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      Experimental study on aerodynamic characteristics of conductors covered with crescent-shaped ice

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      https://www.riss.kr/link?id=A106391693

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      다국어 초록 (Multilingual Abstract)

      Conductor galloping is a common disaster for the transmission lines. Among the existing analytical methods, the wind tunnel test is highlighted as the most effective approach to obtain the aerodynamic coefficients. In this paper, the aerodynamic coeff...

      Conductor galloping is a common disaster for the transmission lines. Among the existing analytical methods, the wind tunnel test is highlighted as the most effective approach to obtain the aerodynamic coefficients. In this paper, the aerodynamic coefficients of 12 conductor models covered with the crescent-shaped ice, which were fabricated considering the surface roughness of the iced conductor, were obtained based on the wind tunnel test. The influence of the Reynolds number and the shape parameter β, defined as the ratio of ice thickness to the diameter, were investigated. In addition, the effect of surface roughness of the iced conductor was discussed. Subsequently, unsteady areas of conductor galloping were calculated according to the Den Hartog criterion and the Nigol criterion. The results indicate that the aerodynamic coefficients of iced conductors change sharply at the attack angles of 20° and 170° with the increase of β. The surface roughness of iced conductors changed the range of attack angle, which was influenced by the increase of the Reynolds number. The experimental results can provide insights for preventing and controlling galloping.

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      참고문헌 (Reference)

      1 Li, Hairuo, "Wind tunnel test on aerodynamic characteristic of conductor with thin ice accretions" 34 (34): 12-16, 2013

      2 Wenjuan Lou, "Two-Parameter Bifurcation and Stability Analysis for Nonlinear Galloping of Iced Transmission Lines" American Society of Civil Engineers (ASCE) 140 (140): 04014081-, 2014

      3 D. Ibarra, "Transverse galloping of two-dimensional bodies having a rhombic cross-section" Elsevier BV 333 (333): 2855-2865, 2014

      4 J. P. Den Hartog, "Transmission Line Vibration Due to Sleet" Institute of Electrical and Electronics Engineers (IEEE) 51 (51): 1074-1076, 1932

      5 P. Yu, "Three‐Degree‐of‐Freedom Model for Galloping. Part II: Solutions" American Society of Civil Engineers (ASCE) 119 (119): 2426-2448, 1993

      6 P. Yu, "Three‐Degree‐of‐Freedom Model for Galloping. Part I: Formulation" American Society of Civil Engineers (ASCE) 119 (119): 2404-2425, 1993

      7 Ma, W., "Testing study on aerodynamic force characteristics of quasi-oval shape iced conductor" 38 (38): 1409-1413, 2010

      8 Linshu Zhou, "Study on galloping behavior of iced eight bundle conductor transmission lines" Elsevier BV 362 : 85-110, 2016

      9 W.P., "Static aerodynamic characteristics of the galloping of bundled iced power transmission lines" 13 (13): 427-434, 1995

      10 Y.M. Desai, "PERTURBATION-BASED FINITE ELEMENT ANALYSES OF TRANSMISSION LINE GALLOPING" Elsevier BV 191 (191): 469-489, 1996

      1 Li, Hairuo, "Wind tunnel test on aerodynamic characteristic of conductor with thin ice accretions" 34 (34): 12-16, 2013

      2 Wenjuan Lou, "Two-Parameter Bifurcation and Stability Analysis for Nonlinear Galloping of Iced Transmission Lines" American Society of Civil Engineers (ASCE) 140 (140): 04014081-, 2014

      3 D. Ibarra, "Transverse galloping of two-dimensional bodies having a rhombic cross-section" Elsevier BV 333 (333): 2855-2865, 2014

      4 J. P. Den Hartog, "Transmission Line Vibration Due to Sleet" Institute of Electrical and Electronics Engineers (IEEE) 51 (51): 1074-1076, 1932

      5 P. Yu, "Three‐Degree‐of‐Freedom Model for Galloping. Part II: Solutions" American Society of Civil Engineers (ASCE) 119 (119): 2426-2448, 1993

      6 P. Yu, "Three‐Degree‐of‐Freedom Model for Galloping. Part I: Formulation" American Society of Civil Engineers (ASCE) 119 (119): 2404-2425, 1993

      7 Ma, W., "Testing study on aerodynamic force characteristics of quasi-oval shape iced conductor" 38 (38): 1409-1413, 2010

      8 Linshu Zhou, "Study on galloping behavior of iced eight bundle conductor transmission lines" Elsevier BV 362 : 85-110, 2016

      9 W.P., "Static aerodynamic characteristics of the galloping of bundled iced power transmission lines" 13 (13): 427-434, 1995

      10 Y.M. Desai, "PERTURBATION-BASED FINITE ELEMENT ANALYSES OF TRANSMISSION LINE GALLOPING" Elsevier BV 191 (191): 469-489, 1996

