Profit benchmarking and degradation analysis for revenue stacking of batteries in Sweden’s day-ahead electricity and frequency containment reserve markets
Journal article, 2025

This paper presents a novel mixed-integer linear programming (MILP) model for revenue stacking of battery energy storage systems (BESSs) in Sweden’s day-ahead (DA) electricity and frequency containment reserve (FCR) markets. The model includes a detailed calendar and cycle battery degradation and market technical requirements modeling that aims to maximize the battery owner’s potential profit from participating in the DA and three FCR markets, FCR in normal operation (FCR-N), and FCR in disturbances (FCR-D) for up- and down-regulations. For presenting comprehensive results, successive daily optimizations are conducted for year 2022 using one-minute resolution real data. Five utilization modes are simulated including participation in no FCR market (only DA), only DA and FCR-N, only DA and FCR-D up-regulation, only DA and FCR-D down-regulation, and DA and all FCR markets. The maximum potential profit from revenue stacking in the DA and multi-FCR markets could have been k€ 708 for a 1MW-1MWh BESS, which is 22 times the profit in no FCR participation case. The annual degradation resulting from multi-FCR market participation was 1.7% of loss in battery capacity. Considering degradation in the optimization problem reduced the aging by 29% without a significant effect on profit. The proposed model can serve as a benchmark for evaluating the profitability and sustainability of battery operation strategies and algorithms.

Battery energy storage system

Technical market requirements

Battery degradation

Ancillary service

Frequency containment reserve

Revenue stacking

Author

Nima Mirzaei Alavijeh

Chalmers, Electrical Engineering, Electric Power Engineering

Rahmatollah Khezri

Chalmers, Electrical Engineering, Electric Power Engineering

Mohammadreza Mazidi

Chalmers, Electrical Engineering, Electric Power Engineering

David Steen

Chalmers, Electrical Engineering, Electric Power Engineering

Anh Tuan Le

Chalmers, Electrical Engineering, Electric Power Engineering

Applied Energy

0306-2619 (ISSN) 18729118 (eISSN)

Vol. 381 125151

Driving Forces

Sustainable development

Innovation and entrepreneurship

Areas of Advance

Energy

Subject Categories (SSIF 2025)

Power Systems and Components

DOI

10.1016/j.apenergy.2024.125151

More information

Created

1/24/2025