Design and Finite-Element-Based Optimization for a 12-Slot/10-Pole IPM Motor with Integrated Onboard Battery Charger for Electric Vehicle Applications

Author:

Abdel-Wahed Ahmed T.1,Ullah Zia2,Abdel-Khalik Ayman S.1ORCID,Hamad Mostafa S.3ORCID,Ahmed Shehab2,Elmalhy Noha A.1

Affiliation:

1. Department of Electrical Engineering, Alexandria University, Alexandria 21544, Egypt

2. CEMSE Division, King Abdullah University of Science and Technology, Thuwal 23955, Saudi Arabia

3. Research and Development Center, Arab Academy for Science, Technology and Maritime Transport, Al-Alamein 5060305, Egypt

Abstract

Permanent magnet (PM) machines with fractional slot concentrated windings (FSCW) constitute a notably remarkable proposition for electric vehicles. Additionally, an integrated onboard battery charger (IOBC) provides another superiority as it exploits the components of the powertrain to charge the battery without any additional components. Interior permanent magnet (IPM) motor arises as a credible choice due to its high torque density, resulting from the high saliency ratio. The optimal design of an IPM motor has been extensively presented from different perspectives, but the optimal design of a motor employed for IOBC application for both propulsion and charging modes has not been studied extensively. In this paper, the design and optimization of a 12-slot/10-pole IPM motor with IOBC are studied under both propulsion and charging modes. A finite-element-based optimization with the aid of a genetic algorithm technique is proposed to obtain the optimal machine by maximizing the average torque and minimizing the torque ripple, core losses, and magnet size.

Funder

ITIDAs ITAC

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Industrial and Manufacturing Engineering,Control and Optimization,Mechanical Engineering,Computer Science (miscellaneous),Control and Systems Engineering

Reference53 articles.

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