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Year 2022, Volume: 17 Issue: 1, 55 - 64, 20.03.2022
https://doi.org/10.55525/tjst.1057940

Abstract

References

  • [1] Yang Z, Shang F, Brown I P, and Krishnamurthy M. Comparative study of interior permanent magnet, induction, and switched reluctance motor drives for EV and HEV applications. IEEE Trans Transp Electrifıc 2015; 1(3): 245-254.
  • [2] Zhu J, Cheng K W E, Xue X, and Zou Y. Design of a new enhanced torque in-wheel switched reluctance motor with divided teeth for electric vehicles. IEEE Trans Magn 2017; 53(11).
  • [3] Gong C, Li S, Habetler T, and Zhou P. Acoustic modeling and prediction of ultrahigh-speed switched reluctance machines based on multiphysics finite element analysis. IEEE Trans Ind Appl 2021; 57(1):198- 207.
  • [4] Chiba A, Kiyota K, Hoshi N, Takemoto M, and Ogasawara S. Development of a rare-earth-free SR motor with high torque density for hybrid vehicles. IEEE Trans Energy Convers 2015; 30(1): 175-182.
  • [5] Öksüztepe E. In-wheel switched reluctance motor design for electric vehicles by using pareto based multi objective differential evolution algorithm. IEEE Transs Vehic Technol 2017; 66(6): 4706-4715.
  • [6] Rallabandi V, Han P, Wu J, Cramer A M, Ionel D M, and Zhou P, Design optimization and comparison of direct-drive outer-rotor SRMs based on fast current profile estimation and transient FEA. IEEE Trans Ind Appl 2021; 57(1): 236-245.
  • [7] Omaç Z, Polat M, Öksüztepe E, Yıldırım M, Yakut O, Eren H, Kaya M, and Kürüm H. Design, analysis, and control of in-wheel switched reluctance motor for electric vehicles. Elec Eng 2018;100: 865–876.
  • [8] Yildirim M, Polat M, Öksüztepe E, Omaç Z, Yakut O, Eren H, Kaya M, Kürüm H. Designing in-wheel switched reluctance motor for electric vehicles 2014; IEEE PEMC’14: 793-798.
  • [9] Xue X D, Cheng K W E, Ng T W, and Cheung N C. Multi-objective optimization design of in-wheel switched reluctance motors in electric vehicles. IEEE Trans Ind Electron 2010; 57(9): 2980-2987.
  • [10] Furqani J, Wiguna C A, Chiba A, Gundogmus O, Sozer Y, and Purwadi A. Experimental verification of acoustic noise and radial force sum variation in switched reluctance motor. IEEE Trans Ind Appl 2021; 57(1): 2481- 2493.
  • [11] Kiyota K, Kakishima T, Chiba A, Rahman M A. Cylindrical rotor design for acoustic noise and windage loss reduction in switched reluctance motor for HEV applications. IEEE Trans Ind Appl 2016; 52(1): 154-162.
  • [12] Desai P C, Krishnamurthy M, Schofield N, Emadi A. Novel switched reluctance machine configuration with higher number of rotor poles than stator poles: concept to implementation. IEEE Trans Ind Electron 2010; 57(2): 649-659.
  • [13] Omaç Z. Fuzzy-logic-based robust speed control of switched reluctance motor for low and high speeds. Turk J Elec Eng & Comp Sci 2019; 27(1): 316–329.
  • [14] Omaç Z, Polat M, Kaya M, Öksüztepe E, Eren H, Yıldırım M, Kürüm H. New trends in electrical vehicle powertrains, Outer rotor srm design for electric vehicle without reducer via speed-up evolutionary algorithm. UK: IntechOpen, 2018. pp.129-151.
  • [15] Omaç Z, Cevahir C. Control of switched reluctance generator in wind power system application for variable speeds. Ain Shams Eng J 2021; 12: 2665-2672.
  • [16] Omaç Z. Design and analysis of a water pumping system with photovoltaic source and switched reluctance motor. Balkan J of Elec & Comp Eng 2019; 7(3): 355-361.
  • [17] Omaç Z, Kürüm H, and Selçuk A H. Design, analysis and control of a switched reluctance motor having 18/12 poles. Fırat Uni Sci & Eng J 2007; 3(19) 339-346.
  • [18] Omaç Z, Kürüm H, and Selçuk A H. Digital current control of switched reluctance motor. Inter J Elec & Power Eng 2011; 5:54-61.

