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January 24, 2026IET Power Electronics0 citationsOpen Access

A Novel Coordinated Control Strategy Between the Grid‐forming SVG Equipped With Supercapacitors and Renewable Energy Gathering Stations to Support Frequency Stability

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JMJie MengRZR. ZhangHLHui Liu

Key Points

  • This research aims to develop a coordinated control strategy that enhances inertia support from grid-forming SVGs in renewable energy settings.
  • Integration of supercapacitors with grid-forming SVGs for reactive power compensation.
  • Development of a multi-timescale active power support system combining rapid inertia and continuous regulation.
  • Account for state of charge of supercapacitors and energy status of wind turbine units in control strategy.
  • Establishment of a hardware-in-the-loop testing platform for validation under typical operating conditions.
  • The coordinated control strategy significantly enhances frequency stability during fluctuations.
  • Rapid inertia support is effectively provided at the initial frequency dip stage.
  • A balanced approach to transient stability and long-term continuous regulation is achieved.

Abstract

ABSTRACT Combining supercapacitors and power electronic devices, grid‐forming static var generators (SVGs) can provide dynamic reactive power compensation while providing inertia support to the system, thereby enhancing the stability of renewable energy systems. However, challenges remain regarding the coordination between the inertia support from grid‐forming SVG and the control actions of automatic generation control (AGC) units in renewable energy gathering stations. To address this issue; this paper proposes a coordinated control strategy that accounts for the state of charge (SOC) of supercapacitors, aiming to enhance the inertia support role of grid‐forming static var generators (SVG) in renewable energy gathering stations and achieve their coordinated cooperation with the AGC system. By integrating the millisecond‐level rapid response capability of grid‐forming SVG and the second‐level continuous regulation capability of AGC, this strategy establishes a multi‐timescale active power support system: at the initial stage of a frequency dip, the grid‐forming SVG independently provides rapid inertia support; subsequently, it implements coordinated power allocation with the station‐level AGC while comprehensively considering the SOC of supercapacitors and the energy status of wind turbine units, thereby balancing transient frequency stability and the system's long‐term continuous regulation capability. Finally, a controller‐level hardware‐in‐the‐loop test platform is established for renewable power plants. Tests under typical operating conditions demonstrate the effectiveness and superiority of the proposed strategy, indicating that it can provide enhanced support when frequency fluctuations occur in renewable energy gathering stations.

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Cite This Study

Meng et al. (2026) studied this question.

synapsesocial.com/papers/697461a8bb9d90c67120b888https://doi.org/10.1049/pel2.70187
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