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Mechanical Behavior of Hybrid Glass/Steel Fiber Reinforced Epoxy Composites

机译:混合玻璃/钢纤维增强环氧复合材料的力学行为

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While conventional fiber-reinforced polymer composites offer high strength and stiffness, they lack ductility and the ability to absorb energy before failure. This work investigates hybrid fiber composites for structural applications comprised of polymer, steel fiber, and glass fibers to address this shortcoming. Varying volume fractions of thin, ductile steel fibers were introduced into glass fiber reinforced epoxy composites. Non-hybrid and hybrid composite specimens were prepared and subjected to monolithic and half-cyclic tensile testing to obtain stress-strain relationships, hysteresis behavior, and insight into failure mechanisms. Open-hole testing was used to assess the vulnerability of the composites to stress concentration. Incorporating steel fibers into glass/epoxy composites offered a significant improvement in energy absorption prior to failure and material re-centering capabilities. It was found that a lower percentage of steel fibers (8.2%) in the hybrid composite outperformed those with higher percentages (15.7% and 22.8%) in terms of energy absorption and re-centering, as the glass reinforcement distributed the plasticity over a larger area. A bilinear hysteresis model was developed to predict cyclic behavior of the hybrid composite.
机译:虽然常规的纤维增强聚合物复合材料具有高强度和刚度,但它们缺乏延展性和在发生故障之前吸收能量的能力。该工作调查了用于由聚合物,钢纤维和玻璃纤维组成的结构应用的混合纤维复合材料,以解决这种缺点。将薄的韧性钢纤维的变化级分,引入玻璃纤维增​​强的环氧复合材料中。制备非杂交和杂化复合标本并进行整体和半环状拉伸试验,以获得应力 - 应变关系,滞后行为和洞察失败机制。开放孔测试用于评估复合材料的脆弱性与应力集中。将钢纤维掺入玻璃/环氧复合材料中,在故障和材料重定位能力之前,能量吸收具有显着的改善。发现杂交综合材料中钢纤维(8.2%)的较低百分比在能量吸收和重定位方面的百分比(15.7%和22.8%)优于更高的百分比(15.7%和22.8%),因​​为玻璃增强件在更大的玻璃上分布了可塑性区域。开发了双线性滞后模型以预测杂化复合材料的循环行为。

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