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Statistical Analysis of Icing Event Data for Transmission Line Design Purposes

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Atmospheric Icing of Power Networks

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Reference

  • ASCE (1991) Guidelines for Transmission Line Structural Loading. Committee on Electric Transmission Structures, American Society of Civil Engineers, New York

    Google Scholar 

  • Burgsdorff BB (1947) Construction and Operation of Transmission Lines in Regions with Severe Icing Conditions. Publ. by GOSENERGOIZDAT, Moscow (in Russian)

    Google Scholar 

  • Castillo E (1988) Extreme Value Theory in Engineering. Academic Press, New York

    MATH  Google Scholar 

  • Chouinard L, Feknous N, Sabourin G (2005) Design Winds during Ice Storm as a Function of Direction for Transmission Lines. In: Proc of the 11th International Workshop on Atmospheric Icing of Structures, Montréal: 271–274

    Google Scholar 

  • Chouinard L (2000) Combination of Wind and Ice Loads for the Reliability Analysis of Electric Distribution and Transmission Networks. In: Proc of the 9th International Workshop on Atmospheric Icing of Structures, Chester, Session 1, 6 p

    Google Scholar 

  • CIGRé (2006) Guidelines for Meteorological Icing Models, Statistical Methods and Topographical Effects. Working Group B2.16, Brochure 291, 116 p

    Google Scholar 

  • Druez J, McComber P, Farzaneh M (1999) Correlation between Measurement of an Ice Detector and the Mass of Ice Accreted on Two Different Sized Conductors. Canadian Journal of Civil Engineering, vol 26, no 6: 869–875

    Article  Google Scholar 

  • Ervik M, Fikke SM (1982a) Development of a Mathematical Model to Estimate Ice Loading on Transmission Lines by Use of General Climatological Data. IEEE Trans on PAS, vol PAS-101, no 6

    Google Scholar 

  • Ervik M, Fikke SM (1982b) Attempts Toward Estimating Ice Loadings Based on General Climatological Data. In: Proc of the 1st International Workshop on Atmospheric Icing of Structures, Hanover: 33–40

    Google Scholar 

  • Farzaneh M, Savadjiev K (2005) Statistical Analysis of Field Data for Precipitation Icing Accretion on Overhead Lines. IEEE Transaction on Power Delivery, vol 20, no 2: 1080–1087

    Article  Google Scholar 

  • Farzaneh M, Savadjiev K, Druez J (2001) Icing Event Occurrence in Quebec: Statistical Analysis of Field Data. International Journal of Offshore and Polar Engineering, vol 11, no 1: 9–15

    Google Scholar 

  • Guesdon C (2000) Étude des repartitions des évenements de verglas et de givre à travers le Québec. Master’s of Engineering Thesis, Université du Québec à Chicoutimi

    Google Scholar 

  • Gumbel E (1958) Statistic of extremes. Columbia University Press, New York

    Google Scholar 

  • Hastie T, Tibshirani R (1990) Generalized Additive Models. Publ. by Chapman & Hall/CRC, London

    MATH  Google Scholar 

  • Houde L, Guesdon C, Farzaneh M, Chouinard L (2000) Analysis of Spatial Patterns for Icing Events in Quebec. In: Proc of the 9th International Workshop on Atmospheric Icing of Structures, Chester, Session 2, 8 p

    Google Scholar 

  • IEC/CEI-60826 (International Electrotechnical Commission) (2003) Design Criteria of Overhead Transmission Lines. Technical Report, Third edition, 2003–10, Geneva

    Google Scholar 

  • Jones K (2003) Ice Storms in the St. Lawrence Valley Region. Technical Report ERDC/CRREL TR-03–1, US Army Corps of Engineers, 129 p

    Google Scholar 

  • Johnson GL (1978) Economic Design of Wind Electric Systems. IEEE Trans on PAS, vol PAS-97, no 2: 554–561

    Google Scholar 

  • Krishnasamy S, Kulendran S (1996) Combined Wind and Ice Loads from Historical Extreme Wind and Ice Data. In: Proc of the 7th International Workshop on Atmospheric Icing of Structures, Chicoutimi: 119–124

