DocumentCode :
629276
Title :
DC-DC converter with improved light load efficiency and transient response
Author :
Gandhimathi, C.
Author_Institution :
Dept. of Electron. & Commun. Eng., Anna Univ., Chennai, India
fYear :
2013
fDate :
3-5 April 2013
Firstpage :
176
Lastpage :
180
Abstract :
Battery size of portable electronic devices is restricted by compact device form factors. To effectively utilize the relatively limited battery power, highly efficient DC-DC converters are employed. As portable devices remain in stand-by mode most of the time, improving light load efficiency is essential. In this paper, fast transient control method and linearly scaled gate-driving technique are used to improve the transient response and light-load efficiency of dc-dc converter. The transient response of dc-dc converter is closely related to the waiting time of the device to resume normal operation from standby. The fast transient control operates under a voltage controlled Pulse-Width Modulation mode during steady state and saturation mode during transient. Light load efficiency of DC-DC converter depends on frequency dependent losses and gate driving losses. The optimum gate driving voltage can be accurately modeled by a linear function of the load current to minimize frequency dependent loss. This is achieved by maintaining constant switching frequency and output ripple voltage. Simulation results show 5% increase in light-load efficiency with an overall efficiency of 90% and the transient recovery time of a 450 mA step load change to be less than 9μs.
Keywords :
DC-DC power convertors; PWM power convertors; transient response; voltage control; DC-DC converter; compact device form factors; constant switching frequency; dc-dc converter; frequency dependent losses; gate driving losses; light load efficiency; light-load efficiency; limited battery power; linear function; linearly scaled gate-driving technique; load current; normal operation; optimum gate driving voltage; output ripple voltage; portable devices; portable electronic devices; saturation mode; stand-by mode; transient control method; transient recovery time; transient response; voltage controlled pulse-width modulation mode; waiting time; Logic gates; Pulse width modulation; Steady-state; Switching frequency; Transient analysis; Transient response; Voltage control; DC-DC power converter; Energy Efficiency; Pulse Width Modulation; Switching Frequency;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Communications and Signal Processing (ICCSP), 2013 International Conference on
Conference_Location :
Melmaruvathur
Print_ISBN :
978-1-4673-4865-2
Type :
conf
DOI :
10.1109/iccsp.2013.6577038
Filename :
6577038
Link To Document :
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