DocumentCode :
1564812
Title :
Optimal Design of Current Source Gate Driver for a Buck Voltage Regulator Based on a New Analytical Loss Model
Author :
Zhang, Zhiliang ; Eberle, Wilson ; Yang, Zhihua ; Liu, Yan-Fei ; Sen, Paresh C.
Author_Institution :
Queen´´s Univ. at Kingston, Kingston
fYear :
2007
Firstpage :
1556
Lastpage :
1562
Abstract :
The superior advantages of a new current-source resonant driver are verified thoroughly by the analytical analysis, simulation and experimental results. A new accurate analytical loss model of the power MOSFET driven by a current-source resonant gate driver is developed. Closed-formed analytical equations are derived to investigate the switching characteristics due to the parasitic inductance. The modeling and simulation results prove that compared to a voltage driver, a current-source resonant driver significantly reduces the propagation impact of the common source inductance during the switching transition at very high switching frequency, which leads to a significant reduction of the switching transition time and the switching loss. Based on the proposed loss model, a general method to optimize the new resonant driver is proposed and employed in the development of a 12V synchronous buck voltage regulator (VR) prototype at 1MHz switching frequency. The level-shift circuit and digital implementation of complex programmable logic device (CPLD) are also presented. The analytical modeling matches the simulation results and experimental results very well. Through the optimal design, a significant efficiency improvement is achieved. More importantly, compared to other state of the art VR approaches, the current-source driver is very promising from the standpoints of both performance and cost-effectiveness.
Keywords :
power MOSFET; programmable logic devices; voltage regulators; CPLD; analytical loss model; buck voltage regulator; complex programmable logic device; current source gate driver; power MOSFET; voltage driver; Analytical models; Driver circuits; Inductance; MOSFET circuits; Power MOSFET; Regulators; Resonance; Switching frequency; Virtual reality; Voltage;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Power Electronics Specialists Conference, 2007. PESC 2007. IEEE
Conference_Location :
Orlando, FL
ISSN :
0275-9306
Print_ISBN :
978-1-4244-0654-8
Electronic_ISBN :
0275-9306
Type :
conf
DOI :
10.1109/PESC.2007.4342227
Filename :
4342227
Link To Document :
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