设计、施工、监测

输电线路工程围锚墩复合基础承载特性研究

  • 王远 ,
  • 陈浩 ,
  • 陶凤娟 ,
  • 易黎明 ,
  • 何海妮
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  • 1.湖北省电力规划设计研究院有限公司,武汉 430040;
    2.武汉大学 土木建筑工程学院, 武汉 430072
王远(1985—),男,安徽宿州人,正高级工程师,主要从事输电线路工程研究工作。E-mail:wangyuansj@powerchina-hb.com
陶凤娟(1991—),女,长沙人,博士,主要从事岩土与地下工程相关领域的研究工作。 E-mail:FJ_Tao@whu.edu.cn

收稿日期: 2025-04-18

  网络出版日期: 2026-03-03

基金资助

湖北省电力规划设计研究院有限公司二类科技项目(K2022-2-05)

Bearing Capacity Research of Anchor-Surrounded Pier Foundation in Transmission Lines Engineering

  • Wang Yuan ,
  • Chen Hao ,
  • Tao Fengjuan ,
  • Yi Liming ,
  • He Haini
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  • 1. Power China Hubei Electric Engineering Co., Ltd., Wuhan 430040, P. R. China;
    2. School of Civil Engineering, Wuhan University, Wuhan 430072, P. R. China

Received date: 2025-04-18

  Online published: 2026-03-03

摘要

围锚墩复合基础是输电线路工程中的一种新型基础形式,其变形破坏模式与复合承载特性尚不明确。结合室内试验与数值模拟方法开展围锚墩基础单桩载荷试验研究。结果表明,围锚墩复合基础在下卧中风化与强风化岩层中抗拔加载曲线分别为“陡变型”和“缓变型”、破坏模式分别为“短桩脱出伴随锚杆断裂破坏”和“短桩脱出后锚杆外围岩体破坏”,抗压加载曲线均为“陡变型”,破坏模式为“短桩刺入破坏”;单桩抗拔、抗压、拉弯与压弯极限承载力随短桩直径、嵌岩深度、桩侧土层厚度的增大而提高;单桩抗拔承载力为传统纯短桩和纯锚杆基础抗拔承载力之和,单桩抗压承载力略大于传统纯短桩基础的抗压承载力;水平荷载将极大的削弱复合基础承载能力。

本文引用格式

王远 , 陈浩 , 陶凤娟 , 易黎明 , 何海妮 . 输电线路工程围锚墩复合基础承载特性研究[J]. 地下空间与工程学报, 2026 , 22(1) : 279 -290 . DOI: 10.20174/j.JUSE.2026.01.29

Abstract

The anchor-surrounded pier foundation is a new type of foundation form in transmission line engineering, and its deformation damage mode and composite bearing characteristics are still unclear. Combined with the laboratory test and numerical simulation method, the load test of the anchor-surrounded pier foundation is carried out. The results show that: The anchor-surrounded pier foundation in the undercropping medium-weathered and strongly weathered rock layer in the resistance to pullout loading curves are respectively "steeply variable" and "slowly variable"; The damage modes are "short pile dislodged damage, accompanied by anchor fracture" and "short pile dislodged damage along the periphery of group anchors", respectively; The compressive loading curves of composite foundations in different underlying rock formations are "steep change type", and the damage modes are "short pile stabbing damage". The ultimate bearing capacity of a single pile increases with the increase of the diameter of the short pile, the depth of the socketed rock, and the thickness of the soil layer on the side of the pile. The single pile pullout bearing capacity of anchor is about the sum of the pullout bearing capacity of traditional pure short pile and pure anchor foundation, and the single pile compressive bearing capacity is slightly larger than that of the traditional pure short pile foundation; the horizontal load greatly weakened the composite foundation bearing capacity, and it should be paid attention to.

