Title :
On-chip PVT compensation technology for adaptive voltage scaling control in computer power management application
Author :
Jin, Minghao ; Fu, Xiao ; McDonald, Graham
Author_Institution :
Joule Phys. Lab., Univ. of Salford, Salford, UK
Abstract :
Power efficiency has become a major issue in computer Power Management Unit (PMU) as modern Integral Circuit (IC) is scaling toward smaller feature size. In high-performance computing applications, PMU electronics suffer from extensive Process-Voltage-Temperature (PVT) variation since high-level integration has exceeded physical limit of semiconductor material. This paper provides an overview of adaptive powerperformance management with emphasis on design optimization to bound dynamic losses. The challenge on mitigating the PVT influence in a current-mode control PMU has been discussed, with emphasis on key parameters of threshold voltage and on-state resistance. A PVT compensation solution is henceforth introduced which implements on-chip sensing technology to represent the driver performance. High accurate current sensing is achieved. Featuring a synchronous DC-DC step-down voltage regulator as example, simulation results show 43% reduction on power consumption is achieved by static compensation. In addition, an Adaptive Voltage Scaling (AVS) strategy is described which is configured to alter the gate driver to optimize the power efficiency over whole operation range.
Keywords :
DC-DC power convertors; adaptive control; circuit optimisation; compensation; driver circuits; electric sensing devices; energy conservation; performance evaluation; power aware computing; voltage control; voltage regulators; AVS strategy; PMU electronics; PVT variation; adaptive power-performance management; adaptive voltage scaling control; computer PMU; computer power management application; current sensing; current-mode control; design optimization; driver performance; dynamic losses; gate driver; high-level integration; high-performance computing applications; integral circuit; on-chip PVT compensation technology; on-chip sensing technology; on-state resistance; power consumption reduction; power efficiency; process-voltage-temperature variation; semiconductor material; static compensation; synchronous DC-DC step-down voltage regulator; threshold voltage; Logic gates; Phasor measurement units; Resistance; System-on-a-chip; Temperature measurement; Transistors; Voltage control; PMU; PVT compensation; SOC; adaptive voltage scaling control; computer power loss;
Conference_Titel :
Automation and Computing (ICAC), 2012 18th International Conference on
Conference_Location :
Loughborough
Print_ISBN :
978-1-4673-1722-1