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Article

Dynamic-Depreciation-Aware Bi-Level Capacity Optimization of Shared Energy Storage for Renewable Energy Bases Considering Multi-Service Operation

1
School of Electrical and Information Engineering, Yunnan Minzu University, Kunming 650504, China
2
School of Metallurgy and Materials Engineering, Department of Metallurgy, Honghe University, Mengzi 661199, China
3
Yunnan Key Laboratory of Unmanned Autonomous Systems, Kunming 650504, China
*
Authors to whom correspondence should be addressed.
Energies 2026, 19(14), 3311; https://doi.org/10.3390/en19143311
Submission received: 3 June 2026 / Revised: 2 July 2026 / Accepted: 10 July 2026 / Published: 14 July 2026
(This article belongs to the Section D: Energy Storage and Application)

Abstract

Shared energy storage (SES) in renewable energy bases can integrate reliability support, curtailed-energy accommodation, spot-market arbitrage, and frequency-regulation services, but unclear service boundaries and static depreciation may distort capacity-allocation and economic-evaluation results. This paper proposes a bi-level capacity optimization model that incorporates operational intensity and dynamic depreciation. The model defines service-occupation boundaries and cycle-attribution rules, uses annual equivalent cycles to quantify cycling intensity, and feeds this intensity back into economic lifetime and capacity-side depreciation, forming a closed loop of capacity configuration, operational dispatch, lifetime assessment, and cost correction. A seasonal representative-day case study shows that static depreciation overestimates annualized net income by 7.55% under the same configuration. The dynamic-depreciation closed loop corrects the evaluation of high-cycling schemes and identifies leasing-based reliability support, passive curtailed-energy accommodation, and spot-market arbitrage as the preferred scheme under the benchmark conditions. Passive accommodation reduces annual curtailed energy by 54.90% and increases annualized net income by 41.40%. The proposed method provides a quantitative basis for capacity configuration and multi-service operation of shared energy storage in renewable energy bases.
Keywords: shared energy storage; renewable energy base; capacity configuration; annual equivalent cycles; dynamic depreciation; bi-level optimization shared energy storage; renewable energy base; capacity configuration; annual equivalent cycles; dynamic depreciation; bi-level optimization

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MDPI and ACS Style

Wang, Y.; Huang, M.; Xu, T.; Zhang, J.; Li, P. Dynamic-Depreciation-Aware Bi-Level Capacity Optimization of Shared Energy Storage for Renewable Energy Bases Considering Multi-Service Operation. Energies 2026, 19, 3311. https://doi.org/10.3390/en19143311

AMA Style

Wang Y, Huang M, Xu T, Zhang J, Li P. Dynamic-Depreciation-Aware Bi-Level Capacity Optimization of Shared Energy Storage for Renewable Energy Bases Considering Multi-Service Operation. Energies. 2026; 19(14):3311. https://doi.org/10.3390/en19143311

Chicago/Turabian Style

Wang, Yu, Mengyang Huang, Tianqi Xu, Jindi Zhang, and Pengfei Li. 2026. "Dynamic-Depreciation-Aware Bi-Level Capacity Optimization of Shared Energy Storage for Renewable Energy Bases Considering Multi-Service Operation" Energies 19, no. 14: 3311. https://doi.org/10.3390/en19143311

APA Style

Wang, Y., Huang, M., Xu, T., Zhang, J., & Li, P. (2026). Dynamic-Depreciation-Aware Bi-Level Capacity Optimization of Shared Energy Storage for Renewable Energy Bases Considering Multi-Service Operation. Energies, 19(14), 3311. https://doi.org/10.3390/en19143311

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