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Romba, L., S. Valtchev, and R. Melicio, "Electric Vehicle Battery Charger: Wireless Power Transfer System Controlled by Magnetic Core Reactor", CETC2016 - Conference on Electronics, Telecommunications and Computers, Proceedings: ISEL - Instituto Superior de Engenharia de Lisboa, 2016. Abstract
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Romba, {L. F. }, {S. S. } Valtchev, R. Melicio, {M. V. } Mudrov, and {A. M. } Ziuzev, "Electric vehicle battery charger controlled by magnetic core reactor to Wireless Power Transfer system", Conference Proceedings - 2017 17th IEEE International Conference on Environment and Electrical Engineering and 2017 1st IEEE Industrial and Commercial Power Systems Europe, EEEIC / I and CPS Europe 2017, United States, Institute of Electrical and Electronics Engineers Inc., 2017. Abstract

This paper presents a control process and frequency adjustment based on the Magnetic Core Reactor prototype. For the past decades, there has been significant development in the technologies used in Wireless Power Transfer systems. In the Wireless Power Transfer systems it is essential that the operating frequency of the primary circuit be equal to the resonant frequency of the secondary circuit so there is the maximum energy transfer. The Magnetic Core Reactor allows controlling of the frequencies on both sides of the transmission and reception circuits. In addition, the assembly diagrams and test results are presented.

Romba, L. F., S. S. Valtchev, and R. Melicio, "Three-phase magnetic field system for wireless energy transfer", 2016 International Symposium on Power Electronics, Electrical Drives, Automation and Motion, SPEEDAM 2016, pp. 73-78, 2016. Abstract
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Romba, L., {S. S. } Valtchev, and R. Melício, "Single-phase wireless power transfer system controlled by magnetic core reactors at transmitter and receiver", Technological Innovation for Smart Systems - 8th IFIP WG 5.5/SOCOLNET Advanced Doctoral Conference on Computing, Electrical and Industrial Systems, DoCEIS 2017, Proceedings: Springer New York LLC, pp. 419–428, 2017. Abstract

The applications of wireless power transmission have become widely increasing over the last decade, mainly in the battery charging systems for electric vehicles. This paper focuses on the single-phase wireless power transfer prototype controlled by magnetic core reactors in either side of the system: that of the transmitter, and that of the receiver. The described wireless power transfer system prototype employs a strong magnetic coupling technology to improve the power transmission efficiency. In the same time, a magnetic core reactor is used to control the “tuning” between the transmitter and the receiver frequencies, allowing for that increase of the system efficiency. Finally, practical results of the implemented prototype are presented.

Romba, L., and S. Valtchev, "Efficiency Improvement in Wireless Power System", Emerging Capabilities and Applications of Wireless Power Transfer: IGI Global, pp. 23–48, 2019. Abstract

This chapter focuses on mid-range wireless power transfer (WPT) systems applied to electric vehicle (EV) battery chargers. The WPT is recently considered as an efficient electric energy transfer process between two or more points in space, without wiring. The technology associated with each specific process of WPT differs from case to case depending on the distance between those points and the power to be transferred between them. The widely adopted distance categories are named short-range, mid-range, and long-range. The short-range is normally defined as up to a few millimeters range. The mid-range is between a few millimeters and a few meters. The long-range distance is defined as a longer than that of the previous category, stretching up to a few kilometers.

Romba, L., {S. S. } Valtchev, and R. Melício, "Three-phase magnetic field tested in wireless power transfer system", International Review of Electrical Engineering, vol. 11, no. 6: Praise Worthy Prize, pp. 586–597, 1, 2016. Abstract

This paper presents a magnetic field three dimensional mapping produced by a threephase prototype for wireless power transfer. The presented magnetic field mapping is a contribution to improve the design of electric vehicles battery chargers using the wireless power transfer. To collect the magnetic field data, a prototype was built, in order to support the tests. The prototype primary is an electrical three-phase system that allows to be connected electrically and geometrically in star or delta. The losses due to the magnetic field dispersion and the generated interferences in the surrounding equipment or in human body are discussed. The different standards organizations related to electric vehicles battery chargers are presented. Finally the magnetic field influence on the human body is addressed.

Romba, L., {E. N. } Baikova, C. Borges, R. Melicio, and {S. S. } Valtchev, "Wireless battery charger for EV with circular or planar coils: comparison", Technological Innovation for Resilient Systems - 9th IFIP WG 5.5/SOCOLNET Advanced Doctoral Conference on Computing, Electrical and Industrial Systems, DoCEIS 2018, Proceedings: Springer New York LLC, pp. 214–223, 1, 2018. Abstract

This paper presents the experimental results obtained in the wireless energy transfer (WET) system prototype based on coils: circular or planar. With these experimental results we can choose the tuning settings to improve the efficiency of power transmission of the WET systems. In WET for electric vehicle batteries charging, the coil shape and the range between the coils are the most important issues of those systems.