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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Effects of Airfoil's Polar Data in the Stall Region on the Estimation of Darrieus Wind Turbine Performance
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Effects of Airfoil's Polar Data in the Stall Region on the Estimation of Darrieus Wind Turbine Performance

机译:失速区域中机翼的极地数据对Darrieus风力发电机性能估计的影响

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Interest in vertical-axis wind turbines (VAWTs) is experiencing a renaissance after most major research projects came to a standstill in the mid 1990s, in favor of conventional horizontal-axis turbines (HAWTs). Nowadays, the inherent advantages of the VAWT concept, especially in the Darrieus configuration, may outweigh their disadvantages in specific applications, like the urban context or floating platforms. To enable these concepts further, efficient, accurate, and robust aerodynamic prediction tools and design guidelines are needed for VAWTs, for which low-order simulation methods have not reached yet a maturity comparable to that of the blade element momentum theory for HAWTs' applications. The two computationally efficient methods that are presently capable of capturing the unsteady aerodynamics of Darrieus turbines are the double multiple streamtubes (DMS) theory, based on momentum balances, and the lifting line theory (LLT) coupled to a free vortex wake model. Both methods make use of tabulated lift and drag coefficients to compute the blade forces. Since the incidence angles range experienced by a VAWT blade is much wider than that of a HAWT blade, the accuracy of polars in describing the stall region and the transition toward the "thin plate like" behavior has a large effect on simulation results. This paper will demonstrate the importance of stall and poststall data handling in the performance estimation of Darrieus VAWTs. Using validated CFD simulations as a baseline, comparisons are provided for a blade in VAWT-like motion based on a DMS and a LLT code employing three sets of poststall data obtained from a wind tunnel campaign, XFoil predictions extrapolated with the Viterna-Corrigan model and a combination of them. The polar extrapolation influence on quasi-steady operating conditions is shown and azimuthal variations of thrust and torque are compared for exemplary tip-speed ratios (TSRs). In addition, the major relevance of a proper dynamic stall model into both the simulation methods is highlighted and discussed.
机译:在1990年代中期大多数重大研究项目陷入停顿之后,人们对垂直轴风力涡轮机(VAWT)的兴趣开始复苏,转而使用传统的水平轴风力涡轮机(HAWT)。如今,VAWT概念的固有优势,尤其是在Darrieus配置中,可能胜过其在特定应用(如城市环境或浮动平台)中的劣势。为了进一步实现这些概念,VAWT需要高效,准确和鲁棒的空气动力学预测工具和设计指南,其低阶仿真方法尚未达到可与HAWT的叶片要素动量理论相媲美的成熟度。目前能够捕获Darrieus涡轮机非定常空气动力学特性的两种计算效率高的方法是:基于动量平衡的双重多重流管(DMS)理论和与自由涡旋模型耦合的升力线理论(LLT)。两种方法都使用列表化的升力和阻力系数来计算叶片力。由于VAWT叶片所经历的入射角范围比HAWT叶片要宽得多,因此极性在描述失速区域和向“薄板状”行为过渡方面的准确性对仿真结果影响很大。本文将证明停滞和失速数据处理在Darrieus VAWT性能评估中的重要性。使用经过验证的CFD模拟作为基准,基于DMS和LLT代码,使用从风洞运动中获得的三组失速数据,XFoil预测外推Viterna-Corrigan模型和基于DMS和LLT代码,对类似VAWT的叶片进行了比较。他们的结合。显示了极外推法对准稳态运行条件的影响,并比较了示例性叶尖速比(TSR)的推力和扭矩方位角变化。此外,强调并讨论了合适的动态失速模型与两种仿真方法的主要相关性。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power 》 |2017年第2期| 022606.1-022606.9| 共9页
  • 作者单位

    Fluid Dynamics, Hermann-Foettinger-Institut, Technische Universitaet Berlin, Mueller-Breslau-Str. 8, Berlin 10623, Germany;

    Department of Industrial Engineering, University of Florence, Via di Santa Marta 3, Firenze 50139, Italy;

    Fluid Dynamics, Hermann-Foettinger-Institut, Technische Universitaet Berlin, Muller-Breslau-Str. 8, Berlin 10623, Germany;

    Department of Industrial Engineering, University of Florence, Via di Santa Marta 3, Firenze 50139, Italy;

    Fluid Dynamics, Hermann-Foettinger-Institut, Technische Universitaet Berlin, MueIIer-Breslau-Str. 8, Berlin 10623, Germany;

    Department of Industrial Engineering, University of Florence, Via di Santa Marta 3, Firenze 50139, Italy;

    Fluid Dynamics, Hermann-Foettinger-Institut, Technische Universitaet Berlin, Muller-Breslau-Str. 8, Berlin 10623, Germany;

    CNR-ICCOM, National Research Council of Italy, Via Madonna del Piano 10, Sesto Fiorentino 50019, Italy;

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