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Dynamic analysis of a mechatronic drive system with an induction motor

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The paper presents research findings in the modelling and optimization of dynamic parameters of mechatronic systems with an induction motor. A mathematical model was developed to analyze currents in dynamic states of squirrel-cage rotors in the case of a line-to-line fault. The findings were verified experimentally using calculations for a 1.5 kW three-phase induction motor. The equations for a stationary 0x, 0y coordinate system relating to the stator were derived. The set of design variables selected in the optimization process contained parameters describing design features of the gear shafts and control units settings.
Rocznik
Strony
245--258
Opis fizyczny
Bibliogr. 29 poz., rys., tab.
Twórcy
autor
  • School of Mechanical Engineering, Yellow River Conservancy Technical Institute, Kaifeng, China
autor
  • School of Mechanical Engineering, Yellow River Conservancy Technical Institute, Kaifeng, China
Bibliografia
  • 1. Abbasi M.A., Husain A.R., Nik Idris N.R., Fasih ur Rehman S.M., 2021, Computationally efficient predictive torque control for induction motor drives based on flux positional errors and extended Kalman filter, IET Electric Power Applications, 15, 6, 653-667.
  • 2. Atiyah A., Sulc B., 2020, Role of asynchronous motor modelling in driven railway wheelset dynamical simulation model, 2020 21th International Carpathian Control Conference (ICCC), 1-6.
  • 3. Bast D., Kulchytska-Ruchka I., Schöps S., Rain O., 2020, Accelerated steady-state torque computation for induction machines using parallel-in-time algorithms, IEEE Transactions on Magnetics, 56, 2, 1-9.
  • 4. Berhausen S., Boboń A., 2018, Determination of high power synchronous generator subtransient reactances based on the waveforms for a steady state two-phase short-circuit, Applied Mathematics and Computation, 319, 538-550.
  • 5. Cirrincione M., Pucci M., Cirrincione G., Capolino G.-A., 2003, A new experimental application of least-squares techniques for the estimation of the induction motor parameters, IEEE Transactions on Industry Applications, 39, 5, 1247-1256.
  • 6. Draganescu F., Gheorghe M., Doicin C.V., 2003, Models of machine tool efficiency and specific consumed energy, Journal of Materials Processing Technology, 141, 1, 9-15.
  • 7. Fediakov V.V., Kornienko M.N., Zhuravleva L.A., 2020, Features of loss calculation in mechatronic modules on the basis of synchronous reluctance and induction AC electric drives, 2020 IEEE Conference of Russian Young Researchers in Electrical and Electronic Engineering (EIConRus), IEEE, St. Petersburg and Moscow, Russia, 639-643
  • 8. Gautam P.V., Kushwaha H.L., Kumar A., Kushwaha D.K., 2019, Mechatronics application in precision sowing: A review, International Journal of Current Microbiology and Applied Sciences, 8, 4, 1793-1807.
  • 9. German-Galkin S., Kozak M., 2018, Structural model of the electric drive with double-fed asynchronous machine and direct torque control, Multidisciplinary Aspects of Production Engineering, 1, 1, 41-45.
  • 10. Gryzlov A.A., Grigorev M.A., 2019, Frequency-response methods for synthesizing controlled high-speed electric drives of compressors, Russian Electrical Engineering, 90, 5, 364-369.
  • 11. He S., Sui X., Liu Z., Kang M., Zhou D., Blaabjerg F., 2020, Torque ripple minimization of a five-phase induction motor under open-phase faults using symmetrical components, IEEE Access, 8, 114675-114691.
  • 12. Jia J., Yan X., 2019, Development and application of on-line torque telemetry system for rolling mill based on WIFI signal transmission and high frequency induction power supply, Proceedings of the 3rd International Conference on Mechatronics Engineering and Information Technology, 861-868.
  • 13. Karlov D., Prokazov I., Bakshtanin A., Matveeva T., Kondratenko L., 2021, Optimizing neural network model performance for wind energy forecasting, International Review on Modelling and Simulations, 14, 3, 185-193.
  • 14. Korohodskyi V., Voronkov O., Rogovyi A., Kryshtopa S., Lysytsia O., Fesenko K., Bezridnyi V., Rudenko N., 2021, Influence of the stratified fuel-air charge pattern on economic and environmental indicators of a two-stroke engine with spark ignition, AIP Conference Proceedings, 2439, 020011.
