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Electro-induced shape memory effect of 4D printed auxetic composite using PLA/TPU/CNT filament embedded synergistically with continuous carbon fiber: A theoretical & experimental analysis

机译:4D印刷辅助复合材料的电诱导的形状记忆效应使用PLA / TPU / CNT长丝与连续碳纤维协同嵌入:理论和实验分析

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摘要

A novel strategy is proposed to fabricate continuous fiber-reinforced electro-induced shape memory auxetic composites (CFRSMCs) by combining conductive filaments and continuous carbon fiber through 3D printing technology. In the first step, the conductive filaments were manufactured based on Poly-lactic-acid/ Thermoplastic-urethane/Carbon-nanotube (PLA/TPU/CNT) blend nanocomposite, and the CFRSMCs were then prepared, composing different carbonaceous fiber content with a variety of extrusion width. The main aim of the present work is to evaluate the mechanical, electrical, and thermal properties as well as the shape memory effect (SME). With regard to this, the negative Poisson's ratio effect of the printed CFRSMCs was precisely assessed through tensile measurement, and a well-adjusted theoretical model was employed for further predictions. Accordingly, as compared to free-fiber printed samples, the CFRSMCs exhibited superb mechanical properties and rapid electro-induced SME (a recovery ratio of 94% under 10 V within 25 s). Moreover, due to tailoring coconductive networks by the CNTs and carbon fibers in the printed composites, a great deal of activation capability in the auxetic CFRSMCs could be revealed by various stimuli and for smart applications. This advanced strategy indicates a great potential to fabricate various auxetic electro-induced CFRSMCs used in small scale of deployable trusses or other lightweight smart components like adaptive energy absorption devices and humanscale orthopedic materials.
机译:提出了一种新的策略来通过将导电细丝和连续碳纤维组合通过3D印刷技术来制造连续纤维增强的电诱导形状记忆递形复合材料(CFRSMC)。在第一步中,基于聚乳酸/热塑性 - 氨基甲酸酯/碳 - 纳米管(PLA / TPU / CNT)共混纳米复合材料制造导电丝,然后制备CFRSMC,与各种不同的碳质纤维含量。挤出宽度。本作工作的主要目的是评估机械,电气和热性能以及形状记忆效应(SME)。关于此,通过拉伸测量精确地评估印刷CFRSMC的负泊松比率,并且使用良好的理论模型进行进一步的预测。因此,与自由纤维印刷样品相比,CFRSMC在卓越的机械性能和快速电诱导的中小企业(在25s内的10V以下的回收率为94%)。此外,由于印刷复合材料中的CNT和碳纤维定制了可变网络,因此可以通过各种刺激和智能应用来揭示辅助CFRSMC中的大量激活能力。这种先进的策略表明,制造各种辅助电磁诱导的CFRSMC的潜力很大,用于小规模的可展开桁架或其他轻质智能组件,如自适应能量吸收装置和Humanscale骨科材料。

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