Title :
Magnetic Equivalent Circuit Modeling of Induction Motors
Author :
Sudhoff, Scott D. ; Kuhn, Brian T. ; Corzine, Keith A. ; Branecky, Brian T.
Author_Institution :
Dept. of Electr. & Comput. Eng, Purdue Univ., West Lafayette, IN
fDate :
6/1/2007 12:00:00 AM
Abstract :
Finite element models are invaluable for determining expected machine performance. However, finite element analysis can be computationally intense; particularly if a large numbers of studies or high bandwidth studies are required. One method to avoid this difficulty is to extract machine parameters from the finite element model and use the parameters in lumped parameter models. While often useful, such an approach does not represent space harmonics or asymmetries in the motor. A methodology for constructing a state-variable model, based on a magnetic equivalent circuit of the motor is described herein. In addition, the parameters for this model are based solely on geometrical data. This approach is an excellent compromise between the speed of lumped parameter models and the ability of finite element methods to capture spatial effects. Experimental validation of the model is provided.
Keywords :
equivalent circuits; finite element analysis; harmonic analysis; induction motors; lumped parameter networks; magnetic circuits; finite element models; induction motors; lumped parameter models; machine parameter extraction; magnetic equivalent circuit modeling; space harmonics; spatial effects; state variable model; Bandwidth; Equivalent circuits; Finite element methods; Inductance; Induction machines; Induction motors; Magnetic analysis; Reluctance motors; Stators; Synchronous motors; Geometry-based modeling; induction machine modeling; magnetic equivalent circuit (MEC); space harmonics;
Journal_Title :
Energy Conversion, IEEE Transactions on
DOI :
10.1109/TEC.2006.875471