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AbstractAbstract
[en] As Alternating Current (AC) is well suited for most of the production, transmission, and distribution applications, its massive use is easy to understand. However, for over a century, the benefits of High Voltage Direct Current (HVDC) for long-distance energy transmission are well known. To connect both, AC/DC converters are mandatory, whose nature evolves with technological progress. After the problematic induced by HVDC on AC/DC converters is presented, this manuscript is focused on three topologies: Modular Multilevel Converter (MMC), Alternate Arm Converter (AAC) and Series Bridge Converter (SBC). They are presented, sized, analyzed thoroughly, and compared in quantitative terms, using original key performance indicators. It appears that MMC and SBC are particularly promising. The conventional control method of the MMC is then presented, and its structural properties are highlighted. A first original control law is presented, with similar performances but less complexity than the state-of-the-art. A second control law, non-linear and based on differential flatness theory, is introduced. It allows a very fast power tracking response while ensuring the global exponential stability of the system. These control laws are tested in simulation, using an average model and a detailed model with 180 sub-modules per arm. The last part is dedicated to the SBC. After a modeling step, some results regarding its structural analysis are presented, and an original control law is introduced. The essential role of the transformer for series converters like the SBC is highlighted. Finally, the performance of the proposed control law is assessed in simulation. (author)
[fr]
Le courant alternatif (AC) se pretant bien a la majorite des problematiques de production, de transport et de distribution de l'electricite, on comprend qu'il soit massivement utilise. Cependant, depuis plus d'un siecle, les benefices du courant continu haute tension (HVDC, pour High Voltage Direct Current) pour les longues distances sont bien connus. Aux interfaces, des convertisseurs AC/DC sont requis, leur composition evoluant au fil des avancees technologiques. Apres avoir presente les specificites du HVDC et les contraintes qu'il introduit sur les convertisseurs AC/DC, ce manuscrit se focalise sur trois topologies: Modular Multilevel Converter (MMC), Alternate Arm Converter (AAC) et Series Bridge Converter (SBC). Elles sont presentees, dimensionnees et analysees en detail, puis comparees de facon quantitative en utilisant des indicateurs de performance originaux. Il en ressort que le MMC et le SBC sont particulierement interessants. La methode de commande conventionnelle du MMC est ensuite presentee et ses proprietes structurelles sont mises en evidence. Une premiere loi de commande originale est presentee, avec des performances similaires mais une complexite inferieure a l'etat de l'art. La seconde est non lineaire, basee sur la theorie de la platitude differentielle, et permet un suivi de puissance tres rapide tout en assurant la stabilite exponentielle globale du systeme. Ces lois de commande sont evaluees en simulation, avec un modele moyen et un modele detaille integrant 180 sous-modules par bras. La derniere partie concerne le SBC. Apres l'avoir modelise, des resultats concernant une analyse structurelle de la topologie sont presentes ainsi qu'une loi de commande originale. Le role fondamental du transformateur pour les convertisseurs a structure serie comme le SBC est souligne. Enfin, les performances de la loi de commande proposee sont testees en simulation. (auteur)Original Title
Contribution a la conversion AC/DC en Haute Tension
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22 Sep 2020; 204 p; 61 refs.; Available from the INIS Liaison Officer for France, see the INIS website for current contact and E-mail addresses; These de Doctorat de l'Universite de Lyon, Specialite: Genie Electrique
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Miscellaneous
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