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Experimental investigation of low aspect ratio, large amplitude, aeroelastic energy harvesting systems

机译:低纵横比,大振幅,气动弹性能量采集系统的实验研究

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Interest in clean, stable, and renewable energy harvesting devices has increased dramatically with the volatility of petroleum markets. Specifically, research in aero/hydro kinetic devices has created numerous new horizontal and vertical axis wind turbines, and oscillating wing turbines. Oscillating wing turbines (OWTs) differ from their wind turbine cousins by having a rectangular swept area compared to a circular swept area. The OWT systems also possess a lower tip speed that reduces the overall noise produced by the system. OWTs have undergone significant computational analysis to uncover the underlying flow physics that can drive the system to high efficiencies for single wing oscillations. When two of these devices are placed in tandem configuration, i.e. one placed downstream of the other, they either can constructively or destructively interact. When constructive interactions occurred, they enhance the system efficiency to greater than that of two devices on their own. A new experimental design investigates the dependency of interaction modes on the pitch stiffness of the downstream wing. The experimental results demonstrated that interaction modes are functions of convective time scale and downstream wing pitch stiffness. Heterogeneous combinations of pitch stiffness exhibited constructive and destructive lock-in phenomena whereas the homogeneous combination exhibited only destructive interactions.
机译:随着石油市场的动荡,人们对清洁,稳定和可再生能源收集装置的兴趣急剧增加。具体而言,对空气/水动力装置的研究创造了许多新的水平轴和垂直轴风力涡轮机以及摆动翼型涡轮机。摆动翼型涡轮机(OWT)与风力涡轮机表亲的区别在于,与圆形后掠面积相比,其矩形后掠面积更大。 OWT系统还具有较低的叶尖速度,可降低系统产生的总体噪音。 OWT已进行了大量的计算分析,以发现潜在的流体物理现象,这些现象可以使系统提高单翼振荡的效率。当这些设备中的两个以串联配置放置时,即一个设备放置在另一个设备的下游时,它们可以进行建设性或破坏性的交互。当发生建设性的互动时,它们可以将系统效率提高到比单独使用两个设备更高的水平。一种新的实验设计研究了相互作用模式对下游机翼俯仰刚度的依赖性。实验结果表明,相互作用模式是对流时间尺度和下游机翼俯仰刚度的函数。俯仰刚度的异质组合表现出建设性和破坏性的锁定现象,而均质组合仅表现出破坏性的相互作用。

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