Multiphysics Optimization of a High-Speed Permanent Magnet Motor Based on Subspace and Sequential Strategy
Abstract
:1. Introduction
- (1)
- In current research, scholars focus on the influence of rotor design parameters on motor performance. However, stator design also has a significant impact on the electromagnetic performance, losses, and temperature rise of the motor. Due to the large number of stator parameters, their involvement in optimization can lead to a geometric multiplier increase in optimization training points.
- (2)
- In motor design, the issues within multiple physical fields involve complex interactions and coupling relationships. For example, changes in the electromagnetic field can affect the thermal field distribution, and variations in temperature can, in turn, impact electromagnetic performance. Present optimization studies often consider each physical field independently, overlooking the coupling effects between them. This approach of optimizing a single physical field could yield local optimal solutions rather than global ones.
- (3)
- From the previous literature, the subspace optimization strategy can lower computational problems caused by multiparameter optimization, and the sequential optimization strategy can simplify multi-physics coupling problem. Applying these two optimization strategies to the optimization process of HSPMM may greatly reduce the workload multiplied by multiple optimization objectives. Therefore, it is necessary to explore how to effectively integrate two strategies within the multiphysics optimization of high-speed motors, thereby addressing the optimization challenges posed by multiple parameters and multi-physical fields in high-speed motors. Unfortunately, subspace and sequence optimization strategies are usually used alone in conventional motors, while their combined strategies are missing in the HSPMM.
2. Multiphysics Design Process for HSPMM
3. Initial Design Parameters of HSPMM
4. Multiphysics Optimization Design
4.1. Rotor Stress and Rotor Dynamics Analysis
4.2. Sensitivity Analysis of Stator and Rotor Parameters
4.3. Multi-Objective Optimization of Electromagnetic Performance and Losses
4.4. Cooling and Temperature Rise Check
5. Prototype Test Verification
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Nikita, U.; Smirnov, A.; Parks, C.H.; Ahn, J.H.; Heikkinen, J.; Pyrhönen, J. Design aspects of high-speed electrical machines with active magnetic bearings for compressor applications. IEEE Trans. Ind. Electron. 2017, 64, 8427–8436. [Google Scholar]
- Wang, Y.; Feng, J.H.; Guo, S.Y.; Li, Y.F.; Chen, Z.C.; Wang, Y.; Zhu, Z.Q. Investigation of optimal split ratio for high-speed permanent-magnet brushless machines. IEEE Trans. Magn. 2018, 54, 1–5. [Google Scholar]
- Huang, Z.; Fang, J. Multiphysics design and optimization of high-speed permanent-magnet electrical machines for air blower applications. IEEE Trans. Ind. Electron. 2016, 63, 2766–2774. [Google Scholar] [CrossRef]
- Lei, G.; Bramerdorfer, G.; Ma, B.; Guo, Y.; Zhu, J. Robust Design Optimization of Electrical Machines: Multi-Objective Approach. IEEE Trans. Energy Convers. 2021, 36, 390–401. [Google Scholar] [CrossRef]
- Li, Z.; Wang, P.; Liu, L.; Xu, Q.; Che, S.; Zang, L.; Du, S.; Zang, H.; Sun, H. Loss calculation and thermal analysis of ultra-high speed permanent magnet motor. Heliyon 2022, 8, e11350. [Google Scholar] [CrossRef] [PubMed]