Investigation of an Outer Rotor In-Wheel Switched Reluctance Motor for Electric Vehicles by Finite Element Method

Year 2022, Volume: 17 Issue: 1, 55 - 64, 20.03.2022
https://doi.org/10.55525/tjst.1057940

Abstract

The demand of fossil fuel vehicles has decreased due to carbon emissions. Recently, electric vehicles (EV) with electric motor propulsion have gotten attention due to their zero carbon emissions and high efficiency. In this study, an outer rotor in wheel switched reluctance motor (IWSRM) with 18 poles on the stator and 24 poles on the rotor, designed for the propulsion of electric vehicles, is investigated in two-dimensional Finite Element Method (FEM). The magnetic field distributions of IWSRM for different rotor positions at nominal current are obtained. Then, the torque and phase inductance are calculated. As a result, the designed IWRSM provided low torque.

References

  • [1] Yang Z, Shang F, Brown I P, and Krishnamurthy M. Comparative study of interior permanent magnet, induction, and switched reluctance motor drives for EV and HEV applications. IEEE Trans Transp Electrifıc 2015; 1(3): 245-254.
  • [2] Zhu J, Cheng K W E, Xue X, and Zou Y. Design of a new enhanced torque in-wheel switched reluctance motor with divided teeth for electric vehicles. IEEE Trans Magn 2017; 53(11).
  • [3] Gong C, Li S, Habetler T, and Zhou P. Acoustic modeling and prediction of ultrahigh-speed switched reluctance machines based on multiphysics finite element analysis. IEEE Trans Ind Appl 2021; 57(1):198- 207.
  • [4] Chiba A, Kiyota K, Hoshi N, Takemoto M, and Ogasawara S. Development of a rare-earth-free SR motor with high torque density for hybrid vehicles. IEEE Trans Energy Convers 2015; 30(1): 175-182.
  • [5] Öksüztepe E. In-wheel switched reluctance motor design for electric vehicles by using pareto based multi objective differential evolution algorithm. IEEE Transs Vehic Technol 2017; 66(6): 4706-4715.
  • [6] Rallabandi V, Han P, Wu J, Cramer A M, Ionel D M, and Zhou P, Design optimization and comparison of direct-drive outer-rotor SRMs based on fast current profile estimation and transient FEA. IEEE Trans Ind Appl 2021; 57(1): 236-245.
  • [7] Omaç Z, Polat M, Öksüztepe E, Yıldırım M, Yakut O, Eren H, Kaya M, and Kürüm H. Design, analysis, and control of in-wheel switched reluctance motor for electric vehicles. Elec Eng 2018;100: 865–876.
  • [8] Yildirim M, Polat M, Öksüztepe E, Omaç Z, Yakut O, Eren H, Kaya M, Kürüm H. Designing in-wheel switched reluctance motor for electric vehicles 2014; IEEE PEMC’14: 793-798.
  • [9] Xue X D, Cheng K W E, Ng T W, and Cheung N C. Multi-objective optimization design of in-wheel switched reluctance motors in electric vehicles. IEEE Trans Ind Electron 2010; 57(9): 2980-2987.
  • [10] Furqani J, Wiguna C A, Chiba A, Gundogmus O, Sozer Y, and Purwadi A. Experimental verification of acoustic noise and radial force sum variation in switched reluctance motor. IEEE Trans Ind Appl 2021; 57(1): 2481- 2493.
  • [11] Kiyota K, Kakishima T, Chiba A, Rahman M A. Cylindrical rotor design for acoustic noise and windage loss reduction in switched reluctance motor for HEV applications. IEEE Trans Ind Appl 2016; 52(1): 154-162.
  • [12] Desai P C, Krishnamurthy M, Schofield N, Emadi A. Novel switched reluctance machine configuration with higher number of rotor poles than stator poles: concept to implementation. IEEE Trans Ind Electron 2010; 57(2): 649-659.
  • [13] Omaç Z. Fuzzy-logic-based robust speed control of switched reluctance motor for low and high speeds. Turk J Elec Eng & Comp Sci 2019; 27(1): 316–329.
  • [14] Omaç Z, Polat M, Kaya M, Öksüztepe E, Eren H, Yıldırım M, Kürüm H. New trends in electrical vehicle powertrains, Outer rotor srm design for electric vehicle without reducer via speed-up evolutionary algorithm. UK: IntechOpen, 2018. pp.129-151.
  • [15] Omaç Z, Cevahir C. Control of switched reluctance generator in wind power system application for variable speeds. Ain Shams Eng J 2021; 12: 2665-2672.
  • [16] Omaç Z. Design and analysis of a water pumping system with photovoltaic source and switched reluctance motor. Balkan J of Elec & Comp Eng 2019; 7(3): 355-361.
  • [17] Omaç Z, Kürüm H, and Selçuk A H. Design, analysis and control of a switched reluctance motor having 18/12 poles. Fırat Uni Sci & Eng J 2007; 3(19) 339-346.
  • [18] Omaç Z, Kürüm H, and Selçuk A H. Digital current control of switched reluctance motor. Inter J Elec & Power Eng 2011; 5:54-61.
There are 18 citations in total.

