DocumentCode
26090
Title
Reduced-Capacity Smart Charger for Electric Vehicles on Single-Phase Three-Wire Distribution Feeders With Reactive Power Control
Author
Tanaka, Hiroya ; Tanaka, T. ; Wakimoto, Takaaki ; Hiraki, Eiji ; Okamoto, Mitsuo
Author_Institution
Dept. of Electr. & Electron. Eng., Yamaguchi Univ., Yamaguchi, Japan
Volume
51
Issue
1
fYear
2015
fDate
Jan.-Feb. 2015
Firstpage
315
Lastpage
324
Abstract
In this paper, we propose a new control algorithm to reduce the capacity of a previously proposed smart charger for electric vehicles (EVs) on single-phase three-wire distribution feeders with reactive power control. The basic principle of the proposed control algorithm is discussed in detail. It is shown that controlling the reactive power on the source side reduces the capacity of the previously proposed smart charger. A digital computer simulation is implemented to confirm the validity of the proposed control algorithm using PSIM software. A prototype experimental model is also constructed and tested. Experimental results demonstrate that balanced source currents with a power factor of 0.9, which is acceptable for Japanese home appliances, are obtained on the secondary side of the pole-mounted distribution transformer during both the battery charging and discharging operations in EVs. The capacity of dc capacitor $C_{rm DC}$ is also reduced by 37% with the proposed reactive power control algorithm.
Keywords
domestic appliances; electric vehicles; power capacitors; power factor; power transformers; reactive power control; secondary cells; Japanese home appliances; PSIM software; balanced source currents; dc capacitor; digital computer simulation; electric vehicles; pole-mounted distribution transformer; power factor; reactive power control; reduced-capacity smart charger; single-phase three-wire distribution feeders; Batteries; Capacitors; Home appliances; Pulse width modulation; Reactive power; Reactive power control; Voltage control; Constant dc-capacitor voltage control; reactive power control; single-phase $d$??? $q$ transformation; single-phase phase-locked loop (PLL) circuit; single-phase three-wire distribution system; smart charger; three-leg inverter;
fLanguage
English
Journal_Title
Industry Applications, IEEE Transactions on
Publisher
ieee
ISSN
0093-9994
Type
jour
DOI
10.1109/TIA.2014.2327156
Filename
6823129
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