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风电叶片前缘防护

叶维维 苏雅丽 李陈郭 叶章基

叶维维, 苏雅丽, 李陈郭, 叶章基. 风电叶片前缘防护[J]. 材料开发与应用, 2023, 38(3): 82-87.
引用本文: 叶维维, 苏雅丽, 李陈郭, 叶章基. 风电叶片前缘防护[J]. 材料开发与应用, 2023, 38(3): 82-87.
YE Weiwei, SU Yali, LI Chenguo, YE Zhangji. Protection for Leading Edge of Wind Turbine Blade[J]. Development and Application of Materials, 2023, 38(3): 82-87.
Citation: YE Weiwei, SU Yali, LI Chenguo, YE Zhangji. Protection for Leading Edge of Wind Turbine Blade[J]. Development and Application of Materials, 2023, 38(3): 82-87.

风电叶片前缘防护

详细信息
    作者简介:

    叶维维,女,1994年生,硕士,工程师,主要从事船舶与工业等涂料研究。E-mail:yeweiwei12356@163.com

    通讯作者:

    叶章基,男,1969年生,博士,研究员,主要从事船舶防腐防污涂料及测试方法研究。E-mail:yezhangji725@163.com

  • 中图分类号: TB332

Protection for Leading Edge of Wind Turbine Blade

  • 摘要: 风能被认为是当今所有可用能源中最具有发展潜力的,已经成为新能源发电中不可或缺的一部分。风力机叶片是风力机的重要部件,对风力机的运行效率和使用寿命起着至关重要的作用。但风力发电场通常都建在具有高温或高寒、酸碱腐蚀和沙尘暴环境的地方,风力发电机组工作条件差,风电叶片的前缘由于线速度高,极易受到侵蚀。作者综述了影响风电叶片前缘防护的因素及前缘防护的保护方案,并提出了风电叶片前缘防护发展中所存在的问题。

     

  • [1] KARTHIKEYAN N, ANAND R B, SUTHAKAR T, et al. Materials, innovations and future research opportunities on wind turbine blades-insight review[J]. Environmental Progress & Sustainable Energy, 2019, 38(3): e13046.
    [2] NAZIR M S, ALI N, BILAL M, et al. Potential environmental impacts of wind energy development: a global perspective[J]. Current Opinion in Environmental Science & Health, 2020, 13: 85-90.
    [3] SUN X J, HUANG D G, WU G Q. The Current state of offshore wind energy technology development[J]. Energy, 2012, 41(1): 298-312.
    [4] DAI J C, YANG X, WEN L. Development of wind power industry in China: a comprehensive assessment[J]. Renewable and Sustainable Energy Reviews, 2018, 97: 156-164.
    [5] CEN H T, TIAN W L, LI P W, et al. Simulation analysis on polyurethane coating of wind blade[J]. Journal of Shanghai Jiaotong University (Science), 2019, 24(4): 496-499.
    [6] HERRING R, DYER K, MARTIN F, et al. The increasing importance of leading edge erosion and a review of existing protection solutions[J]. Renewable and Sustainable Energy Reviews, 2019, 115: 109382.
    [7] CHEN J L, WANG J H, NI A Q. A review on rain erosion protection of wind turbine blades[J]. Journal of Coatings Technology and Research, 2019, 16(1): 15-24.
    [8] 王晓, 王华进, 赵薇, 等. 风电叶片涂料用树脂研究进展[J]. 表面技术, 2016, 45(6): 28-35.
    [9] CORTÉS E, SÁNCHEZ F, DOMENECH L, et al. Manufacturing issues which affect coating erosion performance in wind turbine blades[C]//AIP Conference Proceedings. Penang, Malaysia. Author(s), 2017: 1-6.
    [10] BRUNTON J H. Treatise on materials science and te-chnology: Rochester, Erosion of solid surfaces by the impact of liquid drops[M]. New York: Academic press, 1979, 186-248.
    [11] GRUNDWVRMER M, NUYKEN O, MEYER M, et al. Sol-gel derived erosion protection coatings against damage caused by liquid impact[J]. Wear, 2007, 263(1-6): 318-329.
    [12] ZHANG S Z, DAM-JOHANSEN K, NØRKJЛЕR S, et al. Erosion of wind turbine blade coatings-Design and analysis of jet-based laboratory equipment for performance evaluation[J]. Progress in Organic Coatings, 2015, 78: 103-115.
    [13] CORTÉS E, SÁNCHEZ F, O'CARROLL A, et al. On the material characterisation of wind turbine blade coatings: the effect of interphase coating-laminate adhesion on rain erosion performance[J]. Materials (Basel, Switzerland), 2017, 10(10): 1146.
    [14] GEORGE F, SCHMITT J. Report AFML-TR-79-4122: Liquid and solid particle impact erosion[R]. Ohio: Air Force Materials Laboratory, 1979.
    [15] SCHMITT G F. Report AFML-TR-71-197: Materials parameters that govern the rain erosion behavior of polymeric coatings and composites at subsonic velocities[R]. Ohio: Air Force Materials Laboratory, 1971.
    [16] PENG H X. Polyurethane nanocomposite coatings for aeronautical applications[M]//Multifunctional Polymer Nanocomposites. New York: CRC Press, 2010: 337-387.
    [17] ADLER W, MORRIS J W, WAHL N. Supersonic ra-in and sand erosion research: characterization and development of erosion resistant materials[R]. Air Force Materials Laboratory, 1972.
    [18] ENGEL O G. Report No. 53-192: Mechanism of rain erosion[R]. Fairbanks: Wright Air Development Center, 1953.
    [19] GODFREY M, SIEDERER O, ZEKONYTE J, et al. The effect of temperature on the erosion of polyurethane coatings for wind turbine leading edge protection[J]. Wear, 2021, 476: 203720.
    [20] 桂永强, 倪爱清, 王继辉. 风机叶片涂层雨蚀研究[J]. 应用力学学报, 2020, 37(1): 403-410.
    [21] AHMAD M, CASEY M, SVRKEN N. Experimental assessment of droplet impact erosion resistance of steam turbine blade materials[J]. Wear, 2009, 267(9-10): 1605-1618.
    [22] GOHARDANI O. Impact of erosion testing aspects on current and future flight conditions[J]. Progress in Aerospace Sciences, 2011, 47(4): 280-303.
    [23] KJЛЕRSIDE STORM B. Surface protection and coa-tings for wind turbine rotor blades[M]//Advances in Wind Turbine Blade Design and Materials. Amsterdam: Elsevier, 2013: 387-412.
    [24] 刘正伟. 一种风电叶片模内胶衣: CN106047112A[P]. 2018-12-28.
    [25] MISHNAEVSKY L Jr, HASAGER C B, BAK C, et al. Leading edge erosion of wind turbine blades: understanding, prevention and protection[J]. Renewable Energy, 2021, 169: 953-969.
    [26] TRUONG H. An experimental and computational st-udy on Co-cured metal-polymer matrix composite interfaces in high temperature hybrid laminates[D]. College Station: Texas A&M University, 2016.
    [27] SHIN K C, LEE J J. Prediction of the tensile load-bearing capacity of a co-cured single lap joint considering residual thermal stresses[J]. Journal of Adhesion Science and Technology, 2000, 14(13): 1691-1704.
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出版历程
  • 收稿日期:  2022-03-30
  • 网络出版日期:  2023-07-10

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