首页> 外文会议>Technical conference of the American Society for Composites;US-Japan conference on composite materials >Effects of Functionalized Carbon Nanotubes on Mode I and Mode II Interlaminar Fracture Toughness of a Hybrid Glass Fiber/MWCNT/Epoxy Composite
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Effects of Functionalized Carbon Nanotubes on Mode I and Mode II Interlaminar Fracture Toughness of a Hybrid Glass Fiber/MWCNT/Epoxy Composite

机译:功能化碳纳米管对混合玻璃纤维/ MWCNT /环氧树脂复合材料的I型和II型层间断裂韧性的影响

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The objective of this investigation is to evaluate the effect of functionalized carbon nanotubes on the delamination behavior of S2-glass fiber/ multi-walled carbon nanotubes (MWCNTs)/epoxy hybrid composites. Interlaminar fracture toughness (IFT) specimens were made by wet filament winding using S-glass fiber and epoxy matrix. Different types of functionalized MWCNTs, a carboxyl functionalized carbon nanotube (COOH-CNT) with two different initial length distributions and a silane coupling agent functionalized carbon nanotube, were added into the epoxy material. The MWCNTs modified epoxy were used either as the matrix material for filament winding composite plies or used as resin interlayer material. The mode I and mode II quasi-static interlaminar fracture behaviors were characterized using the double cantilever beam and end-notched flexure tests, respectively. The interlaminar fracture test results were used to evaluate: 1) the effect of adding functionalized MWCNTs; 2) the effect of changing MWCNT types, aspect ratio, and concentration; and 3) the effect of adding a resin interlayer at the fracture surface on mode I and mode II fracture toughness. Compared to the baseline material, the mode I onset and propagation fracture toughness was increased by 109-139% by adding 1 weight percent (wt%) short COOH-CNTs into the matrix in the fiber reinforced plies and the resin interlayer at fracture interface. The highest mode II fracture toughness among laminates investigated (49% improvement compared to the baseline material) was achieved by adding 0.5 wt% COOH-CNTs into the fiber reinforced plies and 0.5 wt% long COOH-CNTs into the resin interlayer at fracture interface. Scanning electron microscope images of CNT-filled epoxy showed possible toughening mechanisms achieved by crack pinning and crack deflection by functionalized CNTs.
机译:这项研究的目的是评估功能化的碳纳米管对S2玻璃纤维/多壁碳纳米管(MWCNT)/环氧混合复合材料的脱层行为的影响。层间断裂韧性(IFT)样品是使用S-玻璃纤维和环氧基质通过湿丝缠绕制成的。将不同类型的官能化MWCNT,具有两种不同初始长度分布的羧基官能化碳纳米管(COOH-CNT)和硅烷偶联剂官能化碳纳米管添加到环氧材料中。 MWCNTs改性环氧树脂既可以用作长丝缠绕复合层的基质材料,也可以用作树脂夹层材料。分别使用双悬臂梁和端切口挠曲测试来表征I型和II型准静态层间断裂行为。层间断裂测试结果用于评估:1)添加功能化的MWCNTs的效果; 2)改变MWCNT类型,长宽比和浓度的影响; 3)在断裂表面处添加树脂中间层对I型和II型断裂韧性的影响。与基线材料相比,通过向纤维增强层中的基质和断裂界面处的树脂夹层中添加1重量%(wt%)的短COOH-CNT,I型起始和扩展断裂韧性提高了109-139%。通过在纤维增强层中添加0.5 wt%的COOH-CNT和在断裂界面处的树脂夹层中添加0.5 wt%的长COOH-CNT,可以实现所研究的层压板中最高的II型断裂韧性(与基准材料相比,提高49%)。碳纳米管填充环氧树脂的扫描电子显微镜图像显示,通过功能化碳纳米管的裂纹钉扎和裂纹变形可以实现可能的增韧机理。

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