Analysis of isolated phase windings and permanent magnet assists high energy efficient hybrid‐reluctance motor for electric vehicle

Author:

Prabhu Sundaramoorthy1ORCID,Vijayakumar Arun1ORCID,Stonier Albert Alexander2ORCID,Peter Geno3ORCID,Dorji Sonam4ORCID,Ganji Vivekananda5ORCID

Affiliation:

1. Department of Electrical and Electronics Engineering Sreevidyanikethan Engineering College Tirupati India

2. School of Electrical Engineering Vellore Institute of Technology Vellore India

3. CRISD School of Engineering and Technology University of Technology Sarawak Sibu Malaysia

4. Department of Electrical Engineering Jigme Namgyel Engineering College Dewathang Bhutan

5. Department of Electrical & Computer Engineering Debre Tabor University Amhara Ethiopia

Abstract

AbstractThis article describes the electromagnetic analysis of high efficient hybrid motor, which comprises the salient features of switched reluctance motor (SRM) and spoke‐type brushless DC motor. The main objective is to develop a motor with a high‐power density and winding faulty capability. Furthermore, this research article extends in the manner to increase the power density of the motor through the sensitivity analysis on rotor geometry by replacing the rotating part of SRM and adopting the rotor of spoke type brushless DC motor, originating the hybrid motor with the high‐power density and enhanced efficiency. To ensure the winding fault capability, a SRM‐based stator winding is adopted. Then, the modelling process for hybrid motor 48 V, 1500 RPM, 2 kW, and 12.7 Nm are detail in both analytical and finite element methods. The electromagnetic analysis is carried out to estimate the torque characteristics and flux pattern of the proposed motor. Furthermore, the proposed motor is analysed with the selection of laminating core material among M 27 24 Ga, 36F155, 46F165, 47F165, M 420 50D, and arnon 7. This infers 36F155 material assists proposed motor has high‐performance characteristics. The vibration frequencies are investigated in modal aspects to estimate the natural frequencies of vibrations. These analyses are validated among analytical and finite element results under no‐load conditions.

Publisher

Institution of Engineering and Technology (IET)

Subject

Electrical and Electronic Engineering

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Impacts of Laminating Core Materials on Permanent Magnet Synchronous Motor by Newton–Raphson Methodc;IEEE Canadian Journal of Electrical and Computer Engineering;2024

2. Analysis of Various Core Materials and Permanent Magnets on MISC Type Motor for Electrified Transportation Systems;IEEE Canadian Journal of Electrical and Computer Engineering;2024

3. Analysis on Various Core Materials and Magnets for Electric Vehicle Applications;2023 First International Conference on Advances in Electrical, Electronics and Computational Intelligence (ICAEECI);2023-10-19

4. Sixty Degree PWM Scheme for Binary Source Asymmetrical Multilevel Inverter;2023 5th International Conference on Inventive Research in Computing Applications (ICIRCA);2023-08-03

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