DocumentCode :
820512
Title :
A high-performance sensorless indirect stator flux orientation control of induction motor drive
Author :
Boussak, Mohamed ; Jarray, Kamel
Author_Institution :
Ecole Generaliste d´´Ingenieurs de Marseille, France
Volume :
53
Issue :
1
fYear :
2006
Firstpage :
41
Lastpage :
49
Abstract :
A new method for the implementation of a sensorless indirect stator-flux-oriented control (ISFOC) of induction motor drives with stator resistance tuning is proposed in this paper. The proposed method for the estimation of speed and stator resistance is based only on measurement of stator currents. The error of the measured q-axis current from its reference value feeds the proportional plus integral (PI) controller, the output of which is the estimated slip frequency. It is subtracted from the synchronous angular frequency, which is obtained from the output integral plus proportional (IP) rotor speed controller, to have the estimated rotor speed. For current regulation, this paper proposes a conventional PI controller with feedforward compensation terms in the synchronous frame. Owing to its advantages, an IP controller is used for rotor speed regulation. Stator resistance updating is based on the measured and reference d-axis stator current of an induction motor on d-q frame synchronously rotating with the stator flux vector. Experimental results for a 3-kW induction motor are presented and analyzed by using a dSpace system with DS1102 controller board based on the digital signal processor (DSP) TMS320C31. Digital simulation and experimental results are presented to show the improvement in performance of the proposed method.
Keywords :
PI control; angular velocity control; digital signal processing chips; digital simulation; electric current control; electric current measurement; electric resistance; feedforward; induction motor drives; machine vector control; rotors; slip (asynchronous machines); stators; tuning; 3 kW; DS1102 controller board; PI controller; current regulation; dSpace system; digital signal processor TMS320C31; digital simulation; feedforward compensation; feedforward decoupling; flux orientation control; induction motor drive; integral plus proportional rotor speed controller; proportional plus integral controller; q-axis current measurement; resistance tuning; sensorless vector control; slip frequency; speed estimation; stator resistance estimation; synchronous angular frequency; Current measurement; Electrical resistance measurement; Frequency estimation; Induction motor drives; Induction motors; Pi control; Position control; Proportional control; Rotors; Stators; Feedforward decoupling; induction motor; sensorless vector control; stator resistance estimation; stator-flux-oriented control;
fLanguage :
English
Journal_Title :
Industrial Electronics, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0046
Type :
jour
DOI :
10.1109/TIE.2005.862319
Filename :
1589364
Link To Document :
بازگشت