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March 4, 2026Energies3 citationsOpen Access

Grid-Forming Inverters in Photovoltaic Power Systems: A Comprehensive Review of Modeling, Control, and Stability Perspectives

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YHYouness HakamMTMohamed Tabaa

Key Points

  • This review aims to analyze the control strategies of grid-forming inverters in photovoltaic systems, focusing on stability and performance.
  • Reviewed various GFI control techniques like droop control and virtual synchronous generators.
  • Compared their dynamic response characteristics under weak-grid conditions.
  • Analyzed implementation challenges and limitations related to performance in emergencies.
  • Identified stability margins and inertia emulation capabilities of GFIs.
  • Highlighted remaining challenges in large-disturbance ride-through and multiple inverter coordination.
  • Synthesized insights into transient current response and protection requirements.

Abstract

Grid-forming inverters (GFIs) are emerging as a key enabling technology for maintaining stability in renewable-dominated power systems, where conventional synchronous generation is progressively displaced by inverter-based resources. This paper presents a comprehensive technical review of GFI control strategies applied to photovoltaic (PV) systems, with focused attention on small-signal stability, transient dynamic performance, and overcurrent-limiting capabilities. In contrast to grid-following inverters (GFLIs), which rely on phase-locked-loop synchronization, GFIs operate as voltage sources capable of forming and regulating grid voltage and frequency. The reviewed control approaches, including droop control, virtual synchronous generator (VSG), synchronverter, matching control, virtual oscillator control (VOC), model predictive control (MPC), and intelligent techniques such as fuzzy logic control (FLC), artificial neural networks (ANNs), and adaptive neuro-fuzzy inference systems (ANFISs), are systematically compared based on dynamic response characteristics, robustness under weak-grid conditions, control complexity, and practical implementation challenges. The paper synthesizes recent findings on stability margins, inertia emulation, transient current response, and protection requirements, highlighting remaining research gaps related to large-disturbance ride-through capability, coordination of multiple GFIs, and protection integration. These insights aim to support future deployments of reliable grid-forming photovoltaic systems in resilient inverter-dominated power networks.

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Cite This Study

Hakam et al. (2026) studied this question.

synapsesocial.com/papers/69a7cd7ed48f933b5eed9ecfhttps://doi.org/10.3390/en19051244
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