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Integrated airfoil and blade design method for large wind turbines

机译:大型风力发电机的翼型与叶片一体化设计方法

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This paper presents an integrated method for designing airfoil families of large wind turbine blades. For a given rotor diameter and a tip speed ratio, optimal airfoils are designed based on the local speed ratios. To achieve a high power performance at low cost, the airfoils are designed with the objectives of high C_p and small chord length. When the airfoils are obtained, the optimum flow angle and rotor solidity are calculated which forms the basic input to the blade design. The new airfoils are designed based on a previous in-house designed airfoil family which was optimized at a Reynolds number of 3 million. A novel shape perturbation function is introduced to optimize the geometry based on the existing airfoils which simplifies the design procedure. The viscous/inviscid interactive code XFOIL is used as the aerodynamic tool for airfoil optimization at a Reynolds number of 16 million and a free-stream Mach number of 0.25 near the tip. Results show that the new airfoils achieve a high power coefficient in a wide range of angles of attack (AOA) and are extremely insensitive to surface roughness. Finally, a full blade analysis using computational fluid dynamics (CFD) and blade element momentum (BEM) technique proves the reliability of the integrated design method.
机译:本文提出了一种设计大型风力涡轮机叶片翼型系列的综合方法。对于给定的转子直径和叶尖速度比,根据局部速度比设计最佳翼型。为了以低成本实现高功率性能,翼型被设计为具有高C_p和较小弦长的目的。当获得翼型时,将计算出最佳的流角和转子坚固性,这是叶片设计的基本输入。新机翼的设计基于先前内部设计的机翼家族,该家族经过了雷诺数300万的优化。引入了一种新颖的形状摄动功能,可基于现有机翼优化几何形状,从而简化了设计过程。粘性/无粘性交互式代码XFOIL用作翼型优化的气动工具,雷诺数为1600万,尖端附近的自由流马赫数为0.25。结果表明,新型翼型在较大的迎角(AOA)范围内均具有较高的功率系数,并且对表面粗糙度极为不敏感。最后,使用计算流体动力学(CFD)和叶片元素动量(BEM)技术进行的完整叶片分析证明了集成设计方法的可靠性。

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