聚氨酯
材料科学
涂层
涡轮机
涡轮叶片
腐蚀
表面改性
标杆管理
胶粘剂
软件部署
可再生能源
复合材料
环境科学
金属涂层
冶金
工程类
工艺工程
风力发电
海上风力发电
预聚物
耐久性
钥匙(锁)
管道
管道运输
高效能源利用
机械工程
废物管理
作者
Zheng Wang,Yicheng Jiang,Guanwen Xu,Chonghui Ma,X. Liu
出处
期刊:Coatings
[Multidisciplinary Digital Publishing Institute]
日期:2026-04-11
卷期号:16 (4): 460-460
标识
DOI:10.3390/coatings16040460
摘要
Wind turbine blades are exposed to multiple coupled stressors requiring protective coatings with ultra-low volatile organic compound (VOC) content, thick-film capability, and long-term durability. This review critically evaluates waterborne polyurethane (WPU) coatings as a sustainable solution, benchmarking five synthesis routes—prepolymer emulsification, acetone process, melt dispersion, ketimine/ketazine chemistry, and self-emulsification—with prepolymer emulsification identified as the most industrially mature method. Key modification strategies are systematically compared, including nano-reinforcement, surface energy control, self-healing chemistries, and bio-based approaches. Based on a synthesis of laboratory, wind-tunnel, and field studies, three critical bottlenecks—thick-film formation, nanofiller dispersion, and long-term weatherability—are identified. To address these, a layered coating architecture is proposed, integrating a low-surface-energy topcoat, a lamellar-barrier mid-coat, and a post-crosslinked primer. This framework aims to guide the industrial deployment of WPU thick-film blade coatings in offshore and other extreme environments.
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