Published July 10, 2018 | Version v1
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Multi-physical characterization of electrochemical and electrostatic storage elements dedicated to multi-source systems: Systemic approach for the dynamic management of electrical energy

Description

This thesis work is a continuation of the research activities of the GREAH laboratory on the issues of the management of electrical energy and improving the energy quality of production systems for renewable energy. Indeed, the coupling of several different nature sources entails the problems of dimension, quality of energy and the lifetime of the interconnected elements. The scientific approach is based on the characterization of the evolution of the resistances and capacitances of the batteries/supercapacitors cells according to the electrical and thermal constraints, followed by the modeling of accelerated cells aging. In this thesis, we propose improvements to the dynamic response of an electric propulsion fluvial boat by using the hybrid system of lithium-batteries and supercapacitors. We also propose an electrothermal approach for the multi-physical characterization and modeling of the batteries and supercapacitors aging, using combined constraints of the temperature and frequency of the DC current ripples. The experimental data has been collected to establish models of batteries and supercapacitors dedicated to multi-source systems including renewable energy sources (wind and tidal turbines). The results of the developed models shown high accuracy compared with experimental results. These models illustrated a good description of the aging phenomenon of batteries/ supercapacitors due to charging/discharging operations with a fluctuating continuous current combined with a variable temperature. (author)

Abstract (French)

Ce travail de these s'inscrit dans la continuite des activites de recherche du laboratoire GREAH sur les problematiques de la gestion d'energie electrique et de l'amelioration de la qualite energetique des systemes de production aux energies renouvelables. En effet, le couplage de plusieurs sources de natures differentes entraine des problematiques de dimensionnement, de qualite d'energie et de la duree de vie des elements interconnectes. La demarche scientifique repose sur la caracterisation de l'evolution des resistances et des capacites des cellules de batteries LFP/supercondensateurs en fonction des contraintes electriques et thermiques, suivi de la modelisation du vieillissement accelere des cellules. Nous proposons dans ce memoire de these des ameliorations de la reponse dynamique d'un bateau fluvial a propulsion electrique par l'hybridation des batteries LFP et des supercondensateurs. Nous proposons egalement une approche electrothermique pour la caracterisation et la modelisation multi-physique du vieillissement des batteries et supercondensateurs en utilisant des contraintes combinees de la temperature et de la frequence des ondulations du courant de charge/decharge des cellules. Les donnees experimentales collectees ont permis d'etablir des modeles des supercondensateurs et des batteries dedies aux systemes multi-sources incluant des sources d'energie renouvelable (eoliens et hydroliens). Les modeles developpes se revelent tres precis par rapport aux resultats experimentaux. Ils permettent une bonne description du phenomene de vieillissement des batteries LFP/supercondensateurs du aux operations de charge/decharge avec un courant continu fluctuant combine a une temperature variable. (auteur)

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Additional details

Additional titles

Original title (French)
Caracterisation Multi-physique des elements de stockage electrochimique et electrostatique dedies aux systemes Multi sources - Approche systemique pour la gestion dynamique d'energie electrique

Publishing Information

Imprint Pagination
195 p.
Report number
FRNC-TH--15350

Optional Information

Notes
123 refs.; Available from the INIS Liaison Officer for France, see the INIS website for current contact and E-mail addresses