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Life Cycle Assessment of Composite Materials Recycling via Microwave-Assisted Solvolysis: A Laboratory-Scale Study
Linked Sessions:
Main Presenter: Abdullah Ahsan Ahmed
Co-Authors: Anna Björklund
Fiber-reinforced polymer composites are widely used in high-performance industries, leading to increasing end-of-life waste and an urgent need for sustainable recycling strategies [1]. However, landfilling and incineration still dominate end-of-life management, despite significant environmental concerns [1]. Moreover, conventional mechanical, chemical, and thermal recycling routes are constrained by material degradation, high energy requirements, and poor sustainability performance [2]. To address these challenges, advanced recycling approaches are emerging through initiatives such as the Marie Skłodowska-Curie Actions Doctoral Network FibReLoop [3]. This initiative seeks to develop recycling technologies that combine conventional approaches with advanced methods to optimize composite recycling, minimize material property degradation, reduce energy consumption, and enhance overall sustainability. Among these approaches, microwave-assisted solvolysis (MW-Solvolysis) has already
demonstrated laboratory-scale potential, enabling recovery of carbon fibers with near-original properties while substantially lowering energy demand [4]. The life cycle assessment (LCA) reported in [4] also indicates lower environmental impacts than alternative recycling technologies. However, it relied on simplified assumptions, omitted quantifying most impact categories, and provided limited insight into industrial-scale implementation. Beyond this work, LCA studies on MW-Solvolysis have remained extremely scarce, highlighting the need for further investigation.
To address this gap, this study aims to conduct a laboratory-scale LCA of MW-Solvolysis for recycling carbon fiber–reinforced composites, focusing on fiber property retention, energy consumption, and the implications of process scale-up across different process configurations.
To achieve the research objective, the laboratory-scale LCA will be conducted in accordance with ISO standards [5]. This work will be conducted within the FibReLoop project, involving collaboration among multiple European universities. Within FibReLoop, one partner university is developing the MW-Solvolysis process, while this study will conduct its LCA.
MW-Solvolysis uses microwave heating and solvents that contribute to diverse environmental impacts, including climate change, resource use, and human ecotoxicity [4]. Thus, this assessment will quantify all relevant impact categories and identify key drivers. It will also evaluate how laboratory-scale assumptions on energy use, solvent choice, and waste homogeneity change at the industrial scale. A hotspot analysis will identify critical inputs, outputs, and life-cycle stages for improvement and assess potential benefits and trade-offs of this emerging technology.
This LCA study will address a current lack of quantified environmental impacts of MW-Solvolysis on the lab scale. By highlighting impact-driving process steps under current design assumptions, the study will inform targeted improvements for subsequent upscaling, support process optimization, inform R&D prioritization, and help avoid environmentally inefficient design choices as the technology matures.