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Functionally graded carbon nanotube and nafion/silica nanofibre for electrical actuation of carbon fibre reinforced shape memory polymer

机译:功能梯度碳纳米管和nafion /二氧化硅纳米纤维用于碳纤维增强形状记忆聚合物的电致动

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摘要

© Emerald Group Publishing Limited. Purpose - This paper aims to study the synergistic effect of self-assembled carboxylic acid-functionalised carbon nanotube (CNT) and nafion/silica nanofibre nanopaper on the electro-activated shape memory effect (SME) and shape recovery behaviour of shape memory polymer (SMP) nanocomposite. Design/methodology/approach - Carboxylic acid-functionalised CNT and nafion/silica nanofibre are first self-assembled onto carbon fibre by means of deposition and electrospinning approaches, respectively, to form functionally graded nanopaper. The combination of carbon fibre and CNT is introduced to enable the actuation of the SME in SMP by means of Joule heating at a low electric voltage of 3.0-5.0 V. Findings - Nafion/silica nanofibre is used to improve the shape recovery behaviour and performance of the SMP for enhanced heat transfer and electrical actuation effectiveness. Low electrical voltage actuation and high electrical actuation effectiveness of 32.5 per cent in SMP has been achieved. Research limitations/implications - A simple way for fabricating electro-activated SMP nanocomposites has been developed by using functionally graded CNT and nafion/silica nanofibre nanopaper. Originality/value - The outcome of this study will help to fabricate the SMP composite with high electrical actuation effectiveness under low electrical voltage actuation.
机译:©翡翠集团出版有限公司。目的-本文旨在研究自组装羧酸功能化碳纳米管(CNT)和nafion /二氧化硅纳米纤维纳米纸对电激活形状记忆效应(SME)和形状记忆聚合物(SMP)的形状恢复行为的协同效应。 )纳米复合材料。设计/方法/方法-首先通过沉积和静电纺丝方法将羧酸官能化的CNT和nafion /二氧化硅纳米纤维自组装到碳纤维上,以形成功能渐变的纳米纸。引入了碳纤维和CNT的组合,以通过在3.0-5.0 V的低电压下进行焦耳加热来启用SMP中的SME。发现-Nafion /二氧化硅纳米纤维用于改善形状恢复性能和性能SMP具有增强的热传递和电驱动效果。在SMP中实现了32.5%的低电压驱动和高电驱动效率。研究的局限性/意义-通过使用功能分级的CNT和nafion /二氧化硅纳米纤维纳米纸,已经开发出一种制造电活化SMP纳米复合材料的简单方法。原创性/价值-这项研究的结果将有助于制造在低电压驱动下具有高电驱动效率的SMP复合材料。

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  • 作者

    Lu H; Yao Y; Yin J; Lin L;

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  • 年度 2016
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  • 原文格式 PDF
  • 正文语种 en
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