DocumentCode :
49280
Title :
New Insights on Dynamic Voltage Scaling of Multiphase Synchronous Buck Converter: A Comprehensive Design Consideration
Author :
Kejiu Zhang ; Shiguo Luo ; Wu, Thomas X. ; Batarseh, Issa
Author_Institution :
Dell Inc., Round Rock, TX, USA
Volume :
29
Issue :
4
fYear :
2014
fDate :
Apr-14
Firstpage :
1927
Lastpage :
1940
Abstract :
This paper comprehensively investigates the power-related issues and introduces new control schemes in dynamic voltage scaling (DVS), which is now used in modern multi-core processor and multiprocessor system-on-chip to reduce operational voltage under light load conditions. With the aggressive motivation to boost dynamic power efficiency, the design specification of voltage transition (dv/dt) for the DVS is pushing the physical limitation of the multiphase converter design and the component stress. In this paper, the operation modes and modes transition during dynamic voltage transition are illustrated. Critical dead-times of driver IC design and system dynamics are first studied and then optimized. The excessive stress on the control MOSFET which increases the reliability concern is captured in boost mode operation. Feasible solutions are also proposed and verified by both simulation and experimental results. CdV/dt compensation for removing the adaptive voltage positioning effect and a novel nonlinear control scheme for smooth transition are proposed for dealing with fast-voltage positioning. Optimum phase number control during dynamic voltage transition is also proposed and triggered by voltage identification delta to further reduce the dynamic loss. For experimental verification, a 200 W, six-phase synchronous buck converter is implemented with the proposed schemes.
Keywords :
MOSFET; driver circuits; integrated circuit design; integrated circuit reliability; microprocessor chips; optimal control; power convertors; system-on-chip; adaptive voltage positioning effect; boost mode operation; component stress; control MOSFET; driver integrated circuit design; droop compensation; dynamic power efficiency; dynamic voltage scaling; dynamic voltage transition; fast-voltage positioning; modes transition; multicore processor; multiphase converter design; multiphase synchronous buck converter; multiprocessor system-on-chip; nonlinear control scheme; operation modes; optimum phase number control; power 200 W; system dynamics; voltage identification; Breakdown voltage; Capacitance; Logic gates; MOSFET; Stress; Threshold voltage; Voltage control; Droop compensation; dynamic voltage scaling (DVS); multiphase; voltage identification (VID);
fLanguage :
English
Journal_Title :
Power Electronics, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8993
Type :
jour
DOI :
10.1109/TPEL.2013.2271780
Filename :
6563168
Link To Document :
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