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Review of Under-voltage Load Shedding Schemes in Power System Operation

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Warianty tytułu
PL
Metody UVLS w zastosowaniu do monitorowania stabilności systemu energetycznego I zapobiegania jego zapaściom
Języki publikacji
EN
Abstrakty
EN
A voltage collapse event is complex and localized in nature, but its effect is extensive. A vital effect of voltage collapse is total system collapse or blackouts, which will result in a significant loss to utility companies. Online monitoring of power system stability has thus become an important factor for electric power utilities. The final resort prevent the occurrence of a voltage collapse incident is the implementation of an undervoltage load shedding (UVLS) scheme. This paper focuses on the introduction of the UVLS scheme and presents an overview of the principles of the UVLS that are crucial to the design of such a protection scheme. This paper also presents the existing industrial practices and other research methods available to date.
PL
W artykule opisano algorytm UVLS (Under Voltage Shedding Schemes) zastosowany do monitorowania stabilności systemu energetycznego I zapobiegania jego zapaściom. Artykuł jest przeglądem metod stosowanych w praktyce oraz prac badawczych w tej dziedzinie.
Rocznik
Strony
99--103
Opis fizyczny
Bibliogr. 41 poz., tab., wykr.
Twórcy
autor
  • Dept. of Electrical, Electronics and Systems Engineering, Universiti Kebangsaan Malaysia, Bangi, Malaysia
autor
  • Dept. of Electrical, Electronics and Systems Engineering, Universiti Kebangsaan Malaysia, Bangi, Malaysia
autor
  • Dept. of Electrical, Electronics and Systems Engineering, Universiti Kebangsaan Malaysia, Bangi, Malaysia
  • Dept. of Electrical Power Engineering, Universiti Tenaga Nasional, Malaysia
Bibliografia
  • [1] Joseph Vardi and Benjamin Avi-Itzhak, Electric Energy Generation; Economics, Reliability and Rates: MIT, 1981, p.75-94
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  • [3] CIGRÉ Task Force 38-02-10, “Modelling of Voltage collapse Including Dynamic Phenomena”, 1993.
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  • [5] D. J. Hill, I. A. Hiskens, “Load recovery in voltage stability analysis and control”, Bulk Power System Phenomena III, Voltage Stability, Security and Control, pp. 579-595, ECC, Davos, Aug. 1994.
  • [6] IEEE Committee Report, Voltage Stability of Power Systems: Concepts, Analytical Tools, and Industry Experience, IEEE/PES 90TH0358-2-PWR, 1990.
  • [7] K. Lindén, I. Segerqvist, “Modelling of Load Devices and Studying Load/System Characteristics”, Technical report No. 131L, ISBN 91-7197- 038-X, Chalmers University of Technology, Sweden, 1993
  • [8] Y. Harmand et al., “Analysis of a voltage collapse-incident and proposal for a time-based hierarchical containment scheme”, CIGRÉ 38/39-02, 1990.
  • [9] Report of the Enquiry Committee on Grid Distubance in Northern Region on 30th July 2012 and in Nothern, Eastern &North-Eastern Region on 31st July 2012". http://www.powermin.nic.in. 16 August 2012. Retrieved 28 August 2012.
  • [10] M. Klaric, I. Kuzle, and S. Tesnjak, "Example of Undervoltage Load Shedding Implementation," in IEEE AFRICON Conference, Windhoek, Namibia, 26 - 28 Septembe]r, 2007, pp. 1-6.
  • [11] C. W. Taylor, "Concepts of Undervoltage Load Shedding for Voltage Stability," IEEE Transactions on Power Delivery, vol. 7, pp. 480-488, 1992.
  • [12] C. M. Affonso, L. C. P. da Silva, F. G. M. Lima, and S. Soares, "MW and MVar Management on Supply and Demand Side for Meeting Voltage Stability Margin Criteria," IEEE Transactions on Power System, vol. 19, pp. 1538-1545, 2004.
  • [13] R. Balanathan, N. C. Pahalawaththa, and U. D. Annakkage, "A Strategy for Undervoltage Load Shedding in Power Systems," in Proceedings International Conference on Power System Technology, POWERCON Beijing, China, 18-21 August, 1998, pp. 1494-1498 vol.2.
  • [14] S. S. Ladhani and W. Rosehart, "Under Voltage Load Shedding for Voltage Stability Overview of Concepts and Principles," in IEEE Power Engineering Society General Meeting, Denver, Colorado, USA, 6-10 June, 2004, pp. 1597-1602, vol. 2.
  • [15] J. Machowski, J. Bialek, J. Bumby, Power System Dynamics: Stability and Control. John Wiley & Sons, New York, 2008.
  • [16] “Under Voltage Load Shedding” apps.webofknowledge.com”. Retrieved 2 February 2011.
  • [17] IEEE Task Force on Load Representataion for Dynamic Performance, “Load Representation for Dynamic Performance Analysis (of Power Systems),” IEEE Transactions on Power Systems, vol. 8, no. 2, pp. 472- 482, May 1993.
  • [18] IEEE Task Force on Load Representation for Dynamic Performance, “Standard Load Models for Power Flow and Dynamic Performance Simulation,” IEEE/PE Summer Meeting.
  • [19] Y. Wang, et al., "Strategy to Minimise the Load Shedding Amount for Voltage Collapse Prevention," IET on Generation, Transmission & Distribution vol. 5, pp. 307-313, 2011.
