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CNT-grafted glass fibers as a smart tool for epoxy cure monitoring, UV-sensing and thermal energy harvesting in model composites

机译:碳纳米管接枝的玻璃纤维是用于模型复合材料中环氧固化监控,紫外线感应和热能收集的智能工具

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摘要

A 'hierarchical' reinforcement of glass fibers (GFs) chemically grafted with multiwall carbon nanotubes (MWCNTs) has been utilized for epoxy cure monitoring, UV-sensing, and thermal energy harvesting in model composites. MWCNTs were covalently attached to the surface of glass fiber yarns (GF-yarns) in a dip-coating deposition process. Hereafter, the hybrid yarns are denoted as GF-CNT. Scanning electron microscopy (SEM) demonstrated a highly uniform CNT-layer covering the fiber surfaces. In turn, GF-CNT reached a maximum conductivity of 2060 S m(-1), being of the same order of magnitude as the CNT-only bucky paper film. A GF-CNT in a uni-directional arrangement within a dog-bone shaped mould was employed for epoxy cure monitoring, recording the resistance changes during the curing process. In addition, three yarns connected in parallel highlighted the potential for detecting the resin position upon filling a mould. GF-CNT embedded in epoxy has been proposed also as an integrated non-invasive composite UV-sensor, allowing polymer matrix health monitoring. Besides, the semi-conductive nature of MWCNTs offered the opportunity of thermoelectric energy harvesting by the GF-CNT and its model composite when exposed to a temperature gradient. This work reports some new insights into and potential of fiber/CNT multi-scale reinforcements giving rise to multi-functional structural composites.
机译:化学接枝有多壁碳纳米管(MWCNT)的玻璃纤维(GFs)的“分层”增强材料已用于模型复合材料的环氧固化监控,紫外线传感和热能收集。 MWCNT在浸涂沉积过程中共价附着于玻璃纤维纱(GF纱)的表面。在下文中,混合纱线被称为GF-CNT。扫描电子显微镜(SEM)显示覆盖纤维表面的高度均匀的CNT层。反过来,GF-CNT的最大电导率达到2060 S m(-1),与仅CNT的巴基纸膜的数量级相同。在狗骨形模具中以单向排列的GF-CNT用于环氧树脂固化监控,记录固化过程中的电阻变化。另外,并联连接的三根纱线突出显示了在填充模具时检测树脂位置的潜力。还提出了嵌入环氧树脂中的GF-CNT作为集成的非侵入式复合紫外线传感器,从而可以监控聚合物基质的健康状况。此外,当暴露于温度梯度时,MWCNT的半导电性质为GF-CNT及其模型复合材料提供了收集热电能量的机会。这项工作报告了对纤维/ CNT多尺度增强材料的新见解和潜力,从而产生了多功能结构复合材料。

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