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Gain-Scheduled $ell _{1}$ -Optimal Control of Variable-Speed-Variable-Pitch Wind Turbines

机译:增益预定的 $ ell _ {1} $ -变速变桨距风力涡轮机的最优控制

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The fast-growing technology of large scale wind turbines demands control systems capable of enhancing both the efficiency of capturing wind power, and the useful life of the turbines themselves. -Optimal control is an approach to deal with persistent exogenous disturbances which have bounded magnitude (-norm) such as realistic wind disturbances and turbulence profiles. In this brief, we develop an efficient method to compute the -norm of a system. As the control synthesis problem is nonconvex, we use the proposed method to design the optimal output feedback controllers for a linear model of a wind turbine at different operating points using genetic algorithm optimization. The locally optimized controllers are interpolated using a gain-scheduled technique with guaranteed stability. The controller is tested with comprehensive simulation studies on a 5 MW wind turbine using fatigue, aerodynamics, structures, and turbulence (FAST) software. The proposed controller is compared with a well-tuned proportional-integral (PI) controller. The results show improved power quality, and decrease in the fluctuations of generator torque and rotor speed.
机译:大型风力涡轮机的快速发展的技术要求控制系统能够提高捕获风能的效率以及涡轮机本身的使用寿命。 -最优控制是一种处理持续性外源性干扰的方法,这些干扰具有一定的幅度(范数),例如实际的风​​向干扰和湍流分布。在本文中,我们开发了一种有效的方法来计算系统的-norm。由于控制综合问题是非凸的,因此我们采用遗传算法优化方法,针对不同工作点的风力发电机组线性模型,使用提出的方法设计最优输出反馈控制器。局部优化控制器采用增益调度技术进行插值,并保证稳定性。使用疲劳,空气动力学,结构和湍流(FAST)软件在5 MW风力涡轮机上对控制器进行了全面的仿真研究测试。将拟议的控制器与调整良好的比例积分(PI)控制器进行比较。结果表明,电能质量得到改善,发电机转矩和转子速度的波动减小。

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