Frequency-constrained unit commitment with grid-forming hybrid energy storage systems considering complementary frequency support and battery degradation

High penetration of renewable energy is reducing synchronous inertia and making post-contingency frequency security harder to maintain in low-inertia power systems. Consequently, day-ahead scheduling must incorporate the post-disturbance frequency support available from committed resources, a challenge effectively addressed by frequency-constrained unit commitment (FCUC). Grid-forming hybrid energy storage systems (GFM-HESS), which combine the fast response of supercapacitors (SC) with the sustained support of batteries, provide a promising resource for FCUC. While existing FCUC studies have incorporated energy storage into frequency-security constraints, they still cannot explicitly represent the SC-to-battery support transfer in GFM-HESS or the resulting implications for reserve allocation and frequency security. In addition, battery degradation associated with frequency-support duty remains difficult to represent in FCUC because detailed real-time battery trajectories are not explicitly resolved. This paper develops an FCUC model with GFM-HESS. The model distinguishes the fast SC branch from the sustained battery branch, incorporates the SC-to-battery support transfer through mode-dependent frequency-nadir constraints, and introduces a tractable degradation mapping for battery wear associated with frequency-support duty. Case studies on a modified IEEE 39-bus system show that the proposed model coordinates the complementary frequency-support capabilities of the SC and battery while maintaining frequency security. The resulting schedules improve the system-level economic performance of GFM-HESS relative to the benchmark architectures, while independent time-domain and Rainflow evaluations support the scheduling use of the proposed degradation mapping.

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Publication Details

Journal
Journal of Energy Storage
Published
2026-09-17
DOI
https://doi.org/10.1016/j.est.2026.124490
Primary Topic
Microgrid Control and Optimization
Type
article
Field-Weighted Citation Impact
0.00

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article

Frequency-constrained unit commitment with grid-forming hybrid energy storage systems considering complementary frequency support and battery degradation

Yuanshi Zhang, Junhao Hua, Qinran Hu, Rushuai Han et al.
Journal of Energy Storage
Microgrid Control and Optimization
article

Frequency-constrained unit commitment with grid-forming hybrid energy storage systems considering complementary frequency support and battery degradation

Yuanshi Zhang, Junhao Hua, Qinran Hu, Rushuai Han, Yan Li, Gang Ma
article en

Abstract

High penetration of renewable energy is reducing synchronous inertia and making post-contingency frequency security harder to maintain in low-inertia power systems. Consequently, day-ahead scheduling must incorporate the post-disturbance frequency support available from committed resources, a challenge effectively addressed by frequency-constrained unit commitment (FCUC). Grid-forming hybrid energy storage systems (GFM-HESS), which combine the fast response of supercapacitors (SC) with the sustained support of batteries, provide a promising resource for FCUC. While existing FCUC studies have incorporated energy storage into frequency-security constraints, they still cannot explicitly represent the SC-to-battery support transfer in GFM-HESS or the resulting implications for reserve allocation and frequency security. In addition, battery degradation associated with frequency-support duty remains difficult to represent in FCUC because detailed real-time battery trajectories are not explicitly resolved. This paper develops an FCUC model with GFM-HESS. The model distinguishes the fast SC branch from the sustained battery branch, incorporates the SC-to-battery support transfer through mode-dependent frequency-nadir constraints, and introduces a tractable degradation mapping for battery wear associated with frequency-support duty. Case studies on a modified IEEE 39-bus system show that the proposed model coordinates the complementary frequency-support capabilities of the SC and battery while maintaining frequency security. The resulting schedules improve the system-level economic performance of GFM-HESS relative to the benchmark architectures, while independent time-domain and Rainflow evaluations support the scheduling use of the proposed degradation mapping.

Journal of Energy StorageVol. 182
Nanjing Normal University (CN), Southeast University (CN)
National Natural Science Foundation of China
Affordable and clean energy
Openalex Percentile: Top 15%
Microgrid Control and Optimization
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