DocumentCode :
739617
Title :
Distributed Multilevel Current Models for Design Analysis of Electromagnetic Actuators
Author :
Jungyoul Lim ; Kok-Meng Lee
Author_Institution :
Korea Railroad Res. Inst., Uiwang, South Korea
Volume :
20
Issue :
5
fYear :
2015
Firstpage :
2413
Lastpage :
2424
Abstract :
This paper presents a generalized source modeling method, referred here as distributed multilevel current (DMC) models, utilizing equivalent magnetizing currents as local point sources to describe material effects of commonly used magnetic components. Unlike existing numerical methods, which solve for the magnetic fields from Maxwell´s equations and boundary conditions, the DMC-based method develops closed-form solutions to the magnetic field and force problems, while allowing tradeoffs between computational speed and accuracy using a multilevel structure to discretize geometry and minimize modeling errors in the neighborhood around the point sources. Typical DMC models for volume and surface current elements, permanent magnets, electromagnets, iron plate, and induced eddy currents are derived and validated by comparing their magnetic fields and forces with known (analytical, numerical, and/or experimental) solutions. Results of benchmark comparison demonstrate that the DMC methods reduce the computation time of magnetic fields and forces by several orders as compared to exact solutions numerically integrated from the Biot-Savart law and Lorentz force equation and finite-element analysis. The DMC models were experimentally applied to identify the EM coil position and PM magnetization of a commercial PM linear synchronous motor validating their effects on its torque ripple.
Keywords :
Maxwell equations; coils; computational complexity; electromagnetic actuators; finite element analysis; linear motors; machine control; magnetic fields; permanent magnet motors; permanent magnets; synchronous motors; Biot-Savart law; DMC method; DMC model; DMC-based method; EM coil position; Lorentz force equation; Maxwell equation; PM magnetization; benchmark comparison; boundary condition; closed-form solution; commercial PM linear synchronous motor; computation time; computational speed; design analysis; discretize geometry; distributed multilevel current model; eddy current; electromagnetic actuator; finite-element analysis; generalized source modeling method; iron plate; local point source; magnetic component; magnetic field; magnetic force problem; magnetizing current; material effect; modeling error; multilevel structure; numerical method; permanent magnet; surface current element; torque ripple; Analytical models; Computational modeling; Electromagnetics; Magnetic analysis; Magnetic resonance imaging; Materials; Mathematical model; Electromagnetic analysis; linear motors; magnetic force; magnetic vector potential; magnetization current modeling;
fLanguage :
English
Journal_Title :
Mechatronics, IEEE/ASME Transactions on
Publisher :
ieee
ISSN :
1083-4435
Type :
jour
DOI :
10.1109/TMECH.2014.2382532
Filename :
7018029
Link To Document :
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