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Regular Paper | Open Access

Optimal Interaction Strategy for Vehicle-to-grid Based on Interval Uncertainty Model

Leijiao Ge1( )Zhicheng Gu1Jun Yan2Yuanzheng Li3Jiaan Zhang4Xiaohui Li5
Key Laboratory of Smart Grid of Ministry of Education, Tianjin University, Tianjin 300072, China
Concordia Institute for Information Systems Engineering, Concordia University, Montréal, QC H3G 1M8, Canada
School of Artificial Intelligence and Automation, Huazhong University of Science and Technology, Wuhan 430074, China
School of Electrical and Engineering, Hebei University of Technology, Tianjin 300401, China
Marketing Service Center, State Grid Tianjin Electric Power Company, Tianjin 300202, China
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Abstract

Uncertainty of behaviors of EV users brings difficulties to resource scheduling and electricity price setting in a distribution network. In this regard, this paper proposes an optimal interaction strategy for distribution network to EV users based on interval constraints of electricity costs and user behaviors to minimize peak-to-valley load difference and charging cost. An interval participation model for EV users is also proposed to consider baseline participation under base electricity price, as well as multiple influence factors of user participation under variable charging prices. The non-dominated sorted genetic algorithm Ⅱ (NSGA-Ⅱ) is adopted to solve the two proposed interval models. Simulation results based on real-world EV models verify the proposed optimal scheduling based on interval models can effectively reduce peak-valley difference of distribution networks and electricity costs of EV users. Peak-valley difference rate of loads can be reduced from 33% to 28% under 1000 EVs.

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CSEE Journal of Power and Energy Systems
Pages 1536-1546

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Cite this article:
Ge L, Gu Z, Yan J, et al. Optimal Interaction Strategy for Vehicle-to-grid Based on Interval Uncertainty Model. CSEE Journal of Power and Energy Systems, 2026, 12(3): 1536-1546. https://doi.org/10.17775/CSEEJPES.2022.03270

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Received: 13 May 2022
Revised: 22 July 2022
Accepted: 01 September 2022
Published: 27 June 2023
© 2022 CSEE.

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).