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Analysis of power system stability enhancement via excitation and FACTS-based stabilizers

机译:通过激励和基于FaCTs的稳定器增强电力系统稳定性的分析

摘要

Power system stability enhancement via excitation and FACTS-based stabilizers is thoroughly investigated in this paper. This study presents a singular value decomposition-based approach to assess and measure the controllability of the poorly damped electromechanical modes by different control inputs. The design problem of a power system stabilizer and different FACTS-based stabilizers is formulated as an optimization problem. An eigenvalue-based objective function to increase the system damping and improve the system response is developed. Then, a real-coded genetic algorithm is employed to search for optimal controller parameters. In addition, the damping characteristics of the proposed schemes are also evaluated in terms of the damping torque coefficient with different loading conditions for better understanding of the coordination problem requirements. The proposed stabilizers are tested on a weakly connected power system with different loading conditions. The damping torque coefficient analysis, nonlinear simulation results, and eigenvalue analysis show the effectiveness and robustness of the proposed control schemes over a wide range of loading conditions.
机译:本文通过励磁和基于FACTS的稳定器来增强电力系统的稳定性。这项研究提出了一种基于奇异值分解的方法,用于评估和测量不同控制输入对弱阻尼机电模式的可控制性。电力系统稳定器和基于FACTS的不同稳定器的设计问题被表述为优化问题。开发了基于特征值的目标函数,以增加系统阻尼并改善系统响应。然后,采用实数编码遗传算法搜索最优控制器参数。此外,还针对不同负载条件下的阻尼扭矩系数对所提出方案的阻尼特性进行了评估,以更好地理解协调问题的要求。所建议的稳定器在具有不同负载条件的弱连接电源系统上进行了测试。阻尼转矩系数分析,非线性仿真结果和特征值分析表明,所提出的控制方案在各种载荷条件下均具有有效性和鲁棒性。

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