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An online trained fuzzy neural network controller to improve stability of power systems

机译:在线训练的模糊神经网络控制器,可提高电力系统的稳定性

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The purpose of this paper is to improve the stability in a power system using a new intelligent controller. This controller is an online trained fuzzy neural network controller (OTFNNC) in which adaptive learning rates derived by the Lyapunov stability are employed to guarantee the convergence of the proposed controller. During the online control process, the identification of system is not necessary, because of learning ability of the proposed controller. One of the proposed controller features is robustness to different operating conditions and disturbances. Moreover, the Prony method is used to obtain the exponential damping of power system oscillations in this paper.The test power system is a two-area four-machine system power. The simulation results show that the oscillations are satisfactorily damped out by the OTENNC The proposed approach is effective to mitigate power system oscillations and improve the stability. Literature review show that no method is proposed to compute the damping of power system oscillation if adaptive and online controllers like fuzzy and neural network controller are utilized for damping power system oscillations. In this paper, the damping rate of power system oscillations is estimated by the Prony method. (C) 2015 Elsevier B.V. All rights reserved.
机译:本文的目的是使用新的智能控制器来提高电力系统的稳定性。该控制器是一种在线训练的模糊神经网络控制器(OTFNNC),其中采用由Lyapunov稳定性导出的自适应学习率来保证所提出控制器的收敛性。在在线控制过程中,由于所建议的控制器具有学习能力,因此无需识别系统。所提出的控制器特征之一是对不同操作条件和干扰的鲁棒性。此外,本文采用Prony方法获得电力系统振荡的指数阻尼。试验电力系统为两区四机系统电力。仿真结果表明,利用OTENNC可以很好地抑制振荡。该方法可有效减轻电力系统的振荡并提高稳定性。文献综述表明,如果采用自适应和在线控制器(如模糊和神经网络控制器)来抑制电力系统振荡,则没有提出任何方法来计算电力系统振荡的阻尼。本文采用Prony方法估算电力系统振荡的阻尼率。 (C)2015 Elsevier B.V.保留所有权利。

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