Details

Primary Language English
Subjects Engineering
Journal Section TJST
Authors

Zeki Omaç 0000-0002-9339-8243

Publication Date March 20, 2022
Submission Date January 14, 2022
Published in Issue Year 2022 Volume: 17 Issue: 1

Cite

APA Omaç, Z. (2022). Investigation of an Outer Rotor In-Wheel Switched Reluctance Motor for Electric Vehicles by Finite Element Method. Turkish Journal of Science and Technology, 17(1), 55-64. https://doi.org/10.55525/tjst.1057940
AMA Omaç Z. Investigation of an Outer Rotor In-Wheel Switched Reluctance Motor for Electric Vehicles by Finite Element Method. TJST. March 2022;17(1):55-64. doi:10.55525/tjst.1057940
Chicago Omaç, Zeki. “Investigation of an Outer Rotor In-Wheel Switched Reluctance Motor for Electric Vehicles by Finite Element Method”. Turkish Journal of Science and Technology 17, no. 1 (March 2022): 55-64. https://doi.org/10.55525/tjst.1057940.
EndNote Omaç Z (March 1, 2022) Investigation of an Outer Rotor In-Wheel Switched Reluctance Motor for Electric Vehicles by Finite Element Method. Turkish Journal of Science and Technology 17 1 55–64.
IEEE Z. Omaç, “Investigation of an Outer Rotor In-Wheel Switched Reluctance Motor for Electric Vehicles by Finite Element Method”, TJST, vol. 17, no. 1, pp. 55–64, 2022, doi: 10.55525/tjst.1057940.
ISNAD Omaç, Zeki. “Investigation of an Outer Rotor In-Wheel Switched Reluctance Motor for Electric Vehicles by Finite Element Method”. Turkish Journal of Science and Technology 17/1 (March 2022), 55-64. https://doi.org/10.55525/tjst.1057940.
JAMA Omaç Z. Investigation of an Outer Rotor In-Wheel Switched Reluctance Motor for Electric Vehicles by Finite Element Method. TJST. 2022;17:55–64.
MLA Omaç, Zeki. “Investigation of an Outer Rotor In-Wheel Switched Reluctance Motor for Electric Vehicles by Finite Element Method”. Turkish Journal of Science and Technology, vol. 17, no. 1, 2022, pp. 55-64, doi:10.55525/tjst.1057940.
Vancouver Omaç Z. Investigation of an Outer Rotor In-Wheel Switched Reluctance Motor for Electric Vehicles by Finite Element Method. TJST. 2022;17(1):55-64.