Application of chemically-activated recycled carbon fibres for aqueous-phase adsorptions - part I: Optimisation of activation process

IF 5.5 Q1 ENGINEERING, CHEMICAL
Jessica H. Taylor , Gera Troisi , Salman Masoudi Soltani
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Abstract

Carbon fibre reinforced polymers (CFRPs) are an attractive and versatile material, owing to their low weight and high mechanical stability, among other characteristics. This has led to a rapid increase in their use across many industries, particularly the aviation and automotive sectors. However, large quantities of waste are being generated when CFRPs reach their end-of-life (EoL) due to limited recycling and reuse pathways. To create a circular economy for CFRPs, alternative, high-value EoL pathways for recycled carbon fibres (rCFs) are needed. At present, very few studies investigate the activation of rCFs, particularly for applications as adsorbents. Developing on from the authors’ previous study, where rCFs were shown to be a promising precursor for the development of carbonaceous adsorbents, for applications in aqueous-phase, this work has focused on optimising the chemical activation procedure via a Box Behnken design-response surface methodology (BBD-RSM) approach, with an aim to maximise product yield and methylene blue adsorption capacity, using virgin carbon fibres (vCFs) as proof of concept. The optimum activated rCFs achieved an adsorption capacity of 454.55 mg/L; a significant increase of 715 % when compared to the previous study. While the optimum activated vCF counterpart achieved a maximum adsorption capacity 344.83 mg/L.

Abstract Image

化学活化再生碳纤维在水相吸附中的应用--第一部分:活化过程的优化
碳纤维增强聚合物(CFRP)具有重量轻、机械稳定性高等特点,是一种极具吸引力的多功能材料。因此,许多行业,特别是航空和汽车行业,都在迅速增加对这种材料的使用。然而,由于回收和再利用途径有限,当 CFRP 达到报废年限(EoL)时,会产生大量废弃物。为了创建 CFRP 循环经济,需要为再生碳纤维(rCFs)提供替代性、高价值的 EoL 途径。目前,很少有研究调查 rCFs 的活化情况,尤其是用作吸附剂的情况。在作者之前的研究中,rCFs 被证明是开发碳质吸附剂的一种很有前景的前体,可用于水相吸附剂。在此基础上,本研究重点通过盒式贝肯设计-响应面方法(BBD-RSM)来优化化学活化程序,目的是最大限度地提高产品产量和亚甲基蓝吸附能力,并使用原始碳纤维 (vCFs) 作为概念验证。最佳活性 rCFs 的吸附容量为 454.55 mg/L;与之前的研究相比,显著提高了 715%。而最佳活性 vCF 的最大吸附容量为 344.83 毫克/升。
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来源期刊
Chemical Engineering Journal Advances
Chemical Engineering Journal Advances Engineering-Industrial and Manufacturing Engineering
CiteScore
8.30
自引率
0.00%
发文量
213
审稿时长
26 days
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