IMPROVING THE EFFICIENCY OF USING AN AUTOTRANSFORMER BY VARYING THE CURRENT DENSITY IN INDIVIDUAL SECTIONS OF ITS WINDING
ARTICLE_5_PDF (Українська)

Keywords

transformer-and-switches executive
discrete smart transformer
AC voltage converter
partitioned winding
variation of current density
thermal processes трансформаторно-ключова виконавча структура
discrete smart transformer
перетворювач напруги змінного струму
секціонована обвитка
варіювання густини струму
тепловий стан

How to Cite

[1]
Липківський , К. and Можаровський , А. 2019. IMPROVING THE EFFICIENCY OF USING AN AUTOTRANSFORMER BY VARYING THE CURRENT DENSITY IN INDIVIDUAL SECTIONS OF ITS WINDING. Tekhnichna Elektrodynamika. 6 (Oct. 2019), 030. DOI:https://doi.org/10.15407/techned2019.06.030.

Abstract

The efficiency of using the installed power of a transforming element with a sectioned winding in the composition of transformer-and-switches structures (TSES)  of AC voltage converters is an important indicator that determines the parameters and weight and size characteristics of the device in generally. device as a whole. Such transforming elements in the process of performing the TSES of their functional purpose are characterized by an uneven change in the magnitudes of the currents in individual sections and, as a consequence, a change in the total current load of the turns. In order to increase the efficiency of using the autotransformer, it has been proposed to apply selective variation of the current density in separate sections of the coils with control of its thermal state. A specific example is given of performing this procedure, which confirmed the possibility of such an increase.  References 9, table 1, figures 4.

https://doi.org/10.15407/techned2019.06.030
ARTICLE_5_PDF (Українська)

References

Willems W., Vandoorn T.L., De Kooning, J.D., Vandevelde L. Development of a smart transformer to control the power exchange of a microgrid. 4th International Conf. Innovative Smart Grid Technologies Conference Europe (ISGT - Europe 2013), IEEE, 6-9 Oct. 2013, At Lyngby, Denmark. Pp. 1–5.

DOI: http://dx.doi.org/ 10.1109/ISGTEurope.2013.6695300

Gehm, A.A., Quevedo, J.D.O., Mallmann, E.A., Fricke, L.A., Martins, M.L.D.S., & Beltrame, R.C. (2015, November). Development of a supervisory system for an intelligent transformer. In Power Electronics Conference and 1st Southern Power Electronics Conference (COBEP/SPEC), 2015 IEEE 13th Brazilian. (Pp. 1-6).

DOI: http://dx.doi.org/10.1109/COBEP.2015.7420242

Lypkivskyi K.O. Transformer-and-Switches Executive Structures of Alternating Current Voltage Converters. Kiev: Naukova Dumka, 1983. 216 p. (Rus)

Bimal, K. Bose. Power Electronics – Why the Field is so Exciting. IEEE Power Electronics Society Newslet-ter Fourth Quarter. 2007. Vol. 19. No 4. Pp. 11–20.

Lypkivskyi K.O., Mozharovskyi A.G. Simulation of the transformative elements with sectioning of the wind-ings as part of AC voltage source converters. Tekhnichna Elektrodynamika. 2016. No 3. Pp. 39–44. (Ukr)

DOI: https://doi.org/10.15407/techned2016.03.039

Lypkivskyi K.O., Mozharovskyi A.G. Influence of distribution of energy losses in the elements of the auto-transformer of the transformer-and-switches executive structure of the voltage stabilizer on the efficiency of using its installed power. Pratsi Instytutu Elektrodynamiky Natsionalnoi Akademii Nauk Ukrainy. 2019. No 53. Pp. 6064. (Ukr)

Belopolskii I.I., Karetnikova E.I., Pikalova L.G. Calculation of low-power transformers and reactors. Moskva: Energiia, 1973. 400 p. (Rus)

GOST 27427.1-83 Rolled Electrical Steel. (Rus)

COMSOL Multiphysics – http://www.comsol.com.

Creative Commons License

This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.

Copyright (c) 2022 Array

Abstract views: 215 | PDF Downloads: 14

Downloads