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Reactive-Power-Assisted Frequency Recovery Control for High-Speed Flywheel Virtual Synchronous Generators under Frequency Drop Conditions

  • Yangjiong Zhang*
  • , Congzhe Gao
  • , Xiao Liu
  • , Yurong Xie
  • , Wei Li
  • *Corresponding author for this work
  • Beijing Institute of Technology
  • Integrated Energy Research Center
  • Research and Development Department

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

To address the issues that, during frequency dips, grid-forming virtual synchronous generators (VSGs) relying solely on active-power inertial support may readily cause a decrease in the point of common coupling voltage, an increase in the power angle, and a relatively slow grid frequency recovery, this paper proposes a reactive power control method for the inertial response of high-speed flywheels. Starting from the relationship between the internal equivalent electromotive force of the VSG and reactive power regulation, the proposed method constructs a reactive power reference based on the internal voltage demand, and designs compensation terms by incorporating the rate of change of frequency and the power-angle deviation, enabling reactive power support to be enhanced promptly during frequency drops. The strategy takes both steady-state voltage regulation and fast transient response into account, and can increase the voltage at the point of common coupling during frequency dips, thereby reducing grid disturbances, enhancing active-power support capability, and accelerating system frequency recovery. Compared with conventional reactive power control methods based only on voltage deviation, the proposed method better reflects the coupling relationship associated with VSG inertial support, providing a concise and explicit control approach for frequency-voltage coordinated control of high-speed flywheel grid-forming inverters in power grids.

Original languageEnglish
Title of host publication2026 IEEE 3rd International Conference on Electrical Power Systems and Intelligent Control, EPSIC 2026
PublisherInstitute of Electrical and Electronics Engineers Inc.
ISBN (Electronic)9798331552534
DOIs
Publication statusPublished - 2026
Externally publishedYes
Event3rd IEEE International Conference on Electrical Power Systems and Intelligent Control, EPSIC 2026 - Hybrid, Tianjin, China
Duration: 22 May 202624 May 2026

Publication series

Name2026 IEEE 3rd International Conference on Electrical Power Systems and Intelligent Control, EPSIC 2026

Conference

Conference3rd IEEE International Conference on Electrical Power Systems and Intelligent Control, EPSIC 2026
Country/TerritoryChina
CityHybrid, Tianjin
Period22/05/2624/05/26

Keywords

  • frequency recovery
  • grid-forming converter
  • high-speed flywheel
  • Reactive power response

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