  • 15. Kryshtopa S., Melnyk V., Dolishnii B., Korohodskyi V., Prunko I., Kryshtopa L., Zakhara I., Voitsekhivska T., 2019, Improvement of the model of forecasting heavy metals of exhaust gases of motor vehicles in the soil, Eastern-European Journal of Enterprise Technologies, 4, 10 (100), 44-51.
  • 16. Lohrasbi J., Sahai V., 1988, Magnetohydrodynamic heat transfer in two-phase flow between parallel plates, Applied Scientific Research, 45, 1, 53-66.
  • 17. Omelchenko E., Khramshin T., Tanich V., Kozhevnikov I., 2019, Dynamic computer model of traction asynchronous motor, 2019 IEEE Russian Workshop on Power Engineering and Automation of Metallurgy Industry: Research and Practice (PEAMI), 59-63.
  • 18. Panchenko A., Voloshina A., Titova O., Panchenko I., Caldare A., 2020, Design of hydraulic mechatronic systems with specified output characteristics, Proceedings of the 3rd International Conference on Design, Simulation and Manufacturing: The Innovation Exchange, Springer International Publishing, Cham, 42-51.
  • 19. Panchuk M., Kryshtopa S., Panchuk A., 2020, Innovative technologies for the creation of a new sustainable, environmentally neutral energy production in Ukraine, International Conference on Decision Aid Sciences and Application, DASA 2020, 9317165, 732-737.
  • 20. Qiao G., Liu G., Shi Z., Wang Y., Ma S., Lim T.C., 2018, A review of electromechanical actuators for More/All Electric aircraft systems, Proceedings of the Institution of Mechanical Engineers, Part C, 232, 22, 4128-4151.
  • 21. Rassõlkin A., Belahcen A., Kallaste A., Vaimann T., Lukichev D.V., Orlova S., Heidari H., Asad B., Pando Acedo J., 2020, Life cycle analysis of electrical motor-drive system based on electrical machine type, Proceedings of the Estonian Academy of Sciences, 69, 2, 162.
  • 22. Rosenberg R.M., 1966, On nonlinear vibrations of systems with many degrees of freedom, Advances in Applied Mechanics, Elsevier, Amsterdam, 9, 155-242.
  • 23. Solodkiy E.M., Dadenkov D.A., Kostygov A.M., 2018, Sensorless vector control of asynchronous machine based on reduced order Kalman filter, 2018 17th International Ural Conference on AC Electric Drives (ACED), IEEE, Piscataway, NJ, 1-5.
  • 24. Symak D., Sabadash V., Gumnitsky J., Hnativ Z., 2021, Kinetic regularities and mathematical modelling of potassium chloride dissolution, Chemistry and Chemical Technology, 15, 1, 148-152.
  • 25. Syromyatnikov D., Druzyanova V., Beloglazov A., Bakshtanin A., Matveeva T., 2021, Evaluation of the economic profitability of using renewable energy sources in agro-industrial companies, International Journal of Renewable Energy Development, 10, 4, 827-837.
  • 26. Yang J.Y., Ming Wang D., Ge Y.J., 2021, Design and implementation of hardware platform for bearingless induction motor control system, 2021 IEEE International Conference on Electrical Engineering and Mechatronics Technology (ICEEMT), Piscataway, NJ, 147-150.
  • 27. Zhong B., Ma L.L., 2021, Active disturbance rejection control and energy consumption of three-phase asynchronous motor based on dynamic system’s decoupling, Sustainable Energy Technologies and Assessments, 47, 101338.
  • 28. Zhu H., Nesler C., Divekar N., Ahmad M.T., Gregg R.D., 2019, Design and validation of a partial-assist knee orthosis with compact, backdrivable actuation, IEEE International Conference on Rehabilitation Robotics, Piscataway, NJ, 917-924.
  • 29. Zhuravlev A.M., Grigor’ev M.A., 2018, Calculation of electric drives with electric machines of unconventional design, Russian Electrical Engineering, 89, 4, 222-227.
Uwagi
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-32e2547d-84f5-488a-9ae4-292e55947093
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