Electric Power ›› 2026, Vol. 59 ›› Issue (1): 33-43.DOI: 10.11930/j.issn.1004-9649.202505077

• The Key Technologies of Planning, Operation, and Transaction of The Integrated Energy System Considering Distributed Virtual Energy Storage Aggregation • Previous Articles     Next Articles

Multi index fusion reliability evaluation method for virtual power plants considering the dynamic characteristics of energy storage

WANG Huidong1(), NI Linna2(), LU Pengfei1(), CHENG Ying2(), WU Yingjun3()   

  1. 1. State Grid Zhejiang Electric Power Co., Ltd., Hangzhou 310016, China
    2. State Grid Zhejiang Electric Power Co., Ltd., Marketing Service Center, Hangzhou 310016, China
    3. College of Energy and Electrical Engineering, Hohai University, Nanjing 211100, China
  • Received:2025-05-27 Revised:2025-12-28 Online:2026-01-13 Published:2026-01-28
  • Supported by:
    This work is supported by Science and Technology Project of State Grid Zhejiang Electric Power Co., Ltd. (No.B311YF24000W).

Abstract:

As a core hub for aggregating multi-source "generation-storage-load" resources, the reliability assessment of Virtual Power Plants (VPPs) is crucial for the stable operation of power systems and the absorption of renewable energy. Current assessment methods have two limitations: first, they adopt static energy storage models, which struggle to reflect the dynamic characteristics of devices; second, the evaluation indicators fail to quantify the power output stability during the power supply process. To address this, a multi-indicator integrated reliability assessment method for virtual power plants considering the dynamic characteristics of energy storage is proposed. Firstly, a dynamic energy storage model is constructed based on the capacity degradation and efficiency deterioration characteristics of energy storage devices during charging and discharging processes. Secondly, multiple energy sources such as wind power, photovoltaic power, adjustable loads, and grid transactions are integrated to build a virtual power plant model that reflects the collaborative operation of "generation-storage-load". Finally, focusing on power supply stability and renewable energy absorption efficiency, two indicators—Mean VPP Export Power Stability (MVPPE) and Expected Renewable Energy Not Used (ERENU)—are proposed. Combined with traditional indicators including Loss of Load Probability (LOLP) and Expected Energy Not Supplied (EENS), a reliability assessment system for virtual power plants considering the dynamic characteristics of energy storage is established. Simulation results show that compared with the traditional static energy storage model, this method increases MVPPE by 14.5% and reduces ERENU by 88.7%, which can more truly reflect the reliability level of VPPs and provide a scientific basis for their planning, operation, and optimization.

Key words: virtual power plant, dynamic energy storage, reliability assessment