- Feng, L.; Liu, W.; Chen, X.; Ding, Y.; Yu, W.; Li, H. Design and optimization of high-speed permanent magnet synchronous motors. J. Phys. Conf. Ser. 2024, 2741, 012032. [Google Scholar] [CrossRef]
- Gieras, J.F. Design of high-speed permanent magnet machines. Prz. Elektrotechniczny 2019, 95, 1–8. [Google Scholar] [CrossRef]
- Li, Y.; Zhu, C.; Wu, L.; Zheng, Y. Multi-objective optimal design of high-speed surface-mounted permanent magnet synchronous motor for magnetically levitated flywheel energy storage system. IEEE Trans. Magn. 2019, 55, 1–8. [Google Scholar] [CrossRef]
- Du, G.; Huang, N.; He, H.; Lei, G.; Zhu, J. Parameter design for a high-speed permanent magnet machine under multiphysics constraints. IEEE Trans. Energy Convers. 2020, 35, 2025–2035. [Google Scholar] [CrossRef]
- Zheng, M.; Huang, W.; Gao, C.; Wu, F. Multiphysics design of a high-speed permanent magnet machine for a micro gas turbine application. J. Therm. Sci. 2022, 31, 251–260. [Google Scholar] [CrossRef]
- Qin, X.; Shen, J. Split ratio optimization of high-speed permanent magnet synchronous motor with multiphysics constraints. IET Electr. Power Appl. 2020, 14, 2450–2461. [Google Scholar] [CrossRef]
- Zhao, X.; Sun, Z.; Xu, Y. Multi-Objective Optimization Design of Permanent Magnet Synchronous Motor Based on Genetic Algorithm. In Proceedings of the 2020 2nd International Conference on Machine Learning, Taiyuan, China, 23–25 October 2020; pp. 405–409. [Google Scholar]
- Du, G.; Huang, N.; Zhao, Y.; Lei, G.; Zhu, J. Comprehensive Sensitivity Analysis and Multiphysics Optimization of the Rotor for a High-Speed Permanent Magnet Machine. IEEE Trans. Energy Convers. 2020, 36, 358–367. [Google Scholar] [CrossRef]
- Du, G.; Zhou, Q.; Liu, S.; Huang, N.; Chen, X. Multiphysics Design and Multiobjective Optimization for High-Speed Permanent Magnet Machines. IEEE Trans. Transp. Electrif. 2020, 6, 1084–1092. [Google Scholar] [CrossRef]
- Liu, L.; Li, H.; Dongpo, B. Multi-objective optimization of IPMSM based on subspace division. In Proceedings of the International Conference on Electrical Machines and Systems, Sydney, NSW, Australia, 11–14 August 2017; IEEE: Piscataway, NJ, USA, 2017. [Google Scholar]
- Lei, G.; Bramerdorfer, G.; Liu, C.; Guo, Y.; Zhu, J. Robust Design Optimization of Electrical Machines: A Comparative Study and Space Reduction Strategy. IEEE Trans. Energy Convers. 2021, 36, 300–313. [Google Scholar] [CrossRef]
- Du, G.; Huang, N. Multiphysics analysis of high-speed permanent magnet generators for waste heat application. IET Electr. Power Appl. 2020, 14, 937–942. [Google Scholar] [CrossRef]
- Hu, K.; Zhang, G.; Zhang, W. Analysis and optimization of temperature field of high-speed permanent magnet motor. Adv. Mech. Eng. 2022, 14, 1–11. [Google Scholar] [CrossRef]
- Sun, X.; Wan, B.; Lei, G.; Tian, X.; Guo, Y.; Zhu, J. Multiobjective and Multiphysics Design Optimization of a Switched Reluctance Motor for Electric Vehicle Applications. IEEE Trans. Energy Convers. 2021, 36, 3294–3304. [Google Scholar] [CrossRef]
- Barcaro, M.; Bianchi, N. Air-gap flux density distortion and iron losses in anisotropic synchronous motors. IEEE Trans. Magn. 2010, 46, 121–126. [Google Scholar] [CrossRef]
- Xin, C. Comprehensive Design and Multiphysical Analysis of Rotor for High-Speed Permanent-Magnet Motor. Master’s Thesis, Shanghai University of Engineering Science, Shanghai, China, 2020. [Google Scholar]
- Li, B.; Zhu, J.; Liu, C.; Li, Y.; Lei, G. Comparative study of permanent-magnet synchronous machines with different rotor topologies for high-speed applications. Appl. Sci. 2022, 12, 4375. [Google Scholar] [CrossRef]
