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    Small-Signal Stability Analysis and Parameters Optimization of Virtual Synchronous Generator for Low-Inertia Power System

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    Small-Signal_Stability_Analysis_and_Parameters_Optimization_of_Virtual_Synchronous_Generator_for_Low-Inertia_Power_System.pdf (3.720Mb)
    Date
    2025-06-20
    Author
    Altawallbeh, Alaa
    Alassi, Abdulrahman
    Meskin, Nader
    Al-Hitmi, Mohammed A.
    Massoud, Ahmed M.
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    Abstract
    The stable operation of converter-interfaced generation (CIG) units is paramount for ensuring resilience in low-inertia power systems. This paper presents a comprehensive small-signal modeling and stability analysis framework for grid-connected virtual synchronous generators (VSGs), integrating: an LCL-filter interfaced power converter, active/reactive power loop (APL/RPL) controllers, and dual-loop PI-based current and voltage control. Through systematic eigenvalue analysis and parameter sensitivity studies, complemented by time-domain verification in MATLAB/SIMULINK, we demonstrate the decisive influence of VSG control parameters on low-frequency oscillation (LFO) damping characteristics, transient frequency stability metrics, including the rate of change of frequency (ROCOF), maximum frequency deviation (f<inf>nadir</inf>), overshoot, and settling time. We further propose a hybrid Particle Swarm Optimization (PSO) algorithm with a multi-objective cost function to optimize VSG controller gains. The optimized design achieves an 83% reduction in ROCOF, a 90% improvement in frequency deviation, and a non-oscillatory power response. These results quantitatively validate that proper VSG gain tuning can significantly enhance dynamic performance and frequency stability in inertia-constrained grids. The proposed methodology offers practical insights for designing resilient CIG-dominated power systems.
    URI
    https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=105008811464&origin=inward
    DOI/handle
    http://dx.doi.org/10.1109/ACCESS.2025.3581678
    http://hdl.handle.net/10576/66688
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    • Electrical Engineering [‎2848‎ items ]

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