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Analysis of sectionalizing switch placement in medium voltage distribution networks in the aspect of improving the continuity of power supply

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The paper addresses the problem of placement of sectionalizing switches in medium voltage distribution networks. Proper placement of sectionalizing switches is one of the elements leading to higher power networks reliability. The methods of optimal allocation of such switches in a MV distribution network are presented in the paper. SAIDI was used as a criterion for the sectionalizing switches placement. For selecting optimum placements, three methods were used: brute force method, evolutionary algorithm and heuristic algorithm. The calculations were performed for a real MV network.
Rocznik
Strony
459--466
Opis fizyczny
Bibliogr. 29 poz., rys., tab.
Twórcy
autor
  • AGH University of Science and Technology, Faculty of Electrical Engineering, Automatics, Computer Science and Biomedical Engineering, Department of Electrical and Power Engineering, al. Mickiewicza 30, 30-059 Kraków, Poland
autor
  • AGH University of Science and Technology, Faculty of Electrical Engineering, Automatics, Computer Science and Biomedical Engineering, Department of Electrical and Power Engineering, al. Mickiewicza 30, 30-059 Kraków, Poland
Bibliografia
  • [1] Journal of Laws of the Republic of Poland, “Act of 20 February 2015 on renewable energy sources”, Journal of Laws, item 478, (2015) [in Polish].
  • [2] K. Sroka and D. Złotecka, “The risk of large blackout failures in power systems”, Archives of Electrical Engineering 68(2), 411‒426 (2019).
  • [3] P. Szmitkowski, A. Gil-Świderska, and S. Zakrzewska, “Electrical energy infrastructure in Poland and its sensitivity to failures as part of the energy security system”, Polityka Energetyczna – Energy Policy Journal, 22(1), 59‒80 (2019).
  • [4] R. Hari Kumar, N. Mayadevi, V.P. Mini, and S. Ushakumariw, “Transforming distribution system into a sustainable isolated microgrid considering contingency”, Bull. Pol. Ac.: Tech. 67(5), 871‒881 (2019).
  • [5] J. Paska, “Chosen aspects of electric power system reliability optimization”, Eksploatacja i Niezawodnosc – Maintenance and Reliability 15 (2): 202–208 (2013).
  • [6] A. Abiri-Jahromi, M. Fotuhi-Firuzabad, M. Parvania, and M. Mosleh, “Optimized sectionalizing switch placement strategy in distribution systems”, IEEE Trans. Power Deliv. 27(1), 362‒370 (2012).
  • [7] A. Heidari, V.G. Agelidis, and M. Kia, “Considerations of sectionalizing switches in distribution networks with distributed generation”, IEEE Trans. Power Deliv. 30(3), 1401‒1409 (2015).
  • [8] K. Siirto, A. Safdarian, M. Lehtonen, and M. Fotuhi-Firuzabad, “Optimal distribution network automation considering earth fault events”, IEEE Trans. Smart Grid 6(2), 1010‒1018 (2015).
  • [9] Z. Galias, “Tree-Structure Based Deterministic Algorithms for Optimal Switch Placement in Radial Distribution Networks”, IEEE Trans. Power Syst. 34(6), 4269‒4278, (2019).
  • [10] D.P. Bernardon, M. Sperandio, V.J. Garcia, J. Russi, L.N. Canha, A.R. Abaide, and E.F.B. Daza, “Methodology for allocation of remotely controlled switches in distribution networks based on a fuzzy multi-criteria decision making algorithm”, Electr. Power Syst. Res. 81(2), 414‒420 (2011).
  • [11] L.G. Wesz da Silva, R.A. Fernandes Pereira, J. Rivier Abbad, and J.R. Sanches Mantovani, “Optimized placement of control and protective devices in electric distribution systems through reactive tabu search algorithm”, Electr. Power Syst. Res. 78(3), 372‒381 (2008).
  • [12] H. Falaghi, M.R. Haghifam, and C. Singh, “Ant colony optimization-Based method for placement of sectionalizing switches in distribution networks using a fuzzy multiobjective approach”, IEEE Trans. Power Deliv. 24(1), 268‒276 (2009).