      11 G. Alonso, "On the galloping instability of two-dimensional bodies having elliptical cross-sections" Elsevier BV 98 (98): 438-448, 2010

      12 Angelo Luongo, "On the effect of twist angle on nonlinear galloping of suspended cables" Elsevier BV 87 (87): 1003-1014, 2009

      13 Zhang, Z., "Numerical simulation and analysis of dynamic aerodynamic characteristics of iced conductor" 34 (34): 209-214, 2015

      14 Mengqi Cai, "Numerical Simulation of Aerodynamic Coefficients of Iced-Quad Bundle Conductors" Institute of Electrical and Electronics Engineers (IEEE) 30 (30): 1669-1676, 2015

      15 Jing Hu, "Numerical Investigation on Galloping of Iced Quad Bundle Conductors" Institute of Electrical and Electronics Engineers (IEEE) 27 (27): 784-792, 2012

      16 Xiao-hui Liu, "Nonlinear numerical simulation method for galloping of iced conductor" Springer Science and Business Media LLC 30 (30): 489-501, 2009

      17 Zhimiao Yan, "Nonlinear galloping of internally resonant iced transmission lines considering eccentricity" Elsevier BV 331 (331): 3599-3616, 2012

      18 ESDU, "Mean Forces, Pressures and Flow Field Velocities for Circular Cylindrical Structures: Single Cylinder with Two-dimensional Flow" Engineering Sciences Data Unit 1980

      19 J. Chadha, "Influence of turbulence on the galloping instability of iced conductors" Institute of Electrical and Electronics Engineers (IEEE) 94 (94): 1489-1499, 1975

      20 G. Alonso, "Galloping stability of triangular cross-sectional bodies: A systematic approach" Elsevier BV 95 (95): 928-940, 2007

      21 Takeshi Ohkuma, "Galloping of overhead transmission lines in gusty wind" Techno-Press 3 (3): 243-253, 2000

      22 Q. ZHANG, "GALLOPING OF BUNDLE CONDUCTOR" Elsevier BV 234 (234): 115-134, 2000

      23 Y.M. Desai, "Finite element modelling of transmission line galloping" Elsevier BV 57 (57): 407-420, 1995

      24 Yan, D., "Experimental study on effect of turbulence intensity on the aerodynamic characteristics of iced conductors" 40 (40): 450-457, 2014

      25 W.Y. Ma, "Effect of the Reynolds number on the aerodynamic forces and galloping instability of a cylinder with semi-elliptical cross sections" Elsevier BV 146 : 71-80, 2015

      26 Li, W.P., "Dynamic aerodynamic characteristics of the galloping of bundled iced power transmission lines" 18 (18): 413-420, 2000

      27 O. Nigol, "Conductor Galloping-Part II Torsional Mechanism" Institute of Electrical and Electronics Engineers (IEEE) PAS-100 (PAS-100): 708-720, 1981

      28 O. Nigol, "Conductor Galloping Part I - Den Hartog Mechanism" Institute of Electrical and Electronics Engineers (IEEE) PAS-100 (PAS-100): 699-707, 1981

      29 Ma, W.Y., "Characteristics of aerodynamic forces on a cylinder at Reynolds numbers from 35k to 330k" 32 (32): 348-352, 2015

      30 Farzaneh, M., "Anti-icing and de-icing techniques for overhead lines" Springer Netherlands 2008

      31 Angelo Luongo, "Analytical and numerical approaches to nonlinear galloping of internally resonant suspended cables" Elsevier BV 315 (315): 375-393, 2008

      32 N. Nikitas, "Aerodynamic forcing characteristics of dry cable galloping at critical Reynolds numbers" Elsevier BV 49 : 243-249, 2015

      33 Gu, M., "Aerodynamic force characteristics and stabilities of two typical iced conductors" 37 (37): 1328-1332, 2009

      34 Wenjuan Lou, "Aerodynamic force characteristics and galloping analysis of iced bundled conductors" 한국풍공학회 18 (18): 135-154, 2014

      35 A.L. Braun, "Aerodynamic and aeroelastic analysis of bundled cables by numerical simulation" Elsevier BV 284 (284): 51-73, 2005

      36 Wang, X., "A wind tunnel study on aerodynamic characteristics of iced conductor" 29 (29): 573-579, 2011

      37 J.H.G. Macdonald, "A unified approach to aerodynamic damping and drag/lift instabilities, and its application to dry inclined cable galloping" Elsevier BV 22 (22): 229-252, 2006

      38 G. Alonso, "A parametric study of the galloping stability of two-dimensional triangular cross-section bodies" Elsevier BV 94 (94): 241-253, 2006

      39 Angelo Luongo, "A linear curved-beam model for the analysis of galloping in suspended cables" Mathematical Sciences Publishers 2 (2): 675-694, 2007

      40 Pierre McComber, "A cable galloping model for thin ice accretions" Elsevier BV 46 (46): 13-25, 1998

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