Elisabetta Sieni
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Articles (11)
A Deep Learning Approach to Improve the Control of Dynamic Wireless Power Transfer Systems
In this paper, an innovative approach for the fast estimation of the mutual inductance between transmitting and receiving coils for Dynamic Wireless Power Transfer Systems (DWPTSs) is implemented. To this end, a Convolutional Neural Network (CNN) is used; an image representing the geometry of two coils that are partially misaligned is the input of the CNN, while the output is the corresponding inductance value. Finite Element Analyses are used for the computation of the inductance values needed for CNN training. This way, thanks to a fast and accurate inductance estimated by the CNN, it is possible to properly manage the power converter devoted to charge the battery, avoiding the wind up of its controller when it attempts to transfer power in poor coupling conditions.
Year:
2023
Collaborators (12)
Michele Forzan
Assistant Professor
University of Padova
Manuele Bertoluzzo
Associate professor
University of Padova
Paolo Di Barba
University of Pavia
emanuela signori
Adjunct Professor
Università Campus Bio-Medico di Roma
Roberta Bertani
University of Padova
Maria Evelina Mognaschi
University of Pavia
Lucia Del Bianco
University of Ferrara
Mariangela De Robertis
Assistant Professor (tenure-track equivalent), with National Scientific Qualification as Associate Professor
University of Bari Aldo Moro
Paolo Sgarbossa
Associate Professor
University of Padova
Federico Spizzo
Associate Professor
University of Ferrara
maria cristina lavagnolo
Associated Professor
University of Padova
Simonetta Geninatti Crich
Associate professor
University of Turin

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