Stability Evaluation of Steel Girder Members in Long-Span Cable-Stayed Bridges by Member-Based Stability Concept

被引:8
作者
Yoo, Hoon [2 ]
Na, Ho-Sung [1 ]
Choi, Eun-Soo [3 ]
Choi, Dong-Ho [1 ]
机构
[1] Hanyang Univ, Dept Civil & Environm Engn, Seoul 133791, South Korea
[2] Hyundai Inst Technol & Qual & Dev, Dept Adv Ind Technol, Seoul, South Korea
[3] Hongik Univ, Dept Civil Engn, Seoul, South Korea
关键词
elastic buckling length; inelastic buckling length; buckling instability; cable-stayed bridge; inelastic eigenvalue analysis; fictitious axial force; FRAMES;
D O I
10.1007/BF03215847
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The member-based design concept utilizing the buckling length of each structural member has been widely used to assess the buckling instability of steel structures. Since steel girder members in conventional cable-stayed bridges are generally exposed to large axial forces, the buckling instability of these members should be carefully investigated in the design stage. However, analytical approaches for obtaining the buckling lengths of steel members, such as the alignment chart, story-buckling and story-stiffness methods, may not be adopted to cable-stayed bridges because these approaches imply some theoretical assumptions that are adequate only for steel framed-structures. Furthermore, the boundary conditions of steel girder members supporting by cables are obscure to be prescribed in general terms. Numerical eigenvalue analysis may be one of the most excellent candidates for determining the buckling lengths of steel girder members in that this method can handle the interactions among members implicitly without any irrelevant assumptions for cable-stayed bridges. This paper discusses detailed procedures for obtaining buckling lengths of steel girder members in cable-stayed bridges by numerical eigenvalue analysis. In order to avoid the problem of generating excessively large buckling lengths in some girder members having small axial forces, a modified eigenvalue analysis is proposed by introducing the concept of a fictitious axial force. Practical application example for a real cable-stayed bridge is illustrated with some discussions on the effect of the proposed modification and stability evaluation by member-based stability concept.
引用
收藏
页码:395 / 410
页数:16
相关论文
共 50 条
  • [21] Life-Cycle Cost Analysis of Long-Span CFRP Cable-Stayed Bridges
    Liu, Yue
    Gu, Mingyang
    Liu, Xiaogang
    Tafsirojjaman, T.
    POLYMERS, 2022, 14 (09)
  • [22] Practical countermeasures for the aerodynamic performance of long-span cable-stayed bridges with open decks
    Zhou, Rui
    Yang, Yongxin
    Ge, Yaojun
    Mendis, Priyan
    Mohotti, Damith
    Wind and Structures, An International Journal, 2015, 21 (02): : 223 - 239
  • [23] Optimal Sensor Placement of Long-Span Cable-Stayed Bridges Based on Particle Swarm Optimization Algorithm
    Zhang, Xun
    Wang, Ping
    Xing, Jian-Chun
    Yang, Qi-Liang
    PRACTICAL APPLICATIONS OF INTELLIGENT SYSTEMS, ISKE 2013, 2014, 279 : 207 - 217
  • [24] Stability Analysis of a Composite Girder Cable-stayed Bridge
    Tian, Wusheng
    Liang, Bin
    Lv, Liang
    PROCEEDINGS OF THE 2017 6TH INTERNATIONAL CONFERENCE ON ENERGY, ENVIRONMENT AND SUSTAINABLE DEVELOPMENT (ICEESD 2017), 2017, 129 : 181 - 184
  • [25] Instrumentation for durability monitoring of a long-span cable-stayed bridge
    Hua, XG
    Ni, YQ
    Zhou, HF
    Ko, JM
    Smart Structures and Materials 2005: Sensors and Smart Structures Technologies for Civil, Mechanical, and Aerospace, Pts 1 and 2, 2005, 5765 : 982 - 991
  • [26] The Seismic Response Analysis of Long-Span Cable-Stayed Bridge
    Niu, Yongzhe
    Guo, Wenjie
    Li, Guangling
    Sun, Ruixin
    ADVANCES IN CIVIL AND STRUCTURAL ENGINEERING III, PTS 1-4, 2014, 501-504 : 1364 - +
  • [27] Seismic vulnerability analysis for long-span cable-stayed bridge
    Huang, Sheng-Nan
    Yang, De-Sheng
    Song, Bo
    Lu, Xin-Zheng
    Gongcheng Lixue/Engineering Mechanics, 2014, 31 (SUPPL.): : 86 - 90+98
  • [28] Multivariate statistical sensitivity analysis of the completed structural state for Long-span Cable-Stayed bridges
    Mei, Dapeng
    Shan, Deshan
    Luo, Lingfeng
    Gu, Xiaoyu
    STRUCTURES, 2022, 41 : 51 - 65
  • [29] Evaluation of Thermal Effects on Cable Forces of a Long-Span Prestressed Concrete Cable-Stayed Bridge
    Wang, J. F.
    Zhang, J. T.
    Xu, R. Q.
    Yang, Z. X.
    JOURNAL OF PERFORMANCE OF CONSTRUCTED FACILITIES, 2019, 33 (06)
  • [30] Seismic Displacements Reduction for a Long-Span Cable-Stayed Bridge
    Yang, Xi-wen
    Lian, Zi-bao
    ADVANCES IN CIVIL ENGINEERING, PTS 1-6, 2011, 255-260 : 840 - +