Research Article
BibTex RIS Cite

ANSYS-Based Broken Magnet, Demagnetization and Short Circuit Fault Evaluation for a BLDC Motor Designed for Light Electric Vehicle

Year 2024, Volume: 4 Issue: 3, 118 - 126, 31.10.2024
https://doi.org/10.5152/tepes.2024.24020
https://izlik.org/JA24LF52BK

Abstract

With the growing adoption of light electric vehicles (LEVs), it is becoming increasingly important to optimize their propulsion systems. Brushless DC (BLDC) motors are widely utilized for their high efficiency, precise control, and strong performance. Nevertheless, their reliability faces challenges from various operational failures that can greatly affect the functionality of the vehicle. This study employs Finite Element Method (FEM) analysis to investigate and quantify the effects of specific faults in BLDC motors, with a focus on magnet and stator insulation issues. Two primary types of magnet faults—broken magnets and demagnetization—are explored. Our findings indicate that the severity of these faults correlates directly with adverse effects on motor performance, including changes in current levels, torque, and magnetic flux density. A simulated reduction in magnet coercivity by 30% showcases critical consequences such as increased current draw and failure to generate net torque, highlighting potential performance degradation under high-temperature conditions or other stressors. Additionally, the study examines the impacts of unbalanced single-phase short circuits, which increase harmonic content and torque oscillations, further degrading motor performance. By demonstrating the significant influence of these faults through detailed FEM analysis, this research underlines the necessity for robust motor design and proactive maintenance to enhance the reliability and efficiency of LEVs. This work contributes valuable insights into the fault dynamics of BLDC motors, providing a valuable reference for engineers and researchers in the field of electric vehicle propulsion systems.

Thanks

The authors would like to thank BINGEZ Automotive Ind. Ltd. Co., for generously sharing their BLDC design parameters and permission to publish it. A preliminary version of this study was presented at ELECO 2023, which was held in Bursa, Turkey. The authors acknowledge the feedback and insights received during the conference, which have significantly contributed to the refinement and expansion of this research.

