Determination of the Rational Mode of Mutual Loading of Traction Engines of Main Electric Locomotives
DOI:
https://doi.org/10.15802/stp2022/265370Keywords:
load, test, heatingt, curren, voltage, traction electric machine, test mode, time, efficiency, coefficient, temperatureAbstract
Purpose. The actual state of many of the existing testing stations for traction electric machines does not meet modern requirements for the organization of repair and technical control. At most of these stations, mutual loading stands with low energy efficiency are used. The purpose of the work is to determine the rational mode of loading electric traction machines, which will ensure a decrease in the total power of the power sources of the test station, an increase in energy efficiency and the quality of tests. Methodology. The methodological basis of the work is the general theoretical provisions and principles of the systematic approach of theoretical electrical engineering, theoretical mechanics, the theory of electric machines and converters. The substantiation of the energy and electromechanical principles of mutual loading of traction electric machines is performed using the basics of generalization and systematization of physical quantities and concepts, the theory of electric circuits, the theory of mechanical systems, and the theory of electric machines. The analysis of thermal processes and energy parameters of the electric machine test system was performed using the theory of heating a homogeneous solid body and known methods of calculating thermal circuits. The results of theoretical studies have been confirmed experimentally. Findings. The analysis of the expression for determining the energy efficiency coefficient of heating the windings of traction electric machines, obtained in the work, shows that the starting current is the most rational when testing the traction motors of electric rolling stock of mainline transport for heating. The use of this load current allows reducing the electricity consumption for tests by 20-30% (compared to the hourly mode) without reducing the quality of tests, as well as reduces the time of heating tests by three to four times. Originality. The expediency of conducting the heating tests of traction motors of main electric rolling stock with a load current equal to the current of the start-up mode has been scientifically substantiated, which ensures the energy efficiency increase of the tests and a corresponding reduction in the total cost of electricity for acceptance tests. The method of analytical determination of the weighting coefficients of influence on the temperature excess of the armature winding of electric losses was proposed, the use of which allows evaluating the influence of the mutual loading modes of the tested traction electric machines on the discrepancy degree of the thermal loads of their armature windings. Practical value. The results of theoretical studies allow determining the rational modes of mutual loading of traction electric machines, which make it possible to reduce the electricity consumption for conducting their heating tests and shorten the time of conducting heating tests. In addition, it becomes possible to propose a method of evaluating the quality of acceptance tests of traction electric machines, which takes into account the discrepancy degree in the thermal loads of the windings.
References
Hetman, H. K. (2015). Teorija elektrychnoji tjaghy: pidruchnyk (Vol. 1). Dnipropetrovsk: Akcent PP. (in Ukrainian)
Mashiny elektricheskie vrashchayushchiesya tyagovye. Obshchie tekhnicheskie usloviya (GOST 2582-2013, IDT; IEC 60349-1:2010, NEQ; IEC 60349-2:2010, NEQ), 50 DSTU GOST 2582:2017. (2017). (in Russian)
Pravyla remontu elektrychnykh mashyn elektrovoziv i elektropojizdiv. CT-0063. (2003). Kyiv: Vydavnichyj dim «SAM». (in Ukrainian)
Afanasov, A. M. (2015). Increase of energy efficiency of testing of traction electric machines of direct and pulsating current. Electrical Engineering & Electromechanics, 1, 12-15. DOI: https://doi.org/10.20998/2074-272X.2015.1.02 (in English)
Afanasov, A. M., Shapovalov, O. S., Holik, S. N., Arpul, S. V., & Bilukhin, D. S. (2020). Energy efficiency of heat tests for traction electric machines. In IOP Conference Series: Materials Science and Engineering (Vol. 985, pp. 21-30). DOI: https://doi.org/10.1088/1757-899X/985/1/012026 (in English)
Jacobs, S., Vandenbossche, L., & Attrazic, E. (2019). How Electrical Steel Optimizes Traction Electric Machine Design. In IEEE Electrification Magazine (Vol. 7, pp. 39-48). DOI: https://doi.org/10.1109/MELE.2018.2889550 (in English)
Popa, G., Ilie, C., & Arsene, S. (2010). Stand for testing electrical machines up to 1,500 kilowatts used in railway traction. In 2010 IEEE International Conference on Automation, Quality and Testing, Robotics (AQTR) (pp. 64-70). DOI: https://doi.org/10.1109/AQTR.2010.5520829 64-70 (in English)
Sequeira, J. L., & Casimiro, T. M. (2018). Portable steam engines and traction engines and their use in rural areas: The case of Lezíria Ribatejana, Portugal. Industrial Archaeology Review, 40, 11-17. DOI: https://doi.org/10.1080/03090728.2018.1430921 (in English)
Sokol, Y., Sychenko, V., Voitovych, Y., Styslo, B., & Hubskyi, P. (2019). AC/DC Converter for DC Traction Power Supply System with High-Speed Train Operation. In 2019 IEEE 6th International Conference on Energy Smart Systems (ESS) (pp. 116-121). DOI: https://doi.org/10.1109/ESS.2019.8764207 (in English)
Sychenko, V., Antonov, A., Liashuk, V., Rudevich, N., Belukhin, D., Danylov, O., … & Bozhko, V. (2020). Increased controllability of the distributed traction system in emergency mode. In 2020 IEEE 7th International Conference on Energy Smart Systems (ESS) (pp. 58-62). DOI: https://doi.org/10.1109/ESS50319.2020.9160285 (in English)
Tudor, E., Strambeanu, D., & Fartan, M. (2021). Locomotive Diesel Engine Test Stand with Energy Recovery in the Electrical Network. In 2021 International Conference on Applied and Theoretical Electricity (ICATE) (pp. 1-6). DOI: https://doi.org/10.1109/ICATE49685.2021 (in English)
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2022 Science and Transport Progress
This work is licensed under a Creative Commons Attribution 4.0 International License.
Copyright and Licensing
This journal provides open access to all of its content.
As such, copyright for articles published in this journal is retained by the authors, under the terms of the Creative Commons Attribution 4.0 International License (CC BY 4.0). The CC BY license permits commercial and non-commercial reuse. Such access is associated with increased readership and increased citation of an author's work. For more information on this approach, see the Public Knowledge Project, the Directory of Open Access Journals, or the Budapest Open Access Initiative.
The CC BY 4.0 license allows users to copy, distribute and adapt the work in any way, provided that they properly point to the author. Therefore, the editorial board of the journal does not prevent from placing published materials in third-party repositories. In order to protect manuscripts from misappropriation by unscrupulous authors, reference should be made to the original version of the work.