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首页> 外文期刊>Journal of Reinforced Plastics and Composites >Prediction of delamination growth in carbon/epoxy composites using a novel acoustic emission-based approach
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Prediction of delamination growth in carbon/epoxy composites using a novel acoustic emission-based approach

机译:使用基于声发射的新方法预测碳/环氧复合材料中的分层增长

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摘要

Delamination is the most common failure mode in laminated composites and it leads to loss of structural strength and stiffness. In this paper, acoustic emission monitoring was applied on the carbon/epoxy laminated composites when subjected to mode I, mode II, and mixed-mode I and II loading conditions. The main objective is to investigate delamination behavior and to predict propagation curve of the delamination in different G(II)/G(T) modal ratio values by the acoustic emission. First, a combination of acoustic emission and mechanical data (sentry function) is used to characterize the propagation stage of the delamination. Next, the crack tip location during propagation of the delamination in the specimens is identified using two methods. In the first method, by determining the velocity of the acoustic emission waves in the specimens, the position of the crack tip can be estimated throughout the tests. In the second method, the cumulative energy of the acoustic emission signals is utilized for localization of the crack tip. Agreement between the predicted crack length and the actual crack length verifies the presented procedures. It can be concluded from the results that the acoustic emission method is a powerful approach to investigate the delamination behavior and to estimate the crack tip position in the composites.
机译:分层是层压复合材料中最常见的破坏模式,它会导致结构强度和刚度的损失。在本文中,当处于模式I,模式II以及混合模式I和II加载条件下时,对碳/环氧层压复合材料进行声发射监测。主要目的是研究分层行为,并通过声发射预测分层在不同G(II)/ G(T)模态比值中的传播曲线。首先,结合使用声发射和机械数据(哨兵功能)来表征分层的传播阶段。接下来,使用两种方法来确定在样品中分层传播过程中裂纹尖端的位置。在第一种方法中,通过确定样本中声发射波的速度,可以在整个测试过程中估计裂纹尖端的位置。在第二种方法中,声发射信号的累积能量被用于裂纹尖端的定位。预测的裂纹长度和实际的裂纹长度之间的一致性验证了所提出的程序。从结果可以得出结论,声发射法是研究分层行为和估计复合材料中裂纹尖端位置的有效方法。

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