Practical Suggestions for Specifications for the Vibration Serviceability of Footbridges Based on Two Recent Long-Span Footbridges

被引:6
|
作者
Gong, Ming [1 ]
Shen, Ruili [1 ]
Li, Yunsheng [2 ]
Wang, Hui [3 ]
Chen, Wei [3 ]
Wei, Xinxin [4 ]
机构
[1] Southwest Jiaotong Univ, Sch Civil Engn, Dept Bridge Engn, Chengdu, Peoples R China
[2] Shijiazhuang Tiedao Univ, Sch Civil Engn, Shijiazhuang, Peoples R China
[3] Southwest Jiaotong Univ, Sch Civil Engn, Dept Bridge Engn, Chengdu, Peoples R China
[4] Ruhr Univ Bochum, Dept Civil & Environm Engn, Bochum, Germany
关键词
human-induced vibration; footbridges; vibration serviceability; design specification performance evaluation; vibration mitigation; IDENTIFICATION;
D O I
10.1080/10168664.2022.2149376
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Human-induced vibration serviceability often governs the dynamic design of modern footbridges. Many design specifications have been issued, applying different load models, response calculation strategies and comfort limits (three key aspects), which may inevitably cause inconsistent evaluation results for the same structure. It requires the comparison of specifications, and better practical suggestions proposed, to guide the vibration serviceability of footbridges. This article performs the most comprehensive evaluation of specification performance. It includes six current specifications: the UK NA, the HiVoSS guidelines, the Setra guidelines, the ISO standard, the American guide and the Chinese standard. After comparison of the three key aspects, practical suggestions are proposed. Evaluations are made based on two recent long-span footbridges in China. The footbridges are found to be low in damping ratios and there exist low and close natural frequencies, even closely-spaced modes. Vibration serviceability assessments show obviously inconsistent results owing to differences in the three key aspects. Furthermore, owing to contributions of closely-space modes, the total structural responses are significantly larger than the single dominating mode (often applied in response calculations according to the specifications). Thus, the article suggests considering the contributions of multiple modes in designing for the vibration serviceability of long-span footbridges. Finally, considering large vibrations, mitigation measures are applied. Instead of applying external dampers, e.g. tuned mass dampers (which may add to the economic costs of the structure), effective vibration mitigation measures are suggested by changing structural parameters. Except for the traditionally applied wind-resistant cables, a steel box girder with infilled concrete is applied to the main girder, replacing the original design. As a result, vibration amplitudes are significantly reduced. Footbridges are also made less sensitive to human-induced excitation.
引用
收藏
页码:659 / 676
页数:18
相关论文
共 50 条
  • [31] Simplified Analysis Method of Car-Body Vibration Acceleration on Bridge Based on Long-Span Bridge Deformation
    Yang J.
    Gao M.
    Zhao W.
    Li G.
    Ke Z.
    Meng J.
    Zhongguo Tiedao Kexue/China Railway Science, 2023, 44 (04): : 101 - 110
  • [32] Evaluation of the reinforcement scheme for a long-span curved truss bridge based on vehicle-bridge coupled vibration analysis
    Wang Y.
    Liu Z.
    Zhou R.
    Chen H.
    Zhao Z.
    Zhendong yu Chongji/Journal of Vibration and Shock, 2022, 41 (14): : 199 - 209
  • [33] Machine-learning-based prediction of vortex-induced vibration in long-span bridges using limited information
    Kim, Sunjoong
    Kim, Taeyong
    ENGINEERING STRUCTURES, 2022, 266
  • [34] Assessment of Long-Span Bridge Performance Issues through an Iterative Approach to Ambient Vibration-Based Structural Identification
    Dubbs, N. C.
    Moon, F. L.
    JOURNAL OF PERFORMANCE OF CONSTRUCTED FACILITIES, 2016, 30 (05)
  • [35] An active vibration suppression method for the flutter of long-span suspension bridges based on posture-adjustable aerodynamic winglets
    Li, Ke
    Ge, Yaojun
    Zhao, Lin
    Tumu Gongcheng Xuebao/China Civil Engineering Journal, 2019, 52 (12): : 93 - 103
  • [36] Domain adaptation based automatic identification method of vortex induced vibration of long-span bridges without prior information
    Wan, Chunfeng
    Hou, Jiale
    Zhang, Guangcai
    Gao, Shuai
    Ding, Youliang
    Cao, Sugong
    Hu, Hao
    Xue, Songtao
    ENGINEERING APPLICATIONS OF ARTIFICIAL INTELLIGENCE, 2025, 139
  • [37] Vortex-Induced Vibration of Long Suspenders of a Long-Span Suspension Bridge and Its Effect on Local Deck Acceleration Based on Field Monitoring
    Su, Xun
    Mao, Jianxiao
    Wang, Hao
    Gao, Hui
    Guo, Xiaoming
    Zong, Hai
    STRUCTURAL CONTROL & HEALTH MONITORING, 2024, 2024
  • [38] Vortex-induced vibration dynamic characteristics monitoring with AI-based target object detection for long-span bridges
    Qin, Jingxi
    Zhang, Mingjin
    Yuan, Renan
    Ti, Zilong
    Jiang, Fanying
    STRUCTURES, 2024, 64
  • [39] Investigation of Cable-beam-related Vibration in Long-span Cable-stayed Bridge Based on Wind and Train Effects
    Wang T.
    Liu D.-G.
    Huang H.
    Zhongguo Gonglu Xuebao/China Journal of Highway and Transport, 2021, 34 (04): : 105 - 118
  • [40] Impact Coefficient Analysis of Long-Span Railway Cable-Stayed Bridge Based on Coupled Vehicle-Bridge Vibration
    Li, Yongle
    Dong, Shifu
    Bao, Yulong
    Chen, Kejian
    Qiang, Shizhong
    SHOCK AND VIBRATION, 2015, 2015