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Wide-Area Damping Control of Power Systems Using Dynamic Clustering and TCSC-Based Redesigns

机译:基于动态聚类和基于TCSC的重新设计的电力系统广域阻尼控制

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摘要

In this paper we present a FACTS (Flexible AC Transmission Systems)-based control design for electromechanical oscillation damping in large power systems, facilitated by aggregate models that can be constructed using Synchronized phasor measurements. Our approach consists of three steps, namely—1. Model Reduction, where Synchrophasors are used to identify second-order models of the oscillation clusters of the power system retaining the inter-ties on which FACTS devices such as Thyristor Controlled Series Compensators (TCSC) are installed, 2. Aggregate Control, where feedback controllers are designed to achieve a desired closed-loop transient response between every pair of clusters, and finally 3. Control Inversion, where the aggregate control design is distributed and tuned to actual TCSC controllers in the full-order model until its inter-area responses match the respective inter-machine responses of the reduced-order system. It is shown that the inversion problem can be posed equivalently as decomposing the swing dynamics into fast and slow states, and designing the controllers such that the slow dynamics can optimally track a desired closed-loop signal designed for the aggregate model. Application of the approach to two-area power systems is demonstrated through topological examples inspired by the US west coast grid.
机译:在本文中,我们提出了一种基于FACTS(柔性交流输电系统)的控制设计,该控制设计用于大型电力系统中的机电振荡阻尼,可通过可使用同步相量测量构建的集合模型来促进这种设计。我们的方法包括三个步骤,即-1。简化模型,其中同步相量用于识别电力系统振荡簇的二阶模型,该模型保持相互联系,并在其间安装了FACTS器件,例如晶闸管控制的串联补偿器(TCSC); 2.集合控制,其中有反馈控制器旨在在每对集群之间实现所需的闭环瞬态响应,最后实现3.控制反转,在该控制中,将聚合控制设计分发并调整到全阶模型中的实际TCSC控制器,直到其区域间响应匹配降序系统的相应机器间响应。结果表明,反演问题可以等效地摆成将摇摆动力学分解为快速和慢速状态,并设计控制器,使慢速动力学可以最佳地跟踪为总体模型设计的所需闭环信号。通过受美国西海岸电网启发的拓扑示例演示了该方法在两区域电力系统中的应用。

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