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Case Study on Energy Reliability Applications and Mathematical Models in The Distribution Network

Year 2025, Volume: 15 Issue: 1, 8 - 14

Abstract

This study focuses on the reliability of power systems, examining it from technical, economic, and decision-making perspectives. Reliability is a crucial concept in assessing the ability of an energy system to operate smoothly and provide uninterrupted energy supply. First and foremost, it is pointed out that the majority of failures in power systems occur in distribution systems. This involves examining how customers might react to energy interruptions and the economic consequences of those reactions. At the component level, degradation models have been introduced to scrutinize reliability in greater detail. These models elucidate how components may degrade during system operation and how this degradation affects reliability. In conclusion, this study underscores the significance of integrating new technologies and renewable energy sources into energy systems. Additionally, it asserts that reliability and energy sustainability are two fundamental pillars for societal progress. As a result, the reliability and sustainability of energy systems hold critical importance in meeting the energy needs of societies and shaping the future of the energy sector.

References

  • [1] Medjoudj R, Aissani D, Haim KD. (2013). Power customer satisfaction and profitability analysis using multi-criteria decision making methods. International Journal of Electrical Power and Energy Systems, 45(1):331-339. DOI: 10.1016/j.ijepes.2012.08.062
  • [2] Van Castaren J. (2000), Reliability assessment in electrical power systems: The Weibull-Markov stochastic model. IEEE Transactions on Industry Applications. 2000;36(6)
  • [3] Medjoudj R, Aissani D, Boubakeur A, Haim KD. (2009), Interruption modeling in electrical power distribution systems usingWeibull-Markov model. Proceedings of the Institution of Mechanical Engineers (IMEchE), Part O: Journal of Risk and Reliability. 01-06-2009;223:145-157.
  • [4] Iberraken F, Medjoudj R, Medjoudj R, Aissani D. (2015), Combining reliability attributes to maintenance policies to improve high-voltage oil circuit breaker performances in the case of competing risks. Proceedings of the Institution of Mechanical Engineers, Part O: Journal of Risk and Reliability 2015. DOI:10.1177/1748006X15578572
  • [5] Kishore, T.S and Singal, S.K. (2014), Optimal economic planning of power transmission lines: A review, Renewable and Sustainable Energy Reviews, vol. 39, pp. 949–974
  • [6] Huang, Y. (2014), Electricity distribution network planning considering distributed generation, KTH School of Electrical Engineering, MSc Thesis
  • [7] Orfanos, G.A. Georgilakis P.A and Hatziargyriou, N.D, (2013), Transmission expansion planning of systems with increasing wind power integration, IEEE Transactions on Power Systems, vol.28, no.2, pp.1355-1362
  • [8] IEEE Standard for Interconnecting Distributed Resources with Electric Power Systems, IEEE Std 1547, 2003.
  • [9] Li, F. Song J. and Wang, M. (2011), A study on Statcom for voltage stability of wind power system, IEEE International Conference on Mechatronic Science, Electric Engineering and Computer, 19-22 August, 2011, Jilin, China.
  • [10] Ertay, M.M. ve Aydoğmuş Z. (2010), Statcom ile bir enerji iletim sisteminde gerilim kontrolü, Dumlupınar Üniversitesi Fen Bilimleri Enstitüsü Dergisi, syf. 91-105, sayı 21.
  • [11] Goa C. and Redfern M.A. (2010), A review of voltage control techniques of networks with distributed generations using on-load tap changer transformers, IEEE 45th International Power Engineering Conference, pp. 1-6, 31 August-3 September 2010, Cardiff, Wales.
  • [12] Aydın, F., Uyaroğlu, Y. ve Yalçın M.A., (2009) Enerji iletim sistemlerinde seri kapasitörlerin gerilim kararlılığı açısından sistem büyümelerine etkileri, 3. Enerji Verimliliği ve Kalitesi Sempozyumu, 21-22 Mayıs 2009, Kocaeli, Türkiye.
