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Tytuł artykułu

Generic Model of Coastal Distribution Network for Power System Harmonics Studies

Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
PL
Model generyczny nadmorskiej sieci przesyłowej oraz analiza jakości energii w takiej sieci
Języki publikacji
EN
Abstrakty
EN
The paper presents a generic model of typical coastal distribution network developed for power quality studies. Its composition is based on number of measurements performed over long period of time at different connection points in existing distribution network. All relevant elements of the network are fully described and discussed. The generic model can be used for benchmarking results of power system studies, in particular harmonic studies, for coastal regions network including specific types of consumers like hotels, resorts, marinas, airports, apartment buildings, market centres and moderate size industrial plants.
PL
W artykule zaprezentowano typową nadmorską sieć przesyłową z przeznaczeniem do analizy jakości energii. Opisano dokładnie wszystkie elementy sieci oraz długookresowe wyniki badań. Celem jest analiza takiej sieci z uwzględnieniem jej typowych odbiorców takich jak hotle, centra handlowe, apartamentowce itp.
Rocznik
Strony
149--155
Opis fizyczny
Bibliogr. 25 poz., rys., tab., wykr.
Twórcy
  • Montenegrin Electric Enterprise, Montenegro
autor
  • The University of Novi Sad, Serbia
  • The University of Manchester, United Kingdom
Bibliografia
  • [1] M. T. Au, J. V. Milanovic, “Establishing Harmonic Distortion Level of Distribution Network Based on Stochastic Aggregate Harmonic Load Models”, IEEE Trans. on Power Delivery, Vol. 22, No. 2, Apr.2007, pp. 1086-1092
  • [2] M. T. Au, J. V. Milanovic, “Development of Stochastic Aggregate Harmonic Load Model Based on Field Measurements”, IEEE Trans. on Power Delivery, Vol. 22, No. 1, Jan.2007, pp.323-330
  • [3] J. Tomic, W. Kempton, “Using fleets of electric-drive vehicles for grid support”, Journal of Power Sources, Vol.168, No.2, June 2007, pp.459-468.
  • [4] H. Lund, W. Kempton, “Integration of Renewable Energy into the Transport and Electricity Sectors through V2G”, Energy Policy, Vol. 36, No.9, Sep.2008, pp.3578-3587.
  • [5] S. Bahadoorsingh, J.V. Milanovic, Y. Zhang, C.P. Gupta, J. Dragovic, “Minimization of Voltage Sag Costs by Optimal Reconfiguration of Distribution Network Using Genetic Algorithms”, IEEE Trans. on Power Delivery, Vol. 22, No. 4, Oct. 2007, pp. 2271 - 2278
  • [6] L. M. Cipcigan, P. C. Taylor, “A Generic Model of a Virtual Power Station Consisting of Small Scale Energy Zones”, CIRED 19th, Vienna, May 2007, Paper No 0692
  • [7] P. Punjad, G. Ault, J. McDonald, “Impacts and Management Arran-gements For High Penetration Distributed Generation”, CIRED 19th, Vienna, May 2007, Paper No 0731
  • [8] M. Kayikci, J. V. Milanovic, “Improvement of transient responses of Distribution network cell with renewable generation”, CIRED 19th, Vienna, May 2007, Paper No 0245
  • [9] G. Strbac, J. Mutale, D. Pudjianto, “Pricing of Distribution Networks with Distributed Generation”, IEEE Power Eng. Soc. Gen. Meeting, 2007, pp.1–5. Online: http://dx.doi.org/10.1109/PES.2007.386080
  • [10] D. Singh, R. K. Misra, “Load Model Impact in Distribution System Reconfiguration”, 16th Nat. Pow. Sys. Conf. – NPSC 2010, Hyderabad (India), 15th-17th Dec. 2010, No 5009, Online: http://npsc2010.uceou.edu/papers/5009.pdf
  • [11] A. Cavallini, M. Cacciari, M. Loggini, and G.C. Montanari, “Evaluation of harmonic levels in electrical networks by statistical indexes,” IEEE Trans. on Industry Applications, Vol. 30, No. 4, Jul./Aug. 1994, pp. 1116–1126.
  • [12] A. Cavallini, G. C. Montanari, “A deterministic/stochastic framework for power system harmonics modeling”, IEEE Trans. on Pow. Sys, Vol. 12, No. 1, Feb. 1997, pp. 407 – 415
  • [13] http://www.energy.siemens.com/hq/en/services/powertransmission- distribution/power-technologiesinternational/ software-solutions/pss-sincal.htm
  • [14] V. Strugar, V. A. Katic, Z. Čorba, “Effects of Military Shipyard Operation on Electric Power Quality in Public Distribution Network - A Case Study”, PCIM Europe 2005, Nürnberg, June 2005, CD ROM.
  • [15] V. Strugar, V. A. Katic, “Effects of Some Industrial and Other Plants Operating in Real Distribution System”, 16th Power Quality & Reliability Conf., Oct. 24-26 2006, Long Beach, CA, USA, CD ROM.
  • [16] V.Strugar, V.A.Katic, “Power quality measurement in a Modern Hotel Complex”,15th Intern. Symposium on Power Electronics - Ee 2009,Novi Sad,Oct.28-30,2009,CD ROM.
  • [17] V. Strugar, V. A. Katic, “Power Quality Research in a Modern Mediterranean Marine”, 15th IEEE–MELECON 2010, La Valletta, Malta, 25-28 April 2010, CD ROM
  • [18] IEEE Standard 519-1992: “IEEE Recommended Practices and Requirements for Harmonic Control in Electric Power Systems”, IEEE Press, New York, 1993.
  • [19] V. A. Katić, S. V. Mujović, V. M. Radulović, J. S. Radović: „The Impact of the Load Side Parameters on PC Cluster’s Harmonics Emission”, AECE, Vol.11,No.1, 2011, pp.103-110.
  • [20] V. Akhmatov, “Analysis of Dynamic Behavior of Electric Power Systems with Large Amount of Wind Power”, Ph.D Thesis, Technical University of Denmark, Apr. 2003. [Online]. http://www.dtu.dk/centre/cet/English/research/projects/99- 05/va.aspx
  • [21] O. Anaya-Lara, M. Hughes, N. Jenkins, “Generic Network Model for Wind Farm Control Scheme-Design and Performance Assessment”, The University of Manchester, UK. www.2004ewec.info/files/23_1400_olimpoanayalara_01.pdf
  • [22] W. Xu, Y. Mansour, “Voltage Stability Analysis Using Generic Dynamic Load Models”, IEEE Trans. on Power Systems, Vol. 9, No. 1, Feb.1994, pp.479 - 493
  • [23] T. Goeke, W. H. Wellssow, “A Statistical Approach to the Calculation of Harmonics in MV Systems Caused by Dispersed LV Customers”, IEEE Trans. on Power Systems, Vol. 11, No. 1, Feb. 1996, p.325-331
  • [24] S. Curcic, G. Strbac, X.-P. Zhang, “Effect of losses in design of distribution circuits”, IEE Proc. on Gen., Transm. and Dist., Vol. 148, No. 4, 2001, pp. 343-349.
  • [25] M.T. Aung, J.V. Milanovic, “Stochastic prediction of voltage sags by considering the probability of the failure of the protection system,” IEEE Trans. Power Del., Vol. 21, No. 1, Jan. 2006, pp. 322–329.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-92e16fc2-644e-4dba-a0c6-664d769431c1
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