Analysis of aerodynamic characteristics of a two-bladed wind power plant containing combined power elements

IF 0.3 Q4 PHYSICS, MULTIDISCIPLINARY
A.Zh. Tleubergenova, A.N. Dyusembayeva, N.K. Tanasheva
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Abstract

In this article, the aerodynamic characteristics of a wind turbine of various parameters are studied. For this purpose, an experimental two-cylinder model with fixed blades was made. A schematic diagram of a wind turbine with fixed blades and rotating cylinders is obtained. The airflow velocity varied from 3 to 12 m/s. The dependences of the aerodynamic forces of a wind power plant on the flow velocity were investigated. The analysis of the results of the experiment on changing the angle α of the fixed blade relative to the cylinder from the airflow velocity of the wind turbine is carried out. When the position of the blade changes, the drag changes relative to the airflow. A graph is constructed based on the dependence of drag and lift forces on the flow velocity. It is established that at the maximum angle relative to the cylinder α = 30° that the value of the lifting force and the drag force of the fixed blade is higher. From the dependence of the coefficient of lift and drag force on the Reynolds number, it was found that at an angle of 30° degrees, there is a minimum lifting force of 0.04 and a maximum drag force of 1.479 at Re=1·104 . The results of the experiment show that it is possible to use an additional force driven by the Magnus effect that occurs when rotating cylinders with a horizontal axis. These results are considered useful for us in practice since these results can be used in combined wind engines operating at low wind speeds. This wind power plant can generate electricity starting from a wind speed of 2.8 m/s.
双叶片组合动力元件风电场气动特性分析
本文研究了某型风力机在不同参数下的气动特性。为此,建立了固定叶片的实验双缸模型。得到了固定叶片旋转气缸风力机的原理图。气流速度为3 ~ 12m /s。研究了风电场的气动力与风速的关系。从风力机的气流速度出发,对改变固定叶片相对于气缸的角度α的实验结果进行了分析。当叶片位置改变时,阻力相对于气流变化。基于阻力和升力对流速的依赖关系,构造了一个图。结果表明,在与气缸的最大夹角α = 30°时,固定叶片的升力和阻力值较大。由升力和阻力系数与雷诺数的关系可知,在雷诺数为1·104时,在30°角处升力最小为0.04,阻力最大为1.479。实验结果表明,当圆柱沿水平轴旋转时,可以利用马格努斯效应驱动的附加力。这些结果被认为在实践中对我们有用,因为这些结果可以用于在低风速下运行的组合风力发动机。这个风力发电厂可以从2.8米/秒的风速开始发电。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
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50.00%
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32
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