Impact Of Distribution Generation On An Overcurrent Protection In Power System Network

In power system network, protection system is an important element that needs to be concerned because it is able to detect the presence of interference and can prevent damage from occurs. The protective device is needed to isolate the fault element quickly as possible to keep the healthy section of...

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Main Author: Che Ros, Nur Aida Hazirah
Format: Thesis
Language:English
English
Published: 2020
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record_format uketd_dc
institution Universiti Teknikal Malaysia Melaka
collection UTeM Repository
language English
English
advisor Hairi, Mohd Hendra

topic T Technology (General)
T Technology (General)
spellingShingle T Technology (General)
T Technology (General)
Che Ros, Nur Aida Hazirah
Impact Of Distribution Generation On An Overcurrent Protection In Power System Network
description In power system network, protection system is an important element that needs to be concerned because it is able to detect the presence of interference and can prevent damage from occurs. The protective device is needed to isolate the fault element quickly as possible to keep the healthy section of the system in normal operation when the faults occur in the power system network. The protection system can improve the reliability of the system to maintain the continuity of supply to the load. Overcurrent protection is among the important protection scheme on the power system network. The basic element of the overcurrent protection is overcurrent relay. An overcurrent relay will operate when the current exceeds its pick up value, but some problems have been raised due to the overcurrent relay fails to operate in the presence of a fault. The aim of overcoming the problems is by taking into the consideration of relay operation time of overcurrent protection for the power system network. The relay operation time will be analyzed. PSCAD software has been used as simulating tools to validate the model and analysis of the overcurrent protection system. The overcurrent protection analysis indicates the protection, performance based on the type of relay characteristic curve (standard inverse, very inverse and extremely inverse), type of fault applied (single line to ground, double line to ground and three phase to ground fault) and location such as source 132kV, grid 33kV, load 33kV and load 2 (11kV). Besides, the characteristic curve standard IEC 60255 and IEE C37.112 are used in order to analyze the effect of relay operation time. The result will be studied in order to understand the performance of the overcurrent protection system in the power system network.
format Thesis
qualification_name Master of Philosophy (M.Phil.)
qualification_level Master's degree
author Che Ros, Nur Aida Hazirah
author_facet Che Ros, Nur Aida Hazirah
author_sort Che Ros, Nur Aida Hazirah
title Impact Of Distribution Generation On An Overcurrent Protection In Power System Network
title_short Impact Of Distribution Generation On An Overcurrent Protection In Power System Network
title_full Impact Of Distribution Generation On An Overcurrent Protection In Power System Network
title_fullStr Impact Of Distribution Generation On An Overcurrent Protection In Power System Network
title_full_unstemmed Impact Of Distribution Generation On An Overcurrent Protection In Power System Network
title_sort impact of distribution generation on an overcurrent protection in power system network
granting_institution Universiti Teknikal Malaysia Melaka
granting_department Faculty of Electrical Enginering
publishDate 2020
url http://eprints.utem.edu.my/id/eprint/24930/1/Impact%20Of%20Distribution%20Generation%20On%20An%20Overcurrent%20Protection%20In%20Power%20System%20Network.pdf
http://eprints.utem.edu.my/id/eprint/24930/2/Impact%20Of%20Distribution%20Generation%20On%20An%20Overcurrent%20Protection%20In%20Power%20System%20Network%20-%20cdr%2021093.pdf
_version_ 1747834099296370688
