Mechanical characteristics of towers and conductor jump height in UHV DC lines in ultra-heavy ice zones following ice-shedding
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1.Power China Hebei Electric Power Engineering Co., Ltd., Shijiazhuang 050000, P. R. China;2.College of Aerospace Engineering, Chongqing University, Chongqing 400044, P. R. China;3.Hebei Electric Power Design & Survey Technology Innovation Center, Shijiazhuang 050000, P. R. China

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TM75

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Supported by Science & Technology Project of Power China Hebei Electric Power Engineering Co., Ltd. (22-KJDW001).

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    Abstract:

    The mechanical behavior of transmission towers and the maximum jump height of conductors following ice-shedding are critical factors in tower head design. In ultra-heavy ice zones, ice thickness on ultra-high voltage direct current (UHV DC) line can reach 60 mm to 80 mm, exceeding the maximum values specified in current transmission line design codes. This study establishes finite element models of UHV DC tower-line systems in ultra-heavy ice zones and numerically simulates their dynamic responses under ice-shedding conditions for varying span lengths. The analysis evaluates tower stresses, longitudinal unbalanced tensions, and maximum conductor jump heights to assess both structural performance and electrical isolation clearances. Results indicate that longitudinal unbalanced tensions surpass estimates from current design codes, and maximum conductor jump heights exceed predictions from existing empirical formulas. To enhance design accuracy, the study proposes revised values for longitudinal unbalanced tensions and modifications to the conductor jump height formula.

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王炜,杨浩,王强,张万义,薛腾磊,虞东旭,高英博,严波.特重冰区特高压直流线路导线脱冰跳跃高度及杆塔受力特征研究[J].重庆大学学报,2025,48(6):25~33

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History
  • Received:November 30,2023
  • Revised:
  • Adopted:
  • Online: July 11,2025
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