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Artificial intelligence/machine learning in energy management systems, control, and optimization of hydrogen fuel cell vehicles

  • Environmental emissions, global warming, and energy-related concerns have accelerated the advancements in conventional vehicles that primarily use internal combustion engines. Among the existing technologies, hydrogen fuel cell electric vehicles and fuel cell hybrid electric vehicles may have minimal contributions to greenhouse gas emissions and thus are the prime choices for environmental concerns. However, energy management in fuel cell electric vehicles and fuel cell hybrid electric vehicles is a major challenge. Appropriate control strategies should be used for effective energy management in these vehicles. On the other hand, there has been significant progress in artificial intelligence, machine learning, and designing data-driven intelligent controllers. These techniques have found much attention within the community, and state-of-the-art energy management technologies have been developed based on them. This manuscript reviews the application of machine learning and intelligent controllers for prediction, control, energy management, and vehicle to everything (V2X) in hydrogen fuel cell vehicles. The effectiveness of data-driven control and optimization systems are investigated to evolve, classify, and compare, and future trends and directions for sustainability are discussed.

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Metadaten
Verfasserangaben:Mojgan Fayyazi, Paramjotsingh SardarORCiD, Sumit Infent Thomas, Roonak Daghigh, Ali Jamali, Thomas EschORCiD, Hans Kemper, Reza Langari, Hamid Khayyam
DOI:https://doi.org/10.3390/su15065249
Verlag:MDPI
Verlagsort:Basel
Dokumentart:Wissenschaftlicher Artikel
Sprache:Englisch
Erscheinungsjahr:2023
Datum der Erstveröffentlichung:15.03.2023
Datum der Publikation (Server):11.04.2023
Freies Schlagwort / Tag:artificial intelligence; fuel cell vehicle; intelligent control; intelligent energy management; machine learning; optimization system
Jahrgang:15
Ausgabe / Heft:6
Umfang:1
Erste Seite:38
Bemerkung:
This article belongs to the Special Issue "Circular Economy and Artificial Intelligence"
Link:https://doi.org/10.3390/su15065249
Zugriffsart:weltweit
Fachbereiche und Einrichtungen:FH Aachen / Fachbereich Luft- und Raumfahrttechnik
FH Aachen / ECSM European Center for Sustainable Mobility
collections:Verlag / MDPI
Open Access / Gold
Lizenz (Deutsch):License LogoCreative Commons - Namensnennung