并网微电网集成多控制动作增强动态响应的集中策略

IF 5.2 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
João Marcus S. Callegari;Lucas S. Chaves;Lucas S. Araujo;Braz J. Cardoso Filho;Danilo I. Brandao
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引用次数: 0

摘要

反馈、前馈和干扰解耦控制动作通常用于众所周知的分布式能源(DERs)的电流控制。本文将这些控制动作扩展到集中式并网微电网(mg),旨在改善其公共耦合点(PCC)的动力学。综合比较三种策略,考虑1)反馈作用(F控制);2)前馈与扰动解耦作用(fD控制);3)所有三个动作(FfD控制)。在实验实验室规模单相MG上获得的时变实验结果表明,这些集中控制方案在实际应用中是可行的。对PCC功率参考跟踪、MG控制动态刚度、通信链路非理想性稳定性评价等方面进行了比较。其中,F和fD控制对通信延迟的敏感性较低。所提出的完整策略,即FfD,具有更宽的参考跟踪带宽,并且对负载和通信干扰具有更高的低频动态刚度。这些增强的功能是通过在MG固件级别适当地应用完善的控制操作来实现的,而不需要对MG硬件进行任何改造。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Centralized Strategies for Grid-Connected Microgrids Integrating Multicontrol Actions to Enhance the Dynamic Response
Feedback, feedforward, and disturbance decoupling control actions are commonly addressed to the well-known current control of distributed energy resources (DERs). This article extends these control actions to centralized grid-connected microgrids (MGs) aiming to improve the dynamics at their point of common coupling (PCC). Three strategies are comprehensively compared considering 1) feedback action (F control); 2) feedforward and disturbance decoupling actions (fD control); and 3) all three actions (FfD control). Time-varying experimental results obtained using an experimental laboratory-scale single-phase MG show the feasibility of these centralized control schemes in real-field applications. Comparison is carried out regarding the PCC power reference tracking, MG control dynamic stiffness, and stability evaluation related to communication link nonidealities. Among the strategies, F and fD controls show lower susceptibility to communication latency. The proposed complete strategy, i.e., FfD, shows wider reference tracking bandwidth and increased low-frequency dynamic stiffness to load and communication disturbances. These enhanced capabilities are attained by properly applying the well-established control actions at the MG firmware level, without requiring any MG hardware retrofit.
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来源期刊
IEEE Open Journal of the Industrial Electronics Society
IEEE Open Journal of the Industrial Electronics Society ENGINEERING, ELECTRICAL & ELECTRONIC-
CiteScore
10.80
自引率
2.40%
发文量
33
审稿时长
12 weeks
期刊介绍: The IEEE Open Journal of the Industrial Electronics Society is dedicated to advancing information-intensive, knowledge-based automation, and digitalization, aiming to enhance various industrial and infrastructural ecosystems including energy, mobility, health, and home/building infrastructure. Encompassing a range of techniques leveraging data and information acquisition, analysis, manipulation, and distribution, the journal strives to achieve greater flexibility, efficiency, effectiveness, reliability, and security within digitalized and networked environments. Our scope provides a platform for discourse and dissemination of the latest developments in numerous research and innovation areas. These include electrical components and systems, smart grids, industrial cyber-physical systems, motion control, robotics and mechatronics, sensors and actuators, factory and building communication and automation, industrial digitalization, flexible and reconfigurable manufacturing, assistant systems, industrial applications of artificial intelligence and data science, as well as the implementation of machine learning, artificial neural networks, and fuzzy logic. Additionally, we explore human factors in digitalized and networked ecosystems. Join us in exploring and shaping the future of industrial electronics and digitalization.
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