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This study deals with currents of a line start permanent magnet synchronous motor (LSPMSM), supplied with voltage containing subharmonics and interharmonics – components of the frequency less than the fundamental frequency or not being equal to its integer multiple, respectively. The results of experimental investigation are presented for a factory-made four-pole LSPMSM of the rated power 3 kW. Voltage interharmonics result in the flow of current components of various frequencies and comparatively small values. Their presence could lead to resonance phenomena, but is not expected to cause the motor overheating. Contrastingly, voltages subharmonics cause the flow of significant current subharmonics, which may considerably increase power losses, and consequently – the thermal loads of the LSPMS.
Czasopismo
Rocznik
Tom
Strony
art. no. e2024023
Opis fizyczny
Bibliogr. 35 poz., tab., wykr.
Twórcy
autor
- Department of Ship Electrical Power Engineering, Gdynia Maritime University
autor
- Department of Ship Electrical Power Engineering, Gdynia Maritime University
Bibliografia
- 1. Arkkio, A., Cederstrom, S., Awan, H., Asad, A., Saarakkala, S.E., Holopainen, T.P. (2018). Additional losses of electrical machines under torsional vibration. IEEE Trans. Energy Convers., 33, 245–251.
- 2. Barros, J., de Apraiz, M., Diego, R.I. (2007). Measurement of subharmonics in power voltages. Power Tech 2007 IEEE Conference, Lausanne, 1–5 July, 1736–1740.
- 3. Bolen, M.H.J., Gu, I.Y.H. (2006). Signal processing of power quality disturbances. New York: Wiley.
- 4. Crotti, G., Avanzo, G.D, LetIizia, P.S., Luiso, M. (2021). Measuring harmonics with inductive voltage transformers in presence of subharmonics. IEEE Transactions on Instrumentation and Measurement, 70, 1–13.
- 5. Donolo, P.D., Pezzani, C., Quispe, E.C., dE Angelo, C.H. (2017). Comparative analysis of the effects of voltage unbalance on the performance of IE 4 electric motors. 10th International Conference on Energy Efficiency in Motor Driven Systems – EEMODS´, Rome.
- 6. Feese, T., Ryan, M. (2008). Torsional vibration problem with motor/ID fan system due to PWM variable frequency drive. In Proceedings of the 37th Turbomachinery Symposium; Texas A&M University, Turbomachinery Laboratories: College Station, Texas, 45–56.
- 7. Fonseca, D.S.B., Santos, C.M.C, Cardoso, A.J.M. (2020). Stator faults modeling and diagnostics of line-start permanent magnet Synchronous motors. IEEE Transactions on Industry Applications, 56(3), 2590–2599.
- 8. Gallo, D., Landi, C., Langella, R., Testa, A. (2005). Limits for low frequency interharmonic voltages: Can they be based on the flickermeter use. In Proceedings of the 2005 IEEE Russia Power Tech, St. Petersburg, 27–30 June, 1–7.
- 9. Ganesan, A.U., Chokkalingam, L.N. (2019). Review on the evolution of technology advancements and applications of line-start synchronous machines. IET Electric Power Applications, 13(1), 1–16.
- 10. Ghaseminezhad, M., Doroudi, A., Hosseinian, S.H., Jalilian, A. (2017). Analysis of voltage fluctuation impact on induction motors by an innovative equivalent circuit considering the speed changes. IET Gener. Transm. Distrib., 11, 512–519. https://doi.org/10.1049/iet-gtd.2016.1063
- 11. Ghaseminezhad, M., Doroudi, A., Hosseinian, S.H., Jalilian, A. (January 2017). An investigation of induction motor saturation under voltage fluctuation conditions. Journal of Magnetics, 22, 306–314. https://doi.org/10.4283/JMAG.2017.22.2.306
- 12. Ghaseminezhad, M., Doroudi, A., Hosseinian, S.H., Jalilian, A. (April 2021). Analytical field study on induction motors under fluctuated voltages. Iranian Journal of Electrical and Electronic Engineering, 17(1), 1620–1620. https://doi.org/10.22068/IJEEE.17.1.1620
- 13. Ghaseminezhad, M., Doroudi, A., Hosseinian, S.H., Jalilian, A. (October 2021). High torque and excessive vibration on the induction motors under special voltage fluctuation conditions. COMPEL – The international journal for computation and mathematics in electrical and electronic engineering, 40(4), 822–836. https://doi.org/10.1108/COMPEL-07-2020-0234
- 14. Gnaciński, P., Hallmann, D., Pepliński, M., Jankowski, P. (2019). The effects of voltage subharmonics on cage induction machine. International Journal of Electrical Power&Energy Systems, 111, 125–131. https://doi.org/10.1016/j.ijepes.2019.04.009
- 15. Gnaciński, P., Pepliński, M., Murawski, L., Szeleziński, A. (July 2019). Vibration of induction machine supplied with voltage containing subharmonics and interharmonics. IEEE Trans. Energy Convers., 34, 1928-1937, https://doi.org/10.1109/TEC.2019.2929534
- 16. Gnaciński, P., Klimczak, P. (2020). High-Power induction motors supplied with voltage containing subharmonics. Energies, 13, 5894, https://doi.org/10.3390/en13225894
- 17. Gnaciński, P., Muc, A., Pepliński, M. (December 2021). Influence of Voltage Subharmonics on Line Start Permanent Magnet Synchronous Motor. IEEE Access, 9, 164275–164281. https://doi.org/10.1109/ACCESS.2021.3133279
- 18. Gnaciński, P., Hallmann, D., Klimczak, P., Muc, A., Pepliński, M. (February 2021). Effects of voltage interharmonics on cage induction motors. Energies, 14(5), 1218. https://doi.org/10.3390/en14051218
- 19. Gnaciński, P., Muc, A., Pepliński, M. (2023). Line Start Permanent Magnet Synchronous Motor supplied with voltage containing subharmonics. Scientific Journals of the Maritime University of Szczecin, 74. https://repository.am.szczecin.pl/handle/123456789/2774
- 20. Ho, S. L. Fu, W. N. (2001). Analysis of indirect temperature-rise tests of induction machines using time stepping finite element method. IEEE Trans. on Energy Conversion, 16(1).
