TY - JOUR
T1 - A Hybrid Mode Control Strategy for LCC-LCC- Compensated WPT System with Wide ZVS Operation
AU - Fu, Na
AU - Deng, Junjun
AU - Wang, Zhenpo
AU - Wang, Wenbo
AU - Wang, Shuo
N1 - Publisher Copyright:
© 1986-2012 IEEE.
PY - 2022/2/1
Y1 - 2022/2/1
N2 - In this article, an efficiency-oriented control strategy is proposed for LCC-LCC-compensated wireless power transfer (WPT) system to achieve zero-voltage-switching (ZVS) operation over a wide current regulation range, in which full-bridge (FB) and half-bridge (HB) modes are combined and switchable based on requirements from load. The harmonic-considered time-domain models for FB and HB modes are first built to calculate current through the switches at the turn-off moment accurately. Then, focused on the constant voltage charge stage with variable output current, the ZVS boundaries are identified in HB and FB modes as the preferable control trajectories, which determines the desired current output with joint considerations of frequency, phase-shift angle, and duty ratio. Next, a least squares optimization method is introduced to fit the theoretical control trajectories into a smooth curve that is practical for implementation on microcontrollers. Finally, a 4.4-kW WPT prototype is built to verify the feasibility and validity of the proposed control strategy. Results show that a high system efficiency can be achieved over a wide output current range, with an efficiency of 94.68% even at 20% rated power.
AB - In this article, an efficiency-oriented control strategy is proposed for LCC-LCC-compensated wireless power transfer (WPT) system to achieve zero-voltage-switching (ZVS) operation over a wide current regulation range, in which full-bridge (FB) and half-bridge (HB) modes are combined and switchable based on requirements from load. The harmonic-considered time-domain models for FB and HB modes are first built to calculate current through the switches at the turn-off moment accurately. Then, focused on the constant voltage charge stage with variable output current, the ZVS boundaries are identified in HB and FB modes as the preferable control trajectories, which determines the desired current output with joint considerations of frequency, phase-shift angle, and duty ratio. Next, a least squares optimization method is introduced to fit the theoretical control trajectories into a smooth curve that is practical for implementation on microcontrollers. Finally, a 4.4-kW WPT prototype is built to verify the feasibility and validity of the proposed control strategy. Results show that a high system efficiency can be achieved over a wide output current range, with an efficiency of 94.68% even at 20% rated power.
KW - Efficiency optimization
KW - LCC-LCC compensation
KW - electric vehicles (EVs)
KW - wireless power transfer (WPT)
KW - zero-voltage-switching (ZVS)
UR - http://www.scopus.com/inward/record.url?scp=85117387798&partnerID=8YFLogxK
U2 - 10.1109/TPEL.2021.3108637
DO - 10.1109/TPEL.2021.3108637
M3 - Article
AN - SCOPUS:85117387798
SN - 0885-8993
VL - 37
SP - 2449
EP - 2460
JO - IEEE Transactions on Power Electronics
JF - IEEE Transactions on Power Electronics
IS - 2
ER -