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dc.contributor.authorMzir, Mahdi-
dc.contributor.authorBelabed, Youcef-
dc.contributor.otherDeglai, Aicha, Directeur de thèse-
dc.contributor.otherHaddadi, Mourad, Directeur de thèse-
dc.date.accessioned2021-11-14T13:51:20Z-
dc.date.available2021-11-14T13:51:20Z-
dc.date.issued2021-
dc.identifier.otherEP00260-
dc.identifier.urihttp://repository.enp.edu.dz/xmlui/handle/123456789/9931-
dc.descriptionMémoire de Projet de Fin d’Études : Électronique : Alger, École Nationale Polytechnique : 2021fr_FR
dc.description.abstractThis thesis revolves around satte of charge estimation in solar energy storage batteries. We present our findings after adapting multiple state of charge estimation models to our problem, analyzing the results for each and comparing them to deduce the better model. We do this for two different battery technologies which are used in photovoltaic energy production and storage: the lithium-ion and lead -acid batteries. We develop an equivalent circuit for our lithium-ion battery to which we add a state filter. We develop and apply different machine learning models estimate state of charge. We validate our findings with two standalone cyclesfr_FR
dc.language.isoenfr_FR
dc.subjectState of chargefr_FR
dc.subjectLithiumfr_FR
dc.subjectLead-acidfr_FR
dc.subjectSolar energyfr_FR
dc.subjectEstimationfr_FR
dc.titleModeling and analysis of the state of charge of batteries for photovoltaic usefr_FR
dc.typeThesisfr_FR
Collection(s) :Département Electronique

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