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DOI: https://doi.org/10.15407/techned2018.03.048

DETERMINATION OF THE POWER OF TRANSFORMING ELEMENTS IN THE RECONFIGURATION OF THE TRANSFORMER-AND-SWITCHES EXECUTIVE STRUCTURES OF AC VOLTAGE STABILIZERS. ANALYSIS OF INFLUENCE FACTORS

Journal Tekhnichna elektrodynamika
Publisher Institute of Electrodynamics National Academy of Science of Ukraine
ISSN 1607-7970 (print), 2218-1903 (online)
Issue No 3, 2018 (May/June)
Pages 48 – 55

 

Authors
K.O. Lypkivskyi*, A.G. Mozharovskyi**
Institute of Electrodynamics National Academy of Sciences of Ukraine,
pr. Peremohy, 56, Kyiv, 03057, Ukraine,
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* ORCID ID : http://orcid.org/0000-0002-3292-1360
** ORCID ID : http://orcid.org/0000-0001-9801-2728

 

Abstract

The installed power of the transformer element of the transformer-and-switches executive structure (TSES) of the AC voltage stabilizer is determined not only by the power of the load, but also by the specified range of the input voltage variation, within which the output voltage remains unchanged (with an allowable error) and by the selected configuration of the TSES. Analytical dependencies connecting these parameters are proposed for an array of possible configurations of TSES with 6, 7, 8 switch elements and expedient configurations are determined. Specific examples of calculations are presented. However, the paper has a generalizing character, since it outlines an algorithm for creating a TSES with a large number of switch elements. References 9, figures 9, tables 3.

 

Key words: transformer-and-switches executive, tap changing transformer, discrete smart transformer, AC voltage stabilizers, converting field, range of voltage stabilization, reconfiguration, installed power of the transformer.

 

Received:    14.11.2017
Accepted:    29.11.2017
Published:  13.04.2018

 

References

1. Lypkivskyi K.O., Mozharovskyi A.G. Simulation of the transformative elements with sectioning of the windings as part of AC voltage source converters. Tekhnichna Elektrodynamika. 2016. No 3. Pp. 39–44. (Ukr)
2. Lypkivskyi K.O. Features of the reconfiguration of the transformer-and-switches executive structure of the stabilizer-AC voltage regulator. Tekhnichna Elektrodynamika. 2017. No 5. Pp. 47–52. (Ukr)
3. Lypkivskyi K.O. Transformer-and-Switches Executive Structures of Alternating Current Voltage Converters. Kiev: Naukova Dumka, 1983. 216 p. (Rus)
4. Glossary of electrical terms. Available at: Available at: http://chillers.ru/glossary/electro.php (accessed 07.11.2017).
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6. Huang M., Dong L., Zhang J., Wang J., Hao Z. Research on the Differential Protection Algorithm of Multi-Tap Special Transformer. Journal of Power and Energy Engineering. 2014. Vol. 2. No 09. Pp. 98–105. DOI:  https://doi.org/10.4236/jpee.2014.29014
7. Ram G., Prasanth V., Bauer P., Barthlein, E.M. Comparative analysis of on-load tap changing (OLTC) transformer topologies. 16th International Conf. Power Electronics and Motion Control Conference and Exposition (PEMC), IEEE, 21-24 Sep. 2014, Antalya, Turkey. Pp. 918–923. DOI:  https://doi.org/10.1109/EPEPEMC.2014.6980624
8. 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. Pp. 1–5.
9. Electronic Tap Switching Voltage Regulator. Available at: http://www.ustpower.com/comparing-automatic-voltage-regulation-technologies/avr-guide-electronic-tap-switching-voltage-regulator/ (accessed 07.11.2017).

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