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Using Clustering of Acoustic Emission Signals on Damage Mechanisms Analysis of Quasi-isotropic Self-reinforced Polyethylene Composites

机译:使用声发射信号对准各向同性自增强聚乙烯复合材料的损伤机制分析

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Acoustic emission (AE) was used to monitor the damage process in quasi-isotropic self-reinforced polyethylene composites (UHMWPE/LDPE) under quasi-static tensile load. The collected AE signals were classified by using the unsupervised pattern recognition (PR) technique, to identify the various mechanisms in the composites. The fracture surfaces of the specimens were observed by a scanning electron microscope (SEM)., By combining the best clustering results with the observation results, correlations were established between the AE signal classes and the damage modes. The initiation and progression of the damage was then reviewed by the cumulative AE hits of each damage mode versus strain curves. A reliable identification of AE signals and a clear view of damage mechanisms in the composites are obtained in this study.
机译:声发射(AE)用于在准静态拉伸负荷下监测准各向同性自增强聚乙烯复合材料(UHMWPE / LDPE)的损伤过程。通过使用无监督模式识别(PR)技术来识别复合材料中的各种机制来分类收集的AE信号。通过扫描电子显微镜(SEM)观察标本的断裂表面。,通过将最佳聚类结果与观察结果组合,在AE信号类和损坏模式之间建立相关性。然后通过每个损伤模式与应变曲线的累积AE命中审查损坏的启动和进展。在本研究中获得了AE信号的可靠识别AE信号和复合材料中的损伤机构的清晰视图。

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