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Enhancement of Power System Dynamic Performance by Coordinated Design of PSS and FACTS Damping Controllers

机译:通过PSS和FACTS阻尼控制器的协调设计提高电力系统的动态性能

摘要

Due to environmental and economical constraints, it is difficult to build new power lines and to reinforce the existing ones. The continued growth in demand for electric power must therefore to a great extent be met by increased loading of available lines. A consequence ofudthis is reduction of power system damping, leading to a risk of poorly damped power oscillations between generators. To suppress these oscillations and maintain power system dynamic performance, one of the conventional, economical and effective solutions is toudinstall a power system stabilizer (PSS). However, in some cases PSS may not provide sufficient damping for the inter-area oscillations in a multi-machine power system. In this context, other possible solutions are needed to be exposed. With the evolution of power electronics, flexible AC transmission systems (FACTS) controllers turn out to be possible solution to alleviate such critical situations by controlling the power flow over the AC transmission line and improving power oscillations damping. However, coordination of conventional PSS with FACTS controllers in aiding of power system oscillations damping is still an open problem. Therefore, it is essential to study the coordinated design of PSS with FACTS controllers in a multi-machine power system.udThis thesis gives an overview of the modelling and operation of power system with conventional PSS. It gives the introduction to emerging FACTS controllers with emphasis on the TCSC, SVC and STATCOM controllers. The basic modelling and operating principles of the controllers are explained in this thesis, along with the power oscillations damping (POD) stabilizers.udThe coordination design of PSS and FACTS damping controllers over a wide range of operating conditions is formulated as an optimization problem. The objective function of this optimization problem is framed using system eigen values and it is solved using AAPSO andudIWO algorithms. The optimal control parameters of coordinated controllers are obtained at the end of these optimization algorithms. A comprehensive approach to the hybrid coordinated design of PSS with series and shunt FACTS damping controllers is proposed to enhance the overall system dynamic performance. The robustness and effectiveness of proposed hybrid coordinated designs are demonstrated through the eigen value analysis andudtime-domain simulations. The proposed hybrid designs provide robust dynamic performance under wide range in load condition and providing significant improvement in damping power system oscillations underudsevere disturbance. The developed hybrid coordinated designs are tested in different multimachine power systems using AAPSO and IWO algorithms. The IWO based hybrid designs and AAPSO based hybrid designs are more effective than other control designs. In additionudto this, the proposed designs are implemented and validated in real-time using Opal-RT hardware simulator. The real-time simulations of different test power systems with different proposed designs are carried out for a severe fault disturbance. Finally, the proposed controller simulation results are validated with real-time results.
机译:由于环境和经济上的限制,很难建立新的电力线并加强现有的电力线。因此,必须通过增加可用线路的负荷在很大程度上满足对电力需求的持续增长。这样做的结果是降低了电源系统的阻尼,从而导致发电机之间的功率振荡衰减不良。为了抑制这些振荡并保持电力系统的动态性能,一种常规,经济且有效的解决方案是安装电力系统稳定器(PSS)。但是,在某些情况下,PSS可能无法为多机电源系统中的区域间振荡提供足够的阻尼。在这种情况下,需要公开其他可能的解决方案。随着电力电子技术的发展,灵活的交流输电系统(FACTS)控制器被证明是通过控制交流输电线路上的功率流并改善功率振荡阻尼来缓解此类紧急情况的可能解决方案。然而,传统的PSS与FACTS控制器的协调在帮助电力系统振荡阻尼方面仍然是一个未解决的问题。因此,研究多机电力系统中带有FACTS控制器的PSS的协调设计至关重要。 ud本文概述了传统PSS的电力系统的建模和操作。它介绍了新兴的FACTS控制器,重点介绍了TCSC,SVC和STATCOM控制器。本文介绍了控制器的基本建模和工作原理,以及功率振荡阻尼(POD)稳定器。 udPSS和FACTS阻尼控制器在广泛的工作条件下的协调设计被认为是一个优化问题。该优化问题的目标函数是使用系统特征值构建的,并使用AAPSO和 udIWO算法进行了求解。在这些优化算法的最后获得协调控制器的最佳控制参数。提出了一种采用串联和并联FACTS阻尼控制器的PSS混合协调设计的综合方法,以提高整体系统的动态性能。通过特征值分析和 udtime-domain仿真证明了所提出的混合协调设计的鲁棒性和有效性。所提出的混合设计在宽负载条件下提供了鲁棒的动态性能,并在严重干扰下显着改善了阻尼电力系统的振荡。使用AAPSO和IWO算法在不同的多机电源系统中测试了开发的混合协调设计。基于IWO的混合设计和基于AAPSO的混合设计比其他控件设计更有效。除此之外,使用Opal-RT硬件仿真器可以实时实施和验证建议的设计。针对严重的故障干扰,对具有不同建议设计的不同测试电源系统进行了实时仿真。最后,所提出的控制器仿真结果将通过实时结果进行验证。

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    Narne Rajendraprasad;

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  • 年度 2015
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