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OPTIMAL DESIGN OF A SIMPLIFIED MORPHING BLADE FOR FIXED-SPEED HORIZONTAL AXIS WIND TURBINES

机译:固定速度水平轴风轮机简化变形叶片的优化设计

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The aim of designing the wind turbine blades is to improve the power capture ability. Since the rotor control technology is currently limited to controlling the rotor rotational speed and the pitch of the blades, an increasing concern has been given to the morphing blades. In this paper, a simplified morphing blade is introduced, which has a linear twisted distribution along the span and its shape can be controlled by adjusting the root twisted angle and the tip twisted angle of the blade. Moreover, to evaluate the performances of the wind turbine blades, a numerical code based on the blade element momentum theory is developed and validated. The blade of the NREL Phase VI wind turbine is taken as a reference blade, and the optimization problems associated with the morphing blade and pitch control blade are both formulated. The optimal results show that the morphing blade gives better results than the pitch control blade in terms of produced power. Under the assumption that in a given site, the annual average wind speed is known and the wind speed follows the Rayleigh distribution, we can evaluate the annual energy produced by these three blade types. While the annual average wind speed varies from 5 m/s to 15 m/s, the results show that the optimal morphing blade can increase 23.9 percent toll A percent in annual energy production while the optimal pitch control blade can increase 22.5 percent to 61A percent in annual energy production, over the existing twisted pitch fixed blade.
机译:设计风力涡轮机叶片的目的是提高功率捕获能力。由于转子控制技术目前仅限于控制转子的旋转速度和叶片的桨距,因此人们越来越关注变形叶片。本文介绍了一种简化的变质刀片,该刀片沿跨度具有线性扭曲分布,并且可以通过调整刀片的根部扭曲角度和尖端扭曲角度来控制其形状。此外,为了评估风力涡轮机叶片的性能,开发并验证了基于叶片元件动量理论的数字代码。以NREL VI期风力涡轮机的叶片为参考叶片,并提出了与变形叶片和变桨控制叶片相关的优化问题。最佳结果表明,就产生的功率而言,变形刀片比变桨控制刀片提供了更好的结果。假设在给定站点中年平均风速已知并且风速遵循瑞利分布,我们可以评估这三种叶片类型产生的年能量。虽然年平均风速从5 m / s到15 m / s不等,但结果表明,最佳变质叶片可将年度能源生产中的通行费A%提高23.9%,而最佳变桨控制叶片可将22.5%增至61A%。在每年的能源生产中,超过了现有的螺距固定叶片。

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