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LPV Control for the Full Region Operation of a Wind Turbine Integrated with Synchronous Generator

机译:集成有同步发电机的风力发电机全区域运行的LPV控制

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摘要

Wind turbine conversion systems require feedback control to achieve reliable wind turbine operation and stable current supply. A robust linear parameter varying (LPV) controller is proposed to reduce the structural loads and improve the power extraction of a horizontal axis wind turbine operating in both the partial load and the full load regions. The LPV model is derived from the wind turbine state space models extracted by FAST (fatigue, aerodynamics, structural, and turbulence) code linearization at different operating points. In order to assure a smooth transition between the two regions, appropriate frequency-dependent varying scaling parametric weighting functions are designed in the LPV control structure. The solution of a set of linear matrix inequalities (LMIs) leads to the LPV controller. A synchronous generator model is connected with the closed LPV control loop for examining the electrical subsystem performance obtained by an inner speed control loop. Simulation results of a 1.5 MW horizontal axis wind turbine model on the FAST platform illustrates the benefit of the LPV control and demonstrates the advantages of this proposed LPV controller, when compared with a traditional gain scheduling PI control and prior LPV control configurations. Enhanced structural load mitigation, improved power extraction, and good current performance were obtained from the proposed LPV control.
机译:风力涡轮机转换系统需要反馈控制,以实现可靠的风力涡轮机运行和稳定的电流供应。提出了一种鲁棒的线性参数变化(LPV)控制器,以减少结构负荷并改善在部分负荷和全负荷区域运行的水平轴风力发电机的功率提取。 LPV模型是通过在不同工作点通过FAST(疲劳,空气动力学,结构和湍流)代码线性化提取的风机状态空间模型得出的。为了确保两个区域之间的平滑过渡,在LPV控制结构中设计了适当的频率相关的可变缩放比例参数加权函数。一组线性矩阵不等式(LMI)的解导致了LPV控制器。同步发电机模型与封闭的LPV控制回路连接,用于检查由内部速度控制回路获得的电气子系统性能。在FAST平台上的1.5 MW水平轴风力涡轮机模型的仿真结果说明了LPV控制的优势,并证明了与传统的增益调度PI控制和现有LPV控制配置相比,该LPV控制器的优势。从建议的LPV控制中获得了增强的结构负载缓解能力,改进的功率提取能力和良好的电流性能。

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