Application of Permanent Magnet Synchronous Motor for Electric Vehicle

Main Article Content

Pravin Sankhwar

Abstract

The automobile industry is transforming into electrically driven vehicles. Electrical machines have evolved significantly during the past many years with direct current, induction, and synchronous motors of varying designs. In the electric vehicle (EV) automobile industry, some of the motors—induction motors (IM), permanent magnet synchronous motors (PMSM), brushless direct current motors (BLDCM), switched reluctance motors (SRM), and direct current (DC) series, shunt, and compound motors—have proven success. The advantages of PMSM have led to widespread adoption by manufacturers for commercially available electric vehicles. For EV motors, a widely frequency control method is deployed using a PWM input AC supply to the motor. However, controlling poles in conjunction with frequency controls has a potential in EV applications when additional torque is required at low speeds. The need to further improve the power densities of PMSM by utilizing lighter-weight materials and rotor and stator materials with higher magnetic saturation flux densities become a preferable choice for manufacturers when they try to optimize the costs of EVs. Additionally, the thermal efficiencies of motors continue to improve over time, and best practices in thermal management with air and liquid cooling become a significant factor in curbing energy consumption.

Downloads

Download data is not yet available.

Article Details

How to Cite
[1]
Pravin Sankhwar , Tran., “Application of Permanent Magnet Synchronous Motor for Electric Vehicle”, IJDE, vol. 4, no. 2, pp. 1–6, Aug. 2024, doi: 10.54105/ijde.A8028.04020824.
Section
Articles

How to Cite

[1]
Pravin Sankhwar , Tran., “Application of Permanent Magnet Synchronous Motor for Electric Vehicle”, IJDE, vol. 4, no. 2, pp. 1–6, Aug. 2024, doi: 10.54105/ijde.A8028.04020824.
Share |

References

S. Paul, P.-W. Han, J. Chang, Y.-D. Chun and J.-G. Lee, "State-of-the-art review of railway traction motors for distributed traction considering South Korean high-speed railway," Energy Reports, vol. 8, pp. 14623-14642, 2022. https://doi.org/10.1016/j.egyr.2022.10.411

C. Yan, H. Hu, Z. Li, L. Zeng and R. Pei, "Performance Study of High-Speed Permanent Magnet Synchronous Motor with Amorphous Alloy Considering Temperature Effect," Materials, vol. 17, p. 1928, 2024. https://doi.org/10.3390/ma17081928

M. Karabacak and H. I. Eskikurt, "Speed and current regulation of a permanent magnet synchronous motor via nonlinear and adaptive backstepping control," Mathematical and Computer Modelling, vol. 53, pp. 2015-2030, 2011. https://doi.org/10.1016/j.mcm.2011.01.039

W. Kirchgässner, O. W. Wallscheid and J. Böcker, "Data-Driven Permanent Magnet Temperature Estimation in Synchronous Motors With Supervised Machine Learning: A Benchmark," IEEE Transactions on Energy Conversion, vol. 36, no. 3, pp. 2059-2067, 2021. https://doi.org/10.1109/TEC.2021.3052546

Q. Huang, Q. Huang, H. Guo and J. Cao, "Design and research of permanent magnet synchronous motor controller for electric vehicle," Energy Sci Eng., vol. 11, p. 112–126, 2023. https://doi.org/10.1002/ese3.1316

K. Dambrauskas, J. Vanagas, T. Zimnickas, A. Kalvaitis and M. Ažubalis, "A Method for Efficiency Determination of Permanent Magnet Synchronous Motor," Energies, vol. 13, no. 4, pp. 1-15, 2020. https://doi.org/10.3390/en13041004

S. B, A. Vadde and S. S, "A review: high power density motors for electric vehicles," in Journal of Physics: Conference, 2020.

M. Peter, J. Fleischer, F. S.-L. Blanc and J.-P. Jastrzembski, "New conceptual lightweight design approaches for integrated manufacturing processes: Influence of alternative materials on the process chain of electric motor manufacturing," in 2013 3rd International Electric Drives Production Conference (EDPC), Nuremberg, Germany, 2013. https://doi.org/10.1109/EDPC.2013.6689735

A. Nordelöf and A.-M. Tillman, "A scalable life cycle inventory of an electrical automotive traction machine—Part II: manufacturing processes," Int J Life Cycle Assess, vol. 23, p. 295–313, 2018. https://doi.org/10.1007/s11367-017-1309-8

S. Fang, H. Liu, H. Wang, H. Yang and H. Lin, "High Power Density Permanent Magnet Synchronous Motor With Lightweight Structure and High-Performance Soft Magnetic Alloy Core," in 2018 IEEE International Conference on Applied Superconductivity and Electromagnetic Devices (ASEMD), Tianjin, China, 2018. https://doi.org/10.1109/ASEMD.2018.8559011

L. Guo, Y. Wang, H. Wang and Z. Zhang, "Design of high power density double-stator permanent magnet synchronous motor," IET Electr. Power Appl., vol. 17, no. 4, p. 421–431, 2023. https://doi.org/10.1049/elp2.12275

A. Apte, R. Walambe, V. Joshi, K. Rathod and J. Kolhe, "Simulation of a permanent magnet synchronous motor using Matlab-Simulink," in IEEE, Pune, India, 2014. https://doi.org/10.1109/INDICON.2014.7030469

T. Rudnicki, R. Czerwinski, D. Polok and A. Sikora, "Performance Analysis of a PMSM Drive with Torque and Speed Control," in 2015 22nd International Conference Mixed Design of Integrated Circuits & Systems (MIXDES), Toru, Poland, 2015. https://doi.org/10.1109/MIXDES.2015.7208586

