2D Hybrid Steady-State Magnetic Field Model for Linear Induction Motors

This paper presents a 2D hybrid steady-state magnetic field model, capable of accurately modeling the electromagnetic behavior in a linear induction motor, including primary slotting, finite yoke length, and longitudinal end-effects by primary motion. This model integrates a complex harmonic modelin...

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Main Authors: Samuil R. Aleksandrov, Timo T. Overboom, Elena A. Lomonova
Format: Article
Language:English
Published: MDPI AG 2019-07-01
Series:Mathematical and Computational Applications
Subjects:
Online Access:https://www.mdpi.com/2297-8747/24/3/74
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spelling doaj-c24ed186f7dc48b2a276e015eb0031792020-11-24T22:12:41ZengMDPI AGMathematical and Computational Applications2297-87472019-07-012437410.3390/mca24030074mca240300742D Hybrid Steady-State Magnetic Field Model for Linear Induction MotorsSamuil R. Aleksandrov0Timo T. Overboom1Elena A. Lomonova2Department of Electrical Engineering, Electromechanics and Power Electronics, Eindhoven University of Technology, 5612 AZ Eindhoven, The NetherlandsDepartment of Electrical Engineering, Electromechanics and Power Electronics, Eindhoven University of Technology, 5612 AZ Eindhoven, The NetherlandsDepartment of Electrical Engineering, Electromechanics and Power Electronics, Eindhoven University of Technology, 5612 AZ Eindhoven, The NetherlandsThis paper presents a 2D hybrid steady-state magnetic field model, capable of accurately modeling the electromagnetic behavior in a linear induction motor, including primary slotting, finite yoke length, and longitudinal end-effects by primary motion. This model integrates a complex harmonic modeling technique with a discretized magnetic equivalent circuit model. The Fourier model is applied to regions with homogeneous material properties, e.g., air regions and the track of the motor, while the magnetic equivalent circuit (MEC) approach is used for the regions containing non-homogeneous material properties, e.g., the primary of the linear induction motor (LIM). By only meshing the domains containing highly-permeable materials, the computational effort is reduced in comparison with the finite element method (FEM). The model is applied to a double-layer single-sided LIM, and the resulting thrust and normal forces show an excellent agreement with respect to finite element analysis and measurement data.https://www.mdpi.com/2297-8747/24/3/74linear induction motorscomplex harmonic modelinghybrid analytical modeling2D steady-state models
collection DOAJ
language English
format Article
sources DOAJ
author Samuil R. Aleksandrov
Timo T. Overboom
Elena A. Lomonova
spellingShingle Samuil R. Aleksandrov
Timo T. Overboom
Elena A. Lomonova
2D Hybrid Steady-State Magnetic Field Model for Linear Induction Motors
Mathematical and Computational Applications
linear induction motors
complex harmonic modeling
hybrid analytical modeling
2D steady-state models
author_facet Samuil R. Aleksandrov
Timo T. Overboom
Elena A. Lomonova
author_sort Samuil R. Aleksandrov
title 2D Hybrid Steady-State Magnetic Field Model for Linear Induction Motors
title_short 2D Hybrid Steady-State Magnetic Field Model for Linear Induction Motors
title_full 2D Hybrid Steady-State Magnetic Field Model for Linear Induction Motors
title_fullStr 2D Hybrid Steady-State Magnetic Field Model for Linear Induction Motors
title_full_unstemmed 2D Hybrid Steady-State Magnetic Field Model for Linear Induction Motors
title_sort 2d hybrid steady-state magnetic field model for linear induction motors
publisher MDPI AG
series Mathematical and Computational Applications
issn 2297-8747
publishDate 2019-07-01
description This paper presents a 2D hybrid steady-state magnetic field model, capable of accurately modeling the electromagnetic behavior in a linear induction motor, including primary slotting, finite yoke length, and longitudinal end-effects by primary motion. This model integrates a complex harmonic modeling technique with a discretized magnetic equivalent circuit model. The Fourier model is applied to regions with homogeneous material properties, e.g., air regions and the track of the motor, while the magnetic equivalent circuit (MEC) approach is used for the regions containing non-homogeneous material properties, e.g., the primary of the linear induction motor (LIM). By only meshing the domains containing highly-permeable materials, the computational effort is reduced in comparison with the finite element method (FEM). The model is applied to a double-layer single-sided LIM, and the resulting thrust and normal forces show an excellent agreement with respect to finite element analysis and measurement data.
topic linear induction motors
complex harmonic modeling
hybrid analytical modeling
2D steady-state models
url https://www.mdpi.com/2297-8747/24/3/74
work_keys_str_mv AT samuilraleksandrov 2dhybridsteadystatemagneticfieldmodelforlinearinductionmotors
AT timotoverboom 2dhybridsteadystatemagneticfieldmodelforlinearinductionmotors
AT elenaalomonova 2dhybridsteadystatemagneticfieldmodelforlinearinductionmotors
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