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Aerodynamic force characteristics and galloping analysis of iced bundled conductors

  • Lou, Wenjuan (Institute of Structural Engineering, Zhejiang University) ;
  • Lv, Jiang (Institute of Structural Engineering, Zhejiang University) ;
  • Huang, M.F. (Institute of Structural Engineering, Zhejiang University) ;
  • Yang, Lun (Institute of Structural Engineering, Zhejiang University) ;
  • Yan, Dong (Henan electric power testing and research institute)
  • Received : 2013.05.23
  • Accepted : 2013.10.15
  • Published : 2014.02.25

Abstract

Aerodynamic characteristics of crescent and D-shape bundled conductors were measured by high frequency force balance technique in the wind tunnel. The drag and lift coefficients of each sub-conductor and the whole bundled conductors were presented under various attack angles of wind. The galloping possibility of bundled conductors is discussed based on the Den Hartog criterion. The influence of icing thickness, initial ice accretion angle and sub-conductor on the aerodynamic properties were investigated. Based on the measured aerodynamic force coefficients, a computationally efficient finite element method is also implemented to analyze galloping of iced bundled conductors. The analysis results show that each sub-conductor of the bundled conductor has its own galloping feature due to the use of aerodynamic forces measured separately for every single sub-conductors.

Keywords

Acknowledgement

Supported by : National Natural Science Foundation of China

References

  1. Barrero, A., Sanz, A. and Alonso, G. (2009), "Hysteresis in transverse galloping: the role of the inflection points", J. Fluid. Struct., 25, 1007-1020. https://doi.org/10.1016/j.jfluidstructs.2009.04.008
  2. Chabart, O. and Lilien, J.L. (1998), "Galloping of electrical lines in wind tunnel facilities", J. Wind Eng. Ind. Aerod., 74, 967-976.
  3. CIGRE. (2005), State of the art of conductor galloping. TB (Technical Brochure), Task Force B2.11.06, December. Convenor, SCB2 WG11.
  4. Den Hartog, J.P. (1932), "Transmission line vibration due to sleet", Am. Inst. Elec. Engineers, T., 51(4), 1074-1076. https://doi.org/10.1109/T-AIEE.1932.5056223
  5. Desai Y.M., Yu, P., Popplewell, N. and Shah, A.H. (1995), "Finite element modeling of transmission line galloping", Comput. Struct., 57( 3), 407-420. https://doi.org/10.1016/0045-7949(94)00630-L
  6. Gu, M., Ma, W. and Quan, Y. (2009), "Aerodynamic Force Characteristics and stabilities of Two Typical Iced Conductors", J. Tongji University (Natural Science), 37(10), 1328-1332.
  7. Guo, Y., Li, G. and You, C. (2002), Galloping of electrical transmission line, China Electric Power Press, Beijing.
  8. Jones, K.F. (1992), "Coupled vertical and horizontal galloping", J. Eng. Mech .- ASCE, 118(1), 92-107. https://doi.org/10.1061/(ASCE)0733-9399(1992)118:1(92)
  9. Li, Y., Wu, M., Chen, X., Wang, T. and Liao, H. (2013). "Wind-tunnel study of wake galloping of parallel cables on cable-stayed bridges and its suppression", Wind Struct., 16(3), 249-261. https://doi.org/10.12989/was.2013.16.3.249
  10. Lin, W. (2012), Wind tunnel and numerical study on aerodynamic characteristics of ice accreted transmission lines, Master thesis, Zhejiang University, Hangzhou.
  11. Lv, Y., Lou, W., Sun, Z. and Li, H. (2010), "Numerical simulation of aerodynamic characteristics of three bundled iced transmission lines", J. Zhejiang University (Engineering Science), 44(1), 174-179.
  12. Luongo, A., Zulli, D. and Piccardo, G. (2008), "Analytical and numerical approaches to nonlinear galloping of internally resonant suspended cables", J. Sound Vib., 315, 375-393. https://doi.org/10.1016/j.jsv.2008.03.067
  13. Luongo, A., Zulli, D. and Piccardo, G. (2009), "On the effect of twist angle on nonlinear galloping of suspended cables", Comput. Struct., 87, 1003-1014. https://doi.org/10.1016/j.compstruc.2008.04.014
  14. Macdonald, J.H.G. and Larose, G.L. (2006), "A unified approach to aerodynamic damping and drag/lift instabilities, and its application to dry inclined cable galloping", J. Fluid. Struct., 22( 2), 229-252. https://doi.org/10.1016/j.jfluidstructs.2005.10.002
  15. Nigol, O. and Buchan, P.G. (1981), "Conductor galloping-part II Torsional mechanism", Power Apparatus Syst., IEEE T. (2), 708-720.
  16. Ohkuma, T. and Marukawa, H. (2000), "Galloping of overhead transmission lines in gusty wind", Wind Struct., 3(4), 243-253. https://doi.org/10.12989/was.2000.3.4.243
  17. Parkinson, G. (1989), "Phenomena and modeling of flow-induced vibrations of bluff bodies", Prog. Aerosp. Sci., 26(2), 169-224. https://doi.org/10.1016/0376-0421(89)90008-0
  18. Raeesi, A., Cheng, S. and Ting, D.S.K. (2013), "Aerodynamic damping of an inclined circular cylinder in unsteady flow and its application to the prediction of dry inclined cable galloping", J. Wind Eng. Ind. Aerod., 113, 12-28. https://doi.org/10.1016/j.jweia.2012.12.003
  19. Shimizu, M., Ishihara, T. and Phuc, P.V. (2004), "A wind tunnel study on aerodynamic characteristics of ice accreted transmission lines", Proceedings of the 5th International colloquium on bluff body aerodynamics and applications.
  20. Sun, Z. and Lou, W. (2010), "Nonlinear finite element analysis on galloping of ice-coated transmission line", Power Syst. Technol., 34(12), 214-218.
  21. Van Dyke, P. and Laneville, A. (2008), "Galloping of a single conductor covered with a D-section on a high-voltage overhead test line", J. Wind Eng. Ind. Aerod., 96(6), 1141-1151. https://doi.org/10.1016/j.jweia.2007.06.036
  22. Wang, X., Lou, W. J., Shen, G.H. and Xu, F.Y. (2011), "A wind tunnel study on aerodynamic characteristics of iced conductor", Acta Aerod.Sinica, 5(29), 573-579.
  23. Wang, X. and Lou, W. (2010), "Numerical approach to the gallop of iced conductor", Eng. Mech., 1(27), 290-293.
  24. Xiao, Z., Yan, Z., Li, Z., Wang, Z. and Huang, H. (2009), "Wind tunnel and aerodynamic characteristics tests for ice-covering of transmission line adopting 8-bundled conductor", Power Syst. Technol., 33(5), 90-94.
  25. Yan, Z., Yan, Z., Li, Z. and Tan, T. (2013), "Nonlinear galloping of internally resonant iced transmission lines considering eccentricity", J. Sound Vib., 331, 3599-3616.
  26. Yu, P., Shah, A.H. and Popplewell, N. (1992), "Inertially coupled galloping of iced conductors", J. Appl.Mech. -T ASME, 59, 140-145. https://doi.org/10.1115/1.2899419
  27. Yu, P., Desai, Y.M., Shah, A.H. and Popplewell, N. (1993), "Three-degree-of-freedom model for galloping. Part I: formulation", J. Eng. Mech., 119(12), 2404-2425. https://doi.org/10.1061/(ASCE)0733-9399(1993)119:12(2404)

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