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首页> 外文期刊>Polymer Testing >Towards the development of self-healing carbon/epoxy composites with improved potential provided by efficient encapsulation of healing agents in core-shell nanofibers
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Towards the development of self-healing carbon/epoxy composites with improved potential provided by efficient encapsulation of healing agents in core-shell nanofibers

机译:通过高效封装核心 - 壳纳米纤维中的愈合剂的愈合剂提供改善的电位,促进自愈的碳/环氧复合材料的发展

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摘要

A self-healing carbon/epoxy composite was fabricated with the incorporation of healing agent loaded core-shell nanofibers, between carbon fiber fabric layers. The healing agents, consisting of two components, a low viscosity epoxy resin and its amine-based curing agent, were encapsulated in Styrene acrylonitrile (SAN) nanofibers via a coaxial electrospinning method. Transmission electron microscope (TEM), Fourier Transform Infrared (FTIR), and thermogravimetric analysis (TGA) results confirmed the successful encapsulation of both epoxy and curing agent in SAN nanofiber shells. TGA and the extraction method confirmed a high encapsulation yield (90% for the epoxy resin and 97% for the curing agent). Mechanical studies of the hybrid composite showed that embedding the fabricated core-shell nanofibers did not lead to a reduction in the mechanical properties of host composite, which was corroborated with statistical analysis. Mechanical evaluations and curing behavior studies both showed that incorporation of the aforementioned nanofibers between carbon layers can imbue the conventional carbon/epoxy composite with a self-healing ability, allowing it to repair itself to restore its mechanical properties for up to three cycles at room temperature in absent of any external driving force. (C) 2017 Elsevier Ltd. All rights reserved.
机译:用碳纤维织物层之间的愈合剂掺入愈合剂掺入自愈的碳/环氧复合物。由两个组分,低粘度环氧树脂及其胺类固化剂组成的愈合剂通过同轴电纺丝法在苯乙烯丙烯腈(SAN)纳米纤维中包封。透射电子显微镜(TEM),傅里叶变换红外(FTIR)和热重分析(TGA)结果证实了在SAN纳米纤维壳中成功封装了环氧树脂和固化剂。 TGA和萃取方法证实了高封装产率(环氧树脂90%,固化剂97%)。杂化复合物的机械研究表明,嵌入制造的芯壳纳米纤维未导致宿主复合材料的力学性能的降低,其在统计分析中得到证实。机械评估和固化行为研究表明,碳层之间的上述纳米纤维的掺入可以促使常规的碳/环氧复合材料具有自我愈合能力,使其能够在室温下修复其最多三个循环的机械性能。没有任何外部驱动力。 (c)2017 Elsevier Ltd.保留所有权利。

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