Ir arriba
Información del artículo en conferencia

Frequency-Constrained Unit Commitment Using SODE-Labelled Affine Surrogates

A.O. Olasoji, D.T.O. Oyedokun, M. Rajabdorri, J.E. Sierra-Aguilar, Ch.E. Okafor, M. Mditshwa, K.A. Folly

8th IEEE Global Power, Energy and Communication Conference - IEEE GPECOM 2026, Nápoles (Italia). 03-05 junio 2026


Resumen:

Frequency nadir is one of the most informative indicators of post-contingency frequency security, but embedding it in frequency-constrained unit commitment (FCUC) remains challenging because nadir relations are nonlinear, non-convex, and are often introduced through computationally burdensome analytical approximations. This paper develops a scalable, opensource workflow for FCUC in which nadir security is enforced through calibrated affine surrogates learned from a secondorder differential equation (SODE) model while preserving unitcommitment mixed-integer linear programming (MILP) structure. The study employs Adaptive Latin Hypercube Sampling (A-LHS) to generate UC-relevant operating points, thereby avoiding exhaustive grid search, and are labelled using the opensource SODE model that captures dynamic effects neglected by simplified first-order formulations. Probability-calibrated linear surrogates are then embedded directly into UC through a common affine inequality, with conservatism controlled by an operator-selected probability threshold. The study focuses on the IEEE RTS-96 system under the largest contigency event of 400MW and positions this benchmark as an extension of our earlier smaller-system study to a materially larger test system. Results show that the analytical first-order formulation remains systematically optimistic against the SODE model. Also the SODE-trained surrogates show a much stronger security performance with modest cost impact and substantially lower computational burden.


Resumen divulgativo:

Este artículo utiliza modelos simplificados basados en datos para programar centrales de forma eficiente y mantener la frecuencia de la red dentro de límites seguros tras perturbaciones.


Palabras clave: frequency-constrained unit commitment, frequency nadir, low-inertia systems, second-order differential equa tion, machine learning surrogate, IEEE RTS-96


DOI: DOI icon https://doi.org/10.1109/GPECOM70462.2026.11578868

Publicado en: Proceedings of the 2026 IEEE 8th Global Power, Energy and Communication Conference: IEEE GPECOM 2026, pp: 703-708, ISBN: 979-8-3315-5205-3

Fecha de publicación: 02-jul-2026


Cita:
A.O. Olasoji, D.T.O. Oyedokun, M. Rajabdorri, J.E. Sierra-Aguilar, Ch.E. Okafor, M. Mditshwa, K.A. Folly, "Frequency-Constrained Unit Commitment Using SODE-Labelled Affine Surrogates", presentado en 8th IEEE Global Power, Energy and Communication Conference - IEEE GPECOM 2026, Nápoles, Italia, 03-05 junio 2026. En: Proceedings of the 2026 IEEE 8th Global Power, Energy and Communication Conference: IEEE GPECOM 2026, pp. 703-708, doi: 10.1109/GPECOM70462.2026.11578868

    Líneas de investigación:
  • Estabilidad: Estabilidad de gran perturbación, ajuste de protecciones de deslastre de cargas por frecuencia, control de la excitación, estabilidad de pequeña perturbación, ajuste de estabilizadores del sistema de potencia, identificación de modelos de reguladores
  • Machine Learning y Analítica Avanzada
  • Optimización Avanzada, Optimización Bayesiana y Métodos Matemáticos para IA
    Grupos de investigación:
  • Instituto de Investigación Tecnológica (IIT)
    ODS:
  • Objetivo 7: Energía asequible y no contaminante
  • Objetivo 9: Industria, innovación e infraestructuras
  • Objetivo 13: Acción por el clima

IIT-26-252C

pdf Solicitar el artículo completo a los autores