Title :
Coupled-circuit-model simulation and airgap-field calculation of a dual-stator-winding induction machine
Author :
Wu, Z. ; Ojo, O.
Author_Institution :
Dept. of Electr. & Comput. Eng., Tennessee Technol. Univ., Cookeville, TN, USA
fDate :
5/1/2006 12:00:00 AM
Abstract :
The computer-simulation model of the dual-stator-winding induction machine in which the space harmonics of the stator windings and those of the rotor circuits are accounted for has been presented. The winding-function method is used to calculate the inductances in the machine. The phase-voltage and torque equations thus obtained are further transformed to the rotor reference frame to facilitate simplicity of modelling and using an n×n complex-variable reference frame transformation. Simulation results of the no-load starting transient are presented with the response of the machine to a change in the load torque. The balance of the paper presents an approach, using the stator-winding and rotor-bar currents determined from the coupled-circuit model and the winding functions of the stator windings and the rotor loops, to generate the airgap flux density. A simplified correction scheme, using the B/H curve of the magnetic steel material to account for magnetic saturation in the airgap is introduced, improving the prediction accuracy. Some measurements of no-load and full-load flux densities confirm the computer simulation and FEA results.
Keywords :
air gaps; asynchronous machines; coupled circuits; digital simulation; finite element analysis; harmonics; rotors; stators; torque; B-H curve; FEA; airgap flux density; airgap-field calculation; complex-variable reference frame transformation; computer-simulation model; coupled-circuit-model simulation; dual-stator-winding induction machine; finite element analysis; full-load flux density; inductance; magnetic saturation; magnetic steel material; no-load starting transient; phase-voltage equation; rotor-bar current; space harmonics; torque equation; winding-function method;
Journal_Title :
Electric Power Applications, IEE Proceedings -
DOI :
10.1049/ip-epa:20050466