许福友

个人信息Personal Information

教授

博士生导师

硕士生导师

任职 : 国家杰青

性别:男

毕业院校:同济大学

学位:博士

所在单位:土木工程系

学科:桥梁与隧道工程. 防灾减灾工程及防护工程. 流体力学

办公地点:桥隧研发基地306

电子邮箱:fuyouxu@dlut.edu.cn

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Added mass and damping effects on vibrating bridge decks in still air

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论文类型:期刊论文

发表时间:2019-08-01

发表刊物:JOURNAL OF WIND ENGINEERING AND INDUSTRIAL AERODYNAMICS

收录刊物:SCIE、EI

卷号:191

页面范围:227-238

ISSN号:0167-6105

关键字:Bridge deck; Added mass and damping; Computational fluid dynamics; Free vibration

摘要:Due to the windless-air-induced added mass and damping effects, the mechanical frequency and damping ratio of a bridge deck model in wind tunnel test are usually under-estimated and over-estimated, respectively. In this study, the vertical and torsional added mass and damping and their effects on the mechanical frequency and damping ratio of an ideal plate and five typical bridge decks are thoroughly investigated based on single degreeof- freedom free vibration numerical simulations. The aerodynamic forces are linearly expressed as functions of vibrating accelerations, velocities, added mass coefficients, and added damping coefficients. The discrepancies between two-dimensional (2D) and three-dimensional (3D) simulations are found to be small. The numerical simulation accuracy is validated through comparison with the results from the Theodorsen expression and forced vibration simulations. It is found that the added mass coefficients are insensitive to the vibration amplitudes, while the added damping coefficients almost linearly increase with the amplitudes. Based on the added mass and damping coefficients, the vertical and torsional air-induced frequency reduction coefficients and aerodynamic damping ratios are calculated. Both the frequency reduction coefficients and aerodynamic damping ratios are closely related to deck configurations and model mass/mass moment of inertia, while independent of vibration frequencies. For the concerned six section models, the vertical and torsional frequency reduction coefficients are mainly located in the ranges of (1.0%, 2.5%) and (0.4%, 1.2%), respectively. The aerodynamic damping ratios are significantly dependent on the vibration amplitudes and may exceed the mechanical damping ratios for large amplitude cases. Based on numerical simulations, the mechanical frequency and damping ratio of a springsuspended deck model can be identified by excluding the added mass and damping effects.