Determining the Optimal Range of Coupling Coefficient to Suppress Decline in WPTS Efficiency Due to Increased Resistance With Temperature Rise

The continuous operation of the wireless power transfer system (WPTS) under high-frequency switching activity might cause a temperature rise in various system's components. That temperature rise might increase the resistance of the primary and secondary coils, which will lead to a significant d...

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Main Authors: Haisen Zhao, Yufei Wang, Hassan H. Eldeeb, Jiawei Ge, Jinping Kang, Osama A. Mohammed
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Open Journal of the Industrial Electronics Society
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9130077/
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spelling doaj-4f79ed54d5e44d099a39a990779a5f512021-03-29T18:07:46ZengIEEEIEEE Open Journal of the Industrial Electronics Society2644-12842020-01-01114815610.1109/OJIES.2020.30060499130077Determining the Optimal Range of Coupling Coefficient to Suppress Decline in WPTS Efficiency Due to Increased Resistance With Temperature RiseHaisen Zhao0Yufei Wang1Hassan H. Eldeeb2Jiawei Ge3Jinping Kang4Osama A. Mohammed5School of Electrical and Electronics Engineering, North China Electric Power University, Beijing, ChinaThe Key Laboratory of Applied Superconductivity, Chinese Academy of Sciences, Beijing, ChinaDepartment of Electrical and Computer Engineering, Florida International University, Miami, FL, USASchool of Electrical and Electronics Engineering, North China Electric Power University, Beijing, ChinaSchool of Electrical and Electronics Engineering, North China Electric Power University, Beijing, ChinaDepartment of Electrical and Computer Engineering, Florida International University, Miami, FL, USAThe continuous operation of the wireless power transfer system (WPTS) under high-frequency switching activity might cause a temperature rise in various system's components. That temperature rise might increase the resistance of the primary and secondary coils, which will lead to a significant decline in the system's efficiency. To address this problem at the design stage, we investigate the optimal range of the coupling coefficient that suppresses the efficiency drop due to the increasing resistance of the WPTS components. The proposed optimal range of the coupling coefficient can also ensure the output power requirements of the WPTS. Using four different WPTSs, the determination method for the optimal range of coupling coefficients under different system operational frequencies was developed and implemented. A 3-kW resonant experimental prototype WPTS was designed and built to validate the proposed coupling coefficients experimentally. The experimental results show that the optimized coupling range successfully suppressed the efficiency decline resulting from the increasing resistance caused by temperature rise.https://ieeexplore.ieee.org/document/9130077/Wireless power transfer system (WPTS)efficiencytemperature riseoptimal coupling coefficient
collection DOAJ
language English
format Article
sources DOAJ
author Haisen Zhao
Yufei Wang
Hassan H. Eldeeb
Jiawei Ge
Jinping Kang
Osama A. Mohammed
spellingShingle Haisen Zhao
Yufei Wang
Hassan H. Eldeeb
Jiawei Ge
Jinping Kang
Osama A. Mohammed
Determining the Optimal Range of Coupling Coefficient to Suppress Decline in WPTS Efficiency Due to Increased Resistance With Temperature Rise
IEEE Open Journal of the Industrial Electronics Society
Wireless power transfer system (WPTS)
efficiency
temperature rise
optimal coupling coefficient
author_facet Haisen Zhao
Yufei Wang
Hassan H. Eldeeb
Jiawei Ge
Jinping Kang
Osama A. Mohammed
author_sort Haisen Zhao
title Determining the Optimal Range of Coupling Coefficient to Suppress Decline in WPTS Efficiency Due to Increased Resistance With Temperature Rise
title_short Determining the Optimal Range of Coupling Coefficient to Suppress Decline in WPTS Efficiency Due to Increased Resistance With Temperature Rise
title_full Determining the Optimal Range of Coupling Coefficient to Suppress Decline in WPTS Efficiency Due to Increased Resistance With Temperature Rise
title_fullStr Determining the Optimal Range of Coupling Coefficient to Suppress Decline in WPTS Efficiency Due to Increased Resistance With Temperature Rise
title_full_unstemmed Determining the Optimal Range of Coupling Coefficient to Suppress Decline in WPTS Efficiency Due to Increased Resistance With Temperature Rise
title_sort determining the optimal range of coupling coefficient to suppress decline in wpts efficiency due to increased resistance with temperature rise
publisher IEEE
series IEEE Open Journal of the Industrial Electronics Society
issn 2644-1284
publishDate 2020-01-01
description The continuous operation of the wireless power transfer system (WPTS) under high-frequency switching activity might cause a temperature rise in various system's components. That temperature rise might increase the resistance of the primary and secondary coils, which will lead to a significant decline in the system's efficiency. To address this problem at the design stage, we investigate the optimal range of the coupling coefficient that suppresses the efficiency drop due to the increasing resistance of the WPTS components. The proposed optimal range of the coupling coefficient can also ensure the output power requirements of the WPTS. Using four different WPTSs, the determination method for the optimal range of coupling coefficients under different system operational frequencies was developed and implemented. A 3-kW resonant experimental prototype WPTS was designed and built to validate the proposed coupling coefficients experimentally. The experimental results show that the optimized coupling range successfully suppressed the efficiency decline resulting from the increasing resistance caused by temperature rise.
topic Wireless power transfer system (WPTS)
efficiency
temperature rise
optimal coupling coefficient
url https://ieeexplore.ieee.org/document/9130077/
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AT yufeiwang determiningtheoptimalrangeofcouplingcoefficienttosuppressdeclineinwptsefficiencyduetoincreasedresistancewithtemperaturerise
AT hassanheldeeb determiningtheoptimalrangeofcouplingcoefficienttosuppressdeclineinwptsefficiencyduetoincreasedresistancewithtemperaturerise
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