  • [13] W. Tippachon, and D. Rerkpreedapong, “Multi objective optimal placement of switches and protective devices in electric power distribution systems using ant colony optimization”, Electr. Power Syst. Res. 79(7), 1171‒1178 (2009).
  • [14] L. Ma, X. Lu, S. Wang, and H. Miyajima, “Optimal switch placement in distribution networks under different conditions using improved GA”, Proceedings of the 2nd Second International Conference on Computational Intelligence and Natural Computing Proceedings (CINC), Wuhan, China, 13‒14 September, pp. 236‒239 (2010).
  • [15] M. Nematollahi and M. Tadayon, “Optimal sectionalizing switches and DG placement considering critical system condition”, Proceedings of the 21st Iranian Conference on Electrical Engineering (ICEE), Mashhad, Iran, pp. 1‒6 (2013).
  • [16] J. Nosratian Ahour, M. Rostami, V. Taheri Majd, M. Rashidbeygi, and H. Moazen, “Optimal switch placement with revised genetic algorithm in distribution system”, Proceedings of the 21st Conference on Electrical Power Distribution Networks Conference (EPDC), Karaj, Iran, pp. 54‒59 (2016).
  • [17] J.R. Bezerra, G.C. Barroso, R.P.S. Leão, and R.F. Sampaio, “Multiobjective optimization algorithm for switch placement in radial power distribution networks”, IEEE Trans. Power Deliv. 30(2), 545‒552 (2015).
  • [18] S. Golestani, and M. Tadayon, “Optimal switch placement in distribution power system using linear fragmented particle swarm optimization algorithm preprocessed by GA”, Proceedings of the 8th International Conference on the European Energy Market (EEM), Zagreb, Croatia, pp. 537‒542 (2011).
  • [19] A. Moradi and M. Fotuhi-Firuzabad, “Optimal switch placement in distribution systems using trinary particle swarm optimization algorithm”, IEEE Trans. Power Deliv. 23(1), 271‒279 (2008).
  • [20] C.S. Chen, C.H. Lin, H.J. Chuang, C.S. Li, M.Y. Huang, and C.W. Huang, “Optimal placement of line switches for distribution automation systems using immune algorithm”, IEEE Trans. Power Syst. 21(3), 1209‒1217 (2006).
  • [21] W. Bąchorek and M. Benesz, “Influence of sectionalizing switches placement on the continuity of customers power supply”, Proceedings of the Progress in Applied Electrical Engineering (PAEE), Koscielisko, Poland, pp. 1‒5 (2018).
  • [22] P.M.S. Carvalho, L.A.F.M. Ferreira, and A.J. Cerejo da Silva, “A decomposition approach to optimal remote controlled switch allocation in distribution systems”, IEEE Trans. Power Deliv. 20(2), 1031‒1036 (2005).
  • [23] F. Rahmawati, N. Hariyantob, M. Nurdinb, and Yasunori, M., “Optimal switch placement in radial distribution system based on reliability worth analysis”, Proceedings of the International Conference on Electrical Engineering and Informatics (ICEEI), Denpasar, Indonesia, pp. 568‒572 (2015).
  • [24] Y. Xu, C.C. Liu, K.P. Schneider, and D.T. Ton, “Placement of remote-controlled switches to enhance distribution system restoration capability”, IEEE Trans. Power Syst. 31(2), 1139‒1150 (2016).
  • [25] W. Bąchorek and M. Benesz, “Influence of distributed generation on sectionalizing switches placement in MV distribution networks”, Przegląd Elektrotechniczny 96(4), 114‒118 (2020).
  • [26] W. Bąchorek, “Optimal arrangement of sectionalizing switches in medium voltage distribution network”, Przegląd Elektrotechniczny 90(4), 24‒27 (2014).
  • [27] D.E. Goldberg, “Genetic algorithm in search, optimization and machine learning” Addison-Wesley Publishing Company, Inc., 1989.
  • [28] R. Billinton and R.N. Allan, “Reliability evaluation of power systems”, Plenum Press: New York, USA, 1996.
  • [29] W. Kopterski, „The Costs of Keeping Reliability in Power Enterprise”, PhD Thesis, Politechnika Opolska, 2008 [in Polish].
Uwagi
PL
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2020).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-818fcd3e-27d2-49bc-b4a7-8387817468cc
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