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Assessing Oscillatory Stability with Dominant Grid-Forming Power Systems for Active Power Imbalances
Author(s) -
Sander Skogen,
Jose Luis Rueda Torres
Publication year - 2025
Publication title -
ieee open access journal of power and energy
Language(s) - English
Resource type - Magazines
eISSN - 2687-7910
DOI - 10.1109/oajpe.2025.3571108
Subject(s) - communication, networking and broadcast technologies , components, circuits, devices and systems , power, energy and industry applications
As the integration of renewable energy accelerates, ensuring power system stability becomes increasingly critical. This research utilized a Root Mean Square (RMS) synthetic model of the future 380 kV Dutch power system towards 2050 to analyze its oscillatory stability under high renewable penetration and the impact of grid-forming converters under various parametrizations. The presented case study shows that grid-forming (GFM) converters significantly improve frequency stability and damping performance across different perturbations, particularly at higher GFM penetration levels, improving frequency and damping parameters. However, various oscillatory modes present potential stability risks at high penetration levels. The case study also shows minimal differences in controller selection in large-scale models, except under certain conditions. Additionally, the analysis of controller parameters highlighted the critical importance of tuning active power parameters to ensure system stability. The investigation provides essential insights for future power systems, where large-scale integration of renewable energy will necessitate the implementation of converters able to provide ancillary services. The findings emphasize the importance of optimizing GFM converter settings and penetration levels to maintain system resilience, offering valuable guidance for future system planning and regulatory frameworks.

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