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Optimization of Straight-bladed Darrieus type vertical axis wind blade for low wind speed

机译:直刃达雷斯型垂直轴风叶片的优化,用于低风速

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Straight-bladed Darrieus blade is a type of vertical axis wind turbine that requires low wind speed to operate but is considered less efficient due to conventional blade geometry. To increase its performance by means of dynamic torque, the study used a statistical method, central composite design, through DesignExpert software. The computational fluid dynamics (CFD) through SolidWorks Reynolds-Averaged Navier Stokes Equation (RANS) k – epsilon turbulence model was used to simulate the Design of Experiments. The study was composed of two phases, namely 2D and 3D simulations. The 2D simulation studied the effect of varying the camber, camber location, and thickness to the dynamic torque, while the 3D simulation varied the blade height, rotor radius, and materials. The camber’s optimal conditions, camber location, and thickness in 2D simulations are 4.75%, 45%, and 15.50% of the chord, respectively. These optimal design values could reach the dynamic torque equivalent to 60.6571 Newton-meter. Meanwhile, the blade height and rotor radius of the 3D simulations have optimal design values of 4.41 meters and 4.75 meters, respectively. These optimal values could increase the dynamic torque to 2310.01 Newton-meter. The dynamic torque of the optimal design obtained a 133% significant increase compared to the conventional blade. Thus, the research has proven the increase in the Darrieus Wind turbine’s performance by varying its blade geometry.
机译:直叶达里斯刀片是一种垂直轴风力涡轮机,需要低风速来运行,但由于传统的叶片几何形状,被认为是较低的有效性。为了通过动态扭矩提高其性能,研究通过DesignExpert软件使用了统计方法,中央复合设计。通过SolidWorks Reynolds-Iveriged Navier Stokes方程(RAN)K-Epsilon湍流模型的计算流体动力学(CFD)用于模拟实验的设计。该研究由两个阶段组成,即2D和3D模拟。 2D仿真研究了改变弯角,弯曲位置和厚度到动态扭矩的效果,而3D模拟变化了叶片高度,转子半径和材料。 CAMBER的最佳条件,弧形位置和2D模拟中的厚度分别为4.75%,45%和15.50%的和弦。这些最佳设计值可以达到相当于60.6571牛顿仪表的动态扭矩。同时,3D仿真的刀片高度和转子半径分别具有4.41米和4.75米的最佳设计值。这些最佳值可以将动态转矩增加到2310.01牛顿仪表。与传统刀片相比,最佳设计的动态扭矩得到了133%的显着增加。因此,通过改变其叶片几何形状,研究已经证明了Darrius风力涡轮机的性能的增加。

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