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AUTOMATION
To 60th Anniversary of Branch of the National Research University Moscow Power Engineering Institute in Smolensk (Smolensk branch of MPEI)
Название Linear induction motors for non-ferrous metallurgy
DOI 10.17580/nfm.2021.01.09
Автор Kurilin S. P., Dli M. I., Sokolov A. M.
Информация об авторе

Branch of the National Research University “Moscow Power Engineering Institute”, Smolensk, Russia:

S. P. Kurilin, Professor, Department of Electromechanical Systems, e-mail: sergkurilin@gmail.com

 

Branch of the National Research University “Moscow Power Engineering Institute”, Smolensk, Russia1 ; Moscow University for Industry and Finanse "Synergy", Moscow, Russia2:

M. I. Dli, Professor, Head of the Department of Information Technologies in Economics and Management1, Editor-in-Chief of "Journal of Applied Informatics”2, e-mail: midli@mail.ru

 

National Research University “Moscow Power Engineering Institute”, Moscow, Russia:

A. M. Sokolov, Master’s Degree Student, e-mail: ansokol98@mail.ru

Реферат

Application of linear induction motors (LIM) on enterprises of non-ferrous metallurgy involves accomplishing specific engineering and economic tasks of building a power unit of electric drive, engineering, modeling, designing, as well as technical and economic assessing of electric drive indicators. The paper presents an overview and analytical information on these issues, which allows industry specialists to perform a feasibility study of LIM usage. The prospects of LIM application in electric drives of processing and auxiliary equipment of non-ferrous metallurgy sub-sectors are justified and respective examples are given. The designing tasks of layout synthesis and calculation of the output characteristics with corresponding modeling aids are classified. It is established that there are no methods and means of solving both problems currently prevalent and accepted by professional community. Low operating rate of an electric drive and edge effects reduce energy data of LIM. At the same time, electric drives based on LIM or rotary motion electric motors are competitive variants of a linear electric drive. A mathematical model for layout synthesis of LIM is suggested. The model includes the means of forecasting estimation of electromagnetic, technical, weight-size and dynamic parameters of the object. On this basis, the main magnetic field of LIM was calculated. The LIM service life model calculation is implemented, what has allowed to evaluate cost-effectiveness of LIM application. It is established that in certain situations the use of a linear electric drive with LIM is advisable and cost-effective. The question of expediency of LIM usage in each concrete case should be settled based on a feasibility study.

The research was carried out with the financial support of the Russian Foundation for Basic Research in the framework of Scientific project No. 20-01-00283 and in the framework of the State task, project No. FSWF-2020-0019.

Ключевые слова Non-ferrous metallurgy, linear electric drive, technical and economic assessment, linear induction motor, layout synthesis, mathematical model, economic evaluation
Библиографический список

1. Voldek A. I. Induction MHD Machines with Liquid Metal Workpiece. Leningrad: Energiya, 1970. 271 p.
2. Yamamura S. Theory of Linear Induction Motors. Transl. from Eng. by T. A. Glazenko, V. I. Khrisanova. Leningrad: Energoatomizdat, 1983. 180 p.
3. Valdmanis Ya. Ya. Optimization of a Linear Induction MHD Machine with Regard to the Longitudinal Edge Effect. Izvestiya AN Latviiskoi SSR. Seriya Fizicheskikh i tekhnicheskikh nauk. 1968. No. 4. pp. 120–126.
4. Dukowicz J. K. Theory of Optimum Linear Induction Motors. Journal of Applied Physics. 1976. Vol. 47, Iss. 8. pp. 3690–3696.
5. Kant M., Maullet A. On the Optimization of Energy Transfers Between a Magnetic Field of Finite Extension and a Thin Conducting Plate. Journal of Applied Physics. 1973. Vol. 44, Iss. 7. pp. 3096–3101.
6. Mamedov F. A., Denisov V. N., Kurilin S. P., Khutorov D. V. Options for Defining a Mathematical Model of a Linear Machine. Elektrichestvo. 2000. No. 10. pp. 35–39.
7. Denisov V. N., Kurilin S. P. Engineering Model of a Linear Induction Motor. Elektrichestvo. 2011. No. 3. pp. 52–54.
8. Makarov L. N., Denisov V. N., Kurilin S. P. Designing and Modeling a Linear Electric Motor for Vibration-Technology Machines. Russian Electrical Engineering. 2017. Vol. 88, Iss. 3. pp. 166–169.
9. Kurilin S. P., Denisov V. N. Topological Aspects of the Theory of Asynchronous Electrical Machines. Smolensk: Izdatelstvo UNIVERSUM, 2019. 200 p.
10. Sarapulov F. N., Frizen V. E., Shvydkiy E. L., Smol’yanov I. A. Mathematical Modeling of a Linear-Induction Motor Based on Detailed Equivalent Circuits. Russian Electrical Engineering. 2018. Vol. 89, Iss. 4. pp. 270–274.
11. Sidorov O. Yu., Sarapulov F. N., Tomashevsky D. N. Mathematical Modeling of Electromechanical Characteristics of Linear Electromagnetic and Induction-Dynamic Motors. IOP Conference Series: Materials Science and Engineering. 2020. Vol. 950. 012020. DOI: 10.1088/1757-899x/950/1/012020
12. Smolyanov I., Sarapulov F., Tarasov F. Calculation of Linear Induction Motor Features by Detailed Equivalent Circuit Method Taking Into Account Non-Linear Electromagnetic and Thermal Properties. Computers and Mathematics with Applications. 2019. Vol. 78, Iss. 9. pp. 3187–3199.
13. Sarapulov F. N., Goman V., Trekin G. E. Temperature Calculation for Linear Induction Motor in Transport Application with Multiphysics Approach. IOP Conference Series: Materials Science and Engineering. 2020. Vol. 966. 012105. DOI: 10.1088/1757-899x/966/1/01210
14. Sarapulov F. N., Smolyanov I. A. Research of Drive Linear Induction Motor for Conveyor Train. Izvestiya Vysshikh Uchebnykh Zavedenii. Elektromekhanika (Russian Electromechanics). 2019. Vol. 62, Iss. 1. pp. 39–43.
15. Smolyanov I., Shmakov E., Gasheva D. Research of Linear Induction Motor as Part of Driver by Detailed Equivalent Circuit. 2019 International Russian Automation Conference (RusAutoCon). DOI: 10.1109/RUSAUTOCON.2019.8867757
16. Kurilin S. P., Denisov V. N., Dli M. I., Bobkov V. I. Scientific and Technical Directions of Improvement of Electric Motors for Non-Ferrous Metallurgy. Non-ferrous Metals. 2019. No. 2. pp. 53–58. DOI: 10.17580/nfm.2019.02.09
17. Kurilin S. P., Dli M. I., Rubin Y. B., Chernovalova M. V. Methods and Means of Increasing Operation Efficiency of the Fleet of Electric Motors in Non-Ferrous Metallurgy. Non-ferrous Metals. 2020. No. 2. pp. 73–78. DOI: 10.17580/nfm.2020.02.09

Полный текст статьи Linear induction motors for non-ferrous metallurgy
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