Damping coefficient compensation of generator by novel nonlinear excitation control

Sun Yuan-zhang, Z. Xing, Shen Tielong, Jia Xiaohong, He Shan
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引用次数: 1

Abstract

In this paper, a novel nonlinear excitation control scheme has been proposed based on transient energy function and backstepping design method, which can not only compensate the damping coefficient of generator directly, but also guarantee asymptotical stability of the designed control system. For a SMIB (single-machine-infinite-bus) system, from the view of adding damping and enhancing system stability, an extra damping term is introduced into the motion equation, and then the designed system can be viewed as a series of two dynamic equation sets. Based on backstepping method, a transient energy function is constructed and the corresponding nonlinear excitation control law is deduced. In this control law, only two parameters are chosen, i.e. the expected damping coefficient increment and the expected voltage feedback gain. Executable approximations of the controller are also discussed. Simulation results confirm the validity of the controller and show that it is efficient when system operating condition changes
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新型非线性励磁控制对发电机阻尼系数的补偿
本文提出了一种基于暂态能量函数和反步设计方法的非线性励磁控制方案,该方案不仅可以直接补偿发电机的阻尼系数,而且可以保证所设计的控制系统的渐近稳定性。对于单机无穷大系统,从增加阻尼和提高系统稳定性的角度出发,在运动方程中引入额外的阻尼项,将设计的系统看作是一系列的两个动力学方程集。基于反步法,构造了暂态能量函数,推导了相应的非线性励磁控制律。在该控制律中,只选择两个参数,即期望的阻尼系数增量和期望的电压反馈增益。还讨论了控制器的可执行近似。仿真结果证实了该控制器的有效性,表明该控制器在系统运行条件发生变化时是有效的
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