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

扫描关注

论文成果

当前位置: 中文主页 >> 科学研究 >> 论文成果

Experimental Explorations of the Torsional Vortex-Induced Vibrations of a Bridge Deck

点击次数:

论文类型:期刊论文

发表时间:2016-12-01

发表刊物:JOURNAL OF BRIDGE ENGINEERING

收录刊物:SCIE、Scopus

卷号:21

期号:12

ISSN号:1084-0702

关键字:Bridge; Vortex-induced vibration (VIV); Wind tunnel test; Simultaneous pressure measurement; Aerodynamic countermeasure; Vibration mitigation

摘要:With the specific objective of exploring the surface pressure characteristics and further revealing the torsional vortex-induced vibration (VIV) mechanisms of a bridge deck with a particular geometry, numerous simultaneous pressure measurement campaigns were performed in a wind tunnel for aerodynamic-countermeasure-modified and unmodified sections of a section model at different angles of incidence under the conditions of smooth or turbulent flow. The mean and fluctuating pressure distributions, instantaneous pressures at typical instants, dominant pressure frequencies, pressure phase differences at the dominant frequency of individual pressure measurement taps, and the correlation coefficients among local and global torsional moments were studied, revealing the origins and mechanisms of torsional VIVs. The results demonstrate that the angle of incidence, flow conditions (smooth or turbulent), and installation of a spoiler exert significant effects on the surface pressure distributions, hence affecting the corresponding aerodynamic performance of the bridge deck. Turbulence on the top surface can potentially neutralize the vortex shedding effects and enhance immunity to torsional VIVs. The signature turbulence from the leading (fairing) edge was effectively weakened or even destroyed by sufficiently intense oncoming turbulence and/or the turbulence generated by a spoiler with an appropriate configuration and location. Therefore, potential torsional VIVs could be suppressed by the interaction of vortices generated by oncoming and signature turbulences. This knowledge is essential for a thorough evaluation of the potential for torsional VIVs for this particular bridge deck.