Temperature behavior of cable-stayed bridges. Part II - temperature actions by using unified analysis

被引:12
|
作者
Shan, Yushi [1 ]
Jing, Qiang [2 ]
Li, Lingfang [1 ]
Gao, Wenbo [2 ]
Xia, Zili [2 ]
Xia, Yong [1 ,3 ]
机构
[1] Hong Kong Polytech Univ, Dept Civil & Environm Engn, Hong Kong, Peoples R China
[2] Hong Kong Zhuhai Macao Bridge Author, Zhuhai, Guangdong, Peoples R China
[3] Hong Kong Polytech Univ, Dept Civil & Environm Engn, Kowloon, 11 Yuk Choi Rd,ZN925, Hong Kong, Peoples R China
关键词
temperature-induced response; temperature behavior; cable-stayed bridge; numerical analysis; structural health monitoring; HEALTH MONITORING-SYSTEM; LONG-TERM DISPLACEMENT; STRUCTURAL DAMAGE; FIELD;
D O I
10.1177/13694332231175392
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The temperature action of long-span cable-stayed bridges is complicated because of the high indeterminacy of their structure. Previous studies on the temperature behavior of bridges were either limited by finite sensors, failing to capture the accurate relation between the temperature field and temperature-induced responses, or constrained to a "divide-and-conquer" strategy, requiring considerable manual intervention and regarded as computationally inefficient. This study develops a unified approach to the investigation of thermal behaviors of cable-stayed bridges by integrating the heat-transfer analysis and structural analysis based on the same refined global 3D finite element model. The companion paper (Part I) investigates the temperature distribution, while this paper (Part II) focuses on temperature-induced responses. The temperature distribution data is automatically converted to thermal loads, and thermal elements are changed to structural elements to calculate the temperature-induced responses of the bridge. Results show that the effect of the temperature variation of cables is nonnegligible and should be taken into account during the structural analysis. The longitudinal displacement of the girder and the longitudinal displacement of the tower top are mainly influenced by the average girder temperature, the mid-span deflection and the cable stress are dominated by the cable temperature and average girder temperature, and the stress of the girder is controlled by the vertical temperature difference. The ratio of the thermal stress to the dead load stress of the girder can reach 96%. The calculated displacement and stress of the bridge agree well with the corresponding measurements, consequently verifying the effectiveness of the proposed unified approach to calculating temperature-induced responses.
引用
收藏
页码:1600 / 1620
页数:21
相关论文
共 50 条
  • [1] Temperature Behavior of Cable-stayed Bridges by Using Unified Analysis
    Shan, Yushi
    Xia, Yong
    e-Journal of Nondestructive Testing, 2024, 29 (07):
  • [2] Cable-Stayed Bridges.
    Ciolina, F.
    Travaux, 1975, (478): : 60 - 63
  • [3] CABLE-STAYED BRIDGES.
    Podolny Jr., Walter
    Engineering Journal, 1974, 11 (1 First Q): : 1 - 11
  • [4] CABLE-STAYED BRIDGES.
    Chalisgaonkar, Rajendra
    Indian Concrete Journal, 1986, 60 (07): : 182 - 186
  • [5] STATIC ANALYSIS OF CABLE-STAYED BRIDGES.
    Hegab, H.I.A.
    Proceedings of the Institution of Civil Engineers (London), 1986, 81 (pt 2): : 497 - 510
  • [6] ENERGY ANALYSIS OF CABLE-STAYED BRIDGES.
    Hegab, Hassan I.A.
    Journal of structural engineering New York, N.Y., 1986, 112 (05): : 1182 - 1195
  • [7] SIMPLIFIED ANALYSIS OF CABLE-STAYED BOX BRIDGES.
    Loo, Yew-Chaye
    Srivanich, Somyos
    International Journal of Structures, 1983, 3 (03): : 93 - 103
  • [8] Single Stayed Cables for Cable-stayed Bridges.
    Tschemmernegg, F.
    Obholzer, A.
    Bauingenieur Berlin, 1981, 56 (09): : 325 - 330
  • [9] EFFECT OF CABLE STIFFNESS ON CABLE-STAYED BRIDGES.
    Krishna, P.
    Arya, A.S.
    Agrawal, T.P.
    Journal of structural engineering New York, N.Y., 1985, 111 (09): : 2008 - 2020
  • [10] EVOLUTION OF CONCRETE CABLE-STAYED BRIDGES.
    Podolny Jr., Walter
    Concrete International, 1981, 3 (08) : 34 - 42