Large-Signal Stability Analysis of Optimization-Based Secondary Control for Distributed Energy Resources
Abstract
This article develops a large-signal stability analysis for a sampled-data optimization-based secondary controller for distributed energy resources (DERs) in power systems. The induced closed loop combines nonlinear inverter power-flow dynamics, filtered active and reactive power measurements, constrained optimization updates, and interpolation-based actuation between sampling instants. We study this optimization-in-the-loop nonlinear sampled-data system beyond local linearization. The analysis provides computable bounds on the voltage, filtered reactive power, and the secondary control input. We further characterize steady-state operating points and establish how the optimizer objectives and constraints connect voltage regulation with equal per-unitized reactive power sharing. Finally, input-to-state stability of the frequency dynamics is established with respect to DER voltages and control inputs. These results provide a rigorous mathematical foundation for sampled-data optimization-based secondary control of DERs.
Keywords
Cite
@article{arxiv.2607.18500,
title = {Large-Signal Stability Analysis of Optimization-Based Secondary Control for Distributed Energy Resources},
author = {Vivek Khatana and Soham Chakraborty and Murti V. Salapaka},
journal= {arXiv preprint arXiv:2607.18500},
year = {2026}
}
Comments
9 pages, Allerton Conference 2026