  • [13] Yalçınöz T., Altun H. ve Karadal H., (2004), Farklı topolojiye sahip MLP yapay sinir ağları ile enerji sistemlerinde gerilim kararlılığı analizi, Uluslararası Yapay Zeka ve Yapay Sinir Ağları Türk Sempozyumu, pp. 547-554, 10-11 Haziran 2004, İzmir, Türkiye.
  • [14] Deveraj D. and Jeevajyothi R., (2011), Impact of wind turbine systems on power system voltage stability, IEEE International Conference on Computer, Communication and Electrical Technology, pp. 411-416, 18-19 March 2011, Tamilnadu
  • [15] Shah R., Mithulananthan N., Bansal R.C., Lee K.Y. and Lomi A. (2011). Power system voltage stability as affected by large-scale PV penetration, IEEE International Conference on Electrical Engineering and Informatics, pp. 1-6, 17-19 July 2011, Bandung, Indonesia
  • [16] Elma İ. ve Yılmaz O. (2012). Güneydoğu Anadolu bölgesi gerilim çökme problemlerinin değerlendirilmesi, Elektrik-Elektronik ve Bilgisayar Mühendisliği Sempozyumu, 29 Kasım - 01 Aralık 2012, Bursa, Türkiye.
  • [17] Tur, M. R., Shobole, A., Wadi, M., & Bayindir, R. (2017). Valuation of reliability assessment for power systems in terms of distribution system, A case study. In 2017 IEEE 6th International Conference on Renewable Energy Research and Applications (ICRERA) (pp. 1114-1118)
  • [18] Tur M.R. (2021), Deployment of reserve requirements into the power systems considering the cost, lost, and reliability parameters based on sustainable energy. International Journal of Electrical Engineering & Education, 58(2):621-639. doi:10.1177/0020720920983535
  • [19] Hossain, E., Tür, M. R., Padmanaban, S., Ay, S., & Khan, I. (2018). Analysis and mitigation of power quality issues in distributed generation systems using custom power devices. IEEE Access, 6, 16816-16833.
  • [20] Wadi, M, Baysal, M., Shobole, A., & Tur M.R. (2020). Historical and monte carlo simulation-based reliability assessment of power distribution systems. Sigma Journal of Engineering and Natural Sciences, 38(3), 1527-1540.
  • [21] Duncan G.J, Overbye, T.J, Sarma, M.S, (2017), Power System Analysis and Design, Cengage Learning, ISBN: 978-1305632134
  • [22] Krause, P., Wasynczuk, O., Sudhoff, S.D., Pekarek, S., (2002), Analysis of Electric Machinery and Drive Systems, Wiley, ISBN: 978-0471143260
  • [23] Gridley J.H. (1967), Principals of Electrical Transmission Lines in Power and Communication, Pergamon Press, London, England.
  • [24] Miller R.H. and Malinowski J.H., (1993), Power System Operation, McGraw Hill Inc., New York, USA.
  • [25] M. H. Mondol, M. R. Tür, S. P. Biswas, M. K. Hosain, S. Shuvo and E. Hossain, "Compact Three Phase Multilevel Inverter for Low and Medium Power Photovoltaic Systems," in IEEE Access, vol. 8, pp. 60824-60837, 2020, doi: 10.1109/ACCESS.2020.2983131.
  • [26] Prakash, K., Lallu, A., Islam, F. R., ve Mamun, K. A. (2016). Review of power system distribution network architecture. In 2016 3rd Asia-Pacific World Congress on Computer Science and Engineering, 124-130. doi: https://doi.org/10.1109/APWC-on-CSE.2016.030
  • [27] Muñoz-Delgado, G., Contreras, J. ve Arroyo, J. M. (2015). Joint expansion planning of distributed generation and distribution networks. IEEE Transactions on Power Systems, 30(5), 2579-2590. doi: https://doi.org/10.1109/TPWRS.2014.2364960
  • [28] Koutsoukis, N. C., Georgilakis, P. S. ve Hatziargyriou, N. D. (2017). Multistage coordinated planning of active distribution networks. IEEE Transactions on Power Systems, 33(1), 32-44. doi: https://doi.org/10.1109/TPWRS.2017.2699696
  • [29] Tur, M. R. (2022). Investigation of Optimum Reserve Capacity Requirement in Ancillary Services with Extreme Learning Machine. Electric Power Components and Systems, 49(20), 1555-1566.
  • [30] R. Bayindir, M. Yesilbudak and U. Cetinkaya, "Load and short-circuit analyses of the electricity transmission system for industry regions in Ankara," 2015 International Conference on Renewable Energy Research and Applications (ICRERA), Palermo, Italy, 2015, pp. 1243-1247, doi: 10.1109/ICRERA.2015.7418607.
Year 2025, Volume: 15 Issue: 1, 8 - 14

