Abstract
Modern power systems are increasingly vulnerable to frequency instability as inverter-based resources (IBRs) replace synchronous machines and reduce system rotational inertia. Existing small-signal frequency stability assessment methods are either computationally intensive, relying on simulation-driven approaches, or lack analytical stability regions that explicitly account for secondary frequency response (SFR). This paper introduces new analytical frameworks that enable evaluation small-signal frequency stability while explicitly incorporating tunable IBR and SFR parameters. Using Kharitonov's theorem with an overbounding approach, explicit small-signal stability criteria are derived. In addition, based on Bialas' criterion and Hurwitz matrix, analytical stability regions are established to reveal feasible design spaces for SFR and IBR parameters tuning. Extensive Matlab/Simulink-based simulations validate the accuracy and computational efficiency of the proposed methods, demonstrating that coordinated tuning of SFR and IBR parameters can substantially enhance system resilience. By bridging analytical rigor with practical tunability, this work provides an analytical framework for assessing small-signal frequency stability in low-inertia grids, supporting the real-time, scalable, and resilient operation of sustainable power systems.
| Original language | American English |
|---|---|
| Number of pages | 11 |
| Journal | Electric Power Systems Research |
| Volume | 258 |
| DOIs | |
| State | Published - 2026 |
NLR Publication Number
- NLR/JA-5D00-97017
Keywords
- analytical stability evaluation
- inverter-based resources
- low-inertia power system
- secondary frequency regulation
- system frequency response
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