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廢舊風力發電機葉片資源化利用研究進展

Progress in resource utilization of waste wind turbine blades

  • 摘要: 風能的規模化利用是構建現代能源體系的關鍵,是保障國家能源安全,力爭如期實現碳達峰、碳中和的內在要求. 我國風電裝機容量持續攀升,早期風電機組陸續面臨報廢. 廢舊風電葉片的資源化利用面臨拆解難、降解難等多重難題,亟需探索綠色高值化、具有規模消納能力的資源化技術路線,支撐風電產業綠色可持續發展. 本文分析了我國風電產業發展概況和風電機組報廢量的增長趨勢,概括了廢舊葉片資源化利用的主要技術途徑,重點介紹了纖維增強復合材料的機械法、熱法和化學法回收利用,以及廢舊葉片在混凝土等建筑材料中的應用和葉片整體結構性利用等資源化利用技術方案,并對比分析了各類技術方案的優缺點,為廢舊風電葉片的資源化利用研究方向提供參考.

     

    Abstract: The large-scale utilization of wind energy is the key to establishing a modern energy system, an essential prerequisite for achieving carbon peaking and neutrality as planned, and an essential support for quality economic and social development. The installed wind power capacity continues to grow in China; by the end of 2022, the number of installed wind turbines had surpassed more than 170000 sets, and that of the cumulative installed blades had surpassed 3.65 million tons. Accordingly, early wind turbines are being decommissioned. The use of end-of-life wind turbine blades as a resource presents numerous challenges, such as disassembly- and degradation-related issues. Therefore, there is an urgent need to investigate green and high-value utilization technology paths capable of large-scale consumption to support the green and sustainable development of the wind power industry. This review examines the wind power industry and the growth trend of end-of-life wind turbines in China, outlines the main technical pathways of waste wind blade resource utilization, and highlights several waste wind blade resource utilization methods. ① Mechanical, thermal, and chemical recycling methods for fiber-reinforced composites: Mechanical recycling is a simple and traditional pathway that cannot provide long-scale fibers, thermal recycling damages the mechanical properties of long-scale fibers and makes reusing the matrix resin difficult, and chemical recycling preserves the mechanical properties of long-scale fibers and allows for the reuse of the matrix resin but at a high cost. Therefore, to achieve the sustainable reuse of reinforcing fibers and matrix resin, further research on the low-cost recycling method for fiber-reinforced composites from waste wind turbine blades is required. ② Application of waste blades in concrete and other construction materials: The blade, when cut into small pieces, can be used to replace natural aggregates in concrete materials. However, its organic components are not conducive to cement hydration, nor are the low-strength filler materials, such as balsa wood, conducive to the structural strength of concrete. ③ Structural utilization of waste blades: Waste blades can have structural reuse applications in pedestrian bridges, park benches, playground facilities, bus stops, and house roofs. Although reuse is simple and feasible, the blade materials need to be rendered nonhazardous and resourceful after the reuse cycle. This review compares and analyzes the benefits and drawbacks of various technical solutions to provide a reference for future research on the utilization of waste wind turbine blades.

     

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