Experimental and Numerical Investigations of the Seismic Performance of Railway Gravity Piers with Low Reinforcement Ratios

被引:0
|
作者
Lu, Xingji [1 ]
Lu, Jinhua [2 ]
机构
[1] Tongji Univ, Dept Bridge Engn, Shanghai 200092, Peoples R China
[2] Lanzhou Jiaotong Univ, Sch Civil Engn, Lanzhou 730070, Peoples R China
基金
中国国家自然科学基金;
关键词
gravity pier; quasi-static test; low longitudinal reinforcement ratio; seismic performance; finite element analysis; analytical equation; railway bridge; HIGH-SPEED RAIL; STRESS-STRAIN BEHAVIOR; QUASI-STATIC TEST; SHEAR-STRENGTH; BRIDGE PIERS; CONCRETE; COLUMNS; SIMULATION; MODEL; DEFORMATION;
D O I
10.3390/su151813452
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Gravity pier is a widely employed pier type in railway bridges worldwide. It is characterized by a solid cross-section with a low longitudinal reinforcement ratio which can be even lower than 0.5%. These low-reinforced gravity piers have been found to be vulnerable under major earthquakes, but their seismic performance has not been fully understood. Improving the seismic safety of these piers and reducing the consumption of reinforcing steels coincide with multiple Sustainable Development Goals (SDG 6, 7, and 9). In this concern, three main objectives are achieved in the present research. Firstly, quasi-static tests were conducted on two gravity piers with low longitudinal reinforcement ratios: 0.3% and 0.4%. The tests found the reinforcement ratio significantly affected the failure mode and seismic capacity. A typical brittle failure was observed in the specimen with the 0.3% reinforcement ratio. Fracture of longitudinal reinforcing steels was heard, and only a few cracks formed within a narrow region at the pier bottom, whereas the structural behavior of the specimen with a 0.4% reinforcement ratio was ductile, and cracks were located within a wider region (800 mm) at the pier bottom. Increasing the reinforcement ratio significantly increased the energy dissipation capacity and the displacement ductility. Secondly, finite element models of two specimens built using ANSYS were validated with test results, and then a series of finite element models were built to further investigate the influences of three important parameters on the seismic capacity. The three parameters are shear span to depth ratio, axial compression ratio, and longitudinal reinforcement ratio. The validations found that the load-displacement hysteretic curves and the distributions of concrete plastic strain from finite element analyses matched well with those from tests. Further finite element analyses found that the shear span to depth ratio was inversely correlated with the peak lateral load, but positively correlated with the displacement ductility. Conversely, increasing the axial compression ratio increased the peak lateral load but decreased the displacement ductility. Thirdly, an analytical equation was proposed to predict the displacement ductility of low-reinforced gravity piers, and the predicted ductilities agreed well with those obtained from finite element analyses. The findings provide a better understanding of the seismic performance of low-reinforced gravity piers, which helps extend the application of these piers. Furthermore, the proposed analytical equation assists in the evaluation and design of these piers.
引用
收藏
页数:20
相关论文
共 50 条
  • [1] Experimental Study on Seismic Performance of Railway Gravity Bridge Piers with Different Reinforcement Ratios
    Lu J.
    Chen X.
    Ding M.
    Liu Z.
    Zhang X.
    Zhongguo Tiedao Kexue/China Railway Science, 2021, 42 (03): : 47 - 54
  • [2] Experimental and Numerical Investigations of the Seismic Performance of UHPC Box Piers
    Ren, Liang
    Fang, Zhi
    Zhong, Rui
    Wang, Kai
    KSCE JOURNAL OF CIVIL ENGINEERING, 2019, 23 (02) : 597 - 607
  • [3] Experimental and Numerical Investigations of the Seismic Performance of UHPC Box Piers
    Liang Ren
    Zhi Fang
    Rui Zhong
    Kai Wang
    KSCE Journal of Civil Engineering, 2019, 23 : 597 - 607
  • [4] Seismic Performance Research on Railway Gravity Bridge Piers with Unbonded Reinforcement at the Pier Bottom
    Lu J.
    Chen X.
    Ding M.
    Ma H.
    Zhang X.
    Zhongguo Tiedao Kexue/China Railway Science, 2022, 43 (02): : 60 - 65
  • [5] Study on Seismic Performance of Prefabricated Railway Gravity Piers
    Ding, Mingbo
    Zou, Cheng
    Lu, Jinhua
    Li, Jingyu
    Xing, Siyu
    Wang, Fangjun
    Zhongguo Tiedao Kexue/China Railway Science, 2024, 45 (01): : 79 - 88
  • [6] An experimental study of impact performance of RC piers with different reinforcement ratios
    Zhou, Xiwu
    Zhang, Runcheng
    Zhao, Kai
    Zhang, Guoxue
    Wu, Benying
    GRADEVINAR, 2019, 71 (06): : 465 - 479
  • [7] Experimental and numerical investigation of the seismic performance of railway piers with increasing longitudinal steel in plastic hinge area
    Lu, Jinhua
    Chen, Xingchong
    Ding, Mingbo
    Zhang, Xiyin
    Liu, Zhengnan
    Yuan, Hao
    EARTHQUAKES AND STRUCTURES, 2019, 17 (06) : 545 - 556
  • [8] Experimental Research on the Railway Gravity Bridge Piers with Reinforced Longitudinal Reinforcement at Pier Bottom
    Lu, Jinhua
    Chen, Xingchong
    Ding, Mingbo
    Ma, Huajun
    Journal of Railway Engineering Society, 2022, 39 (05) : 39 - 46
  • [9] Research on the seismic design method for concrete gravity piers with low longitudinal reinforcement ratio
    Chen, Xing-Chong
    Zhang, Yong-Liang
    Ding, Ming-Bo
    Li, Xiao-Zhong
    Journal of Railway Engineering Society, 2016, 33 (03) : 76 - 80
  • [10] Seismic performance of circular columns with low longitudinal reinforcement ratios
    Priestley, MJN
    Benzoni, G
    ACI STRUCTURAL JOURNAL, 1996, 93 (04) : 474 - 485