Recycling and recovery of fiber-reinforced polymer composites for end-of-life wind turbine blade management

被引:13
|
作者
Shen, Yafei [1 ]
Apraku, Sarkodie Emmanuel [1 ]
Zhu, Yupeng [1 ]
机构
[1] Nanjing Univ Informat Sci & Technol, Collaborat Innovat Ctr Atmospher Environm & Equipm, Sch Environm Sci & Engn, Jiangsu Key Lab Atmospher Environm Monitoring & Po, Nanjing 210044, Peoples R China
关键词
NONMETALLIC RESIDUES; WASTE; PYROLYSIS; CEMENT; EPOXY; GLASS; TECHNOLOGIES; PERFORMANCE; CHALLENGES; FEEDSTOCK;
D O I
10.1039/d3gc03479h
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The 3R (reuse, recycling, and recovery) waste management of wind turbine blades (WTBs) is becoming a popular subject, since it has a great practical significance in the disposal of the large numbers of upcoming end-of-life WTBs. Repurposing or reuse is a priority option, but the disposal of end-of-life WTBs on a large scale is a great challenge. Recycling or recovery is considered a priority for effectively dealing with end-of-life WTBs. This review focuses on the progress and challenges in the recycling and recovery of end-of-life WTBs, which are mainly composed of fiber-reinforced polymer composites. Among the commonly-used recycling methods, one advantage of thermal recycling processes is their tolerance of contaminated material. Thermal recycling processes can also effectively treat various polymer composites on a large scale. In particular, pyrolysis and cement kiln co-processing currently show the highest potential in treating end-of-life WTBs in commercial applications. In addition, chemical recycling processes such as solvolysis are promising methods that can achieve the closed-loop recovery of monomers and high-quality fibers, if green and recyclable solvents as well as mild reaction processes can be developed. Importantly, the life cycle management (LCM) of WTBs ending with solvolysis recycling is identified as the most circular and low-carbon solution. The recycling and recovery of end-of-life WTBs have been developed at an initial stage. Although a number of commercial applications have been achieved, most of these projects are built on extensive methods, focusing on mechanical recycling and cement kiln co-processing. This review will guide researchers to make more effort in the recycling of end-of-life WTBs, covering the reuse of gas and oil products as fuels for sustaining thermal processes and the development of green closed-loop recycling processes. This review highlights the progress and challenges in the mechanical, thermal and chemical recycling and recovery of end-of-life WTBs, which are mainly composed of fiber-reinforced polymer composites.
引用
收藏
页码:9644 / 9658
页数:15
相关论文
共 50 条
  • [41] A Review on Drilling of Fiber-Reinforced Polymer Composites
    Kumar, A. Mohan
    Parameshwaran, R.
    Rajasekar, R.
    Moganapriya, C.
    Manivannan, R.
    [J]. MECHANICS OF COMPOSITE MATERIALS, 2022, 58 (01) : 97 - 112
  • [42] Upcycling of carbon fiber-reinforced polymer composites
    Zhang, Liangdong
    Liu, Wenlu
    Jiang, Haibin
    Zhang, Xiaohong
    Shang, Yimei
    Jiang, Chao
    Wang, Xiang
    Qi, Guicun
    Li, Binghai
    Xu, Peng
    Qiao, Jinliang
    [J]. COMPOSITES SCIENCE AND TECHNOLOGY, 2023, 231
  • [43] Banana and plantain fiber-reinforced polymer composites
    Adeniyi, Adewale George
    Ighalo, Joshua O.
    Onifade, Damilola Victoria
    [J]. JOURNAL OF POLYMER ENGINEERING, 2019, 39 (07) : 597 - 611
  • [44] Process Monitoring of Fiber-Reinforced Polymer Composites
    B. Degamber
    G. F. Fernando
    [J]. MRS Bulletin, 2002, 27 : 370 - 380
  • [45] Lignocellulosic Fiber-Reinforced Keratin Polymer Composites
    Justin R. Barone
    [J]. Journal of Polymers and the Environment, 2009, 17 : 143 - 151
  • [46] Thermal transformations during thermal recovery of end-of-life composite carbon fiber beams from wind turbine blades
    Jiang, Han
    Ge, Lichao
    Feng, Hongcui
    Xu, Chunyao
    Yang, Qingyuan
    Li, Xinkai
    Liu, Xin
    Wang, Yang
    Xu, Chang
    [J]. Journal of Analytical and Applied Pyrolysis, 2025, 185
  • [47] End-of-life management and recycling of PV modules
    Fthenakis, VM
    [J]. ENERGY POLICY, 2000, 28 (14) : 1051 - 1058
  • [48] Development of Self-Healing Glass Fiber-Reinforced Laminate Composites for Wind Turbine Blades
    Yilmaz, M. Atif
    Hasirci, Kemal
    Yakar, Hasan
    Cetin, Serhat
    Isik, Deniz
    Irez, Alaeddin Burak
    [J]. MECHANICS OF COMPOSITE, HYBRID AND MULTIFUNCTIONAL MATERIALS, VOL 5, 2023, 2024, : 33 - 37
  • [49] End-of-life policy considerations for wind turbine blades
    Majewski, Peter
    Florin, Nick
    Jit, Joytishna
    Stewart, Rodney A.
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2022, 164
  • [50] A Review on the Natural Fiber-Reinforced Polymer Composites for the Development of Roselle Fiber-Reinforced Polyester Composite
    Thiruchitrambalam, M.
    Athijayamani, A.
    Sathiyamurthy, S.
    Abu Thaheer, A. Syed
    [J]. JOURNAL OF NATURAL FIBERS, 2010, 7 (04) : 307 - 323