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January 14, 2026Electronics0 citationsOpen Access

Grid-Connected Active Support and Oscillation Suppression Strategy of Energy Storage System Based on Virtual Synchronous Generator

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ZZZhuan ZhaoJYJinming YaoSSShuhuai Shi

Key Points

  • The research aims to address stability issues caused by renewable energy integration in distribution networks.
  • Proposed an active support control strategy using a virtual synchronous generator.
  • Developed a small-signal model to analyze system stability.
  • Introduced a delay compensator with current feedback in series and optimized damping of the LCL filter.
  • Demonstrated efficacy in suppressing voltage fluctuations and broadband oscillations.
  • Improved dynamic response performance under typical disturbance scenarios.
  • Enhanced fault ride-through capability of the energy storage system.

Abstract

This paper addresses stability issues, including voltage fluctuation, a frequency offset, and broadband oscillation resulting from the high penetration of renewable energy in a photovoltaic high-permeability distribution network. This paper proposes an active support control strategy which is energy storage grid-connected based on a virtual synchronous generator (VSG). This strategy endows the energy storage system with virtual inertia and a damping capacity by simulating the rotor motion equation and excitation regulation characteristics of the synchronous generator, and effectively enhances the system’s ability to suppress power disturbances. The small-signal model of the VSG system is established, and the influence mechanism of the virtual inertia and damping coefficient on the system stability is revealed. A delay compensator in series with a current feedback path is proposed. Combined with the damping optimization of the LCL filter, the instability risk caused by high-frequency resonance and a control delay is significantly suppressed. The novelty lies in the specific configuration of the compensator within the grid–current feedback loop and its coordinated design with VSG parameters, which differs from traditional capacitive–current feedback compensation methods. The experimental results obtained from a semi-physical simulation platform demonstrate that the proposed control strategy can effectively suppress voltage fluctuations, suppress broadband oscillations, and improve the dynamic response performance and fault ride-through capability of the system under typical disturbance scenarios such as sudden illumination changes, load switching, and grid faults. It provides a feasible technical path for the stable operation of the distribution network with a high proportion of new energy access.

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Cite This Study

Zhao et al. (2026) studied this question.

synapsesocial.com/papers/6966f30613bf7a6f02c0085ehttps://doi.org/10.3390/electronics15020323
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