    Google Scholar 

  • Laflamme J (1996) Icing Rate Measurements: A Key Way of Estimating Ice Loads on Structures. In: Proc of the 7th International Workshop on Atmospheric Icing of Structures, Chicoutimi: 175–180

    Google Scholar 

  • Laflamme J, Périard G (1996) The Climate of Freezing Rain over the Province of Québec in Canada: A Preliminary Analysis. In: Proc of the 7th International Workshop on Atmospheric Icing of Structures, Chicoutimi: 19–24

    Google Scholar 

  • Laforte JL, Alaire MA, Laflamme J (1995) Wind Tunnel Evaluation of a Rime Metering Device Using a Magnetostrictive Sensor. Atmospheric Research 36, Elsevier Science: 287–301

    Google Scholar 

  • Le Du M, Laurent C (2005) T-Return Period Values of Meteorological Design Parameters. In: Proc of the 11th International Workshop on Atmospheric Icing of Structures, Montréal: 153–159

    Google Scholar 

  • Makkonen L (2006) Plotting Positions in Extreme Value Analysis. Journal of Applied Meteorology and Climatology, vol 45: 334–340

    Article  Google Scholar 

  • McComber P, Latour A, Druez J, Laflamme J (1996) The Icing Rate Meter, an Instrument to Evaluate Transmission Line Icing. In: Proc of the 7th International Workshop on Atmospheric Icing of Structures, Chicoutimi: 159–168

    Google Scholar 

  • Popolansky F, Kruzik J, Lehky P, Hrabanek J, Lago J (1998) Ice Monitoring at Stand Studnice: Tuned Vibration Control Overhead Line Conductors. CIGRé Paper 22–105, Session-1998, Paris

    Google Scholar 

  • Savadjiev K, Farzaneh M (2005) Characterization of Icing Events Based on Statistical Analysis of Field Data. In: Proc of the 11th International Workshop on Atmospheric Icing of Structures, Montréal: 131–136

    Google Scholar 

  • Savadjiev K, Farzaneh M (2004) Modeling of Icing and Ice Shedding on Overhead Power Lines Based on Statistical Analysis of Meteorological Data. IEEE Transactions on Power Delivery, vol 19, no 2: 715–721

    Article  Google Scholar 

  • Savadjiev K, Farzaneh M (2003) Probabilistic Model of Combined Wind and Ice Loads on Overhead Power Line Conductors. Canadian Journal of Civil Engineering, 30: 704–710

    Article  Google Scholar 

  • Savadjiev K, Farzaneh M (2001) Study of Icing Rate and Related Meteorological Parameter Distributions during Atmospheric Icing Events. In: Proc of the 11th International Offshore and Polar Engineering Conference, vol I, Stavanger: 665–670

    Google Scholar 

  • Savadjiev K, Farzaneh M (1999) Analysis and Interpretation of Icing Rate Meter and Load Cell Measurements on the Mt. Bélair Icing Site. In: Proc of the 9th International Offshore and Polar Engineering Conference, vol II, Brest: 607–611

    Google Scholar 

  • Savadjiev K, Farzaneh M, Druez J (1998) Statistical Analysis of Two Probabilistic Models of Ice Accretion on Overhead Line Conductors. In: Proc of the 8th International Offshore and Polar Engineering Conference (ISOPE), Montrél: 530–536

    Google Scholar 

  • SN-40.1 (1993) Critères de conception des lignes de transport et répartition d’Hydro-Québec. Service études et Normalisation, Hydro-Québec, Montréal

    Google Scholar 

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Farzaneh, M., Savadjiev, K. (2008). Statistical Analysis of Icing Event Data for Transmission Line Design Purposes. In: Farzaneh, M. (eds) Atmospheric Icing of Power Networks. Springer, Dordrecht. https://doi.org/10.1007/978-1-4020-8531-4_2

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  • DOI: https://doi.org/10.1007/978-1-4020-8531-4_2

  • Publisher Name: Springer, Dordrecht

  • Print ISBN: 978-1-4020-8530-7

  • Online ISBN: 978-1-4020-8531-4

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