The Start-up Dynamic Analysis and One Cycle Control-PD Control Combined Strategy for Primary-Side Controlled Wireless Power Transfer System

This paper proposes a novel dynamic analysis and a switching converter control strategy for primary-side voltage controlled wireless power transfer (WPT) system. First, the modeling of the high-order double-sided LCC resonant converter is carried out. By dividing the resonant circuit into three equi...

Full description

Bibliographic Details
Main Authors: Wenli Shi, Junjun Deng, Zhenpo Wang, Ximing Cheng
Format: Article
Language:English
Published: IEEE 2018-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8306110/
id doaj-8a455fed93d046e687ab3674f5557136
record_format Article
spelling doaj-8a455fed93d046e687ab3674f55571362021-03-29T21:00:39ZengIEEEIEEE Access2169-35362018-01-016144391445010.1109/ACCESS.2018.28111798306110The Start-up Dynamic Analysis and One Cycle Control-PD Control Combined Strategy for Primary-Side Controlled Wireless Power Transfer SystemWenli Shi0Junjun Deng1https://orcid.org/0000-0003-2269-6590Zhenpo Wang2Ximing Cheng3Collaborative Innovation Center of Electric Vehicles in Beijing, Beijing, ChinaCollaborative Innovation Center of Electric Vehicles in Beijing, Beijing, ChinaCollaborative Innovation Center of Electric Vehicles in Beijing, Beijing, ChinaCollaborative Innovation Center of Electric Vehicles in Beijing, Beijing, ChinaThis paper proposes a novel dynamic analysis and a switching converter control strategy for primary-side voltage controlled wireless power transfer (WPT) system. First, the modeling of the high-order double-sided LCC resonant converter is carried out. By dividing the resonant circuit into three equivalent parts and analyzing their transfer functions, respectively, the approximated boundary of the startup transient time of the WPT stage is solved analytically. Furthermore, in order to ensure the swiftness of the transient response of the WPT system, a novel control strategy combining one cycle control and proportional differential control (OCC-PD) is proposed. By using switching flow-graph technique, the transfer functions of the buck converter applying the OCC, proportional integral differential, and OCC-PD control are obtained. The superiorities of the OCC-PD are proved through the analytic expressions of dynamic characteristic parameters. The input impedance of the WPT stage cascaded to the buck converter is also derived to evaluate the performance of the whole WPT system. Finally, simulations and experiments are carried out through a 6.6-kW two-stage primary-controlled WPT prototype. The results are in accordance with the theoretical analysis and validate the superiorities of the proposed OCC-PD strategy in the aspects of the transient response and the robustness.https://ieeexplore.ieee.org/document/8306110/High-order resonant networkswireless power transferdynamic analysisprimary-side dc/dc controlone cycle control
collection DOAJ
language English
format Article
sources DOAJ
author Wenli Shi
Junjun Deng
Zhenpo Wang
Ximing Cheng
spellingShingle Wenli Shi
Junjun Deng
Zhenpo Wang
Ximing Cheng
The Start-up Dynamic Analysis and One Cycle Control-PD Control Combined Strategy for Primary-Side Controlled Wireless Power Transfer System
IEEE Access
High-order resonant networks
wireless power transfer
dynamic analysis
primary-side dc/dc control
one cycle control
author_facet Wenli Shi
Junjun Deng
Zhenpo Wang
Ximing Cheng
author_sort Wenli Shi
title The Start-up Dynamic Analysis and One Cycle Control-PD Control Combined Strategy for Primary-Side Controlled Wireless Power Transfer System
title_short The Start-up Dynamic Analysis and One Cycle Control-PD Control Combined Strategy for Primary-Side Controlled Wireless Power Transfer System
title_full The Start-up Dynamic Analysis and One Cycle Control-PD Control Combined Strategy for Primary-Side Controlled Wireless Power Transfer System
title_fullStr The Start-up Dynamic Analysis and One Cycle Control-PD Control Combined Strategy for Primary-Side Controlled Wireless Power Transfer System
title_full_unstemmed The Start-up Dynamic Analysis and One Cycle Control-PD Control Combined Strategy for Primary-Side Controlled Wireless Power Transfer System
title_sort start-up dynamic analysis and one cycle control-pd control combined strategy for primary-side controlled wireless power transfer system
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2018-01-01
description This paper proposes a novel dynamic analysis and a switching converter control strategy for primary-side voltage controlled wireless power transfer (WPT) system. First, the modeling of the high-order double-sided LCC resonant converter is carried out. By dividing the resonant circuit into three equivalent parts and analyzing their transfer functions, respectively, the approximated boundary of the startup transient time of the WPT stage is solved analytically. Furthermore, in order to ensure the swiftness of the transient response of the WPT system, a novel control strategy combining one cycle control and proportional differential control (OCC-PD) is proposed. By using switching flow-graph technique, the transfer functions of the buck converter applying the OCC, proportional integral differential, and OCC-PD control are obtained. The superiorities of the OCC-PD are proved through the analytic expressions of dynamic characteristic parameters. The input impedance of the WPT stage cascaded to the buck converter is also derived to evaluate the performance of the whole WPT system. Finally, simulations and experiments are carried out through a 6.6-kW two-stage primary-controlled WPT prototype. The results are in accordance with the theoretical analysis and validate the superiorities of the proposed OCC-PD strategy in the aspects of the transient response and the robustness.
topic High-order resonant networks
wireless power transfer
dynamic analysis
primary-side dc/dc control
one cycle control
url https://ieeexplore.ieee.org/document/8306110/
work_keys_str_mv AT wenlishi thestartupdynamicanalysisandonecyclecontrolpdcontrolcombinedstrategyforprimarysidecontrolledwirelesspowertransfersystem
AT junjundeng thestartupdynamicanalysisandonecyclecontrolpdcontrolcombinedstrategyforprimarysidecontrolledwirelesspowertransfersystem
AT zhenpowang thestartupdynamicanalysisandonecyclecontrolpdcontrolcombinedstrategyforprimarysidecontrolledwirelesspowertransfersystem
AT ximingcheng thestartupdynamicanalysisandonecyclecontrolpdcontrolcombinedstrategyforprimarysidecontrolledwirelesspowertransfersystem
AT wenlishi startupdynamicanalysisandonecyclecontrolpdcontrolcombinedstrategyforprimarysidecontrolledwirelesspowertransfersystem
AT junjundeng startupdynamicanalysisandonecyclecontrolpdcontrolcombinedstrategyforprimarysidecontrolledwirelesspowertransfersystem
AT zhenpowang startupdynamicanalysisandonecyclecontrolpdcontrolcombinedstrategyforprimarysidecontrolledwirelesspowertransfersystem
AT ximingcheng startupdynamicanalysisandonecyclecontrolpdcontrolcombinedstrategyforprimarysidecontrolledwirelesspowertransfersystem
_version_ 1724193748345159680