M. Vujacic, M. Hammami, M. Srndovic and G. Grandi, "Evaluation of DC voltage ripple in three-phase PWM voltage source inverters," in 2017 IEEE 26th International Symposium on Industrial Electronics (ISIE), Edinburgh, UK, 2017. https://doi.org/10.1109/ISIE.2017.8001333

B. Liu, "Speed control for permanent magnet synchronous motor based on an improved extended state observer," Advances in Mechanical Engineering, vol. 10, no. 1, pp. 1-12, 2018. https://doi.org/10.1177/1687814017747663

A. Chandrakar, S. V. S. P. K. Ch, V. Sonti and S. Jain, "Gradual Pole Changing based Field Oriented Control Technique for Pole-Phase Modulated Induction Motor Drive," in 2022 IEEE 2nd International Conference on Sustainable Energy and Future Electric Transportation (SeFeT), Hyderabad, India, 2022. https://doi.org/10.1109/SeFeT55524.2022.9909117

Z. Ma and X. Qi, "Permanent magnet motor temperature compensated constant torque control," IFAC-PapersOnLine, vol. 51, no. 31, pp. 68-70, 2018. https://doi.org/10.1016/j.ifacol.2018.10.013

C. Huynh, L. Zheng and D. Acharya, "Losses in High Speed Permanent Magnet Machines Used in Microturbine Applications," Journal of Engineering for Gas Turbines and Power, vol. 131, 2009. https://doi.org/10.1115/1.2982151

C. Zhang, L. Chan, X. Wang and R. Tang, "Loss Calculation and Thermal Analysis for High-Speed Permanent Magnet Synchronous Machines," IEEEAccess, vol. 8, pp. 92627-92636, 2020. https://doi.org/10.1109/ACCESS.2020.2994754

N. Soda and M. Enokizono, "Stator Core Shape Design for Low Core Loss and High Power Density of a Small Surface-Mounted Permanent Motor," Sensors (Basel), vol. 20, no. 5, p. 1418, 2020. https://doi.org/10.3390/s20051418

S. Melançon, "EV Battery Cooling: Challenges and Solutions," Laserax, 2 April 2022. [Online]. Available: https://www.laserax.com/blog/ev-battery-cooling. [Accessed 27 July 2024].

N. Adhikari, R. Bhandari and P. Joshi, "Thermal analysis of lithium-ion battery of electric vehicle using different cooling medium," Applied Energy, vol. 360, p. 122781, 2024. https://doi.org/10.1016/j.apenergy.2024.122781

O. Bilgin and F. A. Kazan, "The effect of magnet temperature on speed, current and torque in PMSMs," in International Conference on Electrical Machines (ICEM), Lausanne, Switzerland, 2016. https://doi.org/10.1109/ICELMACH.2016.7732809

E. A. Grunditz, T. Thiringer, J. Lindstr€om, S. T. Lundmark and M. Alatalo, "Thermal capability of electric vehicle PMSM with different slot areas via thermal network analysis," eTransportation, vol. 8, p. 100107, 2021. https://doi.org/10.1016/j.etran.2021.100107

C. Du, Z. Peng, Y. Ren, A. Zhou, Y. Ma, J. Chen and T. Deng, "Advanced rotor temperature estimation of permanent magnet synchronous machines for electric vehicles," Advances in Mechanical Engineering, vol. 12, no. 6, pp. 1-11, 2020. https://doi.org/10.1177/1687814020918742

H. Guo, Q. Ding, Y. Song, H. Tang, L. Wang and J. Zhao, "Predicting Temperature of Permanent Magnet Synchronous Motor Based on Deep Neural Network," vol. 13, p. 4782, 2020. (Journal Online Sources style) K. Author. (year, month). Title. Journal [Type of medium]. Volume(issue), paging if given. Available: http://www.(URL) https://doi.org/10.3390/en13184782

Koli, H., & Chawla, Prof. M. P. S. (2022). Comparative Study of Electric Vehicle Battery Systems with Lithium-Ion and Solid State Batteries. In International Journal of Emerging Science and Engineering (Vol. 10, Issue 10, pp. 1–6). https://doi.org/10.35940/ijese.i2540.09101022

Kaushik, S. (2019). Modeling and Simulation of Electric Vehicle to Optimize Its Cost and Range. In International Journal of Engineering and Advanced Technology (Vol. 8, Issue 6, pp. 415–419). https://doi.org/10.35940/ijeat.e7819.088619

R., V. M., Ashok, R., & Nitha, L. (2020). Electric Vehicles Acceptance and Knowledge Identification in India using Naive Bayes and k-Nearest Neighbor Classifiers. In International Journal of Innovative Technology and Exploring Engineering (Vol. 9, Issue 5, pp. 1630–1633). https://doi.org/10.35940/ijitee.e3008.039520

Dhrawadkar, S., Dani, U. H., Harmalkar, S., & Joshi, A. (2020). Design and Simulation of Electric Vehicle. In International Journal of Recent Technology and Engineering (IJRTE) (Vol. 9, Issue 4, pp. 131–133). https://doi.org/10.35940/ijrte.c4303.119420

Sunkara, S., & Hayath, S. (2023). Battery Thermal Management System for Electric Vehicles. In Indian Journal of Software Engineering and Project Management (Vol. 3, Issue 1, pp. 1–6). https://doi.org/10.54105/ijsepm.a9017.013123

Most read articles by the same author(s)