LAPSE:2023.16332v1
Published Article

LAPSE:2023.16332v1
Standing Wave Pattern and Distribution of Currents in Resonator Arrays for Wireless Power Transfer
March 3, 2023
Abstract
The possibility of increasing the transmission efficiency in mid-range wireless power transfer (WPT) applications can be achieved by inserting resonant relay coils between the transmitting and receiving sides of the device, forming an array of magnetically coupled resonant circuits, over which a receiver can be placed. This is a very cheap solution for improving the performance of the WPT apparatus, even if the complexity of the system increases, requiring a complete and detailed investigation for a smart design and control of the apparatus. The presented study investigates the current distribution in the coils of the array, which revealed strong peaks in magnitude depending on the load and receiver position. The analysis is carried out with the transmission line (TL) theory and it is performed for different positions of the receiver, as well as for different load conditions. Furthermore, a real application is considered and discussed, which includes the presence of a power converter as power supply and a battery charging system as load. Each resonant circuit resonates at 150 kHz and the whole apparatus is capable to transmit power up to 1 kW with an efficiency around 70%. The theoretical results have been validated with experimental measurements.
The possibility of increasing the transmission efficiency in mid-range wireless power transfer (WPT) applications can be achieved by inserting resonant relay coils between the transmitting and receiving sides of the device, forming an array of magnetically coupled resonant circuits, over which a receiver can be placed. This is a very cheap solution for improving the performance of the WPT apparatus, even if the complexity of the system increases, requiring a complete and detailed investigation for a smart design and control of the apparatus. The presented study investigates the current distribution in the coils of the array, which revealed strong peaks in magnitude depending on the load and receiver position. The analysis is carried out with the transmission line (TL) theory and it is performed for different positions of the receiver, as well as for different load conditions. Furthermore, a real application is considered and discussed, which includes the presence of a power converter as power supply and a battery charging system as load. Each resonant circuit resonates at 150 kHz and the whole apparatus is capable to transmit power up to 1 kW with an efficiency around 70%. The theoretical results have been validated with experimental measurements.
Record ID
Keywords
inductive power transfer, magneto-inductive waves, resonator array, transmission lines, wireless power transfer
Subject
Suggested Citation
Simonazzi M, Reggiani U, Sandrolini L. Standing Wave Pattern and Distribution of Currents in Resonator Arrays for Wireless Power Transfer. (2023). LAPSE:2023.16332v1
Author Affiliations
Simonazzi M: Department of Electrical, Electronic and Information Engineering, University of Bologna, 40136 Bologna, Italy [ORCID]
Reggiani U: Department of Electrical, Electronic and Information Engineering, University of Bologna, 40136 Bologna, Italy [ORCID]
Sandrolini L: Department of Electrical, Electronic and Information Engineering, University of Bologna, 40136 Bologna, Italy [ORCID]
Reggiani U: Department of Electrical, Electronic and Information Engineering, University of Bologna, 40136 Bologna, Italy [ORCID]
Sandrolini L: Department of Electrical, Electronic and Information Engineering, University of Bologna, 40136 Bologna, Italy [ORCID]
Journal Name
Energies
Volume
15
Issue
2
First Page
652
Year
2022
Publication Date
2022-01-17
ISSN
1996-1073
Version Comments
Original Submission
Other Meta
PII: en15020652, Publication Type: Journal Article
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LAPSE:2023.16332v1
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https://doi.org/10.3390/en15020652
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Mar 3, 2023
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