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Evaluation of different wind fields for the investigation of the dynamic response of offshore wind turbines

机译:不同风电场评价近海风力涡轮机动态响应的研究

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摘要

As the size of offshore wind turbines increases, a realistic representation of the spatiotemporal distribution of the incident wind field becomes crucial for modeling the dynamic response of the turbine. The International Electrotechnical Commission (IEC) standard for wind turbine design recommends two turbulence models for simulations of the incident wind field, the Mann spectral tensor model, and the Kaimal spectral and exponential coherence model. In particular, for floating wind turbines, these standard models are challenged by more sophisticated ones. The characteristics of the wind field depend on the stability conditions of the atmosphere, which neither of the standard turbulence models account for. The spatial and temporal distribution of the turbulence, represented by coherence, is not modeled consistently by the two standard models. In this study, the Mann spectral tensor model and the Kaimal spectral and exponential coherence model are compared with wind fields constructed from offshore measurements and obtained from large-eddy simulations. Cross sections and durations relevant for offshore wind turbine design are considered. Coherent structures from the different simulators are studied across various stability conditions and wind speeds through coherence and proper orthogonal decomposition mode plots. As expected, the standard models represent neutral stratification better than they do stable and unstable. Depending upon the method used for generating the wind field, significant differences in the spatial and temporal distribution of coherence are found. Consequently, the computed structural design loads on a wind turbine are expected to vary significantly depending upon the employed turbulence model. The knowledge gained in this study will be used in future studies to quantify the effect of various turbulence models on the dynamic response of large offshore wind turbines.
机译:随着海上风力涡轮机的尺寸增加,入射风场的时空分布的现实表示对于建模涡轮机的动态响应而变得至关重要。风力涡轮机设计的国际电工委员会(IEC)标准推荐了用于模拟事件风电场,MANN光谱张量模型和KAIMAL谱和指数相干模型的两个湍流模型。特别是,对于浮动风力涡轮机,这些标准模型受更复杂的挑战。风场的特点取决于大气的稳定性条件,这两种标准湍流模型都不占据。由相干性表示的湍流的空间和时间分布,由两个标准模型一致地始终如一地建模。在该研究中,将曼容谱张量模型和Kaimal光谱和指数相干模型与由海上测量构成的风场进行比较,并从大涡模拟中获得。考虑了对海上风力涡轮机设计相关的横截面和持续时间。通过相干和适当的正交分解模式图,在各种稳定性条件下研究了来自不同模拟器的相干结构,并通过相干性和适当的正交分解模式图。如预期的那样,标准型号比他们稳定和不稳定的更好地代表中性分层。取决于用于产生风场的方法,发现了相干性的空间和时间分布的显着差异。因此,根据所采用的湍流模型,预计风力涡轮机上的计算结构设计载荷将显着变化。本研究中获得的知识将用于未来的研究,以量化各种湍流模型对大型海上风力涡轮机的动态响应的影响。

著录项

  • 来源
    《Wind Energy》 |2020年第9期|1810-1830|共21页
  • 作者单位

    Univ Bergen Inst Geophys Allegaten 70 Bergen 5007 Norway|Univ Bergen Bergen Offshore Wind Ctr BOW Allegaten 70 Bergen 5007 Norway;

    Univ Bergen Inst Geophys Allegaten 70 Bergen 5007 Norway|Univ Bergen Bergen Offshore Wind Ctr BOW Allegaten 70 Bergen 5007 Norway;

    Univ Bergen Inst Geophys Allegaten 70 Bergen 5007 Norway|Univ Bergen Bergen Offshore Wind Ctr BOW Allegaten 70 Bergen 5007 Norway;

    Natl Renewable Energy Lab Natl Wind Technol Ctr Boulder CO USA;

    Univ Bergen Inst Geophys Allegaten 70 Bergen 5007 Norway|Univ Bergen Bergen Offshore Wind Ctr BOW Allegaten 70 Bergen 5007 Norway|Equinor Bergen 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

    coherence; offshore wind turbines; proper orthogonal decomposition mode; turbulence models; wind fields;

    机译:一致性;海上风力涡轮机;适当的正交分解模式;湍流模型;风田;

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