An adaptive sliding mode control law for the power maximization of the wind turbine system

O. Barambones, J. M. G. de Durana
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引用次数: 9

Abstract

The actual wind turbines are provided with adjustable speed generators, like the double feed induction generator, that are capable to work in variable speed operations. One of the main advantage of adjustable speed generators is that they improve the system efficiency compared to fixed speed generators because turbine speed is adjusted as a function of wind speed to maximize output power. However this systems requires a suitable speed controller in order to track the optimal wind turbine reference speed. In this work, an adaptive robust control for variable speed wind power generator is described. The proposed robust control law is based on a sliding mode control theory, that presents a good performance under system uncertainties. The proposed sliding-mode control law incorporates an adaptive switching gain, which avoids having to calculate an upper limit of the system uncertainties that is necessary in the traditional sliding-mode control laws. The stability analysis of the proposed controller under disturbances and parameter uncertainties is provided using the Lyapunov stability theory. Finally simulated results show, on the one hand that the proposed controller provides high-performance dynamic characteristics, and on the other hand that this scheme is robust with respect to plant parameter variations and external disturbances.
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风电系统功率最大化的自适应滑模控制律
实际的风力涡轮机配备了可调速发电机,如双馈感应发电机,能够在变速操作中工作。可调转速发电机的主要优点之一是,与固定转速发电机相比,它们提高了系统效率,因为涡轮机的转速是作为风速的函数来调节的,以最大限度地提高输出功率。然而,该系统需要一个合适的速度控制器来跟踪最佳的风力涡轮机参考速度。本文研究了变速风力发电机的自适应鲁棒控制。该鲁棒控制律基于滑模控制理论,在系统不确定性下具有良好的控制性能。所提出的滑模控制律包含一个自适应开关增益,避免了传统滑模控制律必须计算系统不确定性的上限。利用李雅普诺夫稳定性理论对所提出的控制器在扰动和参数不确定性下的稳定性进行了分析。仿真结果表明,所提出的控制器一方面具有高性能的动态特性,另一方面对对象参数变化和外部干扰具有鲁棒性。
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