Pedestrian-induced footbridge vibration response based on a simple beam analytical method

Author:

Feng Yuhao,Chen DeyiORCID,Wang Zhenyu,Huang Shiping,He Yuejie

Abstract

AbstractThis article aims to study the quantitative calculation of pedestrian-induced footbridge vibration comfort. Firstly, the analytical expression for the vibration response was derived. In addition, the simplified formula of the vibration response under resonance condition was put forward. The proposed analytical solution was compared with the numerical solution and the experimental result. Secondly, the analytical method was used to calculate the acceleration response under different crowd densities. The peak acceleration distribution and cumulative probability were analyzed. Finally, the cumulative probability that exceeded the acceleration limit was proposed as the comfort evaluation index, and the improved annoyance rate model was used to verify the proposed evaluation method. The results demonstrate that the analytical method can efficiently calculate the dynamic response of footbridges. Errors between the analytical results and the experimental results are less than 6.2%. Vibration comfort is negatively correlated with crowd density and walking speed. Furthermore, the errors between the proposed discomfort probability values and the calculated annoyance rate results are within 6%.

Funder

National Natural Science Foundation of China

Publisher

Springer Science and Business Media LLC

Subject

General Medicine

Reference28 articles.

1. AASHTO (2008) Guide specifications for design of FRP pedestrian bridges. AASHTO, Washington DC

2. Basaglia B, Li J, Shrestha R et al (2021) Response prediction to walking-induced vibrations of a long-span timber floor. J Struct Eng 147(2):04020326

3. Blanco C. M, et al. (2005) Structural dynamic design of a footbridge under pedestrian loading. SAMTECH User Conference

4. BSI (British Standards Institution) (1979) Steel, concrete and composite bridges. Part 5: Code of practice for design of composite bridges. BS 5400. BSI, London

5. Cao L (2016) Research on human-induced vibration response and vibration control of long-span floor in high-speed railway waiting hall. Southeast University, Nanjing

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