Analyzing the Profile Effects of the Various Magnet Shapes in Axial Flux PM Motors by Means of 3D-FEA

Axial flux machines have positive sides on the power and torque density profile. However, the price of this profile is paid by the torque ripples and irregular magnetic flux density production. To gather higher efficiency, torque ripples should close to the zero and the stator side iron should be un...

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Main Authors: Emrah Cetin, Ferhat Daldaban
Format: Article
Language:English
Published: MDPI AG 2018-01-01
Series:Electronics
Subjects:
Online Access:http://www.mdpi.com/2079-9292/7/2/13
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spelling doaj-5e220b1071fb4f65afd6ccca8d7dc8a72020-11-24T23:08:22ZengMDPI AGElectronics2079-92922018-01-01721310.3390/electronics7020013electronics7020013Analyzing the Profile Effects of the Various Magnet Shapes in Axial Flux PM Motors by Means of 3D-FEAEmrah Cetin0Ferhat Daldaban1Engineering Faculty, Electrical and Electronics Engineering, Erciyes University, 38039 Kayseri, TurkeyEngineering Faculty, Electrical and Electronics Engineering, Erciyes University, 38039 Kayseri, TurkeyAxial flux machines have positive sides on the power and torque density profile. However, the price of this profile is paid by the torque ripples and irregular magnetic flux density production. To gather higher efficiency, torque ripples should close to the zero and the stator side iron should be unsaturated. Torque ripples mainly occur due to the interaction between the rotor poles and the stator teeth. In this study, different rotor poles are investigated in contrast to stator magnetic flux density and the torque ripple effects. Since the components of the axial flux machines vary by the radius, analysis of the magnetic resources is more complicated. Thus, 3D-FEA (finite element analysis) is used to simulate the effects. The infrastructure of the characteristics which are obtained from the 3D-FEA analysis is built by the magnetic equivalent circuit (MAGEC) analysis to understand the relationships of the parameters. The principal goal of this research is a smoother distribution of the magnetic flux density and lower torque ripples. As the result, the implementations on the rotor poles have interesting influences on the torque ripple and flux density profiles. The MAGEC and 3D-FEA results validate each other. The torque ripple is reduced and the magnetic flux density is softened on AFPM irons. In conclusion, the proposed rotors have good impacts on the motor performance.http://www.mdpi.com/2079-9292/7/2/13axial flux machinesmagnetic equivalent circuittorque rippleback EMFpermanent-magnet machines
collection DOAJ
language English
format Article
sources DOAJ
author Emrah Cetin
Ferhat Daldaban
spellingShingle Emrah Cetin
Ferhat Daldaban
Analyzing the Profile Effects of the Various Magnet Shapes in Axial Flux PM Motors by Means of 3D-FEA
Electronics
axial flux machines
magnetic equivalent circuit
torque ripple
back EMF
permanent-magnet machines
author_facet Emrah Cetin
Ferhat Daldaban
author_sort Emrah Cetin
title Analyzing the Profile Effects of the Various Magnet Shapes in Axial Flux PM Motors by Means of 3D-FEA
title_short Analyzing the Profile Effects of the Various Magnet Shapes in Axial Flux PM Motors by Means of 3D-FEA
title_full Analyzing the Profile Effects of the Various Magnet Shapes in Axial Flux PM Motors by Means of 3D-FEA
title_fullStr Analyzing the Profile Effects of the Various Magnet Shapes in Axial Flux PM Motors by Means of 3D-FEA
title_full_unstemmed Analyzing the Profile Effects of the Various Magnet Shapes in Axial Flux PM Motors by Means of 3D-FEA
title_sort analyzing the profile effects of the various magnet shapes in axial flux pm motors by means of 3d-fea
publisher MDPI AG
series Electronics
issn 2079-9292
publishDate 2018-01-01
description Axial flux machines have positive sides on the power and torque density profile. However, the price of this profile is paid by the torque ripples and irregular magnetic flux density production. To gather higher efficiency, torque ripples should close to the zero and the stator side iron should be unsaturated. Torque ripples mainly occur due to the interaction between the rotor poles and the stator teeth. In this study, different rotor poles are investigated in contrast to stator magnetic flux density and the torque ripple effects. Since the components of the axial flux machines vary by the radius, analysis of the magnetic resources is more complicated. Thus, 3D-FEA (finite element analysis) is used to simulate the effects. The infrastructure of the characteristics which are obtained from the 3D-FEA analysis is built by the magnetic equivalent circuit (MAGEC) analysis to understand the relationships of the parameters. The principal goal of this research is a smoother distribution of the magnetic flux density and lower torque ripples. As the result, the implementations on the rotor poles have interesting influences on the torque ripple and flux density profiles. The MAGEC and 3D-FEA results validate each other. The torque ripple is reduced and the magnetic flux density is softened on AFPM irons. In conclusion, the proposed rotors have good impacts on the motor performance.
topic axial flux machines
magnetic equivalent circuit
torque ripple
back EMF
permanent-magnet machines
url http://www.mdpi.com/2079-9292/7/2/13
work_keys_str_mv AT emrahcetin analyzingtheprofileeffectsofthevariousmagnetshapesinaxialfluxpmmotorsbymeansof3dfea
AT ferhatdaldaban analyzingtheprofileeffectsofthevariousmagnetshapesinaxialfluxpmmotorsbymeansof3dfea
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