Prediction of fiber breakage and matrix cracking in polymeric composites under low-cycle fatigue regimes by fuzzy and wavelet clustering of acoustic emission signals

IF 0.3 Q4 MECHANICS
Sattar Mohammadi Esfarjani, M. Azadi, M. Alizadeh, Hassan Sayar
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引用次数: 0

Abstract

One of methods for detecting cracks and estimating their growth in materials such as composites is the acoustic emission technique. The detection of damages, cracks and their growth in industrial composite structures, under static and dynamic loads, has a significant importance, in order to prevent any damages and increase the reliability. Therefore, achieving required technical knowledge in this field, can be helpful in repairing and the maintenance of the part in industries. The prediction of the damage in polymeric composites under static loads has been already investigated by researchers; however, under cyclic loadings, researches about this behavior are still rare. In this study, by acoustic emission sensors and analyzing experimental data, the damage, including matrix cracking, the fiber breakage and other damages (debonding, fiber pull-out and delamination) during dynamic loading was investigated. At the first stage, standard specimens were made by the pure resin epoxy and the pure carbon fiber, subjected to monotonic tensile loading and then, the frequency of the failure was extracted. Then, composite specimens were loaded in the low-cycle fatigue regime. Mechanical test results and acoustic emission data were analyzed by fuzzy C-Means and wavelet transform methods and then compared to each other to find the percentage of failures in first, mid- and last cycles by the differentiation of failure types. Results clearly indicated that the acoustic emission approach is useful and an effective tool for identifying and detecting damages in polymeric composites.
基于声发射信号模糊聚类和小波聚类的低周疲劳状态下聚合物复合材料纤维断裂和基体断裂预测
声发射技术是在复合材料等材料中检测裂纹和估计裂纹扩展的方法之一。工业复合材料结构在静、动载荷作用下的损伤、裂纹及其扩展情况的检测,对于防止结构损伤、提高结构可靠性具有重要意义。因此,在该领域获得所需的技术知识,可以帮助维修和维护工业中的零件。聚合物复合材料在静载荷作用下的损伤预测已经得到了研究人员的广泛关注。然而,在循环荷载作用下,对这种行为的研究仍然很少。本研究通过声发射传感器和实验数据分析,研究了动力加载过程中基体开裂、纤维断裂和其他损伤(脱粘、纤维拔出和分层)。第一阶段采用纯树脂环氧树脂和纯碳纤维制备标准试样,进行单调拉伸加载,提取破坏频率;然后,在低周疲劳状态下加载复合材料试件。采用模糊c均值和小波变换方法对力学试验结果和声发射数据进行分析,并通过对失效类型的区分,对力学试验结果和声发射数据进行对比,得出了第一、中期和最后三个周期的失效比例。结果表明,声发射方法是识别和检测高分子复合材料损伤的有效工具。
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CiteScore
0.60
自引率
0.00%
发文量
24
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