LAPSE:2023.9729
Published Article

LAPSE:2023.9729
Quantitative Comparisons of Outer-Rotor Permanent Magnet Machines of Different Structures/Phases for In-Wheel Electrical Vehicle Application
February 27, 2023
Abstract
As one of the key components, low-speed direct-drive in-wheel machines with high compact volume and high torque density are important for the traction system of electric vehicles (EVs). This paper introduces four different types of outer-rotor permanent magnet motors for EVs, including one five-phase SPM machine, one three-phase IPM machine with V-shaped PMs, one seven-phase axial flux machine (AFM) of sandwich structure and finally one hybrid flux (radial and axial) machine with a third rotor with V-shaped PMs added to the AFM. Firstly, the design criteria and basic operation principle are compared and discussed. Then, the key properties are analyzed using the Finite Element Method (FEM). The electromagnetic properties of the four fractional slot tooth concentrated winding in-wheel motors with similar dimensions are quantitatively compared, including air-gap flux density, electromotive force, field weakening capability, torque density, losses, and fault tolerant capability. The results show that the multi-phase motors have high torque density and high fault tolerance and are suitable for direct drive applications in EVs.
As one of the key components, low-speed direct-drive in-wheel machines with high compact volume and high torque density are important for the traction system of electric vehicles (EVs). This paper introduces four different types of outer-rotor permanent magnet motors for EVs, including one five-phase SPM machine, one three-phase IPM machine with V-shaped PMs, one seven-phase axial flux machine (AFM) of sandwich structure and finally one hybrid flux (radial and axial) machine with a third rotor with V-shaped PMs added to the AFM. Firstly, the design criteria and basic operation principle are compared and discussed. Then, the key properties are analyzed using the Finite Element Method (FEM). The electromagnetic properties of the four fractional slot tooth concentrated winding in-wheel motors with similar dimensions are quantitatively compared, including air-gap flux density, electromotive force, field weakening capability, torque density, losses, and fault tolerant capability. The results show that the multi-phase motors have high torque density and high fault tolerance and are suitable for direct drive applications in EVs.
Record ID
Keywords
axial flux machine, electric vehicle, hybrid flux machine, IPM machine, multiphase machine, outer-rotor, permanent magnet machine, SPM machine
Subject
Suggested Citation
Gong J, Zhao B, Huang Y, Semail E, Nguyen NK. Quantitative Comparisons of Outer-Rotor Permanent Magnet Machines of Different Structures/Phases for In-Wheel Electrical Vehicle Application. (2023). LAPSE:2023.9729
Author Affiliations
Gong J: School of Electrical Engineering, Shandong University, Jinan 250061, China [ORCID]
Zhao B: School of Electrical Engineering, Shandong University, Jinan 250061, China; China Astronaut Research and Training Center, Beijing 100094, China
Huang Y: School of Electrical Engineering, Shandong University, Jinan 250061, China
Semail E: Laboratory of Electrical Engineering and Power Electronics of Lille (L2ep), Arts et Métiers, 59043 Lille, France [ORCID]
Nguyen NK: Laboratory of Electrical Engineering and Power Electronics of Lille (L2ep), Arts et Métiers, 59043 Lille, France [ORCID]
Zhao B: School of Electrical Engineering, Shandong University, Jinan 250061, China; China Astronaut Research and Training Center, Beijing 100094, China
Huang Y: School of Electrical Engineering, Shandong University, Jinan 250061, China
Semail E: Laboratory of Electrical Engineering and Power Electronics of Lille (L2ep), Arts et Métiers, 59043 Lille, France [ORCID]
Nguyen NK: Laboratory of Electrical Engineering and Power Electronics of Lille (L2ep), Arts et Métiers, 59043 Lille, France [ORCID]
Journal Name
Energies
Volume
15
Issue
18
First Page
6688
Year
2022
Publication Date
2022-09-13
ISSN
1996-1073
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PII: en15186688, Publication Type: Journal Article
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LAPSE:2023.9729
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