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Load alleviation on wind turbine blades using variable airfoil geometry

机译:使用可变翼型几何形状减轻风力涡轮机叶片的负载

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A two-dimensional theoretical study of the aeroelastic behaviour of an airfoil has been performed, whose geometry can be altered using a rear-mounted flap. This device is governed by a controller, whose objective is to reduce the airfoil displacements and, therefore, the stresses present in a real blade. The aerodynamic problem was solved numerically by a panel method using the potential theory, suitable for modelling attached flows. It is therefore mostly applicable for Pitch Regulated Variable Speed (PRVS) wind turbines, which mainly operate under this flow condition. The results show evident reductions in the airfoil displacements by using simple control strategies having the airfoil position and its first and second derivatives as input, especially at the system's eigenfrequency. The use of variable airfoil geometry is an effective means of reducing the vibration magnitudes of an airfoil that represents a section of a wind turbine blade, when subject to stochastic wind signals. The results of this investigation encourage further investigations with 3D aeroelastic models to predict the reduction in loads in real wind turbines.
机译:进行了机翼气动弹性行为的二维理论研究,其几何形状可以使用后置襟翼进行更改。该装置由控制器控制,该控制器的目的是减少翼型位移,从而减少真实叶片中的应力。通过使用势能理论的面板方法以数值方法解决了空气动力学问题,该方法适用于对附加流动进行建模。因此,它主要适用于主要在这种流动条件下运行的变桨调速(PRVS)风力涡轮机。结果表明,通过使用简单的控制策略将机翼位置及其一阶和二阶导数作为输入,特别是在系统的本征频率下,通过简单的控制策略可以明显减少机翼位移。当受到随机风信号时,可变翼型几何形状的使用是减小代表风力涡轮机叶片的一部分的翼型的振动幅度的有效手段。该调查的结果鼓励对3D气动弹性模型进行进一步研究,以预测实际风力涡轮机中负荷的减少。

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