Prediction of long-term extreme response due to non-Gaussian wind on a HSR cable-stayed bridge by a hybrid approach

被引:6
|
作者
Xu, Zhiwei [1 ]
Dai, Gonglian [1 ,2 ]
Chen, Y. Frank [3 ]
Rao, Huiming [4 ]
机构
[1] Cent South Univ, Sch Civil Engn, Changsha, Hunan, Peoples R China
[2] Natl Engn Lab Construction Technol High Speed Rail, Changsha, Hunan, Peoples R China
[3] Penn State Univ, Dept Civil Engn, Middletown, PA USA
[4] Southeast Coastal Railway Fujian Co Ltd, Fuzhou, Fujian, Peoples R China
关键词
Bridge engineering; Extreme response; Non-Gaussian wind; Machine learning; Wind field measurement; High-speed railway; DYNAMIC RELIABILITY-ANALYSIS; DISTRIBUTIONS; TURBINE; SIMULATION; LOAD; WAVE;
D O I
10.1016/j.jweia.2022.105217
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The effect of non-Gaussian inflows on structural long-term extreme buffeting responses has been little investi-gated. In this study, the sensitivity of long-term extreme value distribution (EVD) of a high-speed railway cable -stayed bridge to the non-Gaussian intensity is studied first. The turbulence skewness and kurtosis are then taken as the environmental variables to investigate their single and combined effects on bridge's long-term EVDs based on a proposed hybrid approach that combines the machine learning algorithm and virtual process method. The 2.5-year measured turbulence wind and 40-year annual extreme wind speed recorded near the bridge site are utilized to describe the probability distributions of the skewness and kurtosis of turbulence wind and 10-min mean wind speed. The research results reveal that: (1) the long-term EVD of torsional angle is more sensitive to non-Gaussian turbulence wind than vertical and lateral extreme responses; (2) the single effect of turbulence skewness is detrimental but limited, and the combined effect of skewness and kurtosis of turbulence u (w) is also weak within the considered MRIs (1-100 years). Lastly, the virtual process method is shown to be applicable to predict structural long-term EVDs; and it is efficient without losing significant prediction accuracy.
引用
收藏
页数:21
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