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Horizontal axis wind turbine dynamic stall predictions based on wind speed and direction variability

机译:基于风速和方向变化的水平轴风力发电机动态失速预测

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The onset of dynamic stall in horizontal axis wind turbines (HAWTs) is related to the rapid increase in the angle of attack caused by sudden changes in wind speed and direction. In order to relate the changes in wind speed and direction with the variations in the blade-section angle of attack, an analytical model is proposed to determine the regions of the blade affected by dynamic stall. The so-called threshold radius has been identified and defined as the percentage of the blade length from the horizontal axis wind turbines hub beyond which the probability of dynamic stall occurrence falls to zero. High quality wind data were acquired to determine the average wind conditions that serve as the model inputs. It is shown that the rate of change of wind speed, due to gusts or the average turbulence, can cause large regions of dynamic stall on the wind turbine blade. Other parameters, such as the yaw misalignment and the rate of change of yaw angle are shown to be the cause of asymmetrical distribution of threshold radius with azimuth and also serve to increase the affected regions. Finally it is shown that the type of airfoil used in the turbine blade also has a significant effect on the threshold radius due to the different limiting reduced frequencies.
机译:水平轴风力涡轮机(HAWT)中动态失速的发生与风速和风向的突然变化引起的迎角的快速增加有关。为了将风速和风向的变化与叶片截面迎角的变化联系起来,提出了一种解析模型来确定受动态失速影响的叶片区域。已经确定了所谓的阈值半径,并将其定义为距水平轴风力涡轮机轮毂的叶片长度的百分比,超过该百分比,动态失速发生的可能性将降至零。获取了高质量的风数据,以确定用作模型输入的平均风况。结果表明,由于阵风或平均湍流,风速的变化率会在风力涡轮机叶片上引起大范围的动态失速。其他参数(例如偏航未对准和偏航角的变化率)显示为阈值半径与方位角不对称分布的原因,并且还增加了受影响的区域。最终表明,由于不同的极限降低频率,涡轮叶片中使用的翼型类型也对阈值半径产生了重大影响。

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