References

  • 1. A. Mujianto, M. Nizam, and Inayati, “Comparation of the slotless brush- less DC motor (BLDC) and slotted BLDC using 2D modeling” Comparison Slotless Brushless DC Mot. (BLDC) Slotted BLDC Using, vol. 2D in 2014 International Conference on Electrical Engineering and Computer Sci- ence (ICEECS), 2014, pp. 212–214.
  • 2. H. Masoudi, A. Kiyoumarsi, S. M. Madani, and M. Ataei, “Closed-loop direct power control of brushless DC motor in field weakening region,” IEEE Trans. Transp. Electrif., 2023, [Accessed: Oct. 02, 2023]. [Online]. Available: https://ieeexplore.ieee.org/abstract/document/10217002/.
  • 3. O. Ustun, D. Bayram, B. Durak, and O. C. Kivanc, “Comparison of differ- ent line start interior permanent magnet synchronous motor types with respect to IE4 efficiency class,” 2017, in 18th International Symposium on Electromagnetic Fields in Mechatronics, Electrical and Electronic Engineering (ISEF) Book of Abstracts, IEEE, Vol. 2017, pp. 1–2. [Accessed: Oct. 02, 2023]. [Online].
  • 4. D. C. Hanselman, “Brushless permanent magnet motor design. The writ- ers’ collective,” 2003. [Accessed: Oct. 02, 2023]. [Online]. Available: https://digitalcommons.library.umaine.edu/fac_monographs/231/.
  • 5. O. Zandi, and J. Poshtan, “Fault diagnosis of brushless DC motors using built-in Hall sensors,” IEEE Sens. J., vol. 19, no. 18, pp. 8183–8190, 2019.
  • 6. H. A. Hussain, A. N. Hussain, and W. R. Abed, “Materials science and engineering,” 2021, “Faults Diagnosis of BLDC Motors Using Artificial Neural Networks,” in IOP Conference Series. IOP Publishing, p. 012003. [Accessed: Sep. 26, 2023]. [Online]. Available: https://iopscience.iop. org/article/10.1088/1757-899X/1105/1/012003/meta.
  • 7. H. Wang, J. Wang, X. Wang, S. Lu, C. Hu, and W. Cao, “Detection and evaluation of the interturn short circuit fault in a BLDC-based hub motor,” IEEE Trans. Ind. Electron., vol. 70, no. 3, pp. 3055–3068, 2022.
  • 8. A. Usman, and B. S. Rajpurohit, “Comprehensive analysis of demagneti- zation faults in BLDC motors using novel hybrid electrical equivalent circuit and numerical based approach,” IEEE Access, vol. 7, pp. 147542–147552, 2019.
  • 9. S. Rajagopalan, W. le Roux, T. G. Habetler, and R. G. Harley, “Dynamic eccentricity and demagnetized rotor magnet detection in trapezoidal flux (brushless DC) motors operating under different load conditions,” IEEE Trans. Power Electron., vol. 22, no. 5, pp. 2061–2069, 2007.
  • 10. G. Niu, X. Dong, and Y. Chen, “Motor fault diagnostics based on current signatures: A review,” IEEE Trans. Instrum. Meas., vol. 72, 1–19, 2023, [Accessed: Nov. 05, 2023]. [Online].
  • 11. A. İşler, N. G. Özçelik, and L. T. Ergene, “Different magnet configurations in BLDC motors,” 2016, in National Conference on Electrical, Electronics and Biomedical Engineering (ELECO), 2016, pp. 329–333. [Accessed: Jul. 11, 2024]. [Online]. Available: https://ieeexplore.ieee.org/documen t/7851893.
  • 12. Z. Gong, P. Desenfans, D. Pissoort, H. Hallez, and D. Vanoost, “Multiphys- ics coupling model to characterise the behaviour of induction motors with eccentricity and bearing faults,” IEEE Trans. Energy Convers., 2023, [Accessed: Oct. 02, 2023]. [Online]. Available: https://ieeexplore.ieee.o rg/abstract/document/10221217/.
  • 13. S. Rajagopalan, W. le Roux, T. G. Habetler, and R. G. Harley, “Diagnosis of potential rotor faults in brushless DC machines,” 2004, in Second International Conference on Power Electronics, Machines and Drives (PEMD 2004). IET, pp. 668–673. [Accessed: Sep. 28, 2023]. [Online]. Available: https://ieeexplore.ieee.org/abstract/document/1350103/.
  • 14. M. Zafarani, T. Goktas, and B. Akin, “A comprehensive magnet defect fault analysis of permanent-magnet synchronous motors,” IEEE Trans. Ind. Appl., vol. 52, no. 2, pp. 1331–1339, 2015.
  • 15. G. Kucukyildiz, E. Yolacan, H. Ocak, and M. Aydin, “Detection of struc- tural magnet defects for permanent magnet synchronous motors,” IEEE Trans. Energy Convers., vol. 37, no. 1, pp. 665–674, 2021.
  • 16. Y. Da, X. Shi, and M. Krishnamurthy, “Health monitoring, fault diagnosis and failure prognosis techniques for Brushless Permanent Magnet Machines,” in IEEE Vehicle Power and Propulsion Conference, 2011, pp. 1–7.
  • 17. J. Faiz, and H. Nejadi-Koti, “Demagnetization fault indexes in permanent magnet synchronous motors—An overview,” IEEE Trans. Magn., vol. 52, no. 4, pp. 1–11, 2016.
  • 18. M. R. Minaz, and K. Yıldız, “Sonlu Elemanlar Yöntemi ile Fırçasız Doğru Akım Motorunun (BLDC) Kısa Devre Arıza Analizi,” Dicle Univ. Mühendis Fak. Mühendis Derg., vol. 12, no. 1, 2021.
  • 19. K.-T. Kim, S.-T. Lee, and J. Hur, “Diagnosis technique using a detection coil in BLDC motors with interturn faults,” IEEE Trans. Magn., vol. 50, no. 2, pp. 885–888, 2014.
  • 20. J.-K. Park, and J. Hur, “Detection of inter-turn and dynamic eccentricity faults using stator current frequency pattern in IPM-type BLDC motors,” IEEE Trans. Ind. Electron., vol. 63, no. 3, pp. 1771–1780, 2016.
There are 20 citations in total.

