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Dissipated thermal energy and damage evolution of Glass/Epoxy using infrared thermography and acoustic emission

机译:红外热成像和声发射耗散的热能和玻璃/环氧树脂的损坏演变

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摘要

In this paper, we present an experimental approach for characterizing energy dissipation and degradation evolution in a woven Glass/Epoxy (G10/FR4) laminate subjected to fully reversed bending fatigue test. During cyclic loading, a fraction of the input mechanical energy is converted to thermal energy, which results in an increase in the temperature of the specimen. By analyzing the surface temperature and its drop rate after halting the cyclic operation, the dissipated thermal energy (DTE) is estimated. Infrared thermography is used to assess the temperature evolution and to various damage states. Acoustic emis sion is also utilized to corroborate the thermography results in characterizing the degradation progres sion. The results of these two non-intrusive techniques show similar evolutionary response revealing the existence of degradation stages. Using calculated DTE, a damage growth model is developed that appropriately characterizes the three damage phases during fatigue process of Glass/Epoxy.
机译:在本文中,我们提出了一种用于表征经过完全反向弯曲疲劳测试的机织玻璃/环氧树脂(G10 / FR4)层压板中的能量耗散和降解演变的实验方法。在循环加载过程中,一部分输入的机械能会转换为热能,从而导致样品温度升高。通过在停止循环操作后分析表面温度及其下降速率,可以估算出散热热能(DTE)。红外热像仪用于评估温度变化和各种损坏状态。声发射还被用于证实热成像结果,以表征降解过程。这两种非侵入性技术的结果显示出相似的进化反应,揭示了降解阶段的存在。使用计算得出的DTE,建立了损伤增长模型,该模型可以适当表征玻璃/环氧树脂疲劳过程中的三个损伤阶段。

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