Smart design for next-gen wireless EV charging

This work presents an exposure-informed co-design of an 85-kHz Double-D (DD) wireless charging pad that preserves a target mutual inductance and installation footprint while minimizing losses in the conductive/ferromagnetic shielding. A finite-element electromagnetic model is coupled to a meta model-driven multi-objective search to generate a Pareto set; candidate designs are then screened by verifying magnetic- and electric-field compliance on prescribed paths. Relative to a reference geometry, the optimized pad halves shielding losses (≈56% reduction) at essentially constant mutual inductance (≈27.2–27.3 µH). A laboratory prototype confirms high DC-to-DC efficiency above 96% at 20 cm and measured magnetic-field profiles consistent with simulation, while electric-field exposure is assessed in simulation using a rolled-edge shield concept. The results show that surrogate-accelerated co-design can decouple electrical targets from exposure verification and deliver practical, compliant DD pads with materially lower shielding loss.

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Publication Details

Journal
Scientific Reports
Published
2026-09-16
DOI
https://doi.org/10.1038/s41598-026-60498-7
Primary Topic
Wireless Power Transfer Systems
Type
article
Field-Weighted Citation Impact
0.00

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article

Smart design for next-gen wireless EV charging

Martin Zavřel, Michal Frivaldský, Tomáš Kavalíř, Petr Pichlík et al.
Scientific Reports
Wireless Power Transfer Systems
article

Smart design for next-gen wireless EV charging

Martin Zavřel, Michal Frivaldský, Tomáš Kavalíř, Petr Pichlík, Vladimír Kindl
article en

Abstract

This work presents an exposure-informed co-design of an 85-kHz Double-D (DD) wireless charging pad that preserves a target mutual inductance and installation footprint while minimizing losses in the conductive/ferromagnetic shielding. A finite-element electromagnetic model is coupled to a meta model-driven multi-objective search to generate a Pareto set; candidate designs are then screened by verifying magnetic- and electric-field compliance on prescribed paths. Relative to a reference geometry, the optimized pad halves shielding losses (≈56% reduction) at essentially constant mutual inductance (≈27.2–27.3 µH). A laboratory prototype confirms high DC-to-DC efficiency above 96% at 20 cm and measured magnetic-field profiles consistent with simulation, while electric-field exposure is assessed in simulation using a rolled-edge shield concept. The results show that surrogate-accelerated co-design can decouple electrical targets from exposure verification and deliver practical, compliant DD pads with materially lower shielding loss.

Scientific Reports
University of Žilina (SK), Czech Technical University in Prague (CZ), University of West Bohemia in Pilsen (CZ)
European Commission, Ministerstvo Školství, Mládeže a Tělovýchovy, Agentúra na Podporu Výskumu a Vývoja
Affordable and clean energy
Openalex Percentile: Top 21%
Wireless Power Transfer Systems
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Smart design for next-gen wireless EV charging — Martin Zavřel, Michal Frivaldský, et al. · Scientific Reports (2026) | TGRS Research Map | TGRS