Coordinated restoration of inverter‐based power sources and synchronous generators for the high renewable penetrated power system considering the dynamic frequency regulation capability

Extensive inverter‐based power sources (IPS) impose significant challenges on the restoration of high renewable penetrated power systems (HRPPS). To enhance HRPPS resilience, the proper utilization of IPSs must be implemented. Combining frequency dynamics of IPSs and synchronous generators, this pap...

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Bibliographic Details
Published inIET renewable power generation Vol. 18; no. 7; pp. 1292 - 1303
Main Authors Yang, Chao, Liao, Huanxin, Liang, Gaoqi, Gao, Huisheng, Xin, Huanhai, Zhao, Junhua
Format Journal Article
LanguageEnglish
Published Wiley 01.05.2024
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Summary:Extensive inverter‐based power sources (IPS) impose significant challenges on the restoration of high renewable penetrated power systems (HRPPS). To enhance HRPPS resilience, the proper utilization of IPSs must be implemented. Combining frequency dynamics of IPSs and synchronous generators, this paper proposes a coordinated restoration method for multi‐type power sources after a major blackout. First, interactions between synchronous generators and IPSs are systematically analyzed. Based on this, output characteristics and constraints of IPSs in the power sources restoration process are quantified. Second, the dynamic frequency regulation capability (DFRC) of restored systems is quantified based on a unified transfer function structure model. Then the maximum power disturbance that restored systems can bear is derived based on DFRC indices including the maximum frequency deviation and the rate of change of frequency. Third, considering interactions between power sources and the DFRC of restored systems, a coordinated restoration optimization model of multi‐type power sources is proposed. Finally, case studies based on a modified IEEE 39‐bus system are simulated to verify the applicability and superiority of the proposed method. Meanwhile, results show that the proposed method for quantifying DFRC is more suitable for HRPPSs than traditional inertia‐based methods. This paper proposes a coordinated restoration optimization method of multi‐type power sources for the blackout high renewable penetrated power system. The proposed method considers the dynamic frequency regulation capability of restored systems and interactions between inverter‐based power sources and synchronous generators.
ISSN:1752-1416
1752-1424
DOI:10.1049/rpg2.12889