Title :
A Synchronization Technique for Bidirectional IPT Systems
Author :
Thrimawithana, Duleepa J. ; Madawala, Udaya K. ; Neath, Michael
Author_Institution :
Dept. of Electr. & Electron. Eng., Auckland Univ. of Technol., Auckland, New Zealand
Abstract :
Bidirectional inductive power transfer (IPT) systems are attractive for applications such as electric vehicles and vehicle-to-grid systems which preferably require “contactless” and two-way power transfer. However, in contrast to unidirectional IPT systems, bidirectional IPT systems require more sophisticated control strategies to control the power flow. An indispensible component of such control strategies is the robust and accurate synchronization between the primary- and pickup-side converters, without which the transfer of real power in any direction cannot be guaranteed. This paper proposes a novel technique that synchronizes converters on both the primary and pickup sides of bidirectional IPT systems. The technique uses an auxiliary winding, located on the pickup side, to produce a synchronizing signal which, in turn, can be utilized to regulate the real power flow. This paper also presents a mathematical model for the proposed technique and investigates its sensitivity for component tolerances. The viability of the technique, which is applicable to both single- and multiple-pickup IPT systems, is demonstrated through both simulations and experimental results of a 1-kW prototype bidirectional IPT system.
Keywords :
inductive power transmission; load flow control; power convertors; synchronisation; auxiliary winding; bidirectional IPT systems; bidirectional inductive power transfer system; contactless power transfer; electric vehicles; mathematical model; multiple-pickup IPT systems; pickup-side converters; power 1 kW; power flow control strategy; robust control strategy; single-pickup IPT systems; synchronization technique; two-way power transfer; unidirectional IPT systems; vehicle-to-grid systems; Bidirectional control; Couplings; Inductance; Load flow; Synchronization; Vectors; Windings; Distributed power generation; electric vehicles (EVs); inductive power transmission;
Journal_Title :
Industrial Electronics, IEEE Transactions on
DOI :
10.1109/TIE.2011.2174536