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A morphing downwind-aligned rotor concept based on a 13-MW wind turbine

机译:基于13兆瓦风力发电机组的变风顺风转子概念

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摘要

To alleviate the mass-scaling issues associated with conventional upwind rotors of extreme-scale wind turbines (10MW), a morphing downwind-aligned rotor (MoDaR) concept is proposed herein. The concept employs a downwind rotor with blades whose elements are stiff (no intentional flexibility) but with hub-joints that can be unlocked to allow for moment-free downwind alignment. Aligning the combination of gravitational, centrifugal and thrust forces along the blade path reduces downwind cantilever loads, resulting in primarily tensile loading. For control simplicity, the blade curvature can be fixed with a single morphing degree of freedom using a near-hub joint for coning angle: 22 degrees at rated conditions. The conventional baseline was set as the 13.2-MW Sandia 100-m all glass blade in a three-bladed upwind configuration. To quantify potential mass savings, a downwind load-aligning, two-bladed rotor was designed. Because of the reduced number of blades, the MoDaR concept had a favorable 33% mass reduction. The blade reduction and coning led to a reduction in rated power, but morphing increased energy capture at lower speeds such that both the MoDaR and conventional rotors have the same average power: 5.4MW. A finite element analysis showed that quasi-steady structural stresses could be reduced, over a range of operating wind speeds and azimuthal angles, despite the increases in loading per blade. However, the concept feasibility requires additional investigation of the mass, cost and complexity of the morphing hinge, the impact of unsteady aeroelastic influence because of turbulence and off-design conditions, along with system-level Levelized Cost of Energy analysis. Copyright (c) 2015 John Wiley & Sons, Ltd.
机译:为了减轻与极端规模的风力涡轮机(10MW)的常规逆风转子相关的质量缩放问题,本文提出了变形顺风对齐转子(MoDaR)的概念。该概念采用了具有叶片的顺风转子,叶片的元件是刚性的(没有故意的灵活性),但是轮毂接头可以解锁以实现顺畅的顺风对准。沿叶片路径对齐重力,离心力和推力的组合可减少顺风悬臂载荷,从而主要产生拉伸载荷。为简化控制,可使用近轮毂接头的锥度角(在额定条件下为22度)以单个变形自由度固定叶片曲率。常规基准设置为三叶片迎风配置中的13.2 MW Sandia 100-m全玻璃叶片。为了量化潜在的质量节省,设计了一个顺风方向的负载对准两叶片转子。由于减少了叶片数量,MoDaR概念使质量降低了33%。叶片的减少和锥化导致额定功率的降低,但变形在较低速度下增加了能量捕获,因此MoDaR和常规转子均具有相同的平均功率:5.4MW。有限元分析表明,尽管每个叶片的载荷增加,在一定的工作风速和方位角范围内,准稳态结构应力仍可减小。但是,此概念的可行性需要进一步研究变形铰链的质量,成本和复杂性,以及由于湍流和非设计条件而产生的不稳定气弹影响的影响,以及系统级的能源平均成本分析。版权所有(c)2015 John Wiley&Sons,Ltd.

著录项

  • 来源
    《Wind Energy》 |2016年第4期|625-637|共13页
  • 作者单位

    Univ Virginia, Dept Mech & Aerosp Engn, Charlottesville, VA 22904 USA;

    Univ Virginia, Dept Mech & Aerosp Engn, Charlottesville, VA 22904 USA;

    Univ Virginia, Dept Mech & Aerosp Engn, Charlottesville, VA 22904 USA;

    Natl Renewable Energy Lab, Natl Wind Technol Ctr, Golden, CO 80401 USA;

    Univ Illinois, Dept Aerosp Engn, Urbana, IL 61801 USA;

  • 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; extreme-scale; turbine; morphing; MoDaR;

    机译:风能极端规模涡轮变形MoDaR;

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