Dynamic Wireless Charging For E-Vehicles

Krishnaveni.RDepartment of Electronics and Communication Engineering, KIT-Kalaignar Karunanidhi Institute of Technology, Coimbatore, IndiaAbinesh.A.JDepartment of Electronics and Communication Engineering, KIT-Kalaignar Karunanidhi Institute of Technology, Coimbatore, IndiaAbilash.SDepartment of Electronics and Communication Engineering, KIT-Kalaignar Karunanidhi Institute of Technology, Coimbatore, IndiaBalaji.MDepartment of Electronics and Communication Engineering, KIT-Kalaignar Karunanidhi Institute of Technology, Coimbatore, India

Vol 9 No 3 (2025): Volume 9, Issue 3, March 2025 | Pages: 104-109

International Research Journal of Innovations in Engineering and Technology

OPEN ACCESS | Research Article | Published Date: 13-03-2025

doi Logo doi.org/10.47001/IRJIET/2025.903013

Abstract

Dynamic wireless charging for EVs enables continuous charging while in motion using induction coils embedded in roads. These coils generate a high-frequency magnetic field, captured by EV receiving coils to induce current for battery charging. A power conversion system with MOSFETs (e.g., IRFZ44N, URF840), ultrafast diodes (e.g., UF5408), and PWM controllers (e.g., SG3525, U3525) regulates AC-to-DC conversion. A BMS optimizes charging, while sensors and control algorithms adjust power transfer based on vehicle position. This technology enhances EV range, eliminates frequent stops, and supports sustainable urban mobility.

Keywords

INDEP, 8-Bit Comparator, VLSI Circuit Design, Power Efficiency, Delay optimization, Cadence, CMOS vs INDEP


Citation of this Article

Krishnaveni.R, Abinesh.A.J, Abilash.S, & Balaji.M. (2025). Dynamic Wireless Charging For E-Vehicles. International Research Journal of Innovations in Engineering and Technology - IRJIET, 9(3), 104-109. Article DOI https://doi.org/10.47001/IRJIET/2025.903013

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