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Adaptive Robust Fault-Tolerant Control Design for Wind Turbines Subject to Pitch Actuator Faults

机译:风力涡轮机的自适应稳健容错控制设计,受音调执行器故障

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摘要

This paper proposes an adaptive fault tolerant control (FTC) design for a variable speed wind turbine (WT) operating in the high wind speeds region. It aims at mitigating pitch actuator faults and regulating the generator power to its rated value, thereby reducing the mechanical stress in the high wind speeds region. The proposed FTC design implements a sliding mode control (SMC) approach with an adaptation law that estimates the upper bounds of the uncertainties. System stability and uniform boundedness of the outputs was proven using the Lyapunov stability theory. The proposed approach was validated on a 5 MW three-blade wind turbine modeled using the National Renewable Energy Laboratory’s (NREL) Fatigue, Aerodynamics, Structures and Turbulence (FAST) wind turbine simulator. The controller’s performance was assessed in the presence of several pitch actuator faults and turbulent wind conditions. Its performance was also compared to that of a standard SMC approach. Mitigation of blade pitch actuator faults, generation of uniform power, smoother pitching actions and reduced chattering compared to standard SMC approach are among the main features of the proposed design.
机译:本文提出了一种在高风速区域操作的可变速度风力涡轮机(WT)的自适应容错控制(FTC)设计。它旨在减轻音调执行器故障并将发电机功率调节到其额定值,从而降低高风速区域的机械应力。所提出的FTC设计实现了一种滑模控制(SMC)方法,其适应法估计了不确定性的上限。使用Lyapunov稳定性理论证明了输出的系统稳定性和均匀的界限。采用国家可再生能源实验室(NREL)疲劳,空气动力学,结构和湍流(快速)风力涡轮机模拟器,在5兆瓦三刀片风力涡轮机上验证了拟议的方法。控制器的性能在存在几个俯仰执行器故障和湍流风条件的存在下进行评估。它的性能也与标准SMC方法相比。与标准SMC方法相比,刀片间距执行器故障,产生均匀功率,更平滑的俯仰动作和减少的喋喋不休,是所提出的设计的主要特征。

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