微地形条件下均匀结冰与非均匀结冰输电塔力学性能比较

Yi Wen, Zhihao Hu, X. Mao, Jianrong Wu, Huarong Zeng, Tao Yang, Chao Zhao
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引用次数: 0

摘要

输电线路结冰可能导致输电塔倒塌,严重威胁电力系统的安全稳定运行。数字孪生可以反映设备的运行状态。将有限元仿真、数字孪生和在线监测相结合,有助于实现设备的智能化运维。本文以微地形条件下的110kv输电线路为研究对象。在数字孪生的背景下,通过有限元仿真建立了三塔两线的输电塔线系统模型。对比分析了切塔和张力塔在均匀结冰条件下的力学性能。结果发现,切塔受力严重。模拟了切塔在均匀覆冰和非均匀覆冰条件下(包括短跨重覆冰和大跨重覆冰)27种工况下的受力特性。得到了轴向应力和节点位移的分布。对均匀结冰和不均匀结冰条件下输电塔的力学特性进行了比较分析。结果表明:在短跨度的塔体上,重冰条件下,轴向应力呈现先减小后增大的趋势;与短跨度上的重冰相比,大跨度塔的轴向应力变化率更大。与均匀覆冰相比,不均匀覆冰会增加塔的轴向应力和节点位移,增加塔的损伤风险。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparison for Mechanical Properties of Transmission Towers in Uniform and Non-uniform Icing Condition under Micro-Topography
Transmission towers may collapse because of ice accretion on transmission lines, which seriously threatens the safe and stable operation of power system. Digital twin can reflect the operation state of the device. The combination of finite element simulation, digital twin and online monitoring is helpful to realize the intelligent operation and maintenance of device. A 110 kV transmission lines under the micro-topography was taken as the research object in this paper. In the context of digital twin, a transmission tower-line system model with three-tower-two-line was established by finite element simulation. The mechanical properties of tangent tower and tension tower in uniform icing condition were compared and analyzed. It was found that the tangent tower was seriously stressed. The mechanical characteristics of the tangent tower under the conditions of uniform icing and non-uniform icing (including heavy iced on the short span and heavy iced on the long span) were simulated under a total of 27 operation conditions. The distribution of axial stress and nodal displacement were obtained. The mechanical characteristics of the transmission tower under the condition of uniform and non-uniform icing were compared and analyzed. The results showed that the axial stress may decrease first and then increase in the case of heavy iced on the short span of the tower. Compared with the heavy iced on the short span, the axial stress change rate of the tower with the long span is greater. Compared with uniform icing, non-uniform icing would increase the axial stress and nodal displacement of the towers, and increase the damage risk of the towers.
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