A comprehensive overview of the potential of recycled carbon fiber from composite waste: reclamation, remanufacturing, and performance

重新使用 核退役 生命周期评估 持续性 再制造 环境影响评价 碳足迹 废物管理 过程(计算) 环境科学 碳纤维 风力发电 温室气体 循环经济 资源(消歧) 纤维 复合数 清洁生产 环境经济学 工程类 城市固体废物 资源效率 生产(经济) 能源消耗 碳中和 新兴技术 工艺工程 碳纤维复合材料 可持续设计 可再生能源 经济可行性 材料科学 碳化 土木工程
作者
Péter Sántha,Peter Tamás-Bényei
出处
期刊:Waste Management [Elsevier BV]
卷期号:213: 115352-115352 被引量:1
标识
DOI:10.1016/j.wasman.2026.115352
摘要

The widespread adoption of carbon fiber-reinforced polymers (CFRPs) across high-performance sectors such as aerospace, automotive, wind energy, and construction has significantly increased the global demand for carbon fibers (CFs). However, the energy-intensive production process and growing volume of end-of-life (EoL) CFRP waste present significant environmental and economic challenges. This review offers a comprehensive analysis of the state of the art in carbon fiber recycling, focusing on the reclamation, remanufacturing, and reuse of recycled carbon fibers (rCFs) to support a sustainable circular economy. These waste streams are projected to grow substantially, driven by the decommissioning of wind turbines and aircraft. The valuable fibers are lost in traditional waste management practices, such as landfilling and incineration. Landfilling is also detrimental to the environment and unsustainable. Hence, recovering CFs through recycling is essential for minimizing environmental impacts and preserving material value. This review presents a comprehensive assessment of recycling technologies, including mechanical, thermal, chemical, and emerging methods. Each technique is assessed based on quantified fiber retention, energy efficiency, scalability, and technological readiness. The study further explores remanufacturing technologies for rCFs, detailing their transformation into intermediate forms suitable for reuse. The alignment of discontinuous fibers is critical for maximizing mechanical performance. Analytical and numerical modeling tools applied to predict fiber orientation, alignment efficiency, and composite behavior are included. In addition to technical insights, the article integrates economic viability, quality assurance, and life cycle assessment (LCA) to evaluate environmental performance, supporting market acceptance and regulatory compliance by quantifying the sustainability advantages of rCFs.
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