PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
March 16, 2026Global Energy Interconnection1 citationsOpen Access

Multi-game optimization strategy for virtual power plants considering EV user service selection

View Full Paper
LDLei DongKZKewen ZuoJCJiyang Chen

Key Points

  • The aim is to enhance the operation of virtual power plants by optimizing services for electric vehicle users through a coordinated strategy.
  • Developed a multi-agent coordinated optimization operation strategy for virtual power plants.
  • Designed differentiated services for charging needs: disordered charging, semi-flexible dispatch, and full flexible dispatch.
  • Established an evolutionary game model to mimic user decision-making behavior.
  • Created a hierarchical multi-game framework involving distribution network operators, virtual power plants, and electric vehicle aggregators.
  • Applied the bisection method with alternating direction multiplier method to solve the optimization problem.
  • The model effectively accommodates diverse charging needs of electric vehicle users.
  • It successfully coordinates interests of multiple stakeholders involved in power trading.
  • Reduces operating costs for all entities in the energy market.

Abstract

With the transformation of energy structure and the deepening of the concept of sharing economy, the large-scale access of electric vehicles (EVs) and the coordinated development of multiple virtual power plants (VPPs) have become an important trend to enhance the flexibility of power grids. However, the problems of multi-agent coordinated optimization and diversified charging demand of EVs need to be solved urgently. This paper proposes a multi-agent coordinated optimization operation strategy of VPPs that considers EV user service selection and multiple games. First, in view of the diversified charging needs of users, differentiated services including disordered charging, semi-flexible dispatch and full flexible dispatch are designed, and an evolutionary game model based on Logit dynamic protocol is established to simulate the non-completely rational decision-making behavior of users. Secondly, a hierarchical multi-game framework is developed: the distribution network operator (DSO), as the leader of the stackelberg game, formulates dynamic electricity prices; the virtual power plants and the virtual power plants and electric vehicle aggregators (EVAs) realize power trading and cost sharing based on cooperative game; EV users dynamically select electric vehicle aggregators with differentiated service packages through evolutionary game. The bisection method combined with the alternating direction multiplier method (ADMM) is used to solve the problem, and the example is used to verify that the proposed model can effectively consider the actual situation of users and meet the diversified charging needs of users. At the same time, the model can coordinate the interests of multiple parties and reduce the operating costs of various entities.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Dong et al. (2026) studied this question.

synapsesocial.com/papers/69b79dce8166e15b153aafe7https://doi.org/10.1016/j.gloei.2025.09.009
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Optimal Charging Scheduling by Pricing for EV Charging Station With Dual Charging Modes2018 · 299 citations
  2. 2Optimal scheduling strategy and benefit allocation of multiple virtual power plants based on general nash bargaining theory2023 · 30 citations
  3. 3Multi-objective programming consensus model based on evolutionary game analysis in group decision making2022 · 23 citations
  4. 4Multi-source shared operation optimization strategy for multi-virtual power plants based on distributionally robust chance constraint2025 · 23 citations
  5. 5Robust optimal dispatch strategy of integrated energy system considering CHP-P2G-CCS2024 · 29 citations