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Wind turbine aerodynamic response under atmospheric icing conditions

机译:大气结冰条件下的风力涡轮机空气动力响应

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摘要

This article deals with the atmospheric ice accumulation on wind turbine blades and its effect on the aerodynamic performance and structural response. The role of eight atmospheric and system parameters on the ice accretion profiles was estimated using the 2D ice accumulation software lewice Twenty-four hours of icing, with time varying wind speed and atmospheric icing conditions, was simulated on a rotor. Computational fluid dynamics code, FLUENT, was used to estimate the aerodynamic coefficients of the blade after icing. The results were also validated against wind tunnel measurements performed at LM Wind Power using a NACA64618 airfoil. The effects of changes in geometry and surface roughness are considered in the simulation. A blade element momentum code WT-Perf is then used to quantify the degradation in performance curves. The dynamic responses of the wind turbine under normal and iced conditions were simulated with the wind turbine aeroelastic code HAWC2. The results show different behaviors below and above rated wind speeds. In below rated wind speed, for a 5 MW virtual NREL wind turbine, power loss up to 35% is observed, and the rated power is shifted from wind speed of 11 to 19ms~(-1). However, the thrust of the iced rotor in below rated wind speed is smaller than the clean rotor up to 14%, but after rated wind speed, it is up to 40% bigger than the clean rotor. Finally, it is briefly indicated how the results of this paper can be used for condition monitoring and ice detection.
机译:本文讨论了风力涡轮机叶片上的大气冰积聚及其对空气动力性能和结构响应的影响。使用二维冰蓄积软件lewice估算了二十四个小时的结冰情况,随时间变化了风速和大气结冰条件,在转子上模拟了八个大气和系统参数在结冰曲线上的作用。计算流体动力学代码FLUENT用于估计结冰后叶片的空气动力学系数。还使用LM Wind Power使用NACA64618机翼对风洞测量结果进行了验证。在仿真中考虑了几何形状和表面粗糙度变化的影响。然后使用叶片元件动量代码WT-Perf来量化性能曲线的下降。使用风力涡轮机气动弹性代码HAWC2模拟了正常和冰冻条件下风力涡轮机的动态响应。结果显示了低于和高于额定风速的不同行为。在低于额定风速的情况下,对于5 MW虚拟NREL风力发电机,功率损失高达35%,额定功率从11ms变为19ms〜(-1)。但是,在额定风速以下时,冰转子的推力要比清洁转子小14%,但是在额定风速之后,它比清洁转子大40%。最后,简要说明了本文的结果如何用于状态监测和冰检测。

著录项

  • 来源
    《Wind Energy》 |2014年第2期|241-265|共25页
  • 作者单位

    Department of Marine Technology, NTNU, Trondheim, Norway,Center of Ships and Offshore Structures (CeSOS), Trondheim, Norway;

    Center of Ships and Offshore Structures (CeSOS), Trondheim, Norway,DTU Wind Energy, Denmark Technical University, Copenhagen, Denmark;

    Department of Marine Technology, NTNU, Trondheim, Norway,Center of Ships and Offshore Structures (CeSOS), Trondheim, Norway;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    wind energy; atmospheric icing; ice accumulation; rotor aerodynamics; CFD; response degradation;

    机译:风能;大气积冰;积冰转子空气动力学差价合约反应退化;

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