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Continuous modal parameter identification of cable-stayed bridges based on a novel improved ensemble empirical mode decomposition

机译:基于一种新颖的改进的集合经验模式分解,缆绳座桥的连续模态参数识别

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摘要

The objective of this paper was to perform an effective and meticulous continuous modal parameter identification. Since the data obtained from the cable-stayed bridge was non-linear and time varying, and also there exists a phenomenon of mode mixing in the current decomposition techniques, such as empirical mode decomposition (EMD), which further complicates the extraction of accurate structural information, therefore, a novel improved Ensemble EMD method was proposed. This method can effectively deal with the non-linear and time varying structural behaviour and eliminate the phenomenon of mode mixing effectively, specially for cable-stayed bridges, because in this method the added white noise was selected by a pre-defined process and also the intrinsic mode function (IMF) selection was made self-adaptively, then finally Pareto technique was adopted to reconstruct the IMF. After the signal decomposition and reconstruction, Recursive Stochastic Subspace Identification was employed to carry out the continuous modal parameter identification. Sutong Yangtze Bridge, a long-span cable-stayed bridge, with main span of 1088m was taken as a case study and the proposed method was applied. The result showed that the proposed method was effective in attaining its goals and can endows better results in real life bridge health monitoring.
机译:本文的目的是进行有效和细致的连续模态参数识别。由于从电缆停留桥获得的数据是非线性的,并且还存在于电流分解技术中的模式混合现象,例如经验模式分解(EMD),这进一步使精确结构的提取复杂化因此,提出了一种新颖的改进的集合EMD方法。该方法可以有效地处理非线性和时变结构行为,并消除了有效的模式混合现象,特别是缆绳留桥,因为在该方法中,通过预定义的过程选择了添加的白噪声。本型模式功能(IMF)选择自适应,然后采用Pareto技术进行重建IMF。在信号分解和重建之后,采用递归随机子空间识别来进行连续的模态参数识别。 Sutong Yangtze桥,一个长跨度斜拉桥,主要是1088米的主要跨度为一个案例研究,并应用了所提出的方法。结果表明,该方法在实现其目标方面有效,并且可以在现实生活桥梁健康监测中赋予更好的结果。

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