- Gu, Y.; Wang, X.; Gao, P.; Li, X. Mechanical analysis with thermal effects for high-speed permanent-magnet synchronous machines. IEEE Trans. Ind. Appl. 2021, 57, 4646–4656. [Google Scholar] [CrossRef]
Name | Initial Design Parameters |
---|---|
Rotor outer diameter (mm) | 88.6 |
Air gap length (mm) | 2 |
Sleeve thickness (mm) | 5 |
PM thickness (mm) | 8 |
Number of conductors per slot | 10 |
Hs0 (mm) | 1 |
Hs1 (mm) | 0.5 |
Hs2 (mm) | 16.5 |
Bs0 (mm) | 3.5 |
Wopen (mm) | 2 |
Name | The Strategy in the Paper Training Points X1 | The Strategy in the Paper Training Points X2 | ||
---|---|---|---|---|
Rotor outer diameter | 4 | 256 | — | |
Air gap length | 4 | — | ||
Sleeve thickness | 4 | — | ||
PM thickness | 4 | — | ||
Number of conductors per slot | — | 3 | ||
Hs0 | — | 3 | ||
Hs1 | — | 3 | ||
Hs2 | — | 3 | ||
Bs0 | — | 3 | ||
Wopen | — | 3 | ||
All point | 256 | 216 |
Name | Initial Design | Candidate 1 | Candidate 2 | Candidate 3 |
---|---|---|---|---|
Rotor outer diameter (mm) | 88.6 | 93 | 93.5 | 92.5 |
Air gap length (mm) | 2 | 2.5 | 2.5 | 2.5 |
Sleeve thickness (mm) | 5 | 6 | 6.5 | 6.5 |
PM thickness (mm) | 8 | 12.5 | 13 | 12 |
Back EMF (V) | Torque (Nm) | PM Loss (W) | Efficiency (%) | |
---|---|---|---|---|
Initial design | 364 | 19.1 | 31.2 | 96.1 |
Candidate 1 | 370 | 19.6 | 7.5 | 97.4 |
Candidate 2 | 372 | 19.7 | 8.1 | 97.4 |
Candidate 3 | 371 | 19.6 | 7.1 | 97.4 |
Name | Initial Design | Candidate 1 | Candidate 2 | Candidate 3 |
---|---|---|---|---|
Number of conductors per slot | 10 | 8 | 8 | 8 |
Hs0 (mm) | 1 | 1.5 | 1.5 | 1.8 |
Hs1 (mm) | 0.5 | 1.2 | 1.2 | 1.5 |
Hs2 (mm) | 16.5 | 15.5 | 15.5 | 15 |
Bs0 (mm) | 3.5 | 2 | 2.2 | 2.3 |
Wopen (mm) | 2 | 2.5 | 3 | 2.7 |
Back EMF (V) | Torque (Nm) | PM Loss (W) | Efficiency (%) | Thermal Load (A2/mm3) | |
---|---|---|---|---|---|
Initial design | 364 | 19.1 | 31.2 | 96.1 | 180 |
Candidate 1 | 367 | 19.1 | 14 | 97.18 | 168 |
Candidate 2 | 376 | 19.3 | 11 | 97.27 | 169 |
Candidate 3 | 378 | 19.7 | 21 | 97.09 | 169 |
Name | Initial Parameters | Optimized Parameters |
---|---|---|
Rotor outer diameter (mm) | 88.6 | 92.5 |
Air gap length (mm) | 2 | 2.5 |
Sleeve thickness (mm) | 5 | 6.5 |
PM thickness (mm) | 8 | 12 |
Number of conductors per slot | 10 | 8 |
Hs0 (mm) | 1 | 1.5 |
Hs1 (mm) | 0.5 | 1.2 |
Hs2 (mm) | 16.5 | 15.5 |
Bs0 (mm) | 3.5 | 2.2 |
Wopen (mm) | 2 | 3 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2024 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Yan, H.; Du, G.; Gao, W.; Chen, Y.; Cui, C.; Xu, K. Multiphysics Optimization of a High-Speed Permanent Magnet Motor Based on Subspace and Sequential Strategy. Appl. Sci. 2024, 14, 8267. https://doi.org/10.3390/app14188267
Yan H, Du G, Gao W, Chen Y, Cui C, Xu K. Multiphysics Optimization of a High-Speed Permanent Magnet Motor Based on Subspace and Sequential Strategy. Applied Sciences. 2024; 14(18):8267. https://doi.org/10.3390/app14188267
Chicago/Turabian StyleYan, Honglin, Guanghui Du, Wentao Gao, Yanhong Chen, Cunlong Cui, and Kai Xu. 2024. "Multiphysics Optimization of a High-Speed Permanent Magnet Motor Based on Subspace and Sequential Strategy" Applied Sciences 14, no. 18: 8267. https://doi.org/10.3390/app14188267
APA StyleYan, H., Du, G., Gao, W., Chen, Y., Cui, C., & Xu, K. (2024). Multiphysics Optimization of a High-Speed Permanent Magnet Motor Based on Subspace and Sequential Strategy. Applied Sciences, 14(18), 8267. https://doi.org/10.3390/app14188267