水平轴风力机叶片中NACA翼型最佳位置的理论与计算研究

Q3 Energy Journal of Energy Systems Pub Date : 2022-09-30 DOI:10.30521/jes.1055935
G. Tefera, Glen Bright, S. Adali
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引用次数: 1

摘要

本文对沿水平轴风力机叶片长度方向确定翼型的最佳位置进行了理论和计算研究。我们使用四和五位数的NACA翼型模型54米叶片。每个翼型的升力,阻力系数和升阻比是由使用QBlade软件确定的。基于叶片单元动量理论对翼型的气动性能进行了研究,并利用Matlab软件进行了数值实现。每个翼型上的速度和压力分布采用计算流体动力学进行了评估。我们采用厚度分布技术来调整翼型沿叶片长度的位置。值得注意的是,应力在根部达到最大值,在尖端达到最小值。因此,较厚的(NACA 4420)和较薄的(NACA 23012)翼型被设置在最大弦的20%和在叶片尖端部分的91.11%。叶片的其余部分使用线性插值方法进行配置。具体而言,新设计的最大弦长比NACA 23012转子叶片减少了18.06%。最后,利用法向力和切向力曲线图估算出所设计动叶的推荐叶尖速比,从而实现安全高效的设计。
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Theoretical and computational studies on the optimal positions of NACA airfoils used in horizontal axis wind turbine blades
This paper presents a theoretical and computational study to determine the optimal positions of airfoils along the length of the horizontal axis wind turbine blade. We used four and five-digit NACA airfoils to model a 54-meter blade. The lift, drag coefficient, and lift-to-drag ratio of each airfoil are determined by using QBlade software. The aerodynamic performance of the airfoils is studied based on the blade element momentum theory, and Matlab software is used for numerical implementation. The velocity and pressure distributions on each airfoil are assessed using computational fluid dynamics. We implement the thickness distribution techniques to adjust the positions of the airfoils along the length of the blade. It is noted that stresses reach their maximum values at the root and minimum at the tip section. Thus, the thicker (NACA 4420) and thinner (NACA 23012) airfoils are set at 20% of the maximum chord and 91.11% at the tip sections of the blades. The remaining sections of the blade are configured using linear interpolation methods. Specifically, the maximum chord length of the new design is reduced by 18.06% compared to the NACA 23012 rotor blade. Finally, the recommended tip speed ratio for the designed rotor blade is estimated using the graphs of the normal and tangential forces, thereby producing a safe and efficient design.
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来源期刊
Journal of Energy Systems
Journal of Energy Systems Environmental Science-Management, Monitoring, Policy and Law
CiteScore
1.60
自引率
0.00%
发文量
29
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