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首页> 外文期刊>Journal of structural engineering >Characterizing Nonstationary Wind Speed Using Empirical Mode Decomposition
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Characterizing Nonstationary Wind Speed Using Empirical Mode Decomposition

机译:使用经验模态分解表征非平稳风速

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摘要

This paper explores how to characterize nonstationary wind speed that can be modeled as a deterministic time-varying mean wind speed component plus a stationary random process for the fluctuating wind speed component. The time-varying mean wind speed is naturally extracted from the nonstationary wind data using the empirical mode decomposition (EMD). The proposed approach is then applied to the wind data recorded by the anemometers installed in the Tsing Ma suspension Bridge during Typhoon Victor to find its time-varying mean wind speed, probability distribution of fluctuating wind speed, wind spectrum, turbulence intensity, and gust factor. The resulting wind characteristics are compared with those obtained by the traditional approach based on a stationary wind model. It is found that most of nonstationary wind data can be decomposed into a time-varying mean wind speed plus a well-behaved fluctuating wind speed admitted as a stationary random process with a Gaussian distribution. The time-varying mean wind speed identified by EMD at a designated intermittency frequency level is more natural than the traditional time-averaged mean wind speed over the certain time interval. The proposed approach can also be applied to stationary wind speed with the same output as obtained by the traditional approach. It is concluded that the proposed approach is more appropriate than the traditional approach for characterizing wind speed.
机译:本文探讨了如何表征非平稳风速,可以将其建模为确定性的时变平均风速分量以及波动风速分量的平稳随机过程。使用经验模式分解(EMD),自然地从非平稳风数据中提取时变平均风速。然后将拟议的方法应用于台风维克多期间青马悬索桥上安装的风速计记录的风数据,以求出其时变平均风速,波动风速的概率分布,风谱,湍流强度和阵风因子。将所得风特征与通过基于固定风模型的传统方法获得的风特征进行比较。结果发现,大多数非平稳风数据可以分解为随时间变化的平均风速,加上表现良好的波动风速,可以作为具有高斯分布的平稳随机过程。由EMD在指定的间歇频率级别确定的时变平均风速比传统的平均时间平均风速在特定时间间隔内更自然。所提出的方法还可以应用于具有与传统方法相同的输出的固定风速。结论是,提出的方法比传统方法更适合表征风速。

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