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利用激光调控碳纤维的性能和形状。

Property and Shape Modulation of Carbon Fibers Using Lasers.

机构信息

Bio-/Active Materials Group, School of Materials, MSS Tower, The University of Manchester , Manchester M13 9PL, United Kingdom.

Nanostructured Hierarchical Assemblies and Composites Group (NanoHAC), Department of Chemistry, Imperial College London , South Kensington Campus, London SW7 2AZ, United Kingdom.

出版信息

ACS Appl Mater Interfaces. 2016 Jun 29;8(25):16351-8. doi: 10.1021/acsami.6b05228. Epub 2016 Jun 20.

Abstract

An exciting challenge is to create unduloid-reinforcing fibers with tailored dimensions to produce synthetic composites with improved toughness and increased ductility. Continuous carbon fibers, the state-of-the-art reinforcement for structural composites, were modified via controlled laser irradiation to result in expanded outwardly tapered regions, as well as fibers with Q-tip (cotton-bud) end shapes. A pulsed laser treatment was used to introduce damage at the single carbon fiber level, creating expanded regions at predetermined points along the lengths of continuous carbon fibers, while maintaining much of their stiffness. The range of produced shapes was quantified and correlated to single fiber tensile properties. Mapped Raman spectroscopy was used to elucidate the local compositional and structural changes. Irradiation conditions were adjusted to create a swollen weakened region, such that fiber failure occurred in the laser treated region producing two fiber ends with outwardly tapered ends. Loading the tapered fibers allows for viscoelastic energy dissipation during fiber pull-out by enhanced friction as the fibers plough through a matrix. In these tapered fibers, diameters were locally increased up to 53%, forming outward taper angles of up to 1.8°. The tensile strength and strain to failure of the modified fibers were significantly reduced, by 75% and 55%, respectively, ensuring localization of the break in the expanded region; however, the fiber stiffness was only reduced by 17%. Using harsher irradiation conditions, carbon fibers were completely cut, resulting in cotton-bud fiber end shapes. Single fiber pull-out tests performed using these fibers revealed a 6.75-fold increase in work of pull-out compared to pristine carbon fibers. Controlled laser irradiation is a route to modify the shape of continuous carbon fibers along their lengths, as well as to cut them into controlled lengths leaving tapered or cotton-bud shapes.

摘要

一个令人兴奋的挑战是创造具有定制尺寸的波浪线增强纤维,以生产具有改善韧性和增加延展性的合成复合材料。连续碳纤维是结构复合材料的最新增强材料,通过受控激光辐照进行改性,导致向外扩展的锥形区域以及 Q 形尖端(棉签)形状的纤维。使用脉冲激光处理在单根碳纤维水平上引入损伤,在连续碳纤维的长度上的预定点处产生扩展区域,同时保持其大部分刚度。产生的形状范围进行了量化,并与单纤维拉伸性能相关联。映射拉曼光谱用于阐明局部组成和结构变化。辐照条件进行了调整,以在激光处理区域中创建一个肿胀的弱化区域,从而使纤维在激光处理区域中失效,从而产生两个具有向外锥形端的纤维端。加载锥形纤维可以通过增强纤维在基质中犁过的摩擦力来耗散粘弹性能量,从而在纤维拔出过程中耗散能量。在这些锥形纤维中,直径局部增加了 53%,形成了最大 1.8°的外锥角。改性纤维的拉伸强度和断裂应变分别显著降低了 75%和 55%,确保在扩展区域中发生断裂的本地化;然而,纤维刚度仅降低了 17%。使用更苛刻的辐照条件,碳纤维完全被切断,形成棉签纤维端形状。使用这些纤维进行的单纤维拔出测试显示,与原始碳纤维相比,拔出功增加了 6.75 倍。受控激光辐照是一种沿着连续碳纤维长度改变其形状的方法,并且可以将其切成具有锥形或棉签形状的受控长度。

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