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Micro-mechanisms of fatigue in short glass fiber reinforced polyamide 66: A multi-scale experimental analysis

机译:短玻璃纤维增​​强聚酰胺66疲劳的微观机制:多尺度实验分析

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摘要

The objective of this work is to identify and to analyze the main micro-mechanisms which govern the fatigue behavior of a short glass fiber reinforced polyamide 66 composite through a multi-scale experimental analysis. Tension-tension fatigue tests have been performed at different applied maximum stress and have been analyzed at both microscopic and macroscopic scale. Together with the progressive stiffness reduction, the temperature rise due to self-heating during cyclic loading has been measured using an infrared camera. Moreover, SEM fractography observations have been performed to assess the chronology of deformation mechanisms. Two principal mechanisms have been identified: matrix deformation due to self-heating and fiber-matrix interface damage. In addition, localized deformation zones have been observed around the fibers. The evolution of the size of these micro-ductile areas have been statistically related to the maximum applied stress. Finally, a competition between thermal fatigue and mechanical fatigue have been shown according to the loading amplitude.
机译:这项工作的目的是通过多尺度实验分析来识别和分析控制短玻璃纤维增​​强聚酰胺66复合材料疲劳行为的主要微观机制。拉伸疲劳试验已在不同的最大施加应力下进行,并已在微观和宏观尺度上进行了分析。连同逐渐降低的刚度,已使用红外摄像机测量了循环加载过程中由于自热引起的温度升高。此外,已经进行了SEM断层扫描观察以评估变形机理的时间顺序。已经确定了两种主要机理:由于自热引起的基质变形和纤维-基质界面的破坏。另外,在纤维周围观察到局部变形区。这些微延展性区域的尺寸演变在统计上与最大施加应力有关。最后,根据载荷振幅显示了热疲劳和机械疲劳之间的竞争。

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