Title :
A sensorless vector control system for induction motors using q-axis flux with stator resistance identification
Author :
Tsuji, Mineo ; Chen, Shuo ; Izumi, Katsuhiro ; Yamada, Eiji
Author_Institution :
Dept. of Electr. & Electron. Eng., Nagasaki Univ., Japan
fDate :
2/1/2001 12:00:00 AM
Abstract :
This paper presents a sensorless vector control system for general-purpose induction motors, which is based on the observer theory and the adaptive control theories. The proposed system includes a rotor speed estimator using a q-axis flux and stator resistance identifier using the d-axis flux. The advantages of the proposed system are simplicity and avoidance of problems caused by using only a voltage model. Since the mathematical model of this system is constructed in a synchronously rotating reference frame, a linear model is easily derived for analyzing the system stability, including the influence of the observer gain, motor operating state, and parameter variations. In order to obtain stable low-speed operation and speed control accuracy, an algorithm for compensating for the deadtime of the inverter and correcting the nonideal features of an insulated gate bipolar transistor was developed. The effectiveness of the proposed system has been verified by digital simulation and experimentation
Keywords :
adaptive control; angular velocity control; electric resistance; induction motors; machine vector control; magnetic flux; observers; parameter estimation; rotors; stators; adaptive control theories; d-axis flux; digital simulation; induction motors; insulated gate bipolar transistor; inverter deadtime compensation; linear model; mathematical model; motor operating state; observer theory; q-axis flux; rotor speed estimator; sensorless vector control system; speed control accuracy; stable low-speed operation; stator resistance identification; stator resistance identifier; synchronously rotating reference frame; voltage model; Adaptive control; Induction motors; Inverters; Machine vector control; Mathematical model; Rotors; Stability analysis; Stators; Velocity control; Voltage;
Journal_Title :
Industrial Electronics, IEEE Transactions on