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Effects of incoming surface wind conditions on the wake characteristics and dynamic wind loads acting on a wind turbine model

机译:进入的地面风状况对作用于风力涡轮机模型的尾流特性和动态风荷载的影响

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An experimental investigation was conducted to examine the effects of incoming surface wind conditions on the wake characteristics and dynamic wind loads acting on a wind turbine model. The experimental study was performed in a large-scale wind tunnel with a scaled three-blade Horizontal Axial Wind Turbine model placed in two different types of Atmospheric Boundary Layer (ABL) winds with distinct mean and turbulence characteristics. In addition to measuring dynamic wind loads acting on the model turbine by using a force-moment sensor, a high-resolution Particle Image Velocimetry system was used to achieve detailed flow field measurements to characterize the turbulent wake flows behind the model turbine. The measurement results reveal clearly that the discrepancies in the incoming surface winds would affect the wake characteristics and dynamic wind loads acting on the model turbine dramatically. The dynamic wind loads acting on the model turbine were found to fluctuate much more significantly, thereby, much larger fatigue loads, for the case with the wind turbine model sited in the incoming ABL wind with higher turbulence intensity levels. The turbulent kinetic energy and Reynolds stress levels in the wake behind the model turbine were also found to be significantly higher for the high turbulence inflow case, in comparison to those of the low turbulence inflow case. The flow characteristics in the turbine wake were found to be dominated by the formation, shedding, and breakdown of various unsteady wake vortices. In comparison with the case with relatively low turbulence intensities in the incoming ABL wind, much more turbulent and randomly shedding, faster dissipation, and earlier breakdown of the wake vortices were observed for the high turbulence inflow case, which would promote the vertical transport of kinetic energy by entraining more high-speed airflow from above to re-charge the wake flow and result in a much faster recovery of the velocity deficits in the turbine wake. (C) 2014 AIP Publishing LLC.
机译:进行了一项实验研究,以检查进入的表面风况对唤醒特性和作用在风力涡轮机模型上的动态风荷载的影响。该实验研究是在大型风洞中进行的,该风洞具有按比例缩放的三叶片水平轴向风力涡轮机模型,该模型放置在两种具有不同均值和湍流特征的不同类型的大气边界层(ABL)风中。除了使用力矩传感器测量作用在模型涡轮机上的动态风荷载外,还使用高分辨率的粒子图像测速系统实现详细的流场测量,以表征模型涡轮机后面的湍流尾流。测量结果清楚地表明,入射表面风的差异将显着影响尾流特性和作用在模型涡轮机上的动态风载荷。发现作用在模型涡轮机上的动态风载荷波动更大,因此疲劳载荷更大,对于风力涡轮机模型位于具有更高湍流强度水平的传入ABL风中的情况。与低湍流情况相比,模型湍流后面的尾流中的湍动能和雷诺应力水平也显着高于高湍流情况。发现涡轮机尾流中的流动特性受各种不稳定尾流涡旋的形成,脱落和破坏支配。与进入的ABL风中湍流强度相对较低的情况相比,在高湍流入流情况下,观察到更多的湍流和随机脱落,更快的耗散以及较早的尾流涡流分解,这将促进动力学的垂直传输。通过从上方夹带更多的高速气流来补充尾流,从而获得更大的能量,从而使涡轮机尾流中的速度缺陷恢复得更快。 (C)2014 AIP Publishing LLC。

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