Development of leakage resistance monitoring scheme adapted to the changes of network isolation parametres

Authors

  • Александр Александрович Харитонов SHEI "National University of Krivoy Rog", XXII Party Congress 11, Krivoy Rog, Ukraine, 50027, Ukraine https://orcid.org/0000-0002-4638-6055
  • Анатолий Григорьевич Ликаренко State Higher Educational Institution "National University of Krivoy Rog" XXII Party Congress 11, Krivoy Rog, Ukraine, 50027, Ukraine https://orcid.org/0000-0003-4331-1768
  • Ольга Евгеньевна Мельник State Higher Educational Institution "National University of Krivoy Rog" XXII Party Congress 11, Krivoy Rog, Ukraine, 50027, Ukraine https://orcid.org/0000-0002-7517-6815
  • Надежда Николаевна Ляхова State Higher Educational Institution "National University of Krivoy Rog" XXII Party Congress 11, Krivoy Rog, Ukraine, 50027, Ukraine https://orcid.org/0000-0002-2117-0530

DOI:

https://doi.org/10.15587/1729-4061.2014.27878

Keywords:

isolation, leakage, capacitance, scheme factor, relay, functional failure, protective shutdown, control current, monitoring

Abstract

Research materials show the effect of isolation capacitance on the conditions of leakage protection operation on alternating control current. The isolation monitoring method, based on using a differential current transformer was applied. To eliminate the destabilizing effect of changes in network isolation capacitance on the leakage relay operation conditions, conditions of adaptation of measuring element to this parameter were found. The research studies have allowed to develop functional diagram of leakage relay, in which functional failures such as the effect of unrecorded leakage currents from the rectified voltage poles on the measuring elements that are configured only to interact with the control current, formed by a special control current source; uncontrolled excess of value of leakage relay, allowable according to the performance charateristics by the actual network isolation capacitance, leading to functional failure because of the failure to provide standard for short-term leakage current through the human body were eliminated. The proposed scheme ensures performing protection functions such as continuous monitoring of the isolation resistance and current leakage values.

Author Biographies

Александр Александрович Харитонов, SHEI "National University of Krivoy Rog", XXII Party Congress 11, Krivoy Rog, Ukraine, 50027

Senior Lecturer

Department of electricity and energy management

Анатолий Григорьевич Ликаренко, State Higher Educational Institution "National University of Krivoy Rog" XXII Party Congress 11, Krivoy Rog, Ukraine, 50027

Рrofessor of department

Department of Automated electromechanical systems in industry and transport

Ольга Евгеньевна Мельник, State Higher Educational Institution "National University of Krivoy Rog" XXII Party Congress 11, Krivoy Rog, Ukraine, 50027

Рrofessor of department

Department of electricity and energy management

Надежда Николаевна Ляхова, State Higher Educational Institution "National University of Krivoy Rog" XXII Party Congress 11, Krivoy Rog, Ukraine, 50027

Master

Department of Automated electromechanical systems in industry and transport

References

  1. 1. Sinchuk, O. N., Guzov, E. S., Likarenko, A. G., Zhivotovsky, A. G. (2009). Electrical safety at mine haulage. Kiev: Technіka, 188.

    2. PD 6519-1:1995, IEC 60479-1:1994 Guide to effects of current on human beings and livestock. General aspects. (April 1995). Replaced By: DD IEC/TS 60479-1:2005. Available: http://www.bjep.org.cn/UploadFiles/Users/admin/2013/p/ admin20130505153537204.pdf.

    3. Sinchuk, O. N., Kharitonov, A. A. (2013). Evaluation of electrical parameters of the traction contact networks iron ore mines. Electromechanical and energy saving system, № 24, 93-99.

    4. Likarenko, A. G. (1976). Study and improvement of protective switching-off of electric networks with voltage up to 1000 In mines and quarries. Moscow: MHI, 152.

    5. Milonov, A. N. (1972). To the elaboration of the locking leakage relay for mine contact networks. Proceedings of Perm Polytechnic Institute, № 117, 25-31.

    6. Melnikov, Yu. F. (1978). Research and development of protection devices shaft traction networks and substations. Moscow: MHI, 15.

    7. Shtepan, F.; In: Mozyr, V. I. (2001). Protective cutout Device, controlled by the differential current. Prague, 81.

    8. Вondarenko, E. A. (2012). Determination technique of overload capacity of contact voltage and currents. Materials of the 2dn International scientific conference "European Science and Technology", May 9th-10th, 2012. Wiesbaden, Germany: «Bildungszentrum Rodnik e. V.», Vol. II, 189–193.

    9. Yadav, M., Akashe, S., Goswami, Y. (2011). Analysis of Leakage Reduction Technique on Different SRAM Cells. International Journal of Engineering Trends and Technology, Vol 2, Iss 3, 78–83.

    10. Zellagui, M., Benabid, R., Chaghi, A., Boudour, M. (2013). Impact of GCSC on IDMT directional overcurrent relay in the presence of phase to earth fault. Serbian Journal of Electrical Engineering, Vol. 10, № 3, 381–398. http://dx.doi.org/10.2298/sjee130505011z

    11. Shulika, N. M., Sirota, I. M., Bogachenko, A. E. (1990). Monitoring the insulation condition of the electrical networks. Kiev: Institute of electrodynamics, 41.

    12. Kolosyuk, B. N. (1980). Protective shutdown of the mine electrical systems. Moscow: Nedra, 463.

    13. Bunko, C. A., Volotovsky, C. A., Pivnyak, G. G. (1978). Improving the safety of mining electric haulage. Moscow: Nedra, 200.

    14. Jivotovsky, A. G., Likarenko, A. G. (15.06.77). Device for protection against electrical leakage in the contact network with the cyclical interruption of the load circuit. Copyright certificate 562032 the USSR, MKI NON 3/16. № 22.

    15. The research and development of reliable current protection leakage current in the shaft of the contact network of electric transport. (1978). VNIIBTG. Copy № B 692560, 158.

Published

2014-10-21

How to Cite

Харитонов, А. А., Ликаренко, А. Г., Мельник, О. Е., & Ляхова, Н. Н. (2014). Development of leakage resistance monitoring scheme adapted to the changes of network isolation parametres. Eastern-European Journal of Enterprise Technologies, 5(8(71), 4–8. https://doi.org/10.15587/1729-4061.2014.27878

Issue

Section

Energy-saving technologies and equipment