气体绝缘输电线路温升响应与带电考核试验
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TM726

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国家重点研发计划资助项目(2023YFF0611304);江苏省重点科技成果转化项目(BA2022212)


Temperature rise response and live assessment test of gas insulated transmission lines
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    摘要:

    气体绝缘输电线路(gas insulated transmission line, GIL)运行于高电压、大电流环境,其温升特性受多物理场共同作用影响。然而,传统的GIL温升分析方法仅考虑电流大小与理想简化模型带来的影响,无法有效判断GIL是否存在异常温升响应。为此,文中基于多物理场耦合策略,对GIL关键部件的温升特性展开研究。首先,建立磁-热-流体耦合理论,并完成GIL的有限元与实体模型构建;然后,考虑触头接触电阻的影响,开展工频稳态下的温升特性研究,揭示GIL关键部件温升响应规律;最后,通过带电考核试验,验证模型与温升响应结论的有效性。文中提出一种220 kV GIL响应关联模型,即指出导体温度与壳体顶端平均温度、运行电流的关系,并与实验值进行对比,结果表明该模型具有较高精度,可作为实际工程中GIL导体温度的经验计算方法。

    Abstract:

    Gas insulated transmission lines (GIL) operate under high voltage and high current conditions, and their temperature rise characteristics are influenced by the interaction of multiple physical fields. However, traditional GIL temperature rise analysis methods only consider the current magnitude and idealized simplified models, making their results insufficient to effectively determine whether GIL has abnormal temperature rise responses. To address this issue, this paper presents a study on the temperature rise characteristics of key GIL components based on a multi-physics coupling strategy. Firstly, a magnetic-thermal-fluid coupling theory is established, and the finite element and physical models of GIL are constructed, taking into account the effect of contact resistance at the contacts. Secondly, a steady-state temperature rise analysis under power frequency conditions is performed to reveal the temperature rise response patterns of key GIL components. Finally, the effectiveness of the models and temperature rise response conclusions is validated through live testing experiments. Based on the aforementioned foundation, this paper proposes a 220 kV GIL response correlation model, which relates the conductor temperature to the average temperature at the top of the enclosure and the operating current. By comparing the model results with experimental data, it is demonstrated that this model has high accuracy and can serve as an empirical calculation method for GIL conductor temperature in practical engineering applications.

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董轩宇,张旭,张淼,张潮海,陈晓鸣,张小武.气体绝缘输电线路温升响应与带电考核试验[J].电力工程技术,2026,45(3):11-19. DONG Xuanyu, ZHANG Xu, ZHANG Miao, ZHANG Chaohai, CHEN Xiaoming, ZHANG Xiaowu. Temperature rise response and live assessment test of gas insulated transmission lines[J]. Electric Power Engineering Technology,2026,45(3):11-19.

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历史
  • 收稿日期:2025-07-10
  • 最后修改日期:2025-09-29
  • 在线发布日期: 2026-03-31
  • 出版日期: 2026-03-28
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