DocumentCode :
1768644
Title :
Current-mode adaptively hysteretic control for buck converters with fast transient response and improved output regulation
Author :
Kuan-I Wu ; Shuo-Hong Hung ; Shang-Yu Shieh ; Bor-Tsang Hwang ; Szu-Yao Hung ; Chen, Charlie Chung-Ping
Author_Institution :
Dept. of Electr. Eng., Nat. Taiwan Univ., Taipei, Taiwan
fYear :
2014
fDate :
1-5 June 2014
Firstpage :
950
Lastpage :
953
Abstract :
This paper presents a current-mode adaptively hysteretic control (CMAHC) technique to achieve the fast transient response for DC-DC buck converters. A complementary full range current sensor comprising of chargingpath and discharging-path sensing transistors is proposed to track the inductor current seamlessly. With the proposed current-mode adaptively hysteretic topology, the inductor current is continuously monitored, and the adaptively hysteretic threshold is dynamically adjusted according to the feedback information comes from the output voltage level. Therefore, a fast load-transient response can be achieved. Besides, the output regulation performance is also improved by the proposed dynamic current-scaling circuitry (DCSC). Moreover, the proposed CMAHC topology can be used in a nearly zero RESR design configuration. The prototype fabricated using TSMC 0.25μm CMOS process occupies the area of 1.78mm2 including all bonding pads. Experimental results show that the output voltage ripple is smaller than 30mV over a wide loading current from 0 mA to 500 mA with maximum power conversion efficiency higher than 90%. The recovery time from light to heavy load (100 to 500 mA) is smaller than 5μs.
Keywords :
CMOS integrated circuits; DC-DC power convertors; adaptive control; electric current control; electric current measurement; electric sensing devices; feedback; inductors; power integrated circuits; transient response; CMAHC technique; DC-DC buck converter; DCSC; TSMC CMOS process; bonding pad; chargingpath sensing transistor; complementary full range current sensor; current 0 mA to 500 mA; current-mode adaptively hysteretic control technique; discharging-path sensing transistor; dynamic current-scaling circuitry; fast load-transient response; feedback information; improved output regulation performance; inductor current tracking; maximum power conversion efficiency; output voltage ripple; size 0.25 mum; CMOS integrated circuits; CMOS technology; Generators; Inductors; Sensors; Topology; Transient response; Current-mode; adaptively hysteretic; buck converter; load-transient response;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Circuits and Systems (ISCAS), 2014 IEEE International Symposium on
Conference_Location :
Melbourne VIC
Print_ISBN :
978-1-4799-3431-7
Type :
conf
DOI :
10.1109/ISCAS.2014.6865294
Filename :
6865294
Link To Document :
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