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Design of power system stabilizer using robust control techniques

机译:鲁棒控制技术设计电力系统稳定器

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The power system is a dynamic system and it is constantly being subjected to disturbances. It is important that these disturbances do not drive the system to unstable conditions. Due to certain disturbances, electromechanical oscillations of small frequency set up. The kind of stability involved due to oscillations falls under small signal stability. The PSS has been found effective in damping such oscillations and ensure small signal stability of the power system. In this paper, the robust PSS have been designed to damp the rotor speed and rotor angle deviations with respect to time for SMIB power system. The PSS have been designed using H based robust control techniques. Here, the main focus has been to minimize the H norm of the linear fractional transfer function (LFT) which the transfer function matrix between the desired vector of commanded outputs to the vector of exogenous signals. The structure specified PSS in the form of PID has also been taken in the design based on H norm minimization using GA and PSO. The linear matrix inequality (LMI) technique has also been used to solve the H control problem to get PSS. Investigations have shown that PSS design using PSO and GA are superior to classical lead-lag and PID structures, and also to PSS designed using LMI technique.
机译:电力系统是动态系统,并且不断受到干扰。重要的是,这些干扰不会将系统驱动到不稳定的条件。由于某些干扰,小频率的机电振荡设置。由于振荡而涉及的稳定性下降在小信号稳定性下降。已经发现PSS有效地阻尼此类振荡并确保电力系统的小信号稳定性。在本文中,稳健的PSS设计用于对Smib电力系统的时间抑制转子速度和转子角度偏差。 PSS已经使用基于H的鲁棒控制技术设计。这里,主要焦点已经最小化了线性分数传递函数(LFT)的H规范,该线性分数转移函数(LFT)的指令输出的所需载体与外源信号的载体之间的传递函数矩阵。在使用GA和PSO的H常态最小化的设计中也拍摄了PID形式的指定PSS。线性矩阵不等式(LMI)技术也已用于解决H控制问题以获取PSS。调查表明,使用PSO和GA的PSS设计优于经典的引导滞后和PID结构,以及使用LMI技术设计的PSS。

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