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Aerofoil Characteristics from 3D CFD Rotor Computations

机译:基于3D CFD转子计算的机翼特性

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摘要

This article describes a method for extracting aerofoil characteristics from 3D computational fluid dynamics (CFD) rotor computations. Based on the knowledge of the detailed flow in the rotor plane, the average sectional axial induction is determined for each wind speed. Based on this, the local angle of attack is determined when knowing the rotational speed and the local blade twist angle. The local aerofoil characteristics, i.e. C_l and C_d, are then computed from the forces acting on the blade. The extracted C_l and C_d are used in a standard blade element momentum (BEM) code, where no corrections are made for the rotational augmentation of forees or for the tip effect, since these are directly included in the aerofoil characteristics. Three stall-regulated wind turbine rotors are used as test cases. The computed mechanical power is overpredicted at high wind speeds using steady Reynolds-averaged Navier-Stokes computations, but using advanced turbulence models, e.g. detached eddy simulation, or a transition prediction model improves the computations. The agreement between the mechanical power (or low-speed shaft torque) predicted by CFD and BEM is good, even though a small but consistent difference in induction prediction is present. With the proposed method and a sufficiently accurate CFD computation it is possible to obtain aerofoil characteristics from a given wind turbine design without using empirical stall corrections models. Alternatively, new correction models can be derived using the extracted aerofoil characteristics.
机译:本文介绍了一种从3D计算流体力学(CFD)转子计算中提取机翼特性的方法。基于对转子平面中详细流动的了解,可以确定每个风速的平均截面轴向感应。基于此,当知道旋转速度和局部叶片扭转角时,确定局部迎角。然后根据作用在叶片上的力来计算局部翼型特性,即C_1和C_d。提取的C_1和C_d用于标准叶片元素动量(BEM)代码,其中不对前叉的旋转增强或叶尖效果进行校正,因为它们直接包含在机翼特性中。将三个失速调节的风力涡轮机转子用作测试案例。使用稳定的雷诺平均Navier-Stokes计算,但使用先进的湍流模型(例如,分离涡模拟或过渡预测模型可改善计算。 CFD和BEM预测的机械功率(或低速轴扭矩)之间的一致性很好,即使在感应预测中存在很小但一致的差异。利用所提出的方法和足够精确的CFD计算,可以从给定的风力涡轮机设计获得翼型特性,而无需使用经验性失速校正模型。或者,可以使用提取的机翼特性导出新的校正模型。

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