Title :
Torque Ripple Reduction in a DFIG-DC System by Resonant Current Controllers
Author :
Iacchetti, Matteo F. ; Marques, Gil D. ; Perini, Roberto
Author_Institution :
Sch. of Electr. & Electron. Eng., Univ. of Manchester, Manchester, UK
Abstract :
A DFIG connected to a dc bus by a diode rectifier and a unique reduced-power PWM converter is considered in this paper. With respect to the traditional ac-grid connected DFIG, such a layout avoids the grid-side PWM converter and is an interesting solution to integrate the DFIG in a dc microgrid together with other generating units, loads as well as storages. The peculiarity of the DFIG, which allows the control of the rotor current space vector independently of the mechanical position, offers two important benefits when the stator is connected to a constant voltage dc grid by a diode bridge: it avoids the need to boost the flux amplitude at low speed, and it allows to considerably reduce the torque ripple due to the diode commutation. This last issue is developed in this paper by using a field-oriented control scheme based on proportional-integral and resonant Controllers. The proposed control is validated through simulation and experiments.
Keywords :
PWM power convertors; asynchronous generators; distributed power generation; electric current control; machine vector control; rectifying circuits; rotors; stators; DFIG-DC system; ac-grid connected DFIG; constant voltage dc grid; dc bus; dc microgrid; diode bridge; diode commutation; diode rectifier; field-oriented control scheme; flux amplitude; grid-side PWM converter; mechanical position; proportional-integral controllers; reduced-power PWM converter; resonant current controllers; rotor current space vector control; stator; torque ripple reduction; Frequency control; Harmonic analysis; Rectifiers; Rotors; Stator windings; Torque; DC grid; Dc grid; Dc-link; Doubly-fed induction machine; Field oriented control; Rectifier; Resonant controllers; dc link; doubly fed induction machine; field-oriented control (FOC); rectifier; resonant controllers;
Journal_Title :
Power Electronics, IEEE Transactions on
DOI :
10.1109/TPEL.2014.2360211