Abstract

References

  • [1] Medjoudj R, Aissani D, Haim KD. (2013). Power customer satisfaction and profitability analysis using multi-criteria decision making methods. International Journal of Electrical Power and Energy Systems, 45(1):331-339. DOI: 10.1016/j.ijepes.2012.08.062
  • [2] Van Castaren J. (2000), Reliability assessment in electrical power systems: The Weibull-Markov stochastic model. IEEE Transactions on Industry Applications. 2000;36(6)
  • [3] Medjoudj R, Aissani D, Boubakeur A, Haim KD. (2009), Interruption modeling in electrical power distribution systems usingWeibull-Markov model. Proceedings of the Institution of Mechanical Engineers (IMEchE), Part O: Journal of Risk and Reliability. 01-06-2009;223:145-157.
  • [4] Iberraken F, Medjoudj R, Medjoudj R, Aissani D. (2015), Combining reliability attributes to maintenance policies to improve high-voltage oil circuit breaker performances in the case of competing risks. Proceedings of the Institution of Mechanical Engineers, Part O: Journal of Risk and Reliability 2015. DOI:10.1177/1748006X15578572
  • [5] Kishore, T.S and Singal, S.K. (2014), Optimal economic planning of power transmission lines: A review, Renewable and Sustainable Energy Reviews, vol. 39, pp. 949–974
  • [6] Huang, Y. (2014), Electricity distribution network planning considering distributed generation, KTH School of Electrical Engineering, MSc Thesis
  • [7] Orfanos, G.A. Georgilakis P.A and Hatziargyriou, N.D, (2013), Transmission expansion planning of systems with increasing wind power integration, IEEE Transactions on Power Systems, vol.28, no.2, pp.1355-1362
  • [8] IEEE Standard for Interconnecting Distributed Resources with Electric Power Systems, IEEE Std 1547, 2003.
  • [9] Li, F. Song J. and Wang, M. (2011), A study on Statcom for voltage stability of wind power system, IEEE International Conference on Mechatronic Science, Electric Engineering and Computer, 19-22 August, 2011, Jilin, China.
  • [10] Ertay, M.M. ve Aydoğmuş Z. (2010), Statcom ile bir enerji iletim sisteminde gerilim kontrolü, Dumlupınar Üniversitesi Fen Bilimleri Enstitüsü Dergisi, syf. 91-105, sayı 21.
  • [11] Goa C. and Redfern M.A. (2010), A review of voltage control techniques of networks with distributed generations using on-load tap changer transformers, IEEE 45th International Power Engineering Conference, pp. 1-6, 31 August-3 September 2010, Cardiff, Wales.
  • [12] Aydın, F., Uyaroğlu, Y. ve Yalçın M.A., (2009) Enerji iletim sistemlerinde seri kapasitörlerin gerilim kararlılığı açısından sistem büyümelerine etkileri, 3. Enerji Verimliliği ve Kalitesi Sempozyumu, 21-22 Mayıs 2009, Kocaeli, Türkiye.
  • [13] Yalçınöz T., Altun H. ve Karadal H., (2004), Farklı topolojiye sahip MLP yapay sinir ağları ile enerji sistemlerinde gerilim kararlılığı analizi, Uluslararası Yapay Zeka ve Yapay Sinir Ağları Türk Sempozyumu, pp. 547-554, 10-11 Haziran 2004, İzmir, Türkiye.
  • [14] Deveraj D. and Jeevajyothi R., (2011), Impact of wind turbine systems on power system voltage stability, IEEE International Conference on Computer, Communication and Electrical Technology, pp. 411-416, 18-19 March 2011, Tamilnadu
  • [15] Shah R., Mithulananthan N., Bansal R.C., Lee K.Y. and Lomi A. (2011). Power system voltage stability as affected by large-scale PV penetration, IEEE International Conference on Electrical Engineering and Informatics, pp. 1-6, 17-19 July 2011, Bandung, Indonesia
  • [16] Elma İ. ve Yılmaz O. (2012). Güneydoğu Anadolu bölgesi gerilim çökme problemlerinin değerlendirilmesi, Elektrik-Elektronik ve Bilgisayar Mühendisliği Sempozyumu, 29 Kasım - 01 Aralık 2012, Bursa, Türkiye.
