湖南电力 ›› 2026, Vol. 46 ›› Issue (4): 136-143.doi: 10.3969/j.issn.1008-0198.2026.04.018

• 电力防灾减灾 • 上一篇    下一篇

川西山区崩塌作用下输电杆塔动力响应特征

任志超1, 曾文慧1, 任光明2, 沈国卓2, 唐杨1   

  1. 1.国网四川省电力公司经济技术研究院,四川 成都 610041;
    2.地质灾害防治与地质环境保护全国重点实验室(成都理工大学),四川 成都 610059
  • 收稿日期:2026-04-23 修回日期:2026-05-28 出版日期:2026-08-25 发布日期:2026-09-11
  • 通信作者: 任光明(1964),男,教授,从事工程地质与岩土工程研究工作。
  • 作者简介:任志超(1965),男,博士,高级工程师,从事能源电力规划研究工作。
  • 基金资助:
    国家电网有限公司科技项目(5108-202218280A-2-322-XG)

Dynamic Response Characteristics of Transmission Towers Under Collapse Action in the Western Sichuan Mountain Area

REN Zhichao1, ZENG Wenhui1, REN Guangming2, SHEN Guozhuo2, TANG Yang1   

  1. 1. State Grid Sichuan Electric Power Company Economic Technology Research Institute, Chengdu 610041, China;
    2. State Key Laboratory of Geohazard Prevention and Geoenvironment Protection (Chengdu University of Technology), Chengdu 610059, China
  • Received:2026-04-23 Revised:2026-05-28 Online:2026-08-25 Published:2026-09-11

摘要: 以川西山区为研究区域,通过现场调查与统计分析,梳理区内地质崩塌灾害的分布特征,归纳出崩塌与输电杆塔相互作用的两种模式:冲砸与牵引,并建立相应的地质力学模型,采用数值计算方法详细模拟崩塌落石冲击作用下输电杆塔及协同体系的动力响应机理,揭示冲击作用下输电杆塔破坏阈值及增长桩防护能力。结果表明,该动力响应过程可分为弹塑性压入和卸荷回弹两个阶段;输电塔的破坏阈值约为96 kJ;增长桩的损伤模式由低冲击能量下表面局部剥蚀向高冲击能量下的贯穿性侵彻转变,能量耗散机制由塑性变形为主逐渐过渡为脆性断裂为主;增长桩的桩顶位移变化受控于混凝土失效单元耗能及钢筋参与作用的各自占比,其抗冲击能量可达1 500 kJ。增长桩可作为一种防治措施,应用于输电杆塔沿线失稳后运动速度较低及弹跳高度有限的崩塌落石,保障输电工程的安全稳定运行。

关键词: 崩塌, 输电杆塔, 动力响应, 增长桩, 防治措施

Abstract: Taking the mountainous area of western Sichuan as the study area, this study identifies the distribution characteristics of geological collapse hazards in the region through field investigation and statistical analysis, summarizes two modes of interaction between collapses and transmission towers-impact-collision and traction-and establishes corresponding geomechanical models. Numerical simulation is used to investigate in detail the dynamic response mechanisms of transmission towers and their coupled systems under rockfall impact, revealing the damage threshold of transmission towers and the protective capacity of growth piles under impact. The results show that the dynamic response process can be divided into two stages: elastoplastic indentation and unloading rebound. The damage threshold of the transmission tower is approximately 96 kJ. The damage mode of growth piles changes from localized surface spalling under low impact energy to penetrative perforation under high impact energy, and the energy dissipation mechanism gradually transitions from plastic deformation-dominated to brittle fracture-dominated. The variation in pile-top displacement of growth piles is governed by the respective proportions of energy dissipated by failed concrete elements and the participation of steel reinforcement, and their impact energy capacity can reach 1 500 kJ. Growth piles can be used as a mitigation measure for collapse-induced rockfalls with relatively low post-failure velocity and limited bounce height along transmission line corridors, ensuring the safe and stable operation of transmission engineering.

Key words: collapse, transmission tower, dynamic response, growth pile, prophylactico-therapeutic measures

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