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Effect of the matrix behavior on the damage of ethylene–propylene glass fiber reinforced composite subjected to high strain rate tension

机译:基体行为对高应变速率张力下乙烯-丙烯玻璃纤维增​​强复合材料损伤的影响

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摘要

This study investigates the origin of the strain rate effect on the mechanical behavior of a discontinuous glass fiber reinforced ethylene–propylene copolymer (EPC) matrix composite. This kind of composite materials are commonly used for automotive functional and structural applications. To this aim, a multi-scale experimental approach is developed. The deformation processes and the damage mechanisms observed at the microscopic scale are related to the material mechanical properties at the macroscopic scale. Tensile tests up to failure and specific interrupted tensile tests have been optimized and performed for high strain rates up to 200 s 1 to quantify the strain rate effect at different scales. High speed tensile tests have also been performed on the pure copolymer matrix. The threshold and the kinetic of damage have been quantified at both microscopic and macroscopic scales. Experimental results show that the composite behavior is strongly strain-rate dependent. The multi-scale analysis leads to the conclusion that the strain rate effect on the damage behavior of the EPC matrix composite is mainly due to the viscous behavior of the EPC matrix. SEM observations and analysis show that a localized deformation in the interface zone around fibers occurs at high strain rates and directly affects the visco-damage behavior. It is established that when the strain rate increases, the local deformation zone around the fibers behaves like a dissipation zone. Consequently, the damage initiation is delayed and the related kinetic is reduced with respect to the quasi-static loading case.
机译:这项研究调查了应变速率对不连续玻璃纤维增​​强的乙烯-丙烯共聚物(EPC)基复合材料力学性能的影响。这种复合材料通常用于汽车功能和结构应用。为此,开发了一种多尺度实验方法。在微观尺度上观察到的变形过程和破坏机理与宏观尺度上的材料力学性能有关。已对直至200 s 1的高应变率进行了优化,并进行了直至断裂的拉伸试验和特定的间断拉伸试验,以量化不同尺度下的应变率效应。还对纯共聚物基体进行了高速拉伸试验。阈值和破坏动力学已在微观和宏观尺度上进行了量化。实验结果表明,复合材料的行为与应变率密切相关。多尺度分析得出的结论是,应变速率对EPC基体复合材料损伤行为的影响主要归因于EPC基体的粘性行为。 SEM观察和分析表明,纤维周围界面区域的局部变形以高应变率发生,并直接影响粘滞破坏行为。可以确定的是,当应变率增加时,纤维周围的局部变形区域表现为耗散区域。因此,相对于准静态载荷情况,损伤的产生被延迟并且相关的动力学减小。

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