- 21. Kolagar, A.D., Shoulaie, A. (2011). Reduction of undesired harmonic components in a steel industrial plant with DC electric arc furnaces. Proc. Second Power Electronics, Drive Systems and Technologies Conf.
- 22. Maraaba, L.S., Milhem, A.S., Nemer, I.A., Al-Duwaish. H., Abido, M.A. (2020). Convolutional neural network-based inter-turn fault diagnosis in LSPMSMs. IEEE Access, 8, 81960–81970.
- 23. Nassif, A.B. (2019). Assessing the impact of harmonics and interharmonics of top and mudpump variable frequency drives in drilling rigs. IEEE Transactions on Industry Applications, 55(6), 5574–5583.
- 24. Pechivanidou, M.S.C., Kladas, A.G. (2019). Comparison of alternate LSPMSM topologies considering both transient and steady-state operating characteristics. IEEE Workshop on Electrical Machines Design, Control and Diagnosis (WEMDCD), Athens, 40–45.
- 25. Perez, R.X. (2022). Design, modeling and reliability in rotating machinery. Hoboken: Wiley.
- 26. Sethupathi, P., Senthilnathan, N. (2020). Comparative analysis of line-start permanent magnet synchronous motor and squirrel cage induction motor under customary power quality indices. Electrical Engineering, 102(3), 1339–1349.
- 27. Soltani, H., Davari, P., Zare, F., Blaabjerg, F. (2018). Effects of modulation techniques on the input current interharmonics of adjustable speed drives. IEEE Trans. Ind. Electron., 65, 167–178.
- 28. Sürgevil, T., Akpnar, E. (2009). Effects of electric arc furnace loads on synchronous generators and asynchronous motors. In Proc. of. International Conference on Electrical and Electronics Engineering ELECO2009. Turkey: Bursa. I-49–I-53.
- 29. Tabora, J.M., de Lima Tostes, M. E., de Matos, E.O., Bezerra, U. H. , Soares, T.M., de Albuquerque, B.S. (2020). Assessing voltage unbalance conditions in IE2, IE3 and IE4 classes induction motors. IEEE Access, 8, 186725–186739.
- 30. Tarasiuk, T. (2011). Estimator-analyzer of power quality: Part I – Methods and algorithms. Measurement: Journal of the International Measurement Confederation, 44(1), 238–247.9.
- 31. Tennakoon, S., Perera, S. and Robinson, D. (2008). Flicker attenuation—Part I: Response of three-phase induction motors to regular voltage fluctuations. IEEE Trans. Power Deliv., 23, 1207–1214.
- 32. Testa, A. et.al. (2007). Interharmonics: Theory and modelling. IEEE Trans. Power Deliv., 22, 2335–2348.
- 33. Tripp, H., Kim, D., Whitney, R. (1993). A Comprehensive Cause Analysis of a Coupling Failure Induced by Torsional Oscillations in a Variable Speed Motor. In Proceedings of the 22nd Turbomachinery Symposium. Texas A&M University. Turbomachinery Laboratories 23.
- 34. Xie, X., Zhang, X., Liu, H., Li, Y., Zhang, Ch. (2017). Characteristic analysis of subsynchronous resonance in practical wind farms connected to series-compensated transmissions. IEEE Trans. Energy Convers., 32, 1117–1126.
- 35. Zhiyuan, M., Xiong, M.W., Le, L., Zhong, X. (2017). Interharmonics analysis of a 7.5 kW air compressor motor. CIRED Open Access Proc. J., 1, 738–741.
Uwagi
1. Section "Mechanics"
2. Opracowanie rekordu ze środków MNiSW, umowa nr POPUL/SP/0154/2024/02 w ramach programu "Społeczna odpowiedzialność nauki II" - moduł: Popularyzacja nauki (2025).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-f35dfd14-77d9-4483-b8c9-6d84a751427c
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