Zhuang Yong, Yuan Guangming
School of Mechanical Engineering, Shandong University of Technology, Zibo, China.
Sci Rep. 2024 Jun 4;14(1):12804. doi: 10.1038/s41598-024-62404-5.
As the size of wind turbine blades increases, the flexibility of the blades increases. In actual operation, airflow flow can cause aerodynamic elastic instability of the blade structure. Long blades may experience coupled mode flutter due to the bending torsion coupling effect, leading to blade failure. Based on Euler Bernoulli beam theory combined with Theodorsen non directional aerodynamic loads, a blade flutter characteristic equation is established through finite element method. Taking NREL 5 MW wind turbine blades as an example, analyze the influence of parameter changes in different regions of the blades on flutter characteristics. Research has found that paramter changes in the tip region of blade have the greatest impact on flutter characteristics. The vibration frequency shows an overall upward trend with the increase of waving stiffness and torsional stiffness. The flutter velocity of the three regions tends to stabilize as the bending stiffness decreases. The blade flutter speed increases with the increase of torsional stiffness. The radius of gyration is inversely proportional to the flutter frequency and flutter velocity. The impact of centroid offset on blade structure flutter frequency is minimal, but the centroid offset in the tip region has a greater impact on flutter velocity. Increasing the torsional frequency can prevent coupled mode flutter and provide a theoretical basis for blade flutter prevention design.
随着风力涡轮机叶片尺寸的增大,叶片的柔韧性增加。在实际运行中,气流会导致叶片结构的气动弹性不稳定。长叶片可能会由于弯扭耦合效应而经历耦合模态颤振,从而导致叶片失效。基于欧拉 - 伯努利梁理论并结合西奥多森非定向气动载荷,通过有限元方法建立了叶片颤振特性方程。以NREL 5兆瓦风力涡轮机叶片为例,分析叶片不同区域参数变化对颤振特性的影响。研究发现,叶片尖端区域的参数变化对颤振特性影响最大。随着挥舞刚度和扭转刚度的增加,振动频率总体呈上升趋势。随着弯曲刚度的降低,三个区域的颤振速度趋于稳定。叶片颤振速度随扭转刚度的增加而增加。回转半径与颤振频率和颤振速度成反比。质心偏移对叶片结构颤振频率的影响最小,但尖端区域的质心偏移对颤振速度有较大影响。增加扭转频率可以防止耦合模态颤振,为叶片颤振预防设计提供理论依据。