Enhancing Transient Stability in Multi-Machine Power Systems through a Model-Free Fractional-Order Excitation Stabilizer

Arman Fathollahi, Björn Andresen
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Abstract

The effective operation of model-based control strategies in modern energy systems, characterized by significant complexity, is contingent upon highly accurate large-scale models. However, achieving such precision becomes challenging in complex energy systems rife with uncertainties and disturbances. Controlling different parts of the energy system poses a challenge to achieving optimal power system efficiency, particularly when employing model-based control strategies, thereby adding complexity to current systems. This paper proposes a novel model-independent control approach aimed at augmenting transient stability and voltage regulation performance in multi machine energy systems. The approach involves the introduction of an optimized model-free fractional-order-based excitation system stabilizer for synchronous generators in a multi machine energy system. To overcome the limitations associated with complex system model identification, which add degrees of simplification at defined operating conditions and assume the system model remains fixed despite high uncertainty and numerous disturbances, an optimal model-independent fractional-order-based excitation control strategy is introduced. The efficacy of the proposed approach is validated through comparative numerical analyses using the MATLAB/Simulink environment. These simulations were conducted on a two-area, 12-bus multi-machine power system. Simulation results demonstrate that the presented excitation system stabilizer outperforms conventional controllers in terms of transient and small-signal stability. It also suppresses the low-frequency electromechanical oscillations within the multimachine energy system.
通过无模型分数阶励磁稳定器增强多机电力系统的暂态稳定性
基于模型的控制策略在现代能源系统中的有效运行具有显著的复杂性,这取决于高精度的大规模模型。然而,在充斥着不确定性和干扰的复杂能源系统中,要实现这样的精确度变得极具挑战性。尤其是在采用基于模型的控制策略时,控制能源系统的不同部分对实现最佳电力系统效率构成了挑战,从而增加了当前系统的复杂性。本文提出了一种与模型无关的新型控制方法,旨在增强多机器能源系统的瞬态稳定性和电压调节性能。该方法为多机能源系统中的同步发电机引入了一个优化的无模型分数阶励磁系统稳定器。复杂的系统模型识别会在确定的运行条件下增加简化程度,并假定系统模型在高度不确定性和大量干扰的情况下仍保持固定,为了克服与复杂系统模型识别相关的局限性,引入了一种与模型无关的基于分数阶的优化励磁控制策略。通过使用 MATLAB/Simulink 环境进行比较数值分析,验证了所提方法的有效性。这些仿真是在一个两区 12 总线多机电力系统上进行的。仿真结果表明,所提出的励磁系统稳定器在暂态和小信号稳定性方面优于传统控制器。它还能抑制多机能源系统内的低频机电振荡。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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