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Improvement of numerical wind forecasts at wind turbine height for wind ramp events within the stable boundary layer

机译:稳定边界层内风坡事件的风力涡轮机高度的数值风预报的改进

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摘要

Although the forecast capability of numerical weather prediction models has improved significantly over the past decades, there still exists significant issues related to model representation of the complex dynamics of the boundary layer (BL), which impede the realization of turbine-height wind forecast accuracy. This study is an effort to revisit the basic theory of the Mellor, Yamada, Nakanishi, and Niino (MYNN) BL scheme with a focus on its function as posed for the stably stratified environment that supports the onset of a low-level jet (LLJ), a mechanism that can often result in wind ramp events, which are of special concern for the wind power industry.;The MYNN BL scheme approximates the turbulence covariance variables, which define turbulence momentum and heat flux as well as turbulent kinetic energy (TKE). These approximations are derived from the Reynolds-averaged Navier-Stokes equations and consist of a system of interdependent diagnostic expressions with terms involving gradients of the mean flow and turbulent fluxes. The influence of each term is affected by a set of weighting factors known as "closure parameters" (CPs), which have been empirically derived, as well as a diagnosed mixing length.;In this study the MYNN scheme is modified in three ways. First, an updated set of CPs are formulated specifically for a stable BL that exhibits LLJ development and associated wind ramps. A large-eddy simulation model with spatial resolution of 3-4m is used to simulate turbulence response and effect for such cases. These data provide the means to generate Reynolds-averaged values for explicit representation of covariance variables and TKE, which in turn, provide the basis for calculating new MYNN closure parameters for mesoscale numerical forecasts of wind ramps. Second, a new means of calculating the turbulent mixing length is formulated, by which vertical mixing is enhanced across the BL above that predicted by Monin-Obukhov theory when wind speeds exceed a given wind threshold. Third, a new approach for calculating turbulent fluxes is implemented within the MYNN framework, which accounts for the effects of anisotropy and turbulent potential energy (TPE).;All three modifications are evaluated using a set of 15 wind ramp cases as identified in tall tower data from Iowa in the U.S. and near Hamburg, Germany. The WRF model is used to generate 24-hour wind forecasts, which are evaluated relative to observations at 100m height. It is found that invoking the new set of CPs provides marked forecast improvement only when used in conjunction with the new mixing length formulation and only for cases that are originally under- or over-forecast. For these cases the MAE of wind forecasts at 100m on average is reduced by 17%. Reduction in average MAE by 26% is realized for these same cases when invoking the method that accounts for anisotropy and TPE along with the new mixing length. This last method results in an average reduction in MAE of 13% across all 15 cases.
机译:尽管在过去的几十年中,数值天气预报模型的预报能力有了显着提高,但仍然存在与边界层(BL)复杂动力学模型表示有关的重大问题,这阻碍了涡轮高度风的预报精度的实现。这项研究旨在重新审视Mellor,Yamada,Nakanishi和Niino(MYNN)BL方案的基本理论,重点是针对支持低空喷气机(LLJ)发生的稳定分层环境的功能),这种机制通常会导致风速倾斜事件,这是风电行业特别关注的问题;; MYNN BL方案近似于湍流协方差变量,该变量定义了湍流动量,热通量以及湍动能(TKE) )。这些近似值是从雷诺平均Navier-Stokes方程得出的,由相互依赖的诊断表达式系统组成,这些表达式的术语涉及平均流量和湍流通量的梯度。每个术语的影响都受一组加权因子(称为“封闭参数”(CP))的影响,这些加权因子是根据经验得出的,以及已确定的混合长度。;在本研究中,MYNN方案以三种方式进行了修改。首先,为稳定的BL制定了一组更新的CP,这些BL表现出LLJ的发展和相关的风坡。在这种情况下,使用空间分辨率为3-4m的大涡模拟模型来模拟湍流响应和效果。这些数据提供了生成Reynolds平均值以明确表示协方差变量和TKE的方法,而TKE又为计算新的MYNN闭合参数提供了基础,以用于中尺度的风坡数值预报。其次,提出了一种计算湍流混合长度的新方法,通过该方法,当风速超过给定的风阈值时,BL上的垂直混合将增强,高于Monin-Obukhov理论所预测的水平。第三,在MYNN框架内实现了一种计算湍流通量的新方法,该方法考虑了各向异性和湍流势能(TPE)的影响;这三种修改都是通过在高塔中识别出的15种风坡情况进行评估的来自美国爱荷华州和德国汉堡附近的数据。 WRF模型用于生成24小时风速预报,相对于100m高处的观测值进行评估。结果发现,调用新的CP集仅在与新的混合长度公式结合使用时,并且仅对于最初预测不足或预测过度的情况,才能提供显着的预测改进。对于这些情况,平均100m的风能预测的MAE降低了17%。当调用考虑各向异性和TPE以及新的混合长度的方法时,在相同的情况下,平均MAE降低了26%。这最后一种方法在所有15例病例中平均降低了13%的MAE。

著录项

  • 作者

    Jahn, David E.;

  • 作者单位

    Iowa State University.;

  • 授予单位 Iowa State University.;
  • 学科 Meteorology.;Alternative Energy.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 126 p.
  • 总页数 126
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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