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Application of Ultra-Local Models in Automatic Generation Control with Co-Simulation of Communication Delay

机译:超局部模型在通信时延联合仿真的自动发电控制中的应用

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摘要

This paper applies the ultra-local models (also labeled as intelligent PID controllers) to Automatic Generation Control (AGC) in a Multi-Area power system (New England 39 Bus) in the presence of communication delay. Given the fast development of smart grid in the past years, power system and communication network are coupled much more tightly than before. Therefore, the independent study of the two domains or simplistic modeling the communication delay in the power system simulation environment is no longer effective and convincing. In our work, the power system model containing AGC is built in Simulink/Matlab, and the communication network is co-simulated in Network Simulator 2 (NS2) through PiccSIM, a simulation platform for (wireless/wired) networked control systems.;A careful comparison is made between the performance of intelligent-P (iP) controller and the conventional PI controller under the co-simulation environment of AGC with time-varying wired communication delay. The results show the two controllers are largely equivalent for relatively small frequency deviations. However, intelligent-P controller performs better than conventional PI controller under more severe system variations, such as large communication delay. The avoidance of integration in the intelligent-P controller makes anti-windup algorithm unnecessary, which enhances the applicability and the simplicity of controller tuning.;In addition, the co-simulation results also demonstrate that the system is more sensitive to the communication delay of control signals from the area control center to the distributed generators than to the delay of tie-line active power measurements. This conclusion is very illuminating that the distributed control mechanism becomes a promising alternative for the control mechanism applied widely now. Instead of a one control center per regulating area, every generator participating in AGC could have its own local controller. The distributed generator controllers can communicate with each other and share the needed information. This fully-distributed automatic generation control (AGC) is more tolerant of communication delay, and thus more robust and stable under various conditions.
机译:本文将存在通信延迟的超局部模型(也称为智能PID控制器)应用于多区域电力系统(新英格兰39总线)中的自动发电控制(AGC)。鉴于智能电网在过去几年中的快速发展,电力系统和通信网络的耦合比以前紧密得多。因此,对两个域的独立研究或对电力系统仿真环境中的通信延迟进行简单建模不再是有效和令人信服的。在我们的工作中,在Simulink / Matlab中构建了包含AGC的电力系统模型,并通过PiccSIM(网络(无线/有线)网络控制系统的仿真平台)在Network Simulator 2(NS2)中对通信网络进行了共同仿真。在具有时变有线通信延迟的AGC协同仿真环境下,对智能P(iP)控制器和常规PI控制器的性能进行了仔细的比较。结果表明,对于相对较小的频率偏差,两个控制器在很大程度上是等效的。但是,在更严重的系统变化(例如较大的通信延迟)下,智能P控制器的性能要优于常规PI控制器。避免与Intelligent-P控制器集成,从而无需使用抗饱和算法,从而提高了控制器调整的适用性和简便性。此外,联合仿真结果还表明,该系统对C控制器的通信延迟更加敏感。从区域控制中心到分布式发电机的控制信号,而不是联络线有功功率测量的延迟。这一结论非常有启发性,表明分布式控制机制已成为当前广泛应用的控制机制的有希望的替代方案。代替每个调节区域一个控制中心,每个参与AGC的发电机都可以拥有自己的本地控制器。分布式发电机控制器可以相互通信并共享所需的信息。这种完全分布式的自动生成控制(AGC)对通信延迟的容忍度更高,因此在各种条件下都更加健壮和稳定。

著录项

  • 作者

    Han, Wenjie.;

  • 作者单位

    Tufts University.;

  • 授予单位 Tufts University.;
  • 学科 Electrical engineering.
  • 学位 M.S.
  • 年度 2018
  • 页码 54 p.
  • 总页数 54
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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