Digitální knihovna UHK

Optimizing Multi-Microgrid Operations with Battery Energy Storage and Electric Vehicle Integration: A Comparative Analysis of Strategies

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dc.rights.license CC BY eng
dc.contributor.author Ahsan, Syed Muhammad cze
dc.contributor.author Musílek, Petr cze
dc.date.accessioned 2025-12-05T16:11:24Z
dc.date.available 2025-12-05T16:11:24Z
dc.date.issued 2025 eng
dc.identifier.issn 2313-0105 eng
dc.identifier.uri http://hdl.handle.net/20.500.12603/2470
dc.description.abstract This study presents a comprehensive comparative analysis of the operational strategies for multi-microgrid systems that integrate battery energy storage systems and electric vehicles. The analyzed strategies include individual operation, community-based operation, a cooperative game-theoretic method, and the alternating direction method of multipliers for multi-microgrid systems. The operation of multi-microgrid systems that incorporate electric vehicles presents challenges related to coordination, privacy, and fairness. Mathematical models for each strategy are developed and evaluated using annual simulations with real-world data. Individual operation offers simplicity but incurs higher costs due to the absence of power sharing among microgrids and limited optimization of battery usage. However, individual optimization reduces the multi-microgrid system cost by 47.5% when compared to the base case with no solar PV or BESS and without optimization. Community-based operation enables power sharing, reducing the net cost of the multi-microgrid system by approximately 7%, as compared to individual operation, but requires full data transparency, raising privacy concerns. Game theory ensures fair benefit allocation, allowing some microgrids to achieve cost reductions of up to 13% through enhanced cooperation and shared use of energy storage assets. The alternating direction method of multipliers achieves a reduction in the electricity costs of each microgrid by 6-7%. It balances privacy and performance without extensive data sharing while effectively utilizing energy storage. The findings highlight the trade-offs between cost efficiency, fairness, privacy, and computational efficiency, offering insights into optimizing multi-microgrid operations that incorporate advanced energy storage solutions. eng
dc.format p. "Article Number: 129" eng
dc.language.iso eng eng
dc.publisher MDPI-Molecular diversity preservation international eng
dc.relation.ispartof Batteries, volume 11, issue: 4 eng
dc.subject individual operation eng
dc.subject community-based operation eng
dc.subject cooperative game-theoretic method eng
dc.subject alternating direction method of multipliers eng
dc.title Optimizing Multi-Microgrid Operations with Battery Energy Storage and Electric Vehicle Integration: A Comparative Analysis of Strategies eng
dc.type article eng
dc.identifier.obd 43882270 eng
dc.identifier.wos 001489795600001 eng
dc.identifier.doi 10.3390/batteries11040129 eng
dc.publicationstatus postprint eng
dc.peerreviewed yes eng
dc.source.url https://www.mdpi.com/2313-0105/11/4/129 cze
dc.relation.publisherversion https://www.mdpi.com/2313-0105/11/4/129 eng
dc.rights.access Open Access eng


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