岩土力学 ›› 2025, Vol. 46 ›› Issue (9): 2955-2966.doi: 10.16285/j.rsm.2024.1347CSTR: 32223.14.j.rsm.2024.1347

• 数值分析 • 上一篇    下一篇

新型短柱斜桩复合基础结构优化与承载机制研究

鄂天龙1,崔强2,孙志亮3,冯杨州1,李冰臻1,缪栋4,杨健1,苗田1   

  1. 1. 国网甘肃省电力公司,甘肃 兰州 730030;2. 国网电力工程研究院有限公司,北京 102401; 3. 中国科学院武汉岩土力学研究所 岩土力学与工程安全全国重点实验室,湖北 武汉 430071; 4. 国网甘肃省电力公司兰州供电公司,甘肃 兰州 730050
  • 收稿日期:2024-10-27 接受日期:2025-02-11 出版日期:2025-09-10 发布日期:2025-09-05
  • 通讯作者: 孙志亮,男,1987年生,博士,副研究员,主要从事特殊土防灾减灾及土动力学等方面的研究工作。E-mail: zlsun@whrsm.ac.cn
  • 作者简介:鄂天龙,男,1985年生,硕士,高级工程师,主要从事输变电工程建设方面的研究工作。E-mail: etianlong007@163.com
  • 基金资助:
    湖北省自然科学基金项目(No.2022CFB417)

Structure optimization and bearing mechanism of a novel composite foundation incorporating short column-batter piles

E Tian-long1, CUI Qiang2, SUN Zhi-liang3, FENG Yang-zhou1, LI Bing-zhen1, MIAO Dong4, YANG Jian1, MIAO Tian1   

  1. 1. State Grid Gansu Electric Power Company, Lanzhou, Gansu 730030, China; 2. State Grid Electric Power Engineering Research Institute Co., Ltd., Beijing 102401, China; 3. Key Laboratory of Geomechanics and Geotechnical Engineering Safety, Institute of Rock and Soil Mechanics, Chinese Academy of Sciences, Wuhan, Hubei 430071, China; 4. Lanzhou Power Supply Company, State Grid Gansu Electric Power Company, Lanzhou, Gansu 730050, China
  • Received:2024-10-27 Accepted:2025-02-11 Online:2025-09-10 Published:2025-09-05
  • Supported by:
    This work was supported by the Natural Science Foundation of Hubei Province, China (2022CFB417).

摘要: 为了适应黄土地区大荷载输电线路基础的建设需求,提出一种上部为短柱、下部为若干斜桩组成的新型复合基础。通过试验结果验证的数值模拟方法,能对不同组合形式的复合基础进行结构优化,并对其承载机制进行分析。通过正交试验设计,厘清了斜桩部分数量、长度以及倾斜角度对承载力大小影响的排序。在总体积相同的条件下,适当增大短柱部分的埋深,缩短斜桩部分的桩长,可以提高短柱斜桩复合基础的上拔承载力,同时对下压承载力影响不大。基于大量的数值模拟结果分析,初步建议了复合基础结构设计尺寸的选取范围。上拔过程中,短柱先达到承载力极限状态;下压过程中,斜桩先达到极限状态,短柱与斜桩在各工况下的承载力发挥不同步。提出基于承载力发挥系数的新型短柱斜桩复合基础承载力计算方法,可为相关基础设计提供参考。

关键词: 黄土, 输电线路, 复合基础, 承载力, 承载机制

Abstract: To address the construction requirements of heavy-load transmission line foundations in loess regions, this study proposes a novel composite foundation configuration consisting of an upper short column and multiple lower batter piles. A validated numerical simulation method, supported by experimental results, was employed to optimize structural configurations of various composite forms and analyze their load-bearing mechanisms. Through orthogonal experimental design, the influence ranking of the quantity, length, and inclination angle of inclined piles on bearing capacity was systematically clarified. Under equivalent volume conditions, increasing the embedment depth of the short column while appropriately reducing the length of inclined piles was found to enhance uplift bearing capacity without significantly compromising compressive capacity. Based on extensive numerical simulations, preliminary recommendations for the structural dimensions of the composite foundation were proposed. During upward loading, the short column reaches ultimate capacity first; during downward loading, the inclined piles reach ultimate capacity first. The bearing capacities of the short column and inclined piles are asynchronous across different loading conditions. A calculation methodology incorporating bearing capacity mobilization coefficients was developed for short column-inclined pile composite foundations, providing valuable references for related foundation designs.

Key words: loess, transmission line, composite foundation, bearing capacity, bearing mechanism

中图分类号: TU473
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