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A parametric study of flutter behavior of a composite wind turbine blade with bend-twist coupling

机译:曲扭耦合复合风轮机叶片颤振特性的参数研究

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Now a days wind turbine blades are generally designed to have length as high as 60 m or more to maximize power production. Aeroelastic instabilities such as flutter are major concerns for these long, flexible and slender blades. Stiffness coupling between bending and twisting modes can be used to improve the aeroelastic performance of such blades. In composite blades bend twist coupling can be achieved by imparting unbalance in the lamination sequence. In the present work, a parametric study has been conducted to study the effect of unbalances in different parts of a wind turbine blade on flutter instability. An eigenvalue-based approach has been used for flutter analysis. It has been observed that flap-torsional stiffness has high impact on critical flutter speed. The critical flutter speed is increased by 40% with flap-torsional stiffness due to the unbalance in the entire section of the blade with symmetric skin, while for asymmetric skin; the achievable increment is 100%. The unbalance in the spar cap of the blade has less critical flutter speed as compared to the unbalance in the entire section of the blade. Unbalance in the entire section of the blade with asymmetric skin can lead to highest flutter speed.
机译:如今,通常将风力涡轮机叶片的长度设计为长达60 m或更长,以最大程度地发电。对于这些长而柔软的细长叶片而言,诸如颤振之类的气动弹性不稳定性是主要问题。弯曲和扭曲模式之间的刚度耦合可用于改善此类叶片的气动弹性性能。在复合叶片中,可以通过在层压顺序中施加不平衡来实现弯曲扭转耦合。在目前的工作中,已经进行了参数研究,以研究风力涡轮机叶片不同部分的不平衡对颤振不稳定性的影响。基于特征值的方法已用于颤振分析。已经观察到,襟翼扭转刚度对临界颤振速度具有很大影响。对于不对称皮肤,由于整个叶片的不平衡性,临界襟翼速度随襟翼扭转刚度增加了40%。可达到的增量为100%。与叶片整个部分的不平衡相比,叶片的翼梁盖的不平衡具有较小的临界颤动速度。皮肤不对称的整个刀片区域的不平衡会导致最高的颤动速度。

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