Title :
High-precision current control through opposed current converters
Author :
Schellekens, Jan M. ; Duarte, Jorge ; Huisman, Henk ; Hendrix, M.A.M.
Author_Institution :
Eindhoven Univ. of Technol., Eindhoven, Netherlands
fDate :
Aug. 30 2011-Sept. 1 2011
Abstract :
Switch blanking time, also referred to as dead-time, is one of the dominant sources of output current and voltage distortion in pulse width modulated power amplifiers. Extensive studies are known on elimination, minimization, and compensation of the effect. Most techniques achieve a reduction of the distortion but are not capable of completely removing it. This paper demonstrates that it is possible to fully eliminate dead-time effects by applying the so-called opposed current converter topology in combination with decoupled output and bias current control. The bias current guarantees continuous conduction mode, resulting in almost linear behavior and no zero crossing distortion. The zero-crossing behavior of the opposed current converter is compared to a conventional full-bridge converter with equivalently filtered output. Simulations and measurements on a full-bridge and an opposed current converter of 1.5 kW are included to demonstrate the effectiveness of the proposed ideas for high-precision applications.
Keywords :
PWM power convertors; bridge circuits; electric current control; power amplifiers; switching convertors; bias current control; continuous conduction mode; dead time effect; full bridge converter; high precision current control; opposed current converters; output current distortion; power 1.5 kW; pulse width modulated power amplifier; switch blanking time; voltage distortion; Current control; Current measurement; Inductors; Legged locomotion; Nonlinear distortion; Switches; Topology; Converter circuit; Converter control; Emerging topology; Industrial application; Robustness; Voltage Source Converter (VSC);
Conference_Titel :
Power Electronics and Applications (EPE 2011), Proceedings of the 2011-14th European Conference on
Conference_Location :
Birmingham
Print_ISBN :
978-1-61284-167-0
Electronic_ISBN :
978-90-75815-15-3