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新能源产业纤维增强复合材料资源循环利用技术现状与展望

焦龙 花晔 徐佳鑫 杨郭昊 章嘉杰 陈欣慧 金柔含 胡艳军

能源环境保护2026,Vol.40Issue(1):28-41,14.
能源环境保护2026,Vol.40Issue(1):28-41,14.DOI:10.20078/j.eep.20250901

新能源产业纤维增强复合材料资源循环利用技术现状与展望

Current Status and Prospects of Resource Recycling Technology for Fiber-Reinforced Polymers in the New Energy Industry

焦龙 1花晔 1徐佳鑫 1杨郭昊 1章嘉杰 1陈欣慧 1金柔含 1胡艳军1

作者信息

  • 1. 浙江工业大学 能源与碳中和科教融合学院,浙江 杭州 310014
  • 折叠

摘要

Abstract

Fiber-reinforced polymers(FRPs),composed of reinforcing fibers and resin matrices,exhibit outstanding characteristics such as low density,high strength,corrosion resistance,and superior mechanical performance.With the large-scale application of FRPs in the renewable energy industry,such as wind turbine blades(WTBs),nacelles,photovoltaic brackets,electric vehicle components,and battery storage enclosures,the decommissioning of large-scale FRP structures has become an increasingly pressing issue.The complex composition of end-of-life materials,the inherent difficulty in separating thermosetting resins,and the underdeveloped recycling infrastructure make it crucial to achieve efficient and environmentally friendly recycling,prevent environmental pollution,and facilitate circular resource recovery.This article focuses on recycling solutions for FRPs in the renewable energy sector,systematically reviewing recycling technologies and highlighting innovations in three main process types:mechanical,pyrolytic,and chemical recycling.Mechanical recycling technologie,through intelligent precision cutting and automatic sorting,effectively reduce fiber damage and enhance the application potential of recycled materials.Pyrolysis recycling technologies encompass high-temperature pyrolysis,fluidized bed pyrolysis,and microwave-assisted pyrolysis.By precisely controlling the temperature and reaction atmosphere,they significantly reduce thermal damage to fibers,yielding a fiber performance retention rate of over 90%;the resulting pyrolysis oil and gas are reused as valuable resources.Chemical recycling technologies,such as chemical swelling and supercritical fluid processes,achieve efficient fiber recovery by selectively breaking the chemical bonds at the resin-fiber interface.This study further highlights the development trends in fiber repair and interfacial modification technologies.Intermediate repair techniques,such as sol-gel coating,plasma surface treatment,and electrochemical oxidation,improve the interfacial performance between regenerated fibers and resin matrices by 15%to 40%,significantly enhancing the overall mechanical properties and durability of regenerated composite materials.In terms of high-value utilization pathways,regenerated fibers have been successfully applied in lightweight automotive components,aerospace structures,and components for ultra-large offshore wind components,through innovative additive manufacturing technologies and the combined use of interfacial compatibilizers,significantly promoting the large-scale application of regenerated materials in high-end sectors.In addition,by treating by-products such as pyrolysis oil and gas through catalytic cracking,hydrodeoxygenation,and Fischer-Tropsch synthesis,high-value-added aromatic chemicals,fuel oils,and high-purity hydrogen can be obtained,further enhancing the economic benefits of resource recovery.Lastly,the article proposes recommendations for full value-chain integration,the development of standardized systems,and intelligent digital control,emphasizing the need to establish a circular ecosystem that spans front-end pretreatment,intermediate-stage repair and regeneration,and back-end high-value applications to support the sustainable development of the renewable energy industry.

关键词

纤维增强复合材料/树脂/回收技术/改性技术/应用路径

Key words

FRPs/Resins/Recycling technologies/Modification technologies/Application pathways

分类

资源环境

引用本文复制引用

焦龙,花晔,徐佳鑫,杨郭昊,章嘉杰,陈欣慧,金柔含,胡艳军..新能源产业纤维增强复合材料资源循环利用技术现状与展望[J].能源环境保护,2026,40(1):28-41,14.

基金项目

国家自然科学基金资助项目(52170141) (52170141)

智能电网国家科技重大专项资助项目(2024ZD0801700) (2024ZD0801700)

能源环境保护

2097-4183

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