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Aerodynamic Structures and Processes in Rotationally Augmented Flow Fields

机译:旋转增强流场中的空气动力学结构和过程

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Rotational augmentation of horizontal axis wind turbine blade aerodynamics currently remains incompletely characterized and understood. To address this, the present study concurrently analysed experimental measurements and computational predictions, both of which were unique and of high quality. Experimental measurements consisted of surface pressure data statistics used to infer sectional boundary layer state and to quantify normal force levels. Computed predictions included high-resolution boundary layer topologies and detailed above-surface flow field structures. This synergy was exploited to reliably identify and track pertinent features in the rotating blade boundary layer topology as they evolved in response to varying wind speed. Subsequently, boundary layer state was linked to above-surface flow field structure and used to deduce mechanisms underlying augmented aerodynamic force production during rotating conditions.
机译:水平轴风力涡轮机叶片空气动力学的旋转增强目前仍未完全表征和理解。为了解决这个问题,本研究同时分析了实验测量和计算预测,两者都是独特且高质量的。实验测量包括用于推断截面边界层状态和量化法向力水平的表面压力数据统计信息。计算的预测包括高分辨率边界层拓扑和详细的地表流场结构。利用这种协同作用,可以可靠地识别和跟踪旋转叶片边界层拓扑中的相关特征,以应对风速的变化。随后,边界层状态与地表流场结构相关联,并用于推断旋转条件下产生更大的空气动力产生的机理。

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