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A wide-area SVC controller design for inter-area oscillation damping in WECC based on a structured dynamic equivalent model

机译:基于结构化动态等效模型的WECC区域间振荡阻尼的广域SVC控制器设计

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In our recent work [1], we constructed a reduced-order model of the Western Electricity Coordinating Council (WECC) power system using mathematically derived parameters from real Synchrophasor data. These parameters include inter and intra-area impedances, inertias, and damping factors for aggregate synchronous generators representing five geographical, and yet coherent, areas of WECC. In this paper, we use this reduced-order model as a tool to design a supplementary controller for a Static VAr Compensator (SVC), located at the terminal bus of one of the aggregate generators. Wide-area feedback consisting of phase angle and frequency measurements from Phasor Measurement Units (PMUs) in the other areas is used to design this controller. The objective is to damp the inter-machine oscillation modes of the reduced-order model, which in the full-order system corresponds to inter-area oscillations. The controller input is chosen via statistical variance analysis, and its parameters are tuned to improve the damping factors of the slow modes. The model is implemented in a real-time digital simulator, and validated using a wide range of disturbance scenarios. The closed-loop system is observed to be highly robust to all of these disturbances as well as the choice of operating points. Detailed experimental analyses of the capacity of the SVC to satisfy the damping specifications of supplementary control are also presented via multiple contingencies. The results are promising in aiding damping of inter-area modes in WECC, especially at a time of increasing penetration of wind and other renewable resources. (C) 2015 Elsevier B.V. All rights reserved.
机译:在我们最近的工作中[1],我们使用从实际同步相量数据中数学推导的参数,构建了西部电力协调委员会(WECC)电力系统的降阶模型。这些参数包括区域间和区域内的阻抗,惯性和阻尼因子,这些能量代表了WECC的五个地理区域但又连贯的区域。在本文中,我们使用此降阶模型作为工具来设计静态VAr补偿器(SVC)的辅助控制器,该控制器位于一个聚合发电机之一的终端总线上。广域反馈由其他区域中相量测量单元(PMU)的相角和频率测量组成,用于设计该控制器。目的是抑制降阶模型的机器间振荡模式,该模式在全阶系统中对应于区域间振荡。通过统计方差分析选择控制器输入,并调整其参数以改善慢速模式的阻尼系数。该模型在实时数字仿真器中实现,并使用各种干扰场景进行了验证。观察到闭环系统对所有这些干扰以及工作点的选择都具有很高的鲁棒性。还通过多种意外情况对SVC满足补充控制的阻尼规范的能力进行了详细的实验分析。该结果有望在WECC中帮助缓解区域间模式,特别是在风和其他可再生资源渗透率不断提高的时候。 (C)2015 Elsevier B.V.保留所有权利。

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