spelling my-utem-ep.249302021-09-29T11:43:15Z Impact Of Distribution Generation On An Overcurrent Protection In Power System Network 2020 Che Ros, Nur Aida Hazirah T Technology (General) TK Electrical engineering. Electronics Nuclear engineering In power system network, protection system is an important element that needs to be concerned because it is able to detect the presence of interference and can prevent damage from occurs. The protective device is needed to isolate the fault element quickly as possible to keep the healthy section of the system in normal operation when the faults occur in the power system network. The protection system can improve the reliability of the system to maintain the continuity of supply to the load. Overcurrent protection is among the important protection scheme on the power system network. The basic element of the overcurrent protection is overcurrent relay. An overcurrent relay will operate when the current exceeds its pick up value, but some problems have been raised due to the overcurrent relay fails to operate in the presence of a fault. The aim of overcoming the problems is by taking into the consideration of relay operation time of overcurrent protection for the power system network. The relay operation time will be analyzed. PSCAD software has been used as simulating tools to validate the model and analysis of the overcurrent protection system. The overcurrent protection analysis indicates the protection, performance based on the type of relay characteristic curve (standard inverse, very inverse and extremely inverse), type of fault applied (single line to ground, double line to ground and three phase to ground fault) and location such as source 132kV, grid 33kV, load 33kV and load 2 (11kV). Besides, the characteristic curve standard IEC 60255 and IEE C37.112 are used in order to analyze the effect of relay operation time. The result will be studied in order to understand the performance of the overcurrent protection system in the power system network. 2020 Thesis http://eprints.utem.edu.my/id/eprint/24930/ http://eprints.utem.edu.my/id/eprint/24930/1/Impact%20Of%20Distribution%20Generation%20On%20An%20Overcurrent%20Protection%20In%20Power%20System%20Network.pdf text en public http://eprints.utem.edu.my/id/eprint/24930/2/Impact%20Of%20Distribution%20Generation%20On%20An%20Overcurrent%20Protection%20In%20Power%20System%20Network%20-%20cdr%2021093.pdf text en validuser https://plh.utem.edu.my/cgi-bin/koha/opac-detail.pl?biblionumber=118164 mphil masters Universiti Teknikal Malaysia Melaka Faculty of Electrical Enginering Hairi, Mohd Hendra 1. T. Ackermann, “Distributed generation : a definition,” vol. 57, pp. 195–204, 2001. 2. C. R. Sarimuthu, V. K. Ramachandaramurthy, K. R. Agileswari, and H. Mokhlis, “A review on voltage control methods using on-load tap changer transformers for networks with renewable energy sources,” Renew. Sustain. Energy Rev., vol. 62, pp. 1154–1161, 2016. 3. S. Mladenovic and A. A. Azadvar, “Sympathetic trip prevention by applying simple current relays,” IEEE PES Gen. Meet. PES 2010, pp. 1–7, 2010. 4. A. Zia, M. T. Arif, and A. M. T. Oo, “Impacts of Distributed Generators on the Protection System of Distribution Networks,” pp. 501–508, 2018. 5. M. Talal, M. Elmathana, and I. R. Energy, “The Effect of Distributed Generation on Power System Protection by Mohamed Talal Mohamed Elmathana Presented to the University of Exeter As a thesis for the degree of Masters by Research,” pp. 1–127, 2010. 6. “EU Energy Policy to 2050,” no. March, pp. 1–68, 2011. 7. S. Chowdhury, S. P. Chowdhury, and P. Crossley, Microgrids and active distribution networks. 2009. 8. A. H. Etemadi and R. Iravani, “Overcurrent and overload protection of directly voltage-controlled distributed resources in a microgrid,” IEEE Trans. Ind. Electron., vol. 60, no. 12, pp. 5629–5638, 2013. 9. “Introduction To System Protection,” Idaho Power, 2012. 10. M. P. Sanders, Protective Relaying: Principles and Applications [Book Reviews], vol. 13, no. 5. 2015. 11. M. Dewadasa, R. Majumder, A. Ghosh, and G. Ledwich, “Control and protection of a microgrid with converter interfaced micro sources,” 2009 Int. Conf. Power Syst. 12. ICPS ’09, no. December, pp. 27–29, 2009. 13. A. Girgis and S. Brahma, “Effect of distributed generation on protective device coordination in distribution system,” LESCOPE 2001 - 2001 Large Eng. Syst. Conf. Power Eng. Powering Beyond 2001, Conf. Proc., pp. 115–119, 2001. 14. H. Jiayi, J. Chuanwen, and X. Rong, “A review on distributed energy resources and MicroGrid,” Renew. Sustain. Energy Rev., vol. 12, no. 9, pp. 2472–2483, 2008. 15. Y. Pan, I. Voloh, and W. Ren, “Protection issues and solutions for protecting feeder with distributed generation,” 2013 66th Annu. Conf. Prot. Relay Eng. CPRE 2013, pp. 92–111, 2013. 