Title :
Torque ripple reduction in DTC of single-phase open-circuit fault PM brushless
Author :
Utaikaifa, Kasem
Author_Institution :
Electr. & Energy Eng. Dept., Univ. of the Thai Chamber of Commerce, Bangkok, Thailand
fDate :
Nov. 29 2011-Dec. 1 2011
Abstract :
This paper presents a strategy to reduce torque ripple in direct torque control (DTC) of three-phase permanent magnet brushless (PMBL) motor having a winding open-circuit fault. An extra inverter leg is employed to supply voltage to motor neutral point during post fault operation. The zero-voltage vectors are utilized to reduce the torque ripple. Mathematic model of non-sinusoidal back-EMF PMBL motor is developed in which stator flux linkages and developed torque of the faulty motor are presented in a series function. To avoid the difficulty in variable estimation approximated models of stator flux linkages and developed torque based on fundamental component are established. Design of the proposed DTC is also described. The computer simulation shows that torque ripple can be reduced by the proposed method where zero-voltage vectors are utilized in the control scheme. Performances of the system with and without zero-voltage vectors in the scheme are presented and then validated by comparing with measured signals.
Keywords :
approximation theory; brushless machines; fault diagnosis; invertors; machine control; permanent magnet motors; stators; torque control; DTC design; computer simulation; direct torque control; estimation approximated models; faulty motor; inverter leg; mathematic model; motor neutral point; nonsinusoidal back-EMF PMBL motor; post fault operation; series function; single-phase open-circuit fault PM brushless; stator flux linkages; three-phase permanent magnet brushless motor; torque ripple reduction; winding open-circuit fault; zero-voltage vectors; AC motors; Couplings; Rotors; Stator windings; Torque; Vectors;
Conference_Titel :
Engineering and Industries (ICEI), 2011 International Conference on
Conference_Location :
Jeju
Print_ISBN :
978-1-4577-1999-8