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High-fidelity simulations and field measurements for characterizing wind fields in a utility-scale wind farm

机译:用于在公用事业范围风电场中表征风场的高保真模拟和现场测量

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摘要

Characterizing wind farm flow fields at high temporal and spatial resolutions is critical prerequisite for the optimal design and operation of utility-scale wind farms and for reducing the levelized cost of energy. However, due to the large disparity of underlying scales, measurements or simulations alone cannot provide high resolution wind fields, which are informed by and account for the effect of both large scale (i.e. hour, day, month and year) and small scale (i.e. second and minute) site-specific variations in the atmosphere. We explore the feasibility of integrating field measurements and high-fidelity large-eddy simulation (LES) to characterize the wind field in a utility-scale wind farm while accounting for flow phenomena across multiple temporal scales. Specifically, we employ field measurements to characterize the monthly wind speed and wind direction distributions and investigate the wind characteristics in turbine wakes. It was found that the probability density function (PDF) of the wind speed in turbine wakes can be reasonably represented using the Weibull distribution but with shape factors smaller than those not in the wake. LES of the wind farm under statistically steady inflow is subsequently carried out for one wind direction. The LES predictions are compared with the measured data conditionally averaged based on the wind speed, wind direction and the root-mean-square of wind speed fluctuations over time intervals of 30 min. Good agreement is obtained for both mean wind speed and turbulence intensity. The present work shows the possibility of integrating field measurements and high-fidelity simulations for improved characterization of the site-specific wind fields in utility-scale wind farms.
机译:在高时和空间分辨率下表征风电场流场是公用事业尺度风电场的最佳设计和运行的关键先决条件,以及降低能量稳定性成本。然而,由于底层尺度的巨大差异,单独的测量或仿真不能提供高分辨率风场,其被告知并占大规模(即小时,日,月和年)和小规模的效果(即第二和分钟)大气中的特定场地的变化。我们探讨了整合现场测量和高保真大涡模拟(LES)的可行性,以表征公用事业尺度风电场中的风电场,同时占多个时间尺度的流动现象。具体地,我们采用现场测量来表征月度风速和风向分布,并研究涡轮机唤醒中的风特性。结果发现,涡轮机唤醒中风速度的概率密度函数(PDF)可以使用Weibull分布合理地表示,但是形状因子比在尾气中不小的形状。随后对统计稳定流入下的风电场的LES进行一个风向。将LES预测与基于风速,风向和风速波动的有条件平均的测量数据进行比较,随着时间间隔30分钟的时间间隔。为平均风速和湍流强度获得良好的一致性。目前的工作表明,用于整合现场测量和高保真模拟,以改善公用事业级风电场中特定于现场风场的表征。

著录项

  • 来源
    《Applied Energy》 |2021年第1期|116115.1-116115.17|共17页
  • 作者单位

    Chinese Acad Sci Inst Mech State Key Lab Nonlinear Mech LNM Beijing 100190 Peoples R China|Univ Chinese Acad Sci Sch Engn Sci Beijing 100049 Peoples R China;

    Univ Minnesota St Anthony Falls Lab Minneapolis MN 55414 USA;

    Barr Engn Minneapolis MN 55435 USA;

    Xcel Energy Minneapolis MN 55401 USA;

    Univ Minnesota St Anthony Falls Lab Minneapolis MN 55414 USA;

    Univ Minnesota St Anthony Falls Lab Minneapolis MN 55414 USA|Univ Minnesota Dept Mech Engn 111 Church St SE Minneapolis MN 55455 USA;

    SUNY Stony Brook Dept Civil Engn Coll Engn & Appl Sci Stony Brook NY 11794 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 farms; Wind characterization; Large-eddy simulation; Field measurements;

    机译:风电场;风特征;大涡模拟;现场测量;

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