmed Seismic Damage Model of Bridge Piers Subjected to Biaxial Loading Considering the Impact of Energy Dissipation
title_sort seismic damage model of bridge piers subjected to biaxial loading considering the impact of energy dissipation
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2019-04-01
description The large degradation of the mechanical performance of hollow reinforced concrete (RC) bridge piers subjected to multi-dimensional earthquakes has not been thoroughly assessed. This paper aims to improve the existing seismic damage model to assess the seismic properties of tall, hollow RC piers subjected to pseudo-static, biaxial loading. Cyclic bilateral loading tests on fourteen 1/14-scale pier specimens with different slenderness ratios, axial load ratios, and transverse reinforcement ratios were carried out to investigate the damage propagation and the cumulative dissipated energy with displacement loads. By considering the influence of energy dissipation on structural damage, a new damage model (M-Usami model) was developed to assess the damage characteristics of hollow RC piers. The results present four consecutive damage stages during the loading process: (a) cracking on concrete surface, (b) yielding of longitudinal reinforcements; (c) spalling of concrete, and (d) collapsing of pier after the concrete crushed and the longitudinal bars ruptured due to the flexural failure. The damage level caused by the seismic waves can be reduced by designing specimens with a good seismic energy dissipation capacity. The theoretical damage index values calculated by the M-Usami model agreed well with the experimental observations. The developed M-Usami model can provide insights into the approaches to assessing the seismic damage of hollow RC piers subjected to bilateral seismic excitations.
topic hollow reinforced concrete piers
seismic damage model
bilateral cyclic loading test
cumulative hysteresis energy
cumulative damage
url https://www.mdpi.com/2076-3417/9/7/1481
work_keys_str_mv AT shangshunlin seismicdamagemodelofbridgepierssubjectedtobiaxialloadingconsideringtheimpactofenergydissipation
AT zhanghuaxia seismicdamagemodelofbridgepierssubjectedtobiaxialloadingconsideringtheimpactofenergydissipation
AT jianxia seismicdamagemodelofbridgepierssubjectedtobiaxialloadingconsideringtheimpactofenergydissipation
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