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Aerodynamic performance improvement of wind turbine blade by cavity shape optimization

机译:通过腔体形状优化提高风力涡轮机叶片的空气动力学性能

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Many conventional airfoils, despite a good performance at their design points, get out of optimal conditions outside the design points. One passive way to enhance the airfoil performance is to use a cavity with an optimized shape. In this study, Riso_B1_18 airfoil, having a remarkable aerodynamic performance for wind turbine blades, is selected as a substrate for deploying an optimized cavity on the airfoil. For shape optimization of a cavity, its shape and downstream suction surface are parametrized to reach an optimum lift-to-drag ratio as the target function by using the genetic algorithm. The results of transient numerical solution indicate that the optimized cavity is well capable of draping vortex to control the stall margin, prevent flow fluctuations and significantly increase the lift-to-drag ratio at off design conditions. To validate the performance improvement obtained from this numerical optimization, a force measurement setup is accomplished in a wind tunnel with 30 x 30 cm(2) test section to measure the lift and drag forces of the Riso airfoil with and without optimized cavity. The experimental results shows that the lift-to-drag ratio increases 31% at AOA = 14 degrees and 57% at AOA = 20 degrees due to using the optimized cavity. (C) 2018 Elsevier Ltd. All rights reserved.
机译:尽管许多常规机翼在设计点上表现出色,但它们仍超出了设计点之外的最佳条件。增强翼型性能的一种被动方法是使用形状优化的空腔。在这项研究中,Riso_B1_18翼型具有出色的空气动力学性能,可用于风力涡轮机叶片,因此被选为在翼型上部署优化空腔的基质。为了优化腔体的形状,使用遗传算法对腔体的形状和下游吸力面进行参数设置,以达到最佳升阻比作为目标函数。瞬态数值解的结果表明,优化的腔室具有很好的涡旋能力,可以控制失速裕度,防止流量波动,并在非设计条件下显着提高升阻比。为了验证从此数值优化获得的性能改进,在具有30 x 30 cm(2)测试截面的风洞中完成了力测量设置,以测量带有和不带有优化腔体的Riso翼型的升力和阻力。实验结果表明,由于使用了优化的腔体,在AOA = 14度时,升阻比增加了31%,在AOA = 20度时,升阻比增加了57%。 (C)2018 Elsevier Ltd.保留所有权利。

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