Details

Primary Language English
Subjects Electrical Machines and Drives
Journal Section Research Article
Authors

Mahmut Abacı 0000-0003-4586-9749

Duygu Bayram Kara 0000-0001-8184-8510

Submission Date July 30, 2024
Acceptance Date September 17, 2024
Publication Date October 31, 2024
DOI https://doi.org/10.5152/tepes.2024.24020
IZ https://izlik.org/JA24LF52BK
Published in Issue Year 2024 Volume: 4 Issue: 3

Cite

APA Abacı, M., & Bayram Kara, D. (2024). ANSYS-Based Broken Magnet, Demagnetization and Short Circuit Fault Evaluation for a BLDC Motor Designed for Light Electric Vehicle. Turkish Journal of Electrical Power and Energy Systems, 4(3), 118-126. https://doi.org/10.5152/tepes.2024.24020
AMA 1.Abacı M, Bayram Kara D. ANSYS-Based Broken Magnet, Demagnetization and Short Circuit Fault Evaluation for a BLDC Motor Designed for Light Electric Vehicle. TEPES. 2024;4(3):118-126. doi:10.5152/tepes.2024.24020
Chicago Abacı, Mahmut, and Duygu Bayram Kara. 2024. “ANSYS-Based Broken Magnet, Demagnetization and Short Circuit Fault Evaluation for a BLDC Motor Designed for Light Electric Vehicle”. Turkish Journal of Electrical Power and Energy Systems 4 (3): 118-26. https://doi.org/10.5152/tepes.2024.24020.
EndNote Abacı M, Bayram Kara D (October 1, 2024) ANSYS-Based Broken Magnet, Demagnetization and Short Circuit Fault Evaluation for a BLDC Motor Designed for Light Electric Vehicle. Turkish Journal of Electrical Power and Energy Systems 4 3 118–126.
IEEE [1]M. Abacı and D. Bayram Kara, “ANSYS-Based Broken Magnet, Demagnetization and Short Circuit Fault Evaluation for a BLDC Motor Designed for Light Electric Vehicle”, TEPES, vol. 4, no. 3, pp. 118–126, Oct. 2024, doi: 10.5152/tepes.2024.24020.
ISNAD Abacı, Mahmut - Bayram Kara, Duygu. “ANSYS-Based Broken Magnet, Demagnetization and Short Circuit Fault Evaluation for a BLDC Motor Designed for Light Electric Vehicle”. Turkish Journal of Electrical Power and Energy Systems 4/3 (October 1, 2024): 118-126. https://doi.org/10.5152/tepes.2024.24020.
JAMA 1.Abacı M, Bayram Kara D. ANSYS-Based Broken Magnet, Demagnetization and Short Circuit Fault Evaluation for a BLDC Motor Designed for Light Electric Vehicle. TEPES. 2024;4:118–126.
MLA Abacı, Mahmut, and Duygu Bayram Kara. “ANSYS-Based Broken Magnet, Demagnetization and Short Circuit Fault Evaluation for a BLDC Motor Designed for Light Electric Vehicle”. Turkish Journal of Electrical Power and Energy Systems, vol. 4, no. 3, Oct. 2024, pp. 118-26, doi:10.5152/tepes.2024.24020.
Vancouver 1.Mahmut Abacı, Duygu Bayram Kara. ANSYS-Based Broken Magnet, Demagnetization and Short Circuit Fault Evaluation for a BLDC Motor Designed for Light Electric Vehicle. TEPES. 2024 Oct. 1;4(3):118-26. doi:10.5152/tepes.2024.24020