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Uplift Pricing for Inertia and Reserve via ML-Based Frequency-Constrained Unit Commitment

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

17th IEEE AFRICON Conference - AFRICON 2025, Polokwane (Sudáfrica). 10-12 diciembre 2025


Resumen:

High penetration of inverter-based sources makes power systems susceptible to frequency excursions, leaving power systems short of synchronous inertia and uncompensated spinning reserve headroom. Traditional unit commitment (UC) approaches are incapable of catering to the needs of modern power systems. This paper proposes a transparent, regulator-friendly remedy that requires no real-time market redesign. A linear logistic regression surrogate, trained on 117 000 dynamic simulations, is embedded in the MILP to enforce post-fault frequency constraint. Spinning reserve headroom is remunerated through a fixed uplift tariff proportional to each generator’s marginal energy cost. Three deterministic day-ahead scenarios are compared on a real power system—La Palma (Spain): S0—reserve free; S1—tariff applied ex-post; S2—tariff co-optimised with energy. Co-optimisation (S2) increases weekly expenditure only 4.2 % relative to the cost-only baseline and is 0.2 % cheaper than the ex-post variant (S1). Fuel (operation) cost and renewable curtailment remain unchanged, depicting that the tariff does not distort the merit order. Although worst-case system inertia drops by 9 MW•s, the nadir limit binds 75 h/wk−1 versus 59 h/wk−1 in S0/S1, impeding under-frequency risk without raising RoCoF exposure. Reserve payments become less concentrated; the Gini coefficient, a measure of inequality, falls from 0.26 to 0.24, and the share captured by the three highest-earning units drops slightly to 56%. These results demonstrate that a single co-optimised uplift tariff—underpinned by an ML-based nadir constraint—thus delivers frequency security and fair cost recovery at negligible economic and operational impact, offering an immediately deployable solution for low-inertia grids.


Resumen divulgativo:

El artículo propone un método para pagar la reserva e inercia en redes con alta presencia renovable, usando aprendizaje automático para garantizar la seguridad de frecuencia con bajo impacto económico.

 


Palabras clave: Frequency-constrained unit commitment, uplift pricing, inertia valuation, spinning reserve headroom, machinelearning, low-inertia grids


DOI: DOI icon https://doi.org/10.1109/AFRICON66545.2025.11533672

Publicado en: 2025 IEEE AFRICON, pp: 1-6, ISBN: 979-8-3315-6519-0

Fecha de publicación: 26-may-2026


Cita:
A.O. Olasoji, D.T.O. Oyedokun, M. Rajabdorri, J.E. Sierra-Aguilar, M. Mditshwa, Ch.E. Okafor, B. Khoza, K.A. Folly, "Uplift Pricing for Inertia and Reserve via ML-Based Frequency-Constrained Unit Commitment", presentado en 17th IEEE AFRICON Conference - AFRICON 2025, Polokwane, Sudáfrica, 10-12 diciembre 2025. En: 2025 IEEE AFRICON, pp. 1-6, doi: 10.1109/AFRICON66545.2025.11533672

    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
  • Control automático de generación: Diseño y ajuste de reguladores para el control automático de generación, identificación de modelos de unidades, servicios complementarios de regulación primaria y secundaria
  • Sistemas aislados: Islands, microgrids, off-grid
  • Machine Learning y Analítica Avanzada
  • Diseño y regulación de mercados energéticos
  • Modelos de mercado eléctrico para alta penetración de generación renovable
    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-25-415C

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