Influence of Coupling Factors on Mechanical Property of High Voltage Transmission Tower-line Structure Under Ice Loading

被引:0
|
作者
Zhao M. [1 ]
He B. [1 ]
Feng W. [1 ]
Wang Y. [2 ]
Feng L. [3 ]
Wang C. [4 ]
机构
[1] School of Electrical Engineering, Xi'an Jiaotong University, Xi'an, 710049, Shaanxi Province
[2] Xi'an Electric Power Company, Xi'an, 710032, Shaanxi Province
[3] State Grid Shanxi Electric Power Dispatch and Control Center, Taiyuan, 030001, Shanxi Province
[4] State Grid Jiangxi Electric Power Economic Research Institute, Nanchang, 330043, Jiangxi Province
来源
| 2018年 / Chinese Society for Electrical Engineering卷 / 38期
基金
中国国家自然科学基金;
关键词
Finite element simulation; High voltage transmission line; Ice covering; Tower-line coupling;
D O I
10.13334/j.0258-8013.pcsee.180473
中图分类号
学科分类号
摘要
Study on the stability and the mechanical behavior of high voltage (HV) transmission line and tower structure under ice load can help to resist ice disaster. How to improve the stability of the HV power grid and establish an effective simulation method is the concerning focus in this field. In this paper, the finite element method taking tower-line coupling factors into consideration and the analytic method without consideration of tower-line coupling factors were introduced, and one 220kV transmission line lying in ice area of Jiangxi power grids was chosen as an example to study the different mechanics response under ice load between an established finite element model including three towers and two span lines and the analytic method. Some key parameters such as the force distribution along overhead lines, maximum allowable ice cover, tower stress, and strain were calculated and discussed taking into account the real load characteristics and the tower-line coupling factor. Results show: in the condition of no ice or light ice, the tower-line coupling effect can be ignored without significant deviation, while as the increasing of ice thickness, due to the rising of the coupling effect between tower and line, a significant deviation may be introduced once the coupling was overlooked. Therefore, it is necessary to pay attention to the influence of the tower-line coupling effect on the transmission line performance. The established simulation model in this paper is positive for design, analysis, and running maintenance of the HV transmission line in ice area for considering tower-line coupling effect and load characteristics. © 2018 Chin. Soc. for Elec. Eng.
引用
收藏
页码:7141 / 7148
页数:7
相关论文
共 18 条
  • [1] Li Q., Fan Z., Wu Q., Et al., Investigation of ice-covered transmission lines and analysis on transmission line failures caused by ice-coating in China, Power System Technology, 32, 9, pp. 33-36, (2008)
  • [2] Wang S., Analysis of typical ice accidents of transmission lines and preventing techniques, High Voltage Apparatus, 46, 10, pp. 85-89, (2010)
  • [3] McClure G., Lapointe M., Modeling the structural dynamic response of overhead transmission lines, Computers & Structures, 81, 8-11, pp. 825-834, (2003)
  • [4] Du Z., Zhang Y., Ruan J., Et al., Failure analysis of 500kV iced overhead transmission line by finite element method, High Voltage Engineering, 38, 9, pp. 2430-2436, (2012)
  • [5] Wang S., Influence of ice accumulation on mechanical performance of overhead transmission line, Electrotechnics Electric, 10, pp. 35-39, (2010)
  • [6] Hu Y., Liu K., Wu T., Et al., Analysis of influential factors on operation safety of transmission line and countermeasures, High Voltage Engineering, 40, 11, pp. 3491-3499, (2014)
  • [7] Yang J., Li Z., Yang F., Et al., Analysis of the features of covered ice and collapsed tower of transmission line snow and ice attacked in 2008, Advances of Power System & Hydroelectric Engineering, 24, 4, pp. 4-8, (2008)
  • [8] Farzaneh M., Atmospheric Icing of Power Networks, pp. 1-29, (2008)
  • [9] Tong J., Chen Z., Analysis on Jiangxi power grid damage caused by ice disaster and counter measures, Jiangxi Electric Power, 32, pp. 18-20, (2008)
  • [10] Ozono S., Maeda J., In-plane dynamic interaction between a tower and conductors at lower frequencies, Engineering Structures, 14, 4, pp. 210-216, (1992)