magnetic cores;
finite element analysis;
phase locked loops;
magnetic flux;
battery chargers;
battery powered vehicles;
weaving-type charging pad;
contactless EV inductive charging system;
electric vehicles;
weaving-type coil;
uniform mutual inductance profile;
inductive coupled structure;
type E core;
magnetic characteristic;
FEA software;
phase locked loop circuit;
loading effect problem;
impedance variation;
battery charging procedure;
laboratory scale test system;
coupling efficiency;
air gap;
lithium iron phosphate battery;
WIRELESS POWER TRANSFER;
COUPLER;
D O I:
10.1049/iet-pel.2013.0900
中图分类号:
TM [电工技术];
TN [电子技术、通信技术];
学科分类号:
0808 ;
0809 ;
摘要:
The purpose of this study is to develop a new weaving-type pad for electric vehicles (EV) contactless inductive charging system. This proposed charging pad which consists of a weaving-type coil is fabricated to obtain a uniform mutual inductance profile over the charging surface and to solve the problem of present inductive coupled structure in which the EV has to be placed exactly on a specific place. Apart from weaving-type pad, type E core and two overlapping coils are utilised as a secondary pickup to guide and to pick more magnetic flux. The analysis and simulation of magnetic characteristic for comparing the proposed weaving-type pad to simple shape pad are performed by finite-element-analysis (FEA) software. Phase locked loop circuit is utilised to match the operating frequency and resonant frequency in order to solve the loading effect problem caused by impedance variation during the battery charging procedure. To validate the concept and system design, a laboratory scale test system with weaving-type pad for EV contactless inductive charging is built and tested. The coupling efficiency is found to be 66% for an air gap of 9 cm between the weaving-type charging pad and pickup when a 2 Ah lithium iron phosphate battery is charged.