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Low-Velocity Impacts in Continuous Glass Fiber/Polypropylene Composites

机译:连续玻璃纤维/聚丙烯复合材料的低速冲击

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The low-velocity impact behavior of a continuous glass fiber/polypropylene composite was investigated. Optical microscopy and ultrasonic scanning were used to determine the impact-induced damage. At low impact energy, the predominant damage mechanism observed was matrix cracking, while at high energy the damage mechanisms observed were delamination, plastic deformation, which produced a residual specimen curvature, and a small amount of fiber breakage at the edge of the indentation on the impacted face of the specimens. The impact load vs. time signals were recorded during impact and showed that the load corresponding to the onset of delamination was independent of the impact energy in the range tested. The load at which the onset of delamination occurred corresponded to the values obtained by performing a linear regression of the delaminated area, obtained by ultrasonic scanning, as a function of the impact force. Tensile and flexural tests performed on impacted specimens showed that the tensile and flexural residual strengths and the flexural modulus decreased with increasing incident impact energy, while the post-impact residual tensile modulus remained constant. The dynamic interlaminar fracture toughness was evaluated from the critical dynamic (impact) strain energy release rate of specimens with a delamination simulated by an embedded insert. The results are compared with the interlaminar fracture toughness values obtained during subcritical steady crack growth.
机译:研究了连续玻璃纤维/聚丙烯复合材料的低速冲击行为。使用光学显微镜和超声扫描来确定冲击引起的损伤。在低冲击能量下,观察到的主要破坏机理是基体开裂,而在高能量下,观察到的破坏机理是分层,塑性变形,这会产生残余的试样曲率,以及在压痕边缘的少量纤维断裂。试样的受灾面。在冲击过程中记录了冲击载荷与时间的信号,结果表明与分层开始相对应的载荷在测试范围内与冲击能量无关。根据冲击力,发生分层开始的载荷对应于通过对超声扫描获得的分层区域进行线性回归而获得的值。在冲击试样上进行的拉伸和弯曲试验表明,拉伸和弯曲残余强度以及弯曲模量随着入射冲击能量的增加而降低,而冲击后残余拉伸模量保持恒定。从样品的临界动态(冲击)应变能释放速率评估动态层间断裂韧度,并通过嵌入式插件模拟分层。将结果与亚临界稳定裂纹扩展过程中获得的层间断裂韧性值进行比较。

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