Title :
An improved DTC for matrix converter drives using multi-mode ISVM and unity input power factor correction
Author :
Xiao, D. ; Rahman, F.
Author_Institution :
Sch. of Electr. Eng. & Telecommun., Univ. of New South Wales, Sydney, NSW, Australia
Abstract :
This paper presents an improved direct torque control (DTC) method for sensorless matrix converter drives using a multi-mode indirect space vector modulation (ISVM) and an adaptive sliding mode observer. The drive system is characterized by reduced torque and flux ripples, unity input power factor, sinusoidal input/output waveforms and good sensorless control performance over a wide speed range, while maintaining constant switching frequency and fast dynamic. Independent control of both torque and flux is achieved by two PI controllers. To preserve the DTC transient merits, the ISVM is switched to an overmodulation mode when the reference voltage exceeds the saturation point of PI controllers. When the voltage reference is lower than 30% of the allowable value, the modified input current vector modulation, utilizing medium line-to-line voltages, is employed to improve the steady-state performance at low speeds.
Keywords :
PI control; drives; matrix convertors; power factor correction; torque control; PI controllers; adaptive sliding mode observer; direct torque control; drive system; flux ripples; input current vector modulation; multi-mode indirect space vector modulation; power factor correction; sensorless matrix converter drives; sinusoidal input/output waveforms; torque ripples; unity input power factor; Adaptive control; Matrix converters; Power factor correction; Programmable control; Reactive power; Sensorless control; Sliding mode control; Switching frequency; Torque control; Voltage control; Direct torque and flux control; Matrix converter; Permanent magnet motor; Power factor correction; Sensorless control;
Conference_Titel :
Power Electronics and Applications, 2009. EPE '09. 13th European Conference on
Conference_Location :
Barcelona
Print_ISBN :
978-1-4244-4432-8
Electronic_ISBN :
978-90-75815-13-9