微电网
模型预测控制
交流电源
控制理论(社会学)
控制器(灌溉)
转换器
计算机科学
可扩展性
分布式发电
控制工程
分布式电源
功率(物理)
工程类
控制(管理)
可再生能源
电压
物理
人工智能
电气工程
生物
数据库
量子力学
农学
作者
Alex Navas-Fonseca,Claudio Burgos-Mellado,Juan S. Gómez,Felipe Donoso,Luca Tarisciotti,Doris Sáez,Roberto Cárdenas,Mark Sumner
标识
DOI:10.1109/tsg.2021.3108677
摘要
This paper proposes a distributed predictive secondary control strategy to share imbalance in three-phase, three-wire isolated AC Microgrids. The control is based on a novel approach where the imbalance sharing among distributed generators is controlled through the control of single-phase reactive power. The main characteristic of the proposed methodology is the inclusion of an objective function and dynamic models as constraints in the formulation. The controller relies on local measurements and information from neighboring distributed generators, and it performs the desired control action based on a constrained cost function minimization. The proposed distributed model predictive control scheme has several advantages over solutions based on virtual impedance loops or based on the inclusion of extra power converters for managing single-phase reactive power among distributed generators. In fact, with the proposed technique the sharing of imbalance is performed directly in terms of single-phase reactive power and without the need for adding extra power converters into the microgrid. Contrary to almost all reported works in this area, the proposed approach enables the control of various microgrid parameters within predefined bands, providing a more flexible control system. Extensive simulation and Hardware in the Loop studies verify the performance of the proposed control scheme. Moreover, the controller’s scalability and a comparison study, in terms of performance, with the virtual impedance approach were carried out.
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