Data packet-drop-resilient wide-area damping control using DFIG-based wind farm

Amirthagunaraj Yogarathinam, N. Chaudhuri
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Abstract

In this paper a novel Observer-driven Reduced Copy (ORC) approach is proposed to deal with communication network data-dropouts in a smart power grid with large-scale deployment of distributed and networked Phasor Measurement Units (PMUs) and wind energy resources, which uses knowledge of the nominal system dynamics during data dropouts to improve the damping performance under large disturbances, where the conventional feedback would suffer. To that end a reduced order 16-machine 5-area dynamic equivalent model of the New England-New York power system with replacement of one existing synchronous generator and a power system stabilizer (PSS) by a DFIG-based wind farm (WF) is considered. The problem with electromechanical oscillation damping control through WFs using locally available signals is identified and a systematic approach for selection of control input and remote feedback signals through modal analysis is presented. The remote feedback signals sent through communication channels encounter data dropout which is represented by the Gilbert-Elliott model. Moreover, an expression for the bound on the error norm between the actual and the estimated states relating data dropout and model mismatch is also derived. Nonlinear time-domain simulations demonstrate that the ORC gives significantly better performance compared to the conventional feedback under higher data drop situations.
基于dfig的风电场数据包跌落弹性广域阻尼控制
本文提出了一种新的观察者驱动的减少复制(ORC)方法来处理大规模部署分布式和联网相量测量单元(pmu)和风能资源的智能电网中的通信网络数据丢失,该方法利用数据丢失期间的标称系统动力学知识来改善大干扰下的阻尼性能,其中传统反馈会受到影响。为此,考虑了新英格兰-纽约电力系统的减阶16机5区动态等效模型,该模型采用基于dfg的风电场(WF)取代现有的一台同步发电机和一个电力系统稳定器(PSS)。识别了利用局部可用信号通过WFs进行机电振荡阻尼控制的问题,提出了一种通过模态分析选择控制输入和远程反馈信号的系统方法。通过通信通道发送的远程反馈信号遇到数据丢失,数据丢失用吉尔伯特-艾略特模型表示。此外,还推导了与数据丢失和模型失配相关的实际状态和估计状态之间的误差范数界的表达式。非线性时域仿真表明,在较高的数据丢失情况下,ORC的性能明显优于传统反馈。
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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