DocumentCode :
23195
Title :
Predictable Auxiliary Switching Strategy to Improve Unloading Transient Response Performance for DC–DC Buck Converter
Author :
Liang Jia ; Zhiyuan Hu ; Yan-Fei Liu ; Sen, P.C.
Author_Institution :
Dept. of Electr. & Comput. Eng., Queen´s Univ., Kingston, ON, Canada
Volume :
49
Issue :
2
fYear :
2013
fDate :
March-April 2013
Firstpage :
931
Lastpage :
941
Abstract :
In this paper, a novel control strategy is presented, which is capable of controlling a 12-V-1.5-V main buck converter and an auxiliary circuit to achieve significantly improved unloading response performance. While the charge balance controller minimizes the settling time of the main buck converter, the auxiliary circuit is controlled in boundary conduction mode (BCM) for a predictable pattern of auxiliary switching to reduce the output overshoot. Therefore, the reliability and dynamic performance of the entire system is significantly enhanced. Compared with existing technologies, the proposed BCM auxiliary switching strategy achieves improved output voltage overshoot and reduced auxiliary power losses at the same time. Furthermore, numerical analysis of the improved output voltage overshoot and reduced auxiliary power losses has been conducted for a design guideline. Finally, simulation and experimental results are provided to verify the proposed scheme on a 12-V-1.5-V 10-A buck converter prototype.
Keywords :
DC-DC power convertors; switching convertors; transient response; BCM auxiliary switching strategy; DC-DC buck converter; auxiliary circuit; auxiliary power losses; boundary conduction mode; charge balance controller; controlled auxillary controller; current 10 A; predictable auxiliary switching strategy; unloading transient response performance; voltage 1.5 V; voltage 12 V; voltage overshoot estimation; Capacitors; Inductance; Switches; Switching circuits; Switching frequency; Transient analysis; Boundary conduction mode (BCM); buck converter; capacitor charge balance controller (CBC); controlled auxiliary current (CAC); fast transient response; predictable auxiliary switching;
fLanguage :
English
Journal_Title :
Industry Applications, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-9994
Type :
jour
DOI :
10.1109/TIA.2013.2242032
Filename :
6417024
Link To Document :
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