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Modal Properties and Stability of Bend-Twist Coupled Wind Turbine Blades

机译:弯曲 - 扭转耦合风力机叶片的模态特性与稳定性

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摘要

Coupling between bending and twist has a significant influence on the aeroelastic response of wind turbine blades. The coupling can arise from the blade geometry (e.g. sweep, prebending or deflection under load) or from the anisotropic properties of the blade material. Bend-twist coupling can be utilised to reduce the fatigue loads of wind turbine blades. In this study the effect of material based coupling on the aeroelastic modal properties and stability limits of the DTU 10 MW Reference Wind Turbine are investigated. The modal properties are determined by means of eigenvalue analysis around a steady-state equilibrium using the aero-servo-elastic tool HAWCStab2 which has been extended by a beam element that allows for fully coupled cross-sectional properties. Bend-twist coupling is introduced in the cross-sectional stiffness matrix by means of coupling coefficients that introduce twist for flapwise (flap-twist coupling) or edgewise (edge-twist coupling) bending. Edge-twist coupling can increase or decrease the damping of the edgewise mode relative to the reference blade, depending on the operational condition of the turbine. Edge-twist to feather coupling for edgewise deflection towards the leading edge reduces the inflow speed at which the blade becomes unstable. Flap-twist to feather coupling for flapwise deflections towards the suction side increase the frequency and reduce damping of the flapwise mode. Flap-twist to stall reduces frequency and increases damping. The reduction of blade root flapwise and tower bottom fore-aft moments due to variations in mean windspeed of a flap-twist to feather blade are confirmed by frequency response functions.
机译:弯曲和扭曲之间的耦合对风力涡轮机叶片的气动弹性响应具有重大影响。这种耦合可以由叶片的几何形状(例如,载荷下的扫掠,预弯曲或挠曲)或叶片材料的各向异性引起。弯扭联轴器可用于减少风力涡轮机叶片的疲劳载荷。在这项研究中,研究了基于材料的耦合对DTU 10 MW参考风力涡轮机的气动弹性模态特性和稳定性极限的影响。模态特性是通过使用气动-气动弹性工具HAWCStab2围绕稳态平衡状态进行特征值分析确定的,该工具已经通过允许完全耦合的截面特性的梁单元进行了扩展。弯扭耦合通过横截面刚度矩阵引入耦合系数,该耦合系数引入了用于拍打方向(襟翼-扭曲耦合)或边缘方式(边缘-扭曲耦合)的扭曲。取决于涡轮的运行状况,边缘扭转联接可以增加或减小相对于参考叶片的边缘模式的阻尼。边缘扭曲到羽毛形的耦合,使边缘朝前边缘偏转,从而降低了叶片变得不稳定的流入速度。襟翼扭曲到羽毛的耦合使襟翼向吸力侧偏转,增加了频率并减小了襟翼模式的阻尼。襟翼扭转失速会降低频率并增加阻尼。通过频率响应函数可以确认,由于襟翼加捻至羽毛叶片的平均风速变化而导致叶片根部拍打方向和塔底前后力矩的减小。

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