参考文献

[1] 孟克, 赵戈, 王文明, 等. 输电线路工程基础简介及发展趋势[J]. 低温建筑技术, 2020, 42(6): 146-150. (Meng Ke, Zhao Yi, Wang Wenming, et al. Brief Introduction and Development Trend of Foundations Used in Transmission Line Projects[J]. Low Temperature Architecture Technology, 2020, 42(6): 146-150. (in Chinese))
[2] 魏峰先, 郑卫锋. 输电线路直柱锚杆复合基础试验研究[J]. 工程勘察, 2018, 46(10): 20-24. (Wei Fengxian, Zheng Weifeng. Experimental study on newly column anchor composited foundation in transmission line engineering[J]. Geotechnical Investigation & Surveying, 2018. (in Chinese))
[3] 许顺德. 桩-岩石锚杆复合基础在架空输电线路中的应用[J]. 南方能源建设, 2017, 4(增1): 116-119. (Xu Shunde. Application of Pile-Rock Anchor Composite Foundation in Transmission Line[J]. Southern Energy Construction, 2017, 4(Supp. 1): 116-119. (in Chinese))
[4] 韩丽婷, 王贵, 张大长, 等. 输电铁塔桩-板复合基础上拔承载力特性试验及理论分析[J]. 建筑结构学报, 2018, 39(增1): 337-343. (Han Liting, Wang Gui, Zhang Dachang, et al. Experimental study and theoretical analysis on uplift capacity of a new plate-pile foundation in transmission steel towers[J]. Jianzhu Jiegou Xuebao/Journal of Building Structures, 2018, 39(Supp. 1): 337-343. (in Chinese))
[5] Jia Y Z, Wang M Q, Zhang J, et al. The Numerical Simulation Analysis of Transmission Lines New Composite Type Foundation[A]// proceedings of the 4th International Conference on Applied Mechanics and Mechanical Engineering (ICAMME 2013)[C]. Singapore, 2014: 641.
[6] 邱昊茨, 武奋前, 李扬森, 等. 输电线路扩底桩锚杆复合基础数值模拟研究[J]. 能源与环境, 2024(1): 34-37.
[7] 毛丽荣, 郑众安, 吴建勇, 等. 掏挖与岩石锚杆复合型基础上拔承载机理和影响因素研究[J]. 长江科学院院报, 2021, 38(11): 102-107,114. (Mao Lirong, Zheng Zhongan Wu Jianyong, et al. Uplift bearing mechanism and parameter influence of excavation and rock bolt composite foundation[J]. Journal of Changjiang River Scientific Research Institute, 2021, 38(11): 102-107,114. (in Chinese))
[8] Sun Y Z, Sun H L, Tang C, et al. Monotonic uplift behavior of anchored pier foundations in soil overlying rock [J]. Journal of Zhejiang University-Science A, 2023, 24(7): 569-583.
[9] 程永锋, 鲁先龙, 丁士君等. 掏挖与岩石锚杆复合型杆塔基础抗拔试验与计算 [J]. 电力建设, 2012, 33(3): 6-10. (Cheng Yongfeng, Lu Xianlong, Ding Shijun, et al. Experimental and computational research on the uplift of composite foundation of belled pier and rock anchor in transmission line engineering[J]. Electric Power Construction, 2012, 33(3): 6-10.(in Chinese))
[10] 王彦海, 尹恒伟, 李建林, 等. 短桩斜锚复合基础抗拔承载特性分析与计算[J].建筑科学与工程学报,2025,42(1):167-178. (Wang Yanhai, Yin Hengwei, Li Jianlin, et al. Analysis and calculation of pull-out bearing characteristics of composite foundation with inclined anchor-short pile[J]. Journal of Architecture and Civil Engineering: 2025,42(1):167-178.. (in Chinese))
[11] 丁士君, 鲁先龙, 郑卫锋. 输电线路新型复合式基础试验研究[J]. 电网与清洁能源, 2011, 27(1): 20-24. (Ding Shijun, Lu Xianlong, Zheng Weifeng. Experimental research on new composite foundation of transmission lines[J]. Power System and Clean Energy, 2011, 27(1): 20-24. (in Chinese))
[12] 刘洪义. 一种新型复合基础方案及其试验研究[J]. 吉林电力, 2011, 39(3): 7-10. (Li Hongyi. A new type of compound foundation plan and its experimental research[J]. Jilin Electric Power, 2011, 39(3): 7-10. (in Chinese))
[13] 王远, 易黎明, 陈浩, 等. 山区组合式输电塔围锚墩基础结构[P].中国专利: 202220237933.2, 2022-07-05.(Wang Yuan,Yi Liming,Chen Hao, et al. Composite Foundation Structure of Anchor-Surrounded Pier for Transmission Towers in Mountainous Areas[P]. China Patent:202220237933.2, 2022-07-05. (in Chinese))
[14] 刘海侨, 梁龙, 邓检良. 用于振动台试验的钢筋混凝土群桩模型研制及测试[J]. 实验室研究与探索, 2023, 42(2): 26-30.(Liu Haiqiao, Liang Long, Zheng Jianliang. Development of reinforced concrete pile group model for shaking table test[J]. Research and Exploration in Laboratory, 2023, 42(2): 26-30. (in Chinese))
[15] 杨凯丞, 吴曙光, 廖海成, 等. 双锚杆受力机制分析及模型试验研究[J].岩土力学, 2023, 44(增1): 495-503. (Yang Chenegkai, Wu Shuguang, Liao Haicheng, et al. Mechanism analysis and model test research on double anchor rods[J]. Rock and Soil Mechanics, 2023, 44(Supp. 1): 495-503. (in Chinese))
[16] 陈育民,徐鼎平. FLAC/FLAC3D基础与工程实例[M].北京:中国水利水电出版社, 2013.(Chen Yumin, Xu Dingping. FLAC/FLAC3D foundation and engineering example[M]. Beijing:China Water&Power Press, 2013.(in Chinese))
[17] 单馨玉, 陶连金, 张宇, 等. 预制装配式地铁车站肥槽回填施工力学行为研究[J]. 铁道建筑, 2020, 60(3): 39-43.(Shan Xinyu, Tao Lianjin, Zhang Yu, et al. Study on the mechanical behavior of the backfill construction of the fertilizer trough in the prefabricated metro station[J]. Railway Engineering, 2020, 60(3): 39-43. (in Chinese))
[18] 孙义舟, 孙宏磊, 蔡袁强. 桩-锚复合基础上拔承载力计算和参数影响研究[J]. 上海交通大学学报, 2022, 56(6): 701-709. (Sun Yizhou, Sun Honglei, Cai Yuanqiang. Calculation method of uplift capacity of pile-anchor composite foundation and influence of parameters[J]. Journal of Shanghai Jiaotong University, 2022, 56(6): 701-709. (in Chinese))
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