Recycling of polymer composite materials: A review of the state of the art

限制 汽车工业 持续性 材料科学 航空航天 复合数 过程(计算) 工艺工程 相(物质) 复合材料 降级(电信) 聚合物 环境科学 先进复合材料 纳米技术 产品(数学) 生命周期评估 机械工程 灵活性(工程) 法律工程学 高效能源利用 再制造 高能 计算机科学 耐久性 水解降解 液相 原材料 新产品开发 碳纤维
作者
Thomas A. Turner
出处
期刊:International Materials Reviews [Taylor & Francis]
标识
DOI:10.1177/09506608261481677
摘要

Research into recycling of composite materials has accelerated in recent years, driven by rising sustainability expectations, circular-economy policy pressures, and the expanding use of composites in transport and renewable-energy systems. Composites have significant potential to address sustainability goals through the use phase of many transport applications particularly within the automotive and aerospace sector through lightweighting and resulting energy savings. Yet the very features that make composites attractive such as highly tailorable properties and multi-phase architectures, also create substantial barriers to high-value reuse. Covering both glass and carbon fibres, this review provides a timely, system-level assessment that extends beyond traditional fibre-recovery-focused surveys. It examines the full recycling chain, from disassembly through fibre liberation, intermediate materials, and second-life product integration. Mechanical, thermal, and chemical recycling technologies are critically compared with attention to fibre quality, scalability, energy demand, resin-chemistry compatibility, and the potential to generate materials suitable for structurally meaningful reuse. Emerging insights into fibre degradation mechanisms, surface and interfacial behaviour are synthesised to clarify their influence on recycled composite performance. A notable trend in recent literature is the shift from proof-of-concept fibre recovery towards optimisation of downstream processing and manufacturable intermediate formats. Advances in non-wovens, aligned discontinuous fibre architectures, moulding compounds, and additive-manufacturing feedstocks demonstrate that recycled fibres can begin to approach the performance of virgin materials, though variability remains a limiting factor. The review also evaluates the environmental implications of recycling routes, highlighting the substantial energy-savings potential while underscoring the sensitivity of reported benefits to process scale, data quality, and assumptions around material displacement. Gaps, including scale-up of chemical processes, management of contaminated waste streams, and the absence of robust quality standards, are identified as priorities for future work. Progress will depend on tighter integration between materials development, manufacturing technologies, and design-for-recycling strategies, alongside continued innovation in recyclable resin systems.
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