Research on the Mechanical Performance of a Mountainous Long-Span Steel Truss Arch Bridge with High and Low Arch Seats

被引:1
|
作者
Tan, Yao [1 ]
Shi, Junfeng [1 ]
Liu, Peng [2 ]
Tao, Jun [3 ]
Zhao, Yueyue [4 ,5 ]
Santarsiero, Giuseppe
机构
[1] Hubei Univ Technol, Dept Civil Engn Architecture & Environm, Wuhan 430068, Peoples R China
[2] Hubei Gaolu Highway Engn Supervis & Consultat Co L, Wuhan 430051, Peoples R China
[3] China Railway Major Bridge Engn Grp 6 Engn Co Ltd, Wuhan 430101, Peoples R China
[4] China Railway Siyuan Survey & Design Grp Co Ltd, Wuhan 430063, Peoples R China
[5] Hubei Engn Res Ctr Rail Transit Intelligent Bridge, Wuhan 430063, Peoples R China
关键词
steel truss arch bridge; design and construction; mountainous area; finite element model; stability; nonlinearity; structural optimization;
D O I
10.3390/buildings13123037
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The Loushui River Bridge is a mountainous long-span steel truss arch bridge with high and low arch seats. The design and construction of the bridge follow the principle of minimizing environmental damage and promoting sustainable development. In this article, the mechanical performance of this bridge is investigated experimentally and numerically at both the construction and operation stages. A series of validated finite element models were established for linear and nonlinear analyses by introducing geometric imperfections, geometric nonlinearities, and material nonlinearities. Then, several optimized models based on different types of design are compared with the original structure. The results indicate that the stability of the asymmetric bridge met the design requirements in both the construction and operation stages. However, the lateral stability and stiffness of the asymmetric bridge are weak due to the wind hazard that occurred in its mountain ravine. The out-of-plane instability from the short half-arch is the dominant failure mode, and the weakest area is where the arch ribs intersect with the bridge deck. It can be solved by adding more cross bracings without affecting the clearance above the bridge deck or by improving the material intensity of the arch.
引用
收藏
页数:30
相关论文
共 50 条
  • [31] Effects of loading sequences on ultimate capacity of long-span steel arch bridge
    Cheng, Jin
    Jiang, Jian-Jing
    Xiao, Ru-Cheng
    Xiang, Hai-Fan
    Gonglu Jiaotong Keji/Journal of Highway and Transportation Research and Development, 2003, 20 (01):
  • [32] Dynamic properties of a long-span continuous steel truss-arch bridge of high-speed railway across the Yangtze River
    Xia, C. Y.
    Zhong, T. Y.
    Zhang, N.
    Xia, H.
    PROCEEDINGS OF THE 3RD INTERNATIONAL SYMPOSIUM ON ENVIRONMENT VIBRATIONS: PREDICTION, MONITORING, MITIGATION AND EVALUATION, ISEV 2007, 2007, : 594 - 599
  • [33] Seismic analysis of a long-span continuous steel truss-arch bridge of high-speed railway across the Yangtze River
    Xia, Chao-Yi
    Zhang, Nan
    Zhong, Tie-Yi
    STRUCTURAL CONDITION ASSESSMENT, MONITORING AND IMPROVEMENT, VOLS 1 AND 2, 2007, : 291 - 296
  • [34] Seismic reduction technology of a long-span railway steel truss arch bridge under near-fault earthquakes
    Jiang H.
    Song G.
    Liu Z.
    Guo H.
    Lu W.
    Zhou Y.
    Zeng C.
    Zhendong yu Chongji/Journal of Vibration and Shock, 2023, 42 (04): : 95 - 105
  • [35] Spatial Seismic Response of Long-Span Deck Type Railway Steel Truss Arch Bridge under Multidimensional Excitation
    Zhang, Yongliang
    Wang, Yun
    Chen, Xingchong
    Yu, Lusong
    Liu, Congcong
    Zhongguo Tiedao Kexue/China Railway Science, 2020, 41 (05): : 56 - 63
  • [36] Research on the Creep Control Factors of Railway Long-span Concrete Arch Bridge
    Chen, Kejian
    Yang, Guojing
    Hu, Yuzhu
    Journal of Railway Engineering Society, 2019, 36 (04) : 48 - 53
  • [37] Ultimate behavior of long-span steel arch bridges
    Cheng, J
    Jiang, JJ
    Xiao, RC
    Xiang, HF
    STRUCTURAL ENGINEERING AND MECHANICS, 2002, 14 (03) : 331 - 343
  • [38] Performance-based seismic design of long-span railway arch bridge
    Shao Changjiang
    Yang Huaping
    Qian Yongjiu
    SUSTAINABLE ENVIRONMENT AND TRANSPORTATION, PTS 1-4, 2012, 178-181 : 2329 - 2332
  • [39] Suspending placement of steel tubular arch truss articulations of CFST arch bridge with large span
    Wei, Q.
    Yang, Q.
    Wuhan Gongye Daxue Xuebao/Journal of Wuhan University of Technology, 2001, 23 (04): : 78 - 79
  • [40] Research on Seismic Performance on the 46.5m Long-span Steel Arch Structure with Arches
    Xiong Zhongming
    Liu Xiaotong
    CIVIL ENGINEERING IN CHINA - CURRENT PRACTICE AND RESEARCH REPORT, 2010, : 1137 - 1140