  • [17] Tur, M. R., Shobole, A., Wadi, M., & Bayindir, R. (2017). Valuation of reliability assessment for power systems in terms of distribution system, A case study. In 2017 IEEE 6th International Conference on Renewable Energy Research and Applications (ICRERA) (pp. 1114-1118)
  • [18] Tur M.R. (2021), Deployment of reserve requirements into the power systems considering the cost, lost, and reliability parameters based on sustainable energy. International Journal of Electrical Engineering & Education, 58(2):621-639. doi:10.1177/0020720920983535
  • [19] Hossain, E., Tür, M. R., Padmanaban, S., Ay, S., & Khan, I. (2018). Analysis and mitigation of power quality issues in distributed generation systems using custom power devices. IEEE Access, 6, 16816-16833.
  • [20] Wadi, M, Baysal, M., Shobole, A., & Tur M.R. (2020). Historical and monte carlo simulation-based reliability assessment of power distribution systems. Sigma Journal of Engineering and Natural Sciences, 38(3), 1527-1540.
  • [21] Duncan G.J, Overbye, T.J, Sarma, M.S, (2017), Power System Analysis and Design, Cengage Learning, ISBN: 978-1305632134
  • [22] Krause, P., Wasynczuk, O., Sudhoff, S.D., Pekarek, S., (2002), Analysis of Electric Machinery and Drive Systems, Wiley, ISBN: 978-0471143260
  • [23] Gridley J.H. (1967), Principals of Electrical Transmission Lines in Power and Communication, Pergamon Press, London, England.
  • [24] Miller R.H. and Malinowski J.H., (1993), Power System Operation, McGraw Hill Inc., New York, USA.
  • [25] M. H. Mondol, M. R. Tür, S. P. Biswas, M. K. Hosain, S. Shuvo and E. Hossain, "Compact Three Phase Multilevel Inverter for Low and Medium Power Photovoltaic Systems," in IEEE Access, vol. 8, pp. 60824-60837, 2020, doi: 10.1109/ACCESS.2020.2983131.
  • [26] Prakash, K., Lallu, A., Islam, F. R., ve Mamun, K. A. (2016). Review of power system distribution network architecture. In 2016 3rd Asia-Pacific World Congress on Computer Science and Engineering, 124-130. doi: https://doi.org/10.1109/APWC-on-CSE.2016.030
  • [27] Muñoz-Delgado, G., Contreras, J. ve Arroyo, J. M. (2015). Joint expansion planning of distributed generation and distribution networks. IEEE Transactions on Power Systems, 30(5), 2579-2590. doi: https://doi.org/10.1109/TPWRS.2014.2364960
  • [28] Koutsoukis, N. C., Georgilakis, P. S. ve Hatziargyriou, N. D. (2017). Multistage coordinated planning of active distribution networks. IEEE Transactions on Power Systems, 33(1), 32-44. doi: https://doi.org/10.1109/TPWRS.2017.2699696
  • [29] Tur, M. R. (2022). Investigation of Optimum Reserve Capacity Requirement in Ancillary Services with Extreme Learning Machine. Electric Power Components and Systems, 49(20), 1555-1566.
  • [30] R. Bayindir, M. Yesilbudak and U. Cetinkaya, "Load and short-circuit analyses of the electricity transmission system for industry regions in Ankara," 2015 International Conference on Renewable Energy Research and Applications (ICRERA), Palermo, Italy, 2015, pp. 1243-1247, doi: 10.1109/ICRERA.2015.7418607.
There are 30 citations in total.

Details

Primary Language English
Subjects Electrical Engineering (Other)
Journal Section Research Article
Authors

Mehmet Rıda Tür 0000-0001-5688-4624

Early Pub Date July 1, 2025
Publication Date
Submission Date December 25, 2023
Acceptance Date December 11, 2024
Published in Issue Year 2025 Volume: 15 Issue: 1

Cite

APA Tür, M. R. (2025). Case Study on Energy Reliability Applications and Mathematical Models in The Distribution Network. European Journal of Technique (EJT), 15(1), 8-14. https://doi.org/10.36222/ejt.1409607

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