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Wake impacts on aerodynamic and aeroelastic behaviors of a horizontal axis wind turbine blade for sheared and turbulent flow conditions

机译:在剪切和湍流条件下,尾迹对水平轴风力涡轮机叶片的空气动力和空气弹性行为的影响

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The magnitude and temporal variations of wind speed considerably influence aerodynamic and structural responses of MW-sized horizontal axis wind turbines. Thus, this paper investigates the variations in airloads and blade behavior of a wind turbine blade resulting from operations in sheared and turbulent flow conditions. First, in order to validate the present methods, comparisons of aerodynamic results were made among the blade element momentum method, free-wake method, and numerical results from the previous studies. Then, the validated methods were applied to a national renewable energy laboratory 5 MW reference wind turbine model for fluid-structure interaction analyses. From the numerical simulations, it can be clearly seen that unfavorable airloads and blade deformations occur due to the sheared and turbulent flow conditions. In addition, it is clear that wake impacts are not as substantial at those of high wind speeds; however, the effects obviously affect the aerodynamic and structural behaviors of the blade at lower wind speeds. Therefore, it is concluded that the numerical results markedly indicate the demand for accurate assessment of wake dynamics for accurate estimations of the aerodynamic and structural responses for sheared and turbulent flow environments.
机译:风速的大小和时间变化会极大地影响兆瓦级水平轴风力涡轮机的空气动力和结构响应。因此,本文研究了在剪切流和湍流条件下的操作导致的风力涡轮机叶片的空气载荷和叶片性能变化。首先,为了验证本方法,比较了叶片动力量法,自由尾迹法和先前研究的数值结果之间的空气动力学结果。然后,将经过验证的方法应用于国家可再生能源实验室5 MW参考风力涡轮机模型,以进行流固耦合分析。从数值模拟中可以清楚地看到,由于剪切流和湍流条件,产生了不利的空气载荷和叶片变形。此外,很明显,在高风速下,尾流冲击并不那么严重。但是,这些影响显然会影响风速较低时叶片的空气动力学和结构性能。因此,可以得出结论,数值结果明显表明需要对尾流动力学进行准确评估,以准确估算剪切和湍流环境的空气动力学和结构响应。

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