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Effects of glass-fiber sizings on the strength and energy absorption of the fiber/matrix interphase under high loading rates

机译:玻璃纤维上浆剂对高加载速率下纤维/基体相间强度和能量吸收的影响

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摘要

The interphases of various sized E-glass-fiber/epoxy-amine systems were tested at displacement rates in the range 230-2450 μm/s by a new experimental technique (dynamic micro-debonding technique). By this method, the rate-dependent interphase properties, apparent shear strength and absorbed energies due to debonding and frictional sliding, were quantified. The systems include unsized, epoxy-amine compatible, and epoxy-amine incompatible glass fibers. The high displacement rates that induce high-strain-rate interphase loading were obtained by using the rapid expansion capability of piezoelectric actuators (PZT). The results of dynamic micro-debonding experiments showed that the values of interphase strength and specific absorbed energies varied in a manner that is dependent on the sizing and exhibited significant sensitivity to loading rates. The unsized fibers exhibit greater frictional sliding energies that could provide better ballistic resistance, while the compatible sized fibers show higher strength values that improve the structural integrity of the polymeric composites. In addition, significantly higher amounts of energy are absorbed within the frictional sliding regime compared to debonding. By using the experimental data obtained, a case study was performed to reveal the importance of the interphase related micro damage modes on energy absorption (and therefore ballistic performance) of glass/epoxy composite armor.
机译:通过一种新的实验技术(动态微剥离技术),以230-2450μm/ s的位移速率测试了各种尺寸的E-玻璃纤维/环氧胺体系的相间。通过这种方法,定量分析了速率依赖性的相间性质,表观剪切强度和由于脱粘和摩擦滑动而吸收的能量。该系统包括不定尺寸的,与环氧-胺相容的和与环氧-胺不相容的玻璃纤维。通过使用压电致动器(PZT)的快速膨胀能力,获得了引起高应变率相间负载的高位移率。动态微脱胶实验的结果表明,相间强度和比吸收能的值以取决于尺寸的方式变化,并且对加载速率表现出显着的敏感性。未上浆的纤维表现出更大的摩擦滑动能,可以提供更好的防弹性能,而相容上浆的纤维表现出更高的强度值,从而改善了聚合物复合材料的结构完整性。另外,与脱粘相比,在摩擦滑动范围内吸收了明显更多的能量。通过使用获得的实验数据,进行了案例研究,以揭示相间相关的微损伤模式对玻璃/环氧树脂复合装甲的能量吸收(以及因此的弹道性能)的重要性。

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