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May 1, 2026IET Power Electronics0 citationsOpen Access

Adaptive Virtual Inductor‐Based Current‐Limiting Control Strategy and Transient Stability Design for Grid‐Forming Converters Under Symmetrical Grid Faults

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XLXiaoqiang LiMPMengcheng PeiYLY.J. Li

Key Points

  • To develop an adaptive virtual inductor-based strategy for controlling fault currents in grid-forming converters while enhancing transient stability.
  • Proposed an adaptive virtual inductor-based control strategy integrating an output current amplitude control loop.
  • Established small-signal and large-signal models to analyze stability and transient characteristics.
  • Conducted simulations and experiments to validate the proposed method.
  • Achieved power decoupling and maintained precise tracking of fault current limits under symmetrical faults.
  • Demonstrated improved reactive current injection capability, meeting national grid code requirements.
  • Developed a method that enhances transient stability by regulating the active power reference.

Abstract

ABSTRACT Under severe symmetrical grid faults, grid‐forming (GFM) converters may suffer from excessive fault currents and transient stability issues. To restrict fault current, current limiters provide a simple and effective solution. However, they convert GFM control into grid‐following control, leading to the loss of voltage‐source characteristics. Virtual impedance–based methods can preserve the voltage‐source behaviour of GFM converters during faults. However, the commonly used resistive–inductive virtual impedance introduces power coupling, surplus capacity requirements, and small‐signal stability issues. Therefore, an adaptive virtual inductor (AVI)‐based current‐limiting control strategy is proposed. This strategy introduces an output current amplitude control loop to dynamically adjust the virtual inductance, thereby limiting the fault current while enhancing reactive current injection capability. In addition, the small‐signal stability and virtual inductance gains are investigated by establishing a small‐signal model of the output current amplitude control loop. The AVI control strategy proposed in this paper not only achieves power decoupling but also ensures that the fault current accurately tracks the current limit reference under any symmetrical fault conditions. Consequently, precise reactive current injection is guaranteed, thereby satisfying national grid code requirements. A large‐signal model is further developed to analyse transient stability using P–δ curves and phase portraits. Based on this analysis, an enhanced transient stability design method is proposed, in which a power‐reference regulation term is incorporated into the active power reference to ensure transient stability while expanding the critical power angle. Finally, simulation and experimental results are presented to validate the feasibility and effectiveness of the proposed method.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69f444d3967e944ac5567a24https://doi.org/10.1049/pel2.70237
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