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Stall-Induced Vibrations of the AVATAR Rotor Blade

机译:AVATAR转子叶片的失速引起的振动

摘要

In the course of the AVATAR project, partner predictions for key load components in storm/idle conditions separated in two groups. One group showed large loading due to edgewise instability, the other group damped edgewise oscillation and lower load levels. To identify the cause for this separation, the impact of structural and aerodynamic modeling options on damping of stall-induced vibrations is investigated for two simplified operating conditions of a single AVATAR blade. The choice of the dynamic stall model is found to be the primary driver, and is therefore most likely also the reason for previously observed differences in AVATAR storm load predictions. Differences in structural dynamics, mode shapes, structural and dynamic twist, as well as wake model are only secondary in terms of impact on damping. Resolution suffered from failure of system identification methods to extract reliable damping values from various non-linear response simulations.
机译:在AVATAR项目的过程中,将风暴/怠速条件下关键负荷分量的合作伙伴预测分为两组。一组由于边沿不稳定性而显示出较大的载荷,另一组衰减了边沿振荡并降低了载荷水平。为了确定这种分离的原因,针对单个AVATAR叶片的两个简化操作条件,研究了结构模型和空气动力学模型选项对失速感应振动阻尼的影响。发现动态失速模型的选择是主要驱动因素,因此很可能也是先前观察到的AVATAR风暴负荷预测差异的原因。就阻尼的影响而言,结构动力学,模态形状,结构和动态扭曲以及尾流模型的差异仅是次要的。系统识别方法无法从各种非线性响应模拟中提取可靠的阻尼值,导致分辨率降低。

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