4.7 Article

A Unified Distributed Cooperative Control of DC Microgrids Using Consensus Protocol

期刊

IEEE TRANSACTIONS ON SMART GRID
卷 12, 期 3, 页码 1880-1892

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TSG.2020.3041378

关键词

Voltage control; Microgrids; Voltage measurement; Regulators; Heuristic algorithms; Current measurement; Stability analysis; Cooperative control; DC microgrids; distributed control; load sharing; stability analysis

资金

  1. Shandong Provincial Key Research and Development Program (Major Scientific and Technological Innovation Project) [2019JZZY020805]
  2. National Distinguished Expert (Youth Talent) Program of China [31390089963058]
  3. General Program of National Natural Science Foundation of China [51977124]
  4. Shandong Natural Science Foundation [ZR2019QEE001]
  5. Natural Science Foundation of Jiangsu Province [BK20190204]

向作者/读者索取更多资源

This paper introduces an effective and simple control approach for islanded DC microgrids, enabling each distributed generator to achieve accurate voltage regulation and power-sharing. Through an improved dynamic consensus protocol and a cooperative controller, these objectives are achieved efficiently.
In this work, we propose an effective and simple control approach for islanded DC microgrids that allows each distributed generator (DG) to achieve accurate voltage regulation and power-sharing. An improved dynamic consensus protocol, which is robust to measurement noise and states initialization, is employed to enable each agent to locally calculate the average bus voltage with a sparse cyber network. On this basis, we propose a cooperative controller that merges the voltage regulation and power-sharing objectives in a unified fashion. The proposed approach only uses neighbors' voltage information to regulates the average bus voltage to its nominal value while maintaining proportional power-sharing or optimal power dispatch. This significantly simplifies its implementation and reduces the communication bandwidth requirement. A global model of the DC microgrid considering the cyber network is established in the form of a state-space-model, where the reference voltage vector corresponds to the input and the average bus voltage vector denotes the state. Then, the input-to-state stability analysis is carried out. To the end, comprehensive hardware-in-the-loop (HiL) tests are conducted to validate the effectiveness of the proposed control strategy. The proposed control strategy exhibits plug-and-play capability, and it is resilient to message update rate and communication failure.

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