Title :
Accurate Inverter Error Compensation and Related Self-Commissioning Scheme in Sensorless Induction Motor Drives
Author :
Pellegrino, Gianmario ; Bojoi, Radu Iustin ; Guglielmi, Paolo ; Cupertino, Francesco
Author_Institution :
Politec. di Torino, Turin, Italy
Abstract :
This paper presents a technique for accurately identifying and compensating the inverter nonlinear voltage errors that deteriorate the performance of sensorless field-oriented controlled drives at low speed. The inverter model is more accurate than the standard signum-based models that are common in the literature, and the self-identification method is based on the feedback signal of the closed-loop flux observer in dc current steady-state conditions. The inverter model can be identified directly by the digital controller at the drive startup with no extra measures other than the motor phase currents and dc-link voltage. After the commissioning session, the compensation does not require to be tuned furthermore and is robust against temperature detuning. The experimental results, presented here for a rotor-flux-oriented SFOC IM drive for home appliances, demonstrate the feasibility of the proposed solution.
Keywords :
closed loop systems; compensation; feedback; induction motor drives; invertors; observers; sensorless machine control; closed-loop flux observer; dc-link voltage; digital controller; feedback signal; home appliances; inverter error compensation; inverter nonlinear voltage errors; motor phase currents; rotor-flux-oriented SFOC IM drive; self-commissioning scheme; self-identification method; sensorless field-oriented controlled drives; sensorless induction motor drives; standard signum-based models; temperature detuning; Current measurement; Digital control; Error compensation; Error correction; Feedback; Induction motor drives; Induction motors; Inverters; Observers; Resistance; Sensorless control; Stators; Steady-state; Synchronous motors; Table lookup; Voltage control; Back-EMF integration stator voltage integration; closed loop flux observer; compensation; induction motor drives; inverter nonlinearity compensation; inverters; machine vector control; online identification; self-commissioning algorithm; sensorless field-oriented control; sensorless induction motor drives; stator model;
Journal_Title :
Industry Applications, IEEE Transactions on
DOI :
10.1109/TIA.2010.2057395