Potentials and limitations of microwave-assisted chemical recycling of fiber-reinforced composites from wind blades

被引:2
|
作者
Fresneda-Cruz, A. [1 ]
Chaine, C. [1 ]
Figueiredo, M. B. [1 ]
Murillo-Ciordia, G. [1 ]
Sanz-Martinez, A. [1 ]
Julian, I. [1 ]
机构
[1] CIRCE Technol Ctr Energy Resources & Consumpt, Parque Empresarial Dinamiza,Ave Ranillas 3D,1st Fl, Zaragoza 50018, Spain
来源
SUSTAINABLE ENERGY & FUELS | 2024年 / 8卷 / 20期
关键词
ANHYDRIDE-CURED EPOXY; GLASS-FIBERS; SELECTIVE CLEAVAGE; SCRAP COMPOSITES; CARBON-FIBERS; PYROLYSIS; REUSE; RECOVERY; RESIN; TECHNOLOGIES;
D O I
10.1039/d4se00242c
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Wind power will meet nearly 20% of the global energy demand by 2050, and the forecasted increase in wind power capacity combined with the proximate end-of-life (EoL) of existing infrastructures will pose a significant challenge. While the volumes of wind blade composite waste materials are expected to increase rapidly, there are no circular solutions available in the market to address this issue, and unlock new value chains for wind blade composite recyclates. This perspective aims to discuss the reported strategies for chemical recycling of fiber-reinforced composites, highlighting limitations for upscaling and offering the author's vision on novel technologies to enhance the process feasibility. Current issues associated with the increasing production of dismantled EoL wind turbine blade composite materials (WBCMs) are introduced and the regulatory framework is reviewed, addressing the common challenges associated with structural composite materials and their recyclability. The main novel recycling technologies for WBCMs (mechanical and, especially, chemical recycling) are evaluated based on the literature published between 2019 and 2024, discussing the value of recycled products, new value-added applications, and their circularity and sustainability aspects. The current barriers for industrialization are presented and serve as an introduction to the concept of microwave technology as an alternative and complementary technology for enhancing chemical recycling processes. Lastly, the main findings and limitations of chemical recycling of WBCMs using microwave-assisted technologies are summarized and proposals for future research are presented, highlighting a much-needed development of industrial circular solutions. The forecasted increase in wind power capacity combined with the proximate end-of-life of existing infrastructures will pose a significant challenge. The main novel recycling technologies for WBCMs and its industrialization barriers are presented.
引用
收藏
页码:4752 / 4766
页数:15
相关论文
共 50 条
  • [31] Chemical Recycling of Carbon Fiber Reinforced Epoxy Resin Composites via Selective Cleavage of the Carbon-Nitrogen Bond
    Wang, Yuqi
    Cui, Xiaojing
    Ge, Hui
    Yang, Yongxing
    Wang, Yingxiong
    Zhang, Ce
    Li, Jingjing
    Deng, Tiansheng
    Qin, Zhangfeng
    Hou, Xianglin
    ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2015, 3 (12): : 3332 - 3337
  • [32] A Review of the Thermal Recycling Methods of Carbon Fibers from Carbon Fiber Reinforced Thermosetting Resin Composites
    Jiang, Guoqin
    Lu, Yuzhan
    Weng, Shaoxiong
    Huang, Zhixiong
    Deng, Zongyi
    JOURNAL OF MACROMOLECULAR SCIENCE PART B-PHYSICS, 2024,
  • [33] Recycling and characterization of carbon fibers from carbon fiber reinforced epoxy matrix composites by a novel super-heated-steam method
    Kim, Kwan-Woo
    Lee, Hye-Min
    An, Jeong-Hun
    Chung, Dong-Chul
    An, Kay-Hyeok
    Kim, Byung-Joo
    JOURNAL OF ENVIRONMENTAL MANAGEMENT, 2017, 203 : 872 - 879
  • [34] Study on recycling carbon fibers from carbon fiber reinforced polymer waste by microwave molten salt pyrolysis
    Ren, Yiyao
    Xu, Lei
    Han, Zhaohui
    Xiao, Shijie
    Sun, Yongfen
    Nan, Zheng
    Shu, Junjie
    Li, Lei
    Shen, Zhigang
    FUEL, 2024, 377
  • [35] Effect of hybridization and chemical modification on the water-absorption behavior of banana fiber-reinforced polyester composites
    Pothan, LA
    Thomas, S
    JOURNAL OF APPLIED POLYMER SCIENCE, 2004, 91 (06) : 3856 - 3865
  • [36] Recyclable, reconfigurable, thermadapt shape memory polythiourethane networks with multiple dynamic bonds for recycling of carbon fiber-reinforced composites
    Yue, Huimin
    Zhou, Junjie
    Huang, Miaoming
    Hao, Chaobo
    Hao, Rui
    Dong, Chenchen
    He, Suqin
    Liu, Hao
    Liu, Wentao
    Zhu, Chengshen
    POLYMER, 2021, 237 (237)
  • [37] Recycling waste fiber-reinforced polymer composites for low-carbon asphalt concrete: The effects of recycled glass fibers on the durability of bituminous composites
    Yang, Qilin
    Fan, Zepeng
    Yang, Xuan
    Hao, Lifeng
    Lu, Guoyang
    Fini, Elham H.
    Wang, Dawei
    JOURNAL OF CLEANER PRODUCTION, 2023, 423
  • [38] Zero-Waste Recycling of Fiber/Epoxy from Scrap Wind Turbine Blades for Effective Resource Utilization
    Du, Chunbao
    Jin, Ge
    Zhang, Lihui
    Tong, Bo
    Wang, Bingjia
    Zhang, Gang
    Cheng, Yuan
    POLYMERS, 2022, 14 (24)
  • [39] Recovering glass fibers from waste wind turbine blades: Recycling methods, fiber properties, and potential utilization
    Xu, Ming-xin
    Ji, Hai-wen
    Wu, Ya-chang
    Meng, Xiang-xi
    Di, Jin-yi
    Yang, Jie
    Lu, Qiang
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2024, 202
  • [40] EFFECTS OF ALKALI TREATMENT ON THE MECHANICAL, CHEMICAL, AND THERMAL PROPERTIES OF ARAMID AND GRASS FIBER-REINFORCED EPOXY HYBRID COMPOSITES
    Rao, H. Raghavendra
    Bandhu, Din
    Bhadauria, Alok
    Saxena, Kuldeep K.
    Harisankar, P.
    Kumar, G. Suresh
    Sankaraiah, G.
    COMPOSITES-MECHANICS COMPUTATIONS APPLICATIONS, 2025, 16 (01):