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浅埋管幕法隧道竖向应力计算模型与工程应用

黄明 陈骏宁 赖丰文 路德春 肖雄 李洪江

黄明, 陈骏宁, 赖丰文, 路德春, 肖雄, 李洪江. 浅埋管幕法隧道竖向应力计算模型与工程应用[J]. 交通运输工程学报, 2026, 26(7): 39-52. doi: 10.19818/j.cnki.1671-1637.2026.273
引用本文: 黄明, 陈骏宁, 赖丰文, 路德春, 肖雄, 李洪江. 浅埋管幕法隧道竖向应力计算模型与工程应用[J]. 交通运输工程学报, 2026, 26(7): 39-52. doi: 10.19818/j.cnki.1671-1637.2026.273
HUANG Ming, CHEN Jun-ning, LAI Feng-wen, LU De-chun, XIAO Xiong, LI Hong-jiang. Calculation model for vertical stress of shallowly buried pipe-roofing tunnels and its engineering application[J]. Journal of Traffic and Transportation Engineering, 2026, 26(7): 39-52. doi: 10.19818/j.cnki.1671-1637.2026.273
Citation: HUANG Ming, CHEN Jun-ning, LAI Feng-wen, LU De-chun, XIAO Xiong, LI Hong-jiang. Calculation model for vertical stress of shallowly buried pipe-roofing tunnels and its engineering application[J]. Journal of Traffic and Transportation Engineering, 2026, 26(7): 39-52. doi: 10.19818/j.cnki.1671-1637.2026.273

浅埋管幕法隧道竖向应力计算模型与工程应用

doi: 10.19818/j.cnki.1671-1637.2026.273
基金项目: 

国家自然科学基金青年科学基金项目 52438005

国家自然科学基金青年科学基金项目 52378392

国家自然科学基金青年科学基金项目 52408356

国家级青年人才项目 00389335

详细信息
    作者简介:

    黄明(1983-),男,江西瑞金人,教授,博士生导师,工学博士,E-mail: huangming05@fzu.edu.cn

    通讯作者:

    路德春(1977-),男,黑龙江绥化人,教授,博士生导师,工学博士,E-mail: dechun@bjut.edu.cn

  • 中图分类号: U452

Calculation model for vertical stress of shallowly buried pipe-roofing tunnels and its engineering application

Funds: 

National Natural Science Foundation of China for Youth Science Foundation 52438005

National Natural Science Foundation of China for Youth Science Foundation 52378392

National Natural Science Foundation of China for Youth Science Foundation 52408356

National Youth Talent Project 00389335

More Information
Article Text (Baidu Translation)
  • 摘要: 传统水平微分单元法表征土拱效应时,忽略了单元层间剪切力对竖向应力传递的贡献,从而导致计算结果偏于保守。鉴于此,首先将管幕法隧道简化为活动门(Trapdoor)模型,采用有限元极限分析(FELA)方法,系统探究了不同深宽比及土体内摩擦角条件下浅埋活动门滑裂角的变化规律;据此,基于大主应力轨迹线,建立了拱形微分单元竖向应力计算模型,推导了浅埋活动门竖向应力解;进一步阐明了土体内摩擦角、剪胀角及地面超载对活动门归一化竖向应力的影响规律;最后将所提模型应用于某管幕法隧道工程,探究其工程适用性。研究结果表明:所提模型计算结果与既有解、FELA解及室内模型试验结果吻合良好;相较于经典Terzaghi理论及规范方法,归一化竖向应力分别降低30.7%与45.3%,碳排放量分别减少9.1%与16.6%。

     

  • 图  1  问题定义及数值模型

    Figure  1.  Problem definition and numerical model

    图  2  大主应力偏转矢量图

    Figure  2.  Vector diagram of major principal stress rotation

    图  3  滑裂角和内摩擦角拟合结果

    Figure  3.  Fitting result of slip surface angle and internal friction angle

    图  4  活动门竖向应力计算模型

    Figure  4.  Vertical stress calculation model of the trapdoors

    图  5  D点应力状态

    Figure  5.  Stress state at point D

    图  6  拱形微分单元受力平衡

    Figure  6.  Force balance of arched differential elements

    图  7  不同深宽比下归一化竖向应力计算结果对比

    Figure  7.  Comparison chart of normalized vertical stress calculation results under different aspect ratios

    图  8  不同理论下归一化竖向应力计算结果对比

    Figure  8.  Comparison of normalized vertical stress calculation results by different theories

    图  9  竖向应力分布计算结果对比

    Figure  9.  Comparison of the calculation results of vertical stress distribution

    图  10  不同深宽比下内摩擦角对归一化竖向应力的影响规律

    Figure  10.  Influence law of internal friction angle on normalized vertical stress under different depth-to-width ratios

    图  11  不同深宽比下归一化剪胀角对归一化竖向应力的影响规律

    Figure  11.  Influence law of normalized dilatancy angle on normalized vertical stress under different depth-to-width ratios

    图  12  不同深宽比下归一化地面超载对归一化竖向应力的影响规律

    Figure  12.  Influence law of normalized ground surcharge on normalized vertical stress under different depth-to-width ratios

    图  13  深圳某管幕法隧道

    Figure  13.  Pipe-roofing tunnel in Shenzhen

    图  14  土压力盒布置

    Figure  14.  Layout of the earth pressure box

    图  15  竖向应力分布计算结果对比

    Figure  15.  Comparison of calculation results of vertical stress distribution

    图  16  归一化竖向应力随深度变化对比

    Figure  16.  Comparison of normalized vertical stress varying with depth

    图  17  管幕挠度计算模型

    Figure  17.  Calculation model of pipe roof deflection

    图  18  工程造价及碳排放量对比

    Figure  18.  Comparison of engineering cost and carbon emissions

    表  1  不同深宽比及内摩擦角的活动门上方滑裂角的变化

    Table  1.   Variation of slip surface angle above the trapdoors under different depth-to-width ratios and internal friction angles

    下载: 导出CSV

    表  2  不同深宽比及内摩擦角的活动门上方滑裂角的大小

    Table  2.   Slip surface angle above the trapdoors under different depth-to-width ratios and internal friction angles

    φ/(°) H/B α/(°) φ/(°) H/B α/(°)
    15 0.5 15.20 30 1.5 31.38
    15 1.0 15.74 30 2.0 30.60
    15 1.5 15.96 35 0.5 35.56
    15 2.0 16.16 35 1.0 36.39
    20 0.5 20.90 35 1.5 33.58
    20 1.0 20.82 35 2.0 33.33
    20 1.5 21.48 40 0.5 39.19
    20 2.0 20.91 40 1.0 41.09
    25 0.5 26.16 40 1.5 39.49
    25 1.0 26.30 40 2.0 39.32
    25 1.5 25.34 45 0.5 45.90
    25 2.0 25.72 45 1.0 45.54
    30 0.5 30.48 45 1.5 43.62
    30 1.0 30.61 45 2.0 43.88
    下载: 导出CSV

    表  3  现场地质情况

    Table  3.   The on-site geological conditions

    参数 土体
    中砂 粗砂 花岗岩
    层顶深度 0 8.1 9.7
    黏聚力c/kPa 0 0 27.5
    内摩擦角φ/(°) 33.0 26.0 25.5
    土体重度γ/(kN·m-3) 19.2 19.8 18.3
    弹性模量E/MPa 30 42 205
    下载: 导出CSV
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出版历程
  • 收稿日期:  2026-01-13
  • 录用日期:  2026-03-20
  • 修回日期:  2026-03-11
  • 刊出日期:  2026-07-28

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