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Clustering of interlaminar and intralaminar damages in laminated composites under indentation loading using Acoustic Emission

机译:压痕载荷下声发射在层状复合材料中层间和层内损伤的聚类

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摘要

This study focuses on the clustering of the indentation-induced interlaminar and intralaminar damages in carbon/epoxy laminated composites using Acoustic Emission (AE) technique. Two quasi-isotropic specimens with layups of [60/0/-60](4S) (is named dispersed specimen) and [60(4)/0(4)/-604](s) (is named blocked specimen) were fabricated and subjected to a quasi-static indentation loading. The mechanical data, digital camera and ultrasonic C-scan images of the damaged specimens showed different damage evolution behaviors for the blocked and dispersed specimens. Then, the AE signals of the specimens were clustered for tracking the evolution behavior of different damage mechanisms. In order to select a reliable clustering method, the performance of six different clustering methods consisting of k-Means, Genetic k-Means, Fuzzy C-Means, Self-Organizing Map (SOM), Gaussian Mixture Model (GMM), and hierarchical model were compared. The results illustrated that hierarchical model has the best performance in clustering of AE signals. Finally, the evolution behavior of each damage mechanism was investigated by the clustered AE signals with hierarchical model. The results of this study show that using AE technique with an appropriate clustering method such as hierarchical model could be an applicable tool for structural health monitoring of composite structures.
机译:这项研究的重点是利用声发射(AE)技术对碳/环氧层压复合材料中压痕引起的层间和层内损伤的聚类。叠合为[60/0 / -60](4S)的两个准各向同性试样(称为分散试样)和[60(4)/ 0(4)/-604](s)(称为封闭试样)制造并承受准静态压痕载荷。损坏样本的机械数据,数码相机和超声波C扫描图像显示出阻塞和分散样本的不同破坏演化行为。然后,将标本的声发射信号聚类,以跟踪不同损伤机制的演化行为。为了选择可靠的聚类方法,对六种不同的聚类方法进行了性能分析,包括k均值,遗传k均值,模糊C均值,自组织映射(SOM),高斯混合模型(GMM)和分层模型比较。结果表明,分层模型在AE信号的聚类中具有最佳性能。最后,通过聚类的带有分层模型的声发射信号,研究了每种损伤机制的演化行为。这项研究的结果表明,将AE技术与适当的聚类方法(例如层次模型)一起使用可能是适用于复合结构结构健康监测的工具。

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