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Nonlinear model predictive control of floating wind turbines with individual pitch control

机译:具有独立变桨控制的浮式风力发电机的非线性模型预测控制

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In this work a nonlinear model predictive controller with individual pitch control for a floating offshore wind turbine is presented. An aerodynamic model of the collective pitch control approach is extended by describing pitching and yawing moments based on rotor disk theory. This extension is implemented in a reduced nonlinear model of the floating wind turbine including disturbance preview of wind speed, linear vertical and horizontal wind shear, and wave height to compute optimal input trajectories for the individual pitch control inputs and the generator torque. An extended cost functional for individual pitch control is proposed based on the collective pitch control approach. The controller is evaluated in aero-servo-hydro-elastic simulations of a 5MW reference wind turbine disturbed by a three-dimensional stochastic turbulent wind field. Results show a significant blade fatigue load reduction compared to a baseline controller through minimizing yawing and pitching moments on the rotor hub while maintaining the advantages of the model predictive control approach with collective pitch control.
机译:在这项工作中,提出了一种用于浮式海上风力发电机的具有独立变桨控制的非线性模型预测控制器。通过描述基于转子盘理论的俯仰和偏航力矩,扩展了集体变桨控制方法的空气动力学模型。这种扩展是在浮动风力涡轮机的简化非线性模型中实现的,该模型包括风速,线性垂直和水平风切变以及波高的干扰预览,以针对单个桨距控制输入和发电机转矩计算最佳输入轨迹。基于集体螺距控制方法,提出了一种用于个体螺距控制的扩展成本函数。该控制器在5MW参考风力涡轮机的航空-伺服-水-弹性模拟中受到了三维随机湍动风场的干扰,从而对控制器进行了评估。结果显示,与基线控制器相比,通过最大程度地减小了转子轮毂上的偏航力矩和俯仰力矩,同时保持了模型预测控制方法具有集中俯仰控制的优势,与基准控制器相比,叶片疲劳负荷显着降低。

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