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Power fluctuation and power loss of wind turbines due to wind shear and tower shadow

机译:风切变和塔影造成的风力发电机功率波动和功率损耗

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摘要

The magnitude and stability of power output are two key indices of wind turbines. This study investigates the effects of wind shear and tower shadow on power output in terms of power fluctuation and power loss to estimate the capacity and quality of the power generated by a wind turbine. First, wind speed models, particularly the wind shear model and the tower shadow model, are described in detail. The widely accepted tower shadow model is modified in view of the cone-shaped towers of modern large-scale wind turbines. Power fluctuation and power loss due to wind shear and tower shadow are analyzed by performing theoretical calculations and case analysis within the framework of a modified version of blade element momentum theory. Results indicate that power fluctuation is mainly caused by tower shadow, whereas power loss is primarily induced by wind shear. Under steady wind conditions, power loss can be divided into wind farm loss and rotor loss. Wind farm loss is constant at 3α(3α-1)R~2/(8H~2). By contrast, rotor loss is strongly influenced by the wind turbine control strategies and wind speed. That is, when the wind speed is measured in a region where a variable-speed controller works, the rotor loss stabilizes around zero, but when the wind speed is measured in a region where the blade pitch controller works, the rotor loss increases as the wind speed intensifies. The results of this study can serve as a reference for accurate power estimation and strategy development to mitigate the fluctuations in aerodynamic loads and power output due to wind shear and tower shadow.
机译:功率输出的大小和稳定性是风力涡轮机的两个关键指标。这项研究从功率波动和功率损耗的角度研究了风切变和塔影对功率输出的影响,以估算风力发电机产生的功率的容量和质量。首先,详细描述风速模型,特别是风切变模型和塔影模型。鉴于现代大型风力涡轮机的锥形塔,修改了广为接受的塔影模型。通过在修改后的叶片单元动量理论框架内进行理论计算和案例分析,分析了由风切变和塔影引起的功率波动和功率损耗。结果表明,功率波动主要由塔影引起,而功率损耗主要由风切变引起。在稳定的风力条件下,功率损耗可分为风电场损耗和转子损耗。风电场损耗恒定为3α(3α-1)R〜2 /(8H〜2)。相比之下,风力涡轮机的控制策略和风速会严重影响转子的损耗。即,当在变速控制器工作的区域中测量风速时,转子损失稳定在零附近,但是当在叶片桨距控制器工作的区域中测量风速时,转子损失随着转速的增加而增加。风速增强。这项研究的结果可为准确的功率估算和策略制定提供参考,以减轻由于风切变和塔影而引起的空气动力学负载和功率输出的波动。

著录项

  • 来源
    《Frontiers of mechanical engineering》 |2017年第3期|321-332|共12页
  • 作者单位

    Institute of Vibration, Shock and Noise, Shanghai Jiao Tong University, Shanghai, China;

    Institute of Vibration, Shock and Noise, Shanghai Jiao Tong University, Shanghai, China;

    Hunan Province Cooperative Innovation Center for Wind Power Equipment and Energy Conversion, Xiangtan, China;

    School of Marine Science and Technology, Newcastle University, Newcastle upon Tyne, United Kingdom;

    Institute of Vibration, Shock and Noise, Shanghai Jiao Tong University, Shanghai, China;

    Department of Mechanical Engineering, Tsinghua University, Beijing, China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    power fluctuation; power loss; tower shadow; wind shear; wind turbine;

    机译:功率波动;电力流失;塔影;风切变风力发电机;

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