首页> 外文会议>AIAA/ASME/ASCE/AHS/ASC structures, structural dynamics and materials conference >Interlaminar Fracture Toughness of Laminated Woven Composites Reinforced with Aligned Nanoscale Fibers: Mechanisms at the Macro, Micro, and Nano Scales
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Interlaminar Fracture Toughness of Laminated Woven Composites Reinforced with Aligned Nanoscale Fibers: Mechanisms at the Macro, Micro, and Nano Scales

机译:排列的纳米级纤维增强的层状编织复合材料的层间断裂韧性:宏观,微观和纳米尺度的机理

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Several hybrid architectures with aligned nanoscale fibers have been shown to provide inter- and intra-laminar reinforcement of fiber reinforced polymer composites. In one architecture, aligned carbon nanotubes (CNTs) grown on advanced fibers in a woven ply creates a 'fuzzy fiber' reinforced plastic (FFRP) laminate. Here the mechanisms of Mode I fracture toughness enhancement are elucidated by varying the type of epoxy and reinforcing CNT length experimentally. Reinforcement effects are shown to vary from reduced initiation toughness to more than 100% increase in steady-state fracture toughness, depending upon the multi-scale interlaminar fracture mechanisms. Fracture-surface morphology investigations using several techniques reveal that interlaminar toughness enhancement for an aerospace infusion resin is significantly less than that for a hand lay-up marine epoxy. Long (~20 micron) aligned CNTs toughens significantly (> 1 kJ/m~2 increase for marine epoxy) by driving the crack through tortuous paths around and through tows, whereas shorter CNTs produce less toughening (or even reduced toughness in aerospace epoxy), which is attributed to shorter pullout lengths and grown-CNT morphology differences. These findings reveal for the first time the multiscale nature of the composite ply interface, and the mechanisms at work at the chemical, nano, and micro scales that influence the macroscopic behavior. Extensions and future work are discussed, including preliminary results using the multifunctional attributes of the nanoengineered composite for structural health monitoring (SHM) concomitant with interlaminar fracture testing.
机译:已显示具有对齐的纳米级纤维的几种混合结构可提供纤维增强的聚合物复合材料的层间和层内增强。在一种架构中,在编织层中的先进纤维上生长的对齐的碳纳米管(CNT)形成了“模糊纤维”增强塑料(FFRP)层压板。在这里,通过改变环氧树脂的类型并通过实验增强CNT的长度来阐明I型断裂韧性提高的机理。据显示,增强作用的范围从降低的初始韧性到稳态断裂韧性的100%以上的增加,均取决于多尺度的层间断裂机理。使用多种技术进行的断裂表面形态研究表明,航空航天灌注树脂的层间韧性提高幅度明显小于手糊型船用环氧树脂的层间韧性提高幅度。长(〜20微米)排列的碳纳米管通过沿着弯曲的路径绕过和穿过丝束驱动裂纹而显着增韧(对于船用环氧树脂,增幅大于1 kJ / m〜2),而较短的碳纳米管产生的增韧较少(甚至降低了航空环氧树脂的韧性) ,这归因于较短的拔出长度和生长的CNT形态差异。这些发现首次揭示了复合层界面的多尺度性质,以及影响宏观行为的化学,纳米和微米尺度的作用机理。讨论了扩展和未来的工作,包括使用纳米工程复合材料的多功能属性进行结构健康监测(SHM)以及层间断裂测试的初步结果。

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