  • [20] C. Moors, D. Lefebvre, and T. V. Cutsem, “Design of load shedding schemes against voltage instability,” in Proc. 2000 IEEE Pow Eng. Soc. Winter Meeting, Jul. 2000, vol. 2, pp. 1495–1500.
  • [21] C. Moors, D. Lefebvre, and T. V. Cutsem, “Design of load shedding schemes against voltage instability using combinatorial optimization,” Power Engineering Society Winter Meeting, 2002. IEEE, Vol. 2, 27-31, Jan. 2002, pp. 848 – 853.
  • [22] Ping Ma, Bo-Qiang Yuan, “A practical corrective control strategy to mitigate voltage collapse,” in Electric Utility Deregulation and Restructuring and Power Technologies (DRPT), 2011 4th International Conference, 2011. pp.1039- 1043.
  • [23] F. He, Y. Wang, K. W. Chan, Y. Zhang, S. Mei “Optimal Load Shedding Strategy Based on Particle Swarm Optimisation” 8th International conference on Advances in Power System Control, Operation and Management, APSCOM, pp. 1-6, Nov, 2009.
  • [24] X.S. Yang, "Firefly algorithms for multimodal optimization," Stochastic Algorithms: Foundation and Applications SAGA 2009, vol. 5792, pp. 169-178, 2009.
  • [25] F. Hashiesh, H. E. Mostafa, M. M. Mansour, A. R. Khatib and I. Helal, "Wide Area Transient Stability Prediction Using on-Line Artificial Neural Networks", IEEE Canada Electric Power Conference (EPEC 2008), pp. 1-7, 6-7 Oct. 2008.
  • [26] Ahmed M.A.Haidar, Azah Mohamed, Ani Hussain, "Vulnerability control of large scale interconnected power system using neurofuzzy load shedding approach", Expert Systems With Applicatons, Elsevier 37.pp. 3171-3176, 2010.
  • [27] Yasin, Z.M.; Rahman, T.K.A.; Zakaria, Z. "Quantum- Inspired Evolutionary Programming-Artificial Neural Network for prediction of undervoltage load shedding", Industrial Electronics and Applications (ICIEA), 2013 8th IEEE Conference, On page(s): 583 – 588
  • [28] Gatta, F.; Geri, Alberto; Lauria, Stefano; Maccioni, M.; Masato P. “Power system adequacy: An Efficient Procedure based on Genetic Algorithms”, PowerTech, 2009 IEEE Bucharest, on Page(s): 1- 6.
  • [29] Church, C.; Morsi, W.G.; Diduch, C.P.; El-Hawary, M.E.; Chang, L. "Voltage collapse detection using ant colony optimization for smart grid applications”, Electric Power and Energy Conference (EPEC), 2010 IEEE, On page(s): 1-5
  • [30] R. Balanathan, N. C. Pahalawaththa, U. D. Annakkage, and P. W. Sharp, “Undervoltage load shedding to avoid voltage instability”, IEE Proceedings Generation, Transmission and Distribution, vol. 145, no. 2, pp. 175-81, March 1998.
  • [31] Bedoya, D.; Bedrinana, M.F.; Castro, C.A.; da Silva, L.C.P., “Power system critical areas by using sensitivities and participation factors for online applications”, IEEE/PES Transmission and Distribution Conference, 2008.
  • [32] I. Musirin and T. K. Abdul Rahman, “Estimating Maximum Loadability for Weak Bus Identification Using FVSI”, IEEE Power Engineering Review, 22, 2002, 50-52.
  • [33] M. Moghavemmi and F.M. Omar, "Technique for contingency monitoring and voltage collapse prediction", IEE Proc. Generation, Transmission and Distribution, vol. 145, pp. 634- 640, Nov. 1998.
  • [34] A. Mohamed and G.B. Jasmon, "Voltage contingency selection technique for security assessment," IEE Proc., vol. 136, Pt C, pp. 24-28, Jan. 189.
  • [35] L. J. L. Z. L. Laifu;, "An Efficient Method for Undervoltage Load Shedding", Asia-Pacific Power and Energy Engineering Conference 2009, p. 1
  • [36] Han Li; Song, Y.H.; Identification of weak busbars in large scale power system. Power System Technology, 2002. Proceedings. PowerCon 2002. International Conference on Volume 3, 13-17 Oct. 2002 Page(s): 1700 1704 vol.3
  • [37] He, T.; Kolluri, S.; Mandal, S.; Galvan, F.; Rastgoufard, P.; Identification of weak locations in bulk transmission systems using voltage stability margin index. Probabilistic Methods Applied to Power Systems 2004 International Conference on 12-16 Sept. 2004 Page(s):878 – 882
  • [38] Song, Y. H.; Wan, H.B.; Johns, A.T.; Kohonen neural network based approach to voltage weak buses/areas identification Generation, Transmission and Distribution, IEE Proceedings- Volume 144, Issue 3, May 1997 Page(s):340 – 344
  • [39] Sakellaridis, N. G. & Vournas, C. D. (2010), Critical loadshedding time calculation based on region of attraction \ limits., in 'ISCAS' , IEEE, , pp. 529-532 .
  • [40] Western Electricity Coordinating Council, Undervoltage Load Shedding Guidelines", Undervoltage Load Shedding Task Force, July 1999.
  • [41] Taylor, C.W. Power System Voltage Stability. New York. McGraw- Hill, 1994.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-b2749bf2-fde2-408a-b06a-e59b9a478f21
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