首页> 外文期刊>Turkish Journal of Electrical Engineering and Computer Sciences >Concurrently attuned design of a WADC-based UPFC PSDC and multiinput PSS for improving power system dynamic performance
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Concurrently attuned design of a WADC-based UPFC PSDC and multiinput PSS for improving power system dynamic performance

机译:同时优化基于WADC的UPFC PSDC和多输入PSS的设计,以改善电力系统的动态性能

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A new controller design for a unified power flow controller (UPFC) for damping of power system swings, focusing on interarea modes, is described in this paper. The proposed controller is a dual-layer controller, where the first layer is derived from local signals and the second layer is supplied by global signals, as additional measuring information from suitable remote network locations, where swings are well observable. For damping of low-frequency swing in wide-area operation, since there is little system information in the active power as input of the conventional power system stabilizer (CPSS), the effectiveness of the CPSS is low. For solving this problem, a multiinput power system stabilizer (MPSS) is used for the damping of low-frequency swings, where the choice of the MPSS location is based on modal analysis. Since an uncoordinated controller for the UPFC and MPSS may cause unwanted interactions, the concurrently attuned design of the controller parameters is necessary. The attuned design is presented as an optimization problem, where the particle swarm optimization algorithm is applied to search for the optimal controller parameters. The introduced time delay by remote signal transmission and processing in a wide-area damping controller (WADC) may be problematic for system stability and may decrease system robustness. The Lyapunov theory and model reduction technique are used to investigate the delay-dependent stability of a power system equipped with a WADC. The designed controller's effectiveness and robustness are investigated on a typical 2-area 4-machine benchmark power system.
机译:本文介绍了一种新的针对统一功率流控制器(UPFC)的控制器设计,该控制器旨在抑制电力系统波动,并着眼于区域间模式。所提出的控制器是双层控制器,其中第一层是从本地信号派生的,第二层是从全局信号提供的,作为来自适当的远程网络位置的额外测量信息,在这些位置可以很好地观察到摆动。为了抑制广域操作中的低频摆动,由于作为常规电力系统稳定器(CPSS)的输入的有功功率中几乎没有系统信息,因此CPSS的有效性很低。为了解决此问题,将多输入电源系统稳定器(MPSS)用于低频摆幅的阻尼,其中MPSS位置的选择基于模态分析。由于UPFC和MPSS的控制器不协调可能会导致不必要的交互,因此必须同时调整控制器参数的设计。调优设计是作为一个优化问题提出的,其中将粒子群优化算法应用于搜索最优控制器参数。广域阻尼控制器(WADC)中远程信号传输和处理所引入的时间延迟可能会给系统稳定性带来问题,并可能降低系统的耐用性。使用李雅普诺夫理论和模型简化技术来研究配备了WADC的电力系统的时延相关稳定性。在典型的2区4机基准功率系统上研究了设计的控制器的有效性和鲁棒性。

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