Hysteretic Behavior of Prestressed Concrete Bridge Pier with Fiber Model

被引:0
|
作者
Hui-li, Wang [1 ]
Guang-qi, Feng [2 ]
Si-feng, Qin [3 ]
机构
[1] Dalian Univ Technol, Bridge Engn Res Inst, State Key Lab Struct Anal Ind Equipment, Dalian 116023, Peoples R China
[2] Dalian Univ Technol, Bridge Engn Res Inst, Dalian 116085, Peoples R China
[3] Dalian Univ, Res Ctr Numer Tests Mat Failure, Dalian 116622, Peoples R China
来源
基金
中国国家自然科学基金;
关键词
D O I
10.1155/2014/467350
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The hysteretic behavior and seismic characteristics of the prestressed concrete bridge pier were researched. The effects of the prestressed tendon ratio, the longitudinal reinforcement ratio, and the stirrup reinforcement ratio on the hysteretic behavior and seismic characteristics of the prestressed concrete bridge pier have been obtained with the fiber model analysis method. The analysis show some results about the prestressed concrete bridge pier. Firstly, greater prestressed tendon ratio and more longitudinal reinforcement can lead to more obvious pier's hysteresis loop "pinching effect," smaller residual displacement, and lower energy dissipation capacity. Secondly, the greater the stirrup reinforcement ratio is, the greater the hysteresis loop area is. That also means that bridge piers will have better ductility and stronger shear capacity. The results of the research will provide a theoretical basis for the hysteretic behavior analysis of the prestressed concrete pier.
引用
收藏
页数:5
相关论文
共 50 条
  • [41] Rapid Prestressed Concrete Retrofit with Prestressed Mechanically-Fastened Fiber-Reinforced Polymer: Field Performance and Observation for a Deteriorated Prestressed Concrete Bridge
    Lin, Sheng-Hsuan
    McCoy, Brad C. C.
    Lucier, Gregory W. W.
    Seracino, Rudolf
    Pierce, Nicholas A. A.
    TRANSPORTATION RESEARCH RECORD, 2024, 2678 (04) : 804 - 818
  • [42] Monitoring of a Prestressed Concrete Girder Bridge with Fiber Optical Bragg Grating Sensors
    Moerman, W.
    De Waele, W.
    Coppens, C.
    Taewe, L.
    Degrieck, J.
    Baets, R.
    Callens, M.
    STRAIN, 2001, 37 (04) : 151 - 153
  • [43] Ground Motion Duration Effects on Hysteretic Behavior of Reinforced Concrete Bridge Colums
    Ou, Yu-Chen
    Song, Jianwei
    Wang, Ping-Hsiung
    Adidharma, Leo
    Chang, Kuo-Chun
    Lee, George C.
    JOURNAL OF STRUCTURAL ENGINEERING, 2014, 140 (03)
  • [44] Verification of bridge monitoring system using FBG optical fiber sensors on existing prestressed concrete bridge
    Tamaki, Kazukiyo
    Yuasa, Kaori
    Morikawa, Hidenori
    Takemoto, Osamu
    Proceedings of the fib Symposium 2019: Concrete - Innovations in Materials, Design and Structures, 2019, : 1098 - 1105
  • [45] PRESTRESSED CONCRETE BRIDGE DESIGN.
    Anon
    Journal of The American Concrete Institute, 1976, 73 (11): : 597 - 612
  • [46] Lumped Plasticity Model and Hysteretic Performance of Ultra-High-Performance Concrete Rocking Pier
    He, Haifang
    Zhou, Yulong
    Cheng, Shoushan
    Liu, Hongyi
    MATERIALS, 2023, 16 (19)
  • [47] TEST TO FAILURE OF A PRESTRESSED CONCRETE BRIDGE
    LIBBY, JR
    JOURNAL PRESTRESSED CONCRETE INSTITUTE, 1975, 20 (01): : 101 - 102
  • [48] Testing of a damaged prestressed concrete bridge
    Russo, FM
    Klaiber, FW
    Wipf, TJ
    STRUCTURAL ENGINEERING IN THE 21ST CENTURY, 1999, : 336 - 339
  • [49] DETERIORATION IN A REHABILITATED PRESTRESSED CONCRETE BRIDGE
    OHTA, T
    SAKAI, K
    OBI, M
    ONO, S
    ACI MATERIALS JOURNAL, 1992, 89 (04) : 328 - 336
  • [50] DEVELOPMENT DEFLECTION OF PRESTRESSED CONCRETE BRIDGE
    Urban, Rudolf
    Michal, Ondrej
    INFORMATICS, GEOINFORMATICS AND REMOTE SENSING, VOL II (SGEM 2015), 2015, : 203 - 210