Title :
Numerical modeling of magnetic devices
Author :
Zhou, P. ; Fu, W.N. ; Lin, D. ; Stanton, S. ; Cendes, Z.J.
Author_Institution :
Ansoft Corp., Pittsburgh, PA, USA
fDate :
7/1/2004 12:00:00 AM
Abstract :
We present a general approach to directly couple finite-element models with arbitrary electric circuits for application to electromagnetic devices. We describe both two-dimensional (2-D) and three-dimensional (3-D) transient finite-element models, with emphasis on 3-D using a T-Ω formulation. For 3-D transient and circuit coupling, the derivation of the induced voltage is an integral part of the coupling approach, and the induced voltage links the magnetic field and the electrical circuit together. The system of electric circuits is created automatically. Then graph theory is used to deduce the circuit by tree/cotree and loop analysis. The resulting field equations and circuit equations are coupled together and solved simultaneously at each time step in the time domain. We give three examples of applications: a brushless dc motor drive, a permanent-magnet synchronous motor drive, and a three-phase power transformer with rectifier and load circuit.
Keywords :
brushless DC motors; electromagnetic coupling; electromagnetic devices; finite element analysis; graph theory; permanent magnet motors; power transformers; transient analysis; 3-D transient coupling; T-Ω formulation; arbitrary electric circuits; brushless dc motor drive; circuit coupling; circuit deducing; directly coupling; electric machines; electromagnetic coupling; electromagnetic devices; field equation-circuit equation coupling; finite-element analysis; graph theory; induced voltage derivation; load circuit; loop analysis; magnetic devices; magnetic field-electrical circuit linking; numerical magnetic device modeling; permanent-magnet synchronous motor drive; rectifier; three-phase power transformer; time domain; transient finite-element models; tree-cotree analysis; Coupling circuits; Electromagnetic coupling; Electromagnetic modeling; Electromagnetic transients; Finite element methods; Integral equations; Magnetic circuits; Magnetic devices; Numerical models; Voltage; Circuits; electric machines; electromagnetic coupling; finite-element analysis; magnetic devices;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2004.830511