Research on Hanger Force and Main Arch Stability of Long-Span Concrete-Filled Steel Tube Arch Bridge

被引:1
作者
Wu, Yanli [1 ]
Qiu, Mowei [1 ]
Ma, Shaokun [2 ]
Gao, Xinlei [3 ]
Han, Yahong [3 ]
机构
[1] Huanghe Jiaotong Univ, Wuzhi 454950, Henan, Peoples R China
[2] Guangxi Univ, Sch Civil Engn, Nanning 530004, Peoples R China
[3] Urban Water Resources Co Ltd, Natl Engn Res Ctr, Harbin Inst Technol, Harbin 150006, Peoples R China
关键词
D O I
10.1155/2022/3541528
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
In recent years, the construction of a CFST arch bridge has developed rapidly; however, as a kind of structural system dominated by compression, with the increase of material strength and span, the stability of the main arch of the CFST arch bridge has become more and more important. In this paper, the finite element method is used to analyze the hanger force and the main arch stability of the long-span CFST arch bridge. Combined with the Shenzhen Rainbow Bridge project, the axial force of the hanger, the internal force, and stability of the main arch of the arch bridge are studied. In the establishment of the finite element model, considering the actual operation of the arch bridge, the model simulates the interaction between steel pipe and concrete, it studies the large deformation of CFST arch bridges, and the stress distribution and overall stability of the arch bridge are analyzed. The results show that the main deformation of the CFST arch bridge is the vertical displacement of the deck, and the axial force of most members of the upper arch ribs is greater than that of the lower arch ribs. The axial force and bending moment of the lower arch rib near the arch foot are larger, and the compressive stress of the arch foot is greater than that of other positions. The axial force of the suspender of the arch bridge is the largest at both ends of the hanger and the middle hanger, and the axial force of the other hanger is close to each other, and the axial force changes little under the same case. The buckling modes of the arch are mainly the lateral buckling or flexural buckling of the arch rib outside the plane, which indicates that the vertical stiffness of the arch bridge structure is larger than that of the transverse stiffness. The research results make the load-bearing mechanism of the CFST arch bridge more clear and also provide a certain reference for the design and construction of the CFST arch bridge.
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页数:14
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共 20 条
  • [11] Insights into Controlling Factors of Pore Structure and Hydraulic Properties of Broken Rock Mass in a Geothermal Reservoir
    Li, Qiang
    Ma, Dan
    Zhang, Yandong
    Liu, Yong
    Ma, Yingjian
    [J]. LITHOSPHERE, 2022, 2021 (Special Issue 5)
  • [12] Li W., 2020, J LANZHOU JIAOTONG U, V39, P13
  • [13] Numerical Simulation of Water-Silt Inrush Hazard of Fault Rock: A Three-Phase Flow Model
    Ma, Dan
    Duan, Hongyu
    Zhang, Jixiong
    Liu, Xianwei
    Li, Zhenhua
    [J]. ROCK MECHANICS AND ROCK ENGINEERING, 2022, 55 (08) : 5163 - 5182
  • [14] Shu-Guang G., 2004, ANSYS OPERATING COMM
  • [15] Wei-wei X., 2021, WORLD BRIDGES, V49, P83
  • [16] Xie Weiwei, 2018, China Railway Science, V39, P39, DOI 10.3969/j.issn.1001-4632.2018.01.06
  • [17] A Scaled Boundary Finite-Element Method with B-Differentiable Equations for 3D Frictional Contact Problems
    Xue, Binghan
    Du, Xueming
    Wang, Jing
    Yu, Xiang
    [J]. FRACTAL AND FRACTIONAL, 2022, 6 (03)
  • [18] Yuyin W., 2015, J BUILDING STRUCTURE, V36, P107
  • [19] [张思远 Zhang Siyuan], 2022, [中国安全生产科学技术, Journal of Safety Science and Technology], V18, P185
  • [20] [周倩 Zhou Qian], 2020, [哈尔滨工业大学学报, Journal of Harbin Institute of Technology], V52, P82