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An innovative approach of optimizing size and cost of hybrid energy storage system with state of charge regulation for stand-alone direct current microgrids

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dc.contributor.author Premadasa, PND
dc.contributor.author Chandima, DP
dc.date.accessioned 2023-02-21T05:07:07Z
dc.date.available 2023-02-21T05:07:07Z
dc.date.issued 2020
dc.identifier.citation Premadasa, P. N. D., & Chandima, D. P. (2020). An innovative approach of optimizing size and cost of hybrid energy storage system with state of charge regulation for stand-alone direct current microgrids. Journal of Energy Storage, 32, 101703. https://doi.org/10.1016/j.est.2020.101703 en_US
dc.identifier.issn 2352-152X en_US
dc.identifier.uri http://dl.lib.uom.lk/handle/123/20567
dc.description.abstract This study proposed a novel approach to optimize size and cost of hybrid energy storage systems (HESS) based on a solar photovoltaic (PV) fed stand-alone DC microgrid, while considering the state of charge (SOC) of both batteries and supercapacitors to assure the long life of batteries and well-being during the operation. The sizing strategy is combined with an optimization model and a HESS Assessment Algorithm. The strategy differs from traditional strategies since it comprises of not only the system cost, but also SOC regulation of both batteries and supercapacitors. A unique penalty cost function depending on the unutilized solar power generation and unserved demand power after HESS is fully charged or discharged has been introduced. By this penalty cost function, SOC of HESS can be kept within a safer margin to guarantee the system stability. Also, system availability can be assured by penalizing the unserved demand power. A new SOC regulation concept for supercapacitors has been introduced. SOC of supercapacitors is maintained in between a predefined focused band to ensure the supercapacitors availability to absorb or deliver sudden power fluctuations. The lifetime of HESS and the solar PV system are considered in the objective function to find the optimum sizing of HESS. The simulation was performed under Hambantota Solar Park weather conditions using MATLAB. Multi-objective genetic algorithm is used to optimize the objective functions. Comparing with a traditional sizing method, it shows that the novel optimal sizing strategy can reduce the BS system capacity by 18% by the hybridization of supercapacitors. The best value for the energy ratio between supercapacitors and batteries, for the considered load profile was found to be 25%. Results prove that the number of penalties, surplus solar power generations and unserved demand power were made minimum while obtaining an optimal sizing of HESS with a minimum system investment cost. en_US
dc.language.iso en_US en_US
dc.subject Cost optimization en_US
dc.subject Hybrid energy storage system (HESS) en_US
dc.subject Penalty cost function en_US
dc.subject Sizing optimization en_US
dc.subject State of charge regulation en_US
dc.title An innovative approach of optimizing size and cost of hybrid energy storage system with state of charge regulation for stand-alone direct current microgrids en_US
dc.type Article-Full-text en_US
dc.identifier.year 2020 en_US
dc.identifier.journal Journal of Energy Storage en_US
dc.identifier.volume 32 en_US
dc.identifier.database ScienceDirect en_US
dc.identifier.pgnos 101703 en_US
dc.identifier.doi 10.1016/j.est.2020.101703 en_US


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