论文标题
在浮动海上风力涡轮机上进行波动扰动拒绝的前馈控制
Feedforward control for wave disturbance rejection on floating offshore wind turbines
论文作者
论文摘要
漂浮的海上风力涡轮机可以在深水中收获风能。但是,当浮动平台被风和波激发时,可能会导致其他动力学和结构载荷。在这项工作中,传统的风力涡轮机控制器与基于波浪测量的新型线性进料控制器相辅相成。前馈控制器的目的是减弱由波强度引起的转子速度变化。为了设计该控制器,开发了一个线性模型,描述了系统对事件波的响应。通过使用DTU 10MW涡轮机和Innwind.eu Triplespar平台作为参考文献,通过高保真数值工具评估了反馈馈线控制器的性能。在存在不规则波和湍流的情况下的模拟表明,进料控制器有效地补偿了波诱导的转子振荡。新型控制器能够将转子速度差异降低26%。结果,与静水的运行相比,剩余的转子速度方差仅高4%。
Floating offshore wind turbines allow wind energy to be harvested in deep waters. However, additional dynamics and structural loads may result when the floating platform is being excited by wind and waves. In this work, the conventional wind turbine controller is complemented with a novel linear feedforward controller based on wave measurements. The objective of the feedforward controller is to attenuate rotor speed variations caused by wave forcing. To design this controller, a linear model is developed that describes the system response to incident waves. The performance of the feedback-feedforward controller is assessed by a high-fidelity numerical tool using the DTU 10MW turbine and the INNWIND.EU TripleSpar platform as references. Simulations in the presence of irregular waves and turbulent wind show that the feedforward controller effectively compensates the wave-induced rotor oscillations. The novel controller is able to reduce the rotor speed variance by 26%. As a result, the remaining rotor speed variance is only 4% higher compared to operation in still water.