Research on Optimization Design of Electric Motor Based on Finite Element Calculation

Authors

  • Jianan You

DOI:

https://doi.org/10.61173/m5pytf26

Keywords:

Permanent magnet synchronous motor, Parameterized simulation, Finite element calculation, optimal design

Abstract

With the widespread application of permanent magnet synchronous motors in the new energy vehicle market, the demand for verification and optimization of the design rationality of permanent magnet synchronous motors is gradually increasing. This article first establishes a three-phase four pole permanent magnet synchronous motor model based on the motor parameters provided by the motor manufacturer. Then, finite element simulation calculations are carried out on this model to solve the three-phase induced electromotive force, three-phase magnetic flux, cogging torque, iron core loss, and eddy current loss of the permanent magnet synchronous motor when it is unloaded. The rationality of the motor design is verified through the solution results. Finally, the average core loss of the permanent magnet synchronous motor is reduced by 3.6% through parameterized simulation, and its operating efficiency is improved. The optimization design is carried out on it.

References

[1] W. Yin, Development and Utilization of New Energy in Electric Power and Energy Conservation Measures under the Background of Sustainable Development Strategy, [J]. Automation Application, 2023, 64(S2):32-34.

[2] M. Lu, Y. Liu and B. Li, The Matching of E-motor Systems for NewEnergy Vehicles. [J].Automobile Applied Technology,2022,47(13):1-4.DOI:10.16638/ j.cnki.1671-7988.2022.013.001.

[3] H. Huang, S. Hai, S. Wu, Optimization Design of Rotor Magnetic Steel Topology Structure of PMSM for New Energy Vehicle, [J]. Explosion-Proof Electric Machine, 2023,58(2):34- 37.DOI:10.3969/J.ISSN.1008-7281.2023. 02.09.

[4] Z. Chen, X. Xiao, D. Hui, Heat dissipation analysis and heat dissipation structure optimization of permanent magnet synchronous motor for new energy vehicles[J]. Shanghai Auto, 2024(02): 3-8+21.

[5] H. Wang, Z. Jiang, P. Chao, ect, Analysis and Optimization of StatorIron Loss of Permanent Magnet Synchronous Motor for Vehicle, [J]. Electric Machines & Control Applicati on,2021,48(9):96-102,109.DOI.10.12177/ emca.2021.073.

[6] X. Ju, F. Zhang, Y. Cheng, ect, Overview of Key Issues of Flat WireWinding of Traction Motor for Electric Vehicles, [J/ OL].Proceedings ofthe CSEE:1-18[2024-03-10].http://kns.cnki. net/kcms/detail/11.2107.tm. 20230825.1219.007.html.

[7] Y. Fan, Calculation of Temperature Field and Optimization Design ofOil Circuit Structure of Motor With Hairpin Windings for New EnergyVehicles[D].Harbin University of Science and Technology, 2024.DOI:10.27063/d.cnki.ghlgu.2023.000702.

[8] G. Zhang, Design and Optimization of Low Torque Ripple Interior Consequent-pole Permanent Magnet Machine, [D]. Nanjing University of Aeronautics and Astronautics, 2023. DOI:10.27239/d.cnki.gnhhu.2021. 000492.

[9] L. Wu, Research of Rotor Structure of PMA-SynRM for Electric Vehicle Application, [D].Hubei University of Technology, 2020. DOI:10.27131/d. cnki.ghugc.2020.000362.

[10] Y. Chen, X. Zhu, L. Quan, ect, Parameter Sensitivity Optimization Design and Performance Analysis of Double- Salient Permanent-Magnet Double-Stator Machine, [J].Transactions of China Electrotechnical Society, 2017,32(08):160-168.DOI:10.19595/j.cnki.1000-6753.tces. 2017. 08.019.

[11] D. Liu, A. Li, W. Liu, ect, Rotor optimization of permanent magnet-assisted synchronous reluctance motor for electric vehicles[J].Electric Machines and Control, 2022,26(09):119- 129. DOI:10.15938/j.emc.2022.09.013.

[12] J. Bai, Research on Optimization of Direct Torque Control Strategy of Switched Reluctance Motor[D].Harbin Engineering University,2022. DOI: 10.27060/d.cnki.ghbcu.2021.000195.

[13] H. Liu, W. Fan, Q. Zuo and Y. Jiang, “Optimization design of three-phase permanent magnet synchronous motor drive system for electric vehicle,” 2021 IEEE Sustainable Power and Energy Conference (iSPEC), Nanjing, China, 2021, pp. 3417- 3422, doi: 10.1109/iSPEC53008.2021.9735499.

[14] A. Pal and S. Das, “A new sensorless speed estimation strategy for induction motor driven electric vehicle with energy optimization scheme,” 2016 IEEE 1st International Conference on Power Electronics, Intelligent Control and Energy Systems (ICPEICES), Delhi, India, 2016, pp. 1-6, doi: 10.1109/ ICPEICES.2016.7853077.

[15] D. Wei, H. He and J. Li, “A Computationally Efficiency Optimal Design for a Permanent Magnet Synchronous Motor in Hybrid Electric Vehicles,” 2020 IEEE 9th International Power Electronics and Motion Control Conference (IPEMC2020-ECCE Asia), Nanjing, China, 2020, pp. 43-47, doi: 10.1109/IPEMC- ECCEAsia48364.2020.9367752.

[16] X. Hong, J. Wu and N. Zhang, “Parameters Design and Energy Efficiency Optimization of a New Simpson Gearset based Dual Motor Powertrain for Electric Vehicles,” 2021 60th Annual Conference of the Society of Instrument and Control Engineers of Japan (SICE), Tokyo, Japan, 2021, pp. 685-690.

[17] A. G. Sarigiannidis, M. E. Beniakar and A. G. Kladas, “Fast Adaptive Evolutionary PM Traction Motor Optimization Based on Electric Vehicle Drive Cycle,” in IEEE Transactions on Vehicular Technology, vol. 66, no. 7, pp. 5762-5774, July 2017, doi: 10.1109 /TVT. 2016.2631161.

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Published

2024-06-06