Title :
High-performance induction motor speed control using exact feedback linearization with state and state derivative feedback
Author :
Boukas, Theocharis K. ; Habetler, Thomas G.
Author_Institution :
Sch. of Electr. & Comput. Eng., Georgia Inst. of Technol., Atlanta, GA, USA
fDate :
7/1/2004 12:00:00 AM
Abstract :
This paper presents a novel nonlinear speed/position control strategy for the induction motor utilizing exact feedback linearization with state and state derivative feedback. The speed/position and flux control loops utilize nonlinear feedback which eliminates the need for tuning, while ordinary proportional-integral controllers are used to control the stator currents. The control scheme is derived in rotor field coordinates and employs an appropriate estimator for the estimation of the rotor flux angle, flux magnitude, and their derivatives. The overall control scheme can be easily implemented with a microprocessor-based control platform. An error sensitivity analysis is included which proves the system to be robust to parameter variation and even more, immune to rotor resistance variation. Simulation and experimental results validate the theoretical part of the paper and reveal the high performance and advantages of the novel control scheme.
Keywords :
PI control; control engineering computing; electric current control; error analysis; induction motors; linearisation techniques; machine control; magnetic flux; nonlinear control systems; position control; rotors; sensitivity analysis; state feedback; stators; velocity control; error sensitivity analysis; exact feedback linearization; flux control loops; induction motor; microprocessor-based control platform; nonlinear feedback; position control; proportional-integral controllers; rotor flux angle estimation; speed control; state derivative feedback; stator current control; Feedback loop; Induction motors; Pi control; Position control; Proportional control; Rotors; Sensitivity analysis; State feedback; Stators; Velocity control; Induction motor; nonlinear speed/position control; state derivative feedback;
Journal_Title :
Power Electronics, IEEE Transactions on
DOI :
10.1109/TPEL.2004.830042