16. E. Coster, J. Myrzik, and W. Kling, “Effect of DG on Distribution Grid Protection,” Distrib. Gener., 2010. 17. M. E. Baran and I. El-Markaby, “Fault analysis on distribution feeders with distributed generators,” IEEE Trans. Power Syst., vol. 20, no. 4, pp. 1757–1764, 2005. 18. S. Kumar, N. Das, and S. Islam, “Mitigation of sympathetic tripping leveraging on IEC 61850 protocol,” Australas. Univ. Power Eng. Conf. AUPEC 2018, pp. 1–6, 2018. 19. J. K. Tailor and A. H. Osman, “Restoration of fuse-recloser coordination in distribution system with high DG penetration,” IEEE Power Energy Soc. 2008 Gen. Meet. Convers. Deliv. Electr. Energy 21st Century, PES, pp. 1–8, 2008. 20. P. K. Naik, S. Member, M. Bahadornejad, and N. C. Nair, “IEC 61850 Based Smart Distribution Protection : Solutions for Sympathetic Tripping,” 2011. 21. J. Roberts, T. L. Stulo, and A. Reyes, “Sympathetic Tripping Problem Analysis and Solutions,” 24th Annu. West. Prot. Relay Conf. Spokane, Washingt., no. May 1998, 1997. 22. A. N. Stefanidi, I. A. Panos, A. N. Milioudis, and G. T. Andreou, “Sympathetic Tripping in a Field Case Study,” Proc. - 2018 53rd Int. Univ. Power Eng. Conf. UPEC 2018, pp. 1–5, 2018. 23. J. Deuse, S. Grenard, M. H. J. Bollen, M. Häger, and F. Sollerkvist, “Effective impact of DER on distribution system protection,” CIRED 19th Int. Conf. Electr. Distrib., no. May, p. 4, 2007. 24. M. Z. Kreishan, G. P. Fotis, V. Vita, and L. Ekonomou, “Distributed generation islanding effect on distribution networks and end user loads using the load sharing islanding method,” Energies, vol. 9, no. 11, 2016. 25. P. D. Hopcwcll and A. D. Cross, “Loss-of-mains detection for small generators,” IEE Proc. Electr. Power Appl., vol. 143, no. 3, pp. 225–230, 1996. 26. B. Agili, “Sympathetic Tripping Phenomena Analysis and Solutions,” no. December, 2008. 27. A. A. D. Company-uae, A. A. D. Company-uae, and A. A. D. Company-uae, “22 nd International Conference on Electricity Distribution Paper 0753 A COMPREHENSIVE ANALYSIS AND SOLUTION FOR SYMPATHETIC TRIPPING IN 22 nd International Conference on Electricity Distribution,” no. 0753, pp. 10–13, 2013. 28. Y. Baghzouz, “Voltage regulation and overcurrent protection issues in distribution feeders with distributed generation - A case study,” Proc. Annu. Hawaii Int. Conf. Syst. Sci., vol. 1, no. C, p. 66, 2005. 29. P. K. Naik, N. K. Nair, and V. Vyatkin, “Sympathetic Trip Protection Scenario in IEC 61850,” no. May, 2014. 30. B. R. Williams, W. R. Schmus, and D. C. Dawson, “Transmission Voltage Recovery Delayed by Stalled Air Conditoner Compressors,” IEEE Trans. Power Syst., vol. 7, no. 3, pp. 1173–1181, 1992. 31. G. G. Karady, S. Saksena, B. Shi, and N. Senroy, “Effects of Voltage Sags on Loads in a Distribution System,” no. October, pp. 1–192, 2005. 32. R. Sinha, A. Zaidi, T. A. Bhatti, and S. Zafar, “Protection of distribution systems with significant penetration of distributed generation,” 2015 Power Gener. Syst. Renew. Energy Technol. PGSRET 2015, vol. 5, pp. 5–14, 2015. 33. K. Kauhaniemi and L. Kumpulainen, “Impact of distributed generation on the protection of distribution networks,” IEE Conf. Publ., vol. 1, no. Mv, pp. 315–318, 2004. 34. Y. Pan, W. Ren, S. Ray, R. Walling, and M. Reichard, “Impact of inverter interfaced distributed generation on overcurrent protection in distribution systems,” PEAM 2011 - Proc. 2011 IEEE Power Eng. Autom. Conf., vol. 2, pp. 371–376, 2011. 35. K. I. Jennett, C. D. Booth, F. Coffele, and A. J. Roscoe, “Investigation of the sympathetic tripping problem in power systems with large penetrations of distributed generation,” IET Gener. Transm. Distrib., vol. 9, no. 4, pp. 379–385, 2015. 36. K. Jennett, C. Booth, and M. Lee, “Analysis of the sympathetic tripping problem for networks with high penetrations of distributed generation,” APAP 2011 - Proc. 2011 Int. Conf. Adv. Power Syst. Autom. Prot., vol. 1, pp. 384–389, 2011. 37. E. Supply and A. Handbook, “Shared values.” 38. D. Asturias, “Pscad,” Home PSCAD Present., p. 1, 2014. 39. N. Z. Jamal, O. Aliman, and M. H. Sulaiman, “Inverse definite overcurrent relay discrimination algorithm and its application in industrial power systems,” ARPN J. Eng. Appl. Sci., vol. 10, no. 23, pp. 17544–17548, 2015. 40. S. F. Bush, “Distribution Automation,” Smart Grid, pp. 301–331, 2014.