Novel Transformerless Multilevel Inductive Power Transfer System

Previous high power on-line inductive power transfer (IPT) systems use line-frequency (LF) transformers and high-frequency (HF) transformers to be compatible with the ratings of commercial power switches. However, LF and HF transformers make the IPT systems bulky and expensive. This study proposes a...

Full description

Bibliographic Details
Main Authors: Jaehong Lee, Myung-Yong Kim, Seung-Hwan Lee
Format: Article
Language:English
Published: IEEE 2022-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9780188/
_version_ 1818213671316226048
author Jaehong Lee
Myung-Yong Kim
Seung-Hwan Lee
author_facet Jaehong Lee
Myung-Yong Kim
Seung-Hwan Lee
author_sort Jaehong Lee
collection DOAJ
description Previous high power on-line inductive power transfer (IPT) systems use line-frequency (LF) transformers and high-frequency (HF) transformers to be compatible with the ratings of commercial power switches. However, LF and HF transformers make the IPT systems bulky and expensive. This study proposes a new transformerless multilevel on-line IPT system using multilevel rectifiers, inverters, and excitation coils. Instead of the LF transformers, a series-connected multilevel rectifier and inverter are used. Instead of the HF transformers, excitation coils, which have strong magnetic couplings with a transmitter coil, is connected to each of the output terminals of the multilevel inverter. The magnetic fields generated by the multiple excitation coils induce a high voltage and current in the transmitter coil. The induced current generates the augmented magnetic field in the transmitter; therefore, a receiver coil that is loosely coupled with the transmitter can collect power from the mains. The input impedance, voltage and current gains, and efficiency of the proposed IPT system are investigated using an equivalent circuit model. The impact of the excitation coil shape on the magnetic couplings is explored using finite element analysis. Based on the investigation, a design for the excitation coil is presented. The feasibility of the proposed system is evaluated using a 4-level experimental test-bed. Measured coil-to-coil and DC-to-load efficiencies of the proposed system are observed to be 88% and 84%, respectively, over a 7 cm air-gap.
first_indexed 2024-12-12T06:08:00Z
format Article
id doaj.art-4d99c4e2e84042b3b413c5625c4d0c18
institution Directory Open Access Journal
issn 2169-3536
language English
last_indexed 2024-12-12T06:08:00Z
publishDate 2022-01-01
publisher IEEE
record_format Article
series IEEE Access
spelling doaj.art-4d99c4e2e84042b3b413c5625c4d0c182022-12-22T00:35:13ZengIEEEIEEE Access2169-35362022-01-0110555655557310.1109/ACCESS.2022.31771929780188Novel Transformerless Multilevel Inductive Power Transfer SystemJaehong Lee0https://orcid.org/0000-0001-6467-0853Myung-Yong Kim1https://orcid.org/0000-0001-9018-2474Seung-Hwan Lee2https://orcid.org/0000-0002-4879-3009School of Electrical and Computer Engineering, University of Seoul, Seoul, South KoreaSmart Electrical and Signaling Division, Korea Railroad Research Institute, Uiwang, South KoreaSchool of Electrical and Computer Engineering, University of Seoul, Seoul, South KoreaPrevious high power on-line inductive power transfer (IPT) systems use line-frequency (LF) transformers and high-frequency (HF) transformers to be compatible with the ratings of commercial power switches. However, LF and HF transformers make the IPT systems bulky and expensive. This study proposes a new transformerless multilevel on-line IPT system using multilevel rectifiers, inverters, and excitation coils. Instead of the LF transformers, a series-connected multilevel rectifier and inverter are used. Instead of the HF transformers, excitation coils, which have strong magnetic couplings with a transmitter coil, is connected to each of the output terminals of the multilevel inverter. The magnetic fields generated by the multiple excitation coils induce a high voltage and current in the transmitter coil. The induced current generates the augmented magnetic field in the transmitter; therefore, a receiver coil that is loosely coupled with the transmitter can collect power from the mains. The input impedance, voltage and current gains, and efficiency of the proposed IPT system are investigated using an equivalent circuit model. The impact of the excitation coil shape on the magnetic couplings is explored using finite element analysis. Based on the investigation, a design for the excitation coil is presented. The feasibility of the proposed system is evaluated using a 4-level experimental test-bed. Measured coil-to-coil and DC-to-load efficiencies of the proposed system are observed to be 88% and 84%, respectively, over a 7 cm air-gap.https://ieeexplore.ieee.org/document/9780188/Excitation coilimpedance matchinginductive power transferwireless power transfermultilevel converter
spellingShingle Jaehong Lee
Myung-Yong Kim
Seung-Hwan Lee
Novel Transformerless Multilevel Inductive Power Transfer System
IEEE Access
Excitation coil
impedance matching
inductive power transfer
wireless power transfer
multilevel converter
title Novel Transformerless Multilevel Inductive Power Transfer System
title_full Novel Transformerless Multilevel Inductive Power Transfer System
title_fullStr Novel Transformerless Multilevel Inductive Power Transfer System
title_full_unstemmed Novel Transformerless Multilevel Inductive Power Transfer System
title_short Novel Transformerless Multilevel Inductive Power Transfer System
title_sort novel transformerless multilevel inductive power transfer system
topic Excitation coil
impedance matching
inductive power transfer
wireless power transfer
multilevel converter
url https://ieeexplore.ieee.org/document/9780188/
work_keys_str_mv AT jaehonglee noveltransformerlessmultilevelinductivepowertransfersystem
AT myungyongkim noveltransformerlessmultilevelinductivepowertransfersystem
AT seunghwanlee noveltransformerlessmultilevelinductivepowertransfersystem