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首页> 外文期刊>Journal of Zhejiang University. Science, A >Fused empirical mode decomposition and wavelets for locating combined damage in a truss-type structure through vibration analysis*
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Fused empirical mode decomposition and wavelets for locating combined damage in a truss-type structure through vibration analysis*

机译:通过振动分析将熔合经验模式分解和小波定位桁架式结构中的组合损坏*

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摘要

Structural health monitoring (SHM) is a relevant topic for civil systems and involves the monitoring, data processing and interpretation to evaluate the condition of a structure, in order to detect damage. In real structures, two or more sites or types of damage can be present at the same time. It has been shown that one kind of damaged condition can interfere with the detection of another kind of damage, leading to an incorrect assessment about the structure condition. Identifying combined damage on structures still represents a challenge for condition monitoring, because the reliable identification of a combined damaged condition is a difficult task. Thus, this work presents a fusion of methodologies, where a single wavelet-packet and the empirical mode decomposition (EMD) method are combined with artificial neural networks (ANNs) for the automated and online identification-location of single or multiple-combined damage in a scaled model of a five-bay truss-type structure. Results showed that the proposed methodology is very efficient and reliable for identifying and locating the three kinds of damage, as well as their combinations. Therefore, this methodology could be applied to detection-location of damage in real truss-type structures, which would help to improve the characteristics and life span of real structures.
机译:结构健康监测(SHM)是民用系统的相关主题,并涉及监测,数据处理和解释,以评估结构的条件,以便检测损坏。在真实的结构中,可以同时存在两个或更多个损坏或类型的损坏。已经表明,一种损坏的条件可能会干扰另一种损坏的检测,导致对结构条件的评估不正确。识别结构的组合损坏仍然是条件监测的挑战,因为合并损坏条件的可靠识别是一项艰巨的任务。因此,该工作提出了方法的融合,其中单个小波分组和经验模式分解(EMD)方法与人工神经网络(ANN)组合,用于自动化和在线识别 - 单一或多组合损坏的位置一个五托架桁架式结构的缩放模型。结果表明,拟议的方法是非常有效可靠,用于识别和定位三种损坏以及它们的组合。因此,该方法可以应用于真实桁架型结构损坏的检测位置,这将有助于改善真实结构的特性和寿命。

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