Online Feedback Droop Scheduling in Distribution Grids for Frequency and Local Voltage Control

IF 7.2 1区 工程技术 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Transactions on Power Systems Pub Date : 2025-01-14 DOI:10.1109/TPWRS.2025.3528752
Ognjen Stanojev;Yi Guo;Gabriela Hug
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Abstract

This paper presents a novel framework for collective control of Distributed Energy Resources (DERs) in active Distribution Networks (DNs). The proposed approach unifies commonly employed local (i.e., decentralized) voltage and frequency droop control schemes into a transfer matrix relating frequency and voltage magnitude measurements to active and reactive power injection adjustments. Furthermore, the transfer matrices of individual DER units are adaptively tuned in real-time via slow communication links using a novel online gain scheduling approach to enable primary frequency support provision to the transmission system and ensure that the DN voltages are kept within the allowable limits. A global asymptomatic stability condition of the analyzed droop-controlled DN is analytically established. The considered gain scheduling problem is solved by leveraging an online primal-dual gradient-based method and a suitable linearized power flow model. Additional ancillary service providers can be trivially incorporated into the proposed framework in a plug-and-play fashion. Numerical simulations of the 37-bus IEEE test system and a realistic Swedish 533-bus DN confirm the validity and the scalability of the approach and demonstrate numerous advantages of the proposed scheme over the state-of-the-art.
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配电网中的在线反馈降压调度,用于频率和局部电压控制
提出了一种新的有源配电网分布式能源集体控制框架。所提出的方法将常用的局部(即分散)电压和频率下垂控制方案统一到一个将频率和电压幅度测量与有功和无功功率注入调整相关的传递矩阵中。此外,使用一种新颖的在线增益调度方法,通过慢速通信链路对单个DER单元的传输矩阵进行实时自适应调谐,从而为传输系统提供主频率支持,并确保DN电压保持在允许范围内。解析地建立了所分析的下垂控制网络的全局无症状稳定性条件。利用基于在线原对偶梯度的方法和合适的线性化潮流模型来解决增益调度问题。额外的辅助服务提供者可以以即插即用的方式轻松地合并到拟议的框架中。37总线IEEE测试系统和一个现实的瑞典533总线DN的数值模拟证实了该方法的有效性和可扩展性,并证明了所提出的方案相对于最先进的许多优点。
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来源期刊
IEEE Transactions on Power Systems
IEEE Transactions on Power Systems 工程技术-工程:电子与电气
CiteScore
15.80
自引率
7.60%
发文量
696
审稿时长
3 months
期刊介绍: The scope of IEEE Transactions on Power Systems covers the education, analysis, operation, planning, and economics of electric generation, transmission, and distribution systems for general industrial, commercial, public, and domestic consumption, including the interaction with multi-energy carriers. The focus of this transactions is the power system from a systems viewpoint instead of components of the system. It has five (5) key areas within its scope with several technical topics within each area. These areas are: (1) Power Engineering Education, (2) Power System Analysis, Computing, and Economics, (3) Power System Dynamic Performance, (4) Power System Operations, and (5) Power System Planning and Implementation.
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