Nanomaterial-Enhanced Sizings: Design and Optimisation of a Pilot-Scale Fibre Sizing Line

IF 4 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Fibers Pub Date : 2024-02-04 DOI:10.3390/fib12020016
D. Semitekolos, Ioannis Papadopoulos, S. Anagnou, B. Dashtbozorg, Xiaoying Li, Hanshan Dong, C. Charitidis
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Abstract

This study focuses on the development of a pilot-scale sizing line, including its initial design and installation, operational phases, and optimization of key process parameters. The primary objective is the identification of critical parameters for achieving a uniform sizing onto the fibres and the determination of optimal conditions for maximum production efficiency. This investigation focused on adjusting the furnace desizing temperature for the removal of commercial sizing, adjusting the drying temperature, as well as optimizing the corresponding residence time of carbon fibres passing through the furnaces. The highest production rate, reaching 1 m sized carbon fibres per minute, was achieved by employing a desizing temperature of 550 °C, a drying temperature of 250 °C, and a residence time of 1 min. Furthermore, a range of sizing solutions was investigated and formulated, exploring carbon-based nanomaterial types with different surface functionalizations and concentrations, to evaluate their impact on the surface morphology and mechanical properties of carbon fibres. In-depth analyses, including scanning electron microscopy and contact angle goniometry, revealed the achievement of a uniform coating on the carbon fibre surface, leading to an enhanced affinity between fibres and the polymeric epoxy matrix. The incorporation of nanomaterials, specifically N2-plasma-functionalized carbon nanotubes and few-layer graphene, demonstrated notable improvements in the interfacial shear properties (90% increase), verified by mechanical and push-out tests.
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纳米材料强化上浆:中试规模纤维上浆生产线的设计与优化
本研究的重点是开发一条试验规模的上浆生产线,包括其初始设计和安装、运行阶段以及关键工艺参数的优化。主要目标是确定实现纤维均匀上浆的关键参数,并确定实现最高生产效率的最佳条件。这次调查的重点是调整炉子的退浆温度以去除商业浆料,调整干燥温度,以及优化碳纤维通过炉子的相应停留时间。通过采用 550 °C 的退浆温度、250 °C 的干燥温度和 1 分钟的停留时间,达到了最高的生产率,每分钟可生产 1 米大小的碳纤维。此外,还研究和配制了一系列上浆溶液,探索了具有不同表面功能化和浓度的碳基纳米材料类型,以评估它们对碳纤维表面形态和机械性能的影响。包括扫描电子显微镜和接触角测角仪在内的深入分析显示,碳纤维表面形成了一层均匀的涂层,从而增强了纤维与聚合物环氧基体之间的亲和力。纳米材料的加入,特别是 N2-等离子体功能化碳纳米管和少层石墨烯的加入,显著改善了界面剪切性能(增加了 90%),这一点已通过机械和推出试验得到验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Fibers
Fibers Engineering-Civil and Structural Engineering
CiteScore
7.00
自引率
7.70%
发文量
92
审稿时长
11 weeks
期刊介绍: Fibers (ISSN 2079-6439) is a peer-reviewed scientific journal that publishes original articles, critical reviews, research notes and short communications on the materials science and all other empirical and theoretical studies of fibers, providing a forum for integrating fiber research across many disciplines. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Electronic files or software regarding the full details of the calculation and experimental procedure, if unable to be published in a normal way, can be deposited as supplementary material. The following topics are relevant and within the scope of this journal: -textile fibers -natural fibers and biological microfibrils -metallic fibers -optic fibers -carbon fibers -silicon carbide fibers -fiberglass -mineral fibers -cellulose fibers -polymer fibers -microfibers, nanofibers and nanotubes -new processing methods for fibers -chemistry of fiber materials -physical properties of fibers -exposure to and toxicology of fibers -biokinetics of fibers -the diversity of fiber origins
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