An Improved LCL-L Compensation Topology for Capacitive Power Transfer in Electric Vehicle Charging

This paper proposes an LCL-L compensation circuit for high power capacitive power transfer (CPT) aiming at minimizing number of resonant components and improving system performance. The proposed topology adopts only four external resonant components at both sides of the capacitive coupler. The outpu...

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Main Authors: Van-Binh Vu, Mohamed Dahidah, Volker Pickert, Van-Tung Phan
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8984362/
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spelling doaj-ab243c6e833c4b988a02280133d4c54b2021-03-30T02:20:36ZengIEEEIEEE Access2169-35362020-01-018277572776810.1109/ACCESS.2020.29719618984362An Improved LCL-L Compensation Topology for Capacitive Power Transfer in Electric Vehicle ChargingVan-Binh Vu0https://orcid.org/0000-0002-0134-488XMohamed Dahidah1Volker Pickert2Van-Tung Phan3School of Engineering, Newcastle University, Newcastle upon Tyne, U.K.School of Engineering, Newcastle University, Newcastle upon Tyne, U.K.School of Engineering, Newcastle University, Newcastle upon Tyne, U.K.School of Engineering, Newcastle University, Newcastle upon Tyne, U.K.This paper proposes an LCL-L compensation circuit for high power capacitive power transfer (CPT) aiming at minimizing number of resonant components and improving system performance. The proposed topology adopts only four external resonant components at both sides of the capacitive coupler. The output power is proportional to the capacitive coupling coefficient, therefore, it simplifies the design procedure and abolishes protection circuit requirements under coupler's misalignment. Moreover, optimizing efficiency at full-load conditions of compensation network can be easily achieved in this system by designing resonant components at the highest value of the mutual capacitance. Theoretical analysis of the proposed system is conducted alongside comparison to lasted CPT compensation circuits. Simulation and experimental results of a 1.5-kW CPT prototype with an air gap distance of 150 mm are provided to verify the feasibility and the effectiveness of the proposed system. System performances under different coupler's misalignment conditions and output power levels are also examined and discussed as well.https://ieeexplore.ieee.org/document/8984362/Capacitive power transfercompensation circuitsLCL-L topologyelectric vehiclesbattery charger
collection DOAJ
language English
format Article
sources DOAJ
author Van-Binh Vu
Mohamed Dahidah
Volker Pickert
Van-Tung Phan
spellingShingle Van-Binh Vu
Mohamed Dahidah
Volker Pickert
Van-Tung Phan
An Improved LCL-L Compensation Topology for Capacitive Power Transfer in Electric Vehicle Charging
IEEE Access
Capacitive power transfer
compensation circuits
LCL-L topology
electric vehicles
battery charger
author_facet Van-Binh Vu
Mohamed Dahidah
Volker Pickert
Van-Tung Phan
author_sort Van-Binh Vu
title An Improved LCL-L Compensation Topology for Capacitive Power Transfer in Electric Vehicle Charging
title_short An Improved LCL-L Compensation Topology for Capacitive Power Transfer in Electric Vehicle Charging
title_full An Improved LCL-L Compensation Topology for Capacitive Power Transfer in Electric Vehicle Charging
title_fullStr An Improved LCL-L Compensation Topology for Capacitive Power Transfer in Electric Vehicle Charging
title_full_unstemmed An Improved LCL-L Compensation Topology for Capacitive Power Transfer in Electric Vehicle Charging
title_sort improved lcl-l compensation topology for capacitive power transfer in electric vehicle charging
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2020-01-01
description This paper proposes an LCL-L compensation circuit for high power capacitive power transfer (CPT) aiming at minimizing number of resonant components and improving system performance. The proposed topology adopts only four external resonant components at both sides of the capacitive coupler. The output power is proportional to the capacitive coupling coefficient, therefore, it simplifies the design procedure and abolishes protection circuit requirements under coupler's misalignment. Moreover, optimizing efficiency at full-load conditions of compensation network can be easily achieved in this system by designing resonant components at the highest value of the mutual capacitance. Theoretical analysis of the proposed system is conducted alongside comparison to lasted CPT compensation circuits. Simulation and experimental results of a 1.5-kW CPT prototype with an air gap distance of 150 mm are provided to verify the feasibility and the effectiveness of the proposed system. System performances under different coupler's misalignment conditions and output power levels are also examined and discussed as well.
topic Capacitive power transfer
compensation circuits
LCL-L topology
electric vehicles
battery charger
url https://ieeexplore.ieee.org/document/8984362/
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