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Название: An efficient energy-management strategy for a DC microgrid powered by a photovoltaic/fuel cell/battery/supercapacitor
Авторы: Abbas, F. A.
Obed, A. A.
Qasim, M. A.
Yaqoob, S. J.
Ferahtia, S.
Дата публикации: 2022
Издатель: Oxford University Press
Библиографическое описание: Abbas, FA, Obed, AA, Qasim, MA, Yaqoob, SJ & Ferahtia, S 2022, 'An efficient energy-management strategy for a DC microgrid powered by a photovoltaic/fuel cell/battery/supercapacitor', Clean Energy, Том. 6, № 6, стр. 827-839. https://doi.org/10.1093/ce/zkac063
Abbas, F. A., Obed, A. A., Qasim, M. A., Yaqoob, S. J., & Ferahtia, S. (2022). An efficient energy-management strategy for a DC microgrid powered by a photovoltaic/fuel cell/battery/supercapacitor. Clean Energy, 6(6), 827-839. https://doi.org/10.1093/ce/zkac063
Аннотация: The outcome of this paper is to suggest an efficient energy-management strategy (EMS) for a direct-current (DC) microgrid (MG). The typical MG is composed of two renewable energy sources [photovoltaic (PV) systems and fuel cells (FCs)] and two energy-storage elements (lithium-ion battery and supercapacitor). An EMS was proposed to ensure optimal bus voltage with a power-sharing arrangement between the load and the sources. As a result, in the suggested DC MG, non-linear flatness control theory was used instead of the traditional proportional-integral control approach. The suggested EMS is intended to supply high power quality to the load under varying load conditions with fluctuating solar irradiation while considering the FC status. To validate and prove the effectiveness of the proposed EMS, a MATLAB® environment was used. In addition, the output power of the PV system was maximized using the particle swarm optimization algorithm as a maximum power point tracking (MPPT) technique to track the MPP of the 3000-W PV system under different irradiance conditions. The results show that the suggested EMS delivers a stable and smooth DC bus voltage with minimum overshoot value (0.1%) and improved ripple content (0.1%). As a result, the performance of the DC MG was enhanced by employing the flatness control theory, which provides higher power quality by stabilizing the bus voltage. © 2022 The Author(s). Published by Oxford University Press on behalf of National Institute of Clean-and-Low-Carbon Energy.
Ключевые слова: ENERGY MANAGEMENT
FLATNESS CONTROL
FUEL CELL
LITHIUM
NON-LINEAR CONTROL
PHOTOVOLTAIC
SUPERCAPACITOR
CONTROL THEORY
ENERGY EFFICIENCY
ENERGY MANAGEMENT
ENERGY MANAGEMENT SYSTEMS
LINEAR CONTROL SYSTEMS
LITHIUM-ION BATTERIES
MAXIMUM POWER POINT TRACKERS
PARTICLE SWARM OPTIMIZATION (PSO)
POWER QUALITY
QUALITY CONTROL
RENEWABLE ENERGY RESOURCES
SUPERCAPACITOR
TWO TERM CONTROL SYSTEMS
BUS VOLTAGE
DIRECT-CURRENT
FLATNESS CONTROL
HIGH POWER QUALITY
MANAGEMENT STRATEGIES
MICROGRID
NON LINEAR CONTROL
PHOTOVOLTAIC FUEL-CELLS
PHOTOVOLTAIC SYSTEMS
PHOTOVOLTAICS
FUEL CELLS
URI: http://elar.urfu.ru/handle/10995/131561
Условия доступа: info:eu-repo/semantics/openAccess
cc-by-nc
Текст лицензии: https://creativecommons.org/licenses/by-nc/4.0/
Идентификатор SCOPUS: 85145442299
Идентификатор WOS: 000911161000002
Идентификатор PURE: 33220545
ada08502-8e0e-4baa-a1bd-5d04f6c527ba
ISSN: 2515-4230
DOI: 10.1093/ce/zkac063
Располагается в коллекциях:Научные публикации ученых УрФУ, проиндексированные в SCOPUS и WoS CC

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Лицензия на ресурс: Лицензия Creative Commons Creative Commons