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April 16, 2026Electronics0 citationsOpen Access

RoCoF-Based Synthetic Inertia Support Using Supercapacitors for Frequency Stability in Islanded Photovoltaic Microgrids

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DFDaniela Flores-RosalesPAPaul Arévalo-Cordero

Key Points

  • The aim is to develop a synthetic inertia strategy utilizing supercapacitors for enhancing frequency stability in islanded photovoltaic microgrids.
  • Developed synthetic inertia strategy for fast frequency containment.
  • Implemented a supercapacitor model with resistance-capacitance characteristics.
  • Assessed the method through time-domain simulations under various benchmark disturbances.
  • Evaluated performance based on frequency metrics and supercapacitor stress indicators.
  • Included analysis of non-ideal conditions and variability-driven scenarios.
  • The adaptive hybrid strategy improved overall frequency response.
  • Maintained acceptable operation within supercapacitor limits.
  • Demonstrated effective rapid frequency support under defined disturbances.

Abstract

Islanded photovoltaic microgrids with limited inertial support can undergo steep frequency excursions after sudden generation loss or abrupt load changes. This paper develops and evaluates a synthetic inertia strategy supported by a supercapacitor energy storage unit for fast frequency containment in this type of system. The proposed approach commands rapid active-power injection or absorption from the measured rate of change of frequency, thereby emulating the immediate inertial contribution usually associated with rotating machines while preserving a simple and physically interpretable control structure. The supercapacitor is represented through a resistance–capacitance model that includes equivalent series resistance and is interfaced through a bidirectional buck–boost power converter subject to practical current, voltage, and power limits. Rather than claiming a fundamentally new storage-support concept, the contribution of this paper lies in providing a transparent and constraint-consistent benchmark that integrates measured operating profiles, explicit supercapacitor limits, hybrid frequency–RoCoF support, and stress-aware comparative assessment under a common set of plant assumptions. The methodology is assessed in time-domain simulations under representative benchmark disturbances, including an approximately ten percent photovoltaic generation loss, a ten percent load increase, and a combined event. Performance is evaluated through the peak rate of change of frequency, frequency nadir, integral error indices, time outside the admissible band, and supercapacitor stress indicators such as current peaks, voltage depletion, and energy throughput. An additional non-ideal assessment is also included to examine the behavior of the RoCoF-based support law under bounded frequency-measurement perturbations and delayed control action. A complementary variability-driven case based on a highly fluctuating measured irradiance window is also used to examine the behavior of the adaptive energy-management mechanism under repeated photovoltaic-power variations. A local small-signal analysis is also included to show that the selected gain region is dynamically plausible in the unsaturated regime. The results show that the proposed adaptive hybrid strategy improves the overall frequency response while maintaining admissible supercapacitor operation, thus providing a stronger methodological basis for rapid frequency support in islanded photovoltaic microgrids.

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Cite This Study

Flores-Rosales et al. (2026) studied this question.

synapsesocial.com/papers/69e07c972f7e8953b7cbdc7dhttps://doi.org/10.3390/electronics15081626
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