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Three-dimensional numerical parametric study of the influence of basement excavation on existing tunnel

机译:地下室开挖对既有隧道影响的三维数值参数研究

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摘要

For the convenience of shoppers and users, there is an increasing demand for construction of basements in close proximity to existing tunnels. To ensure the safety and serviceability of existing tunnels, many numerical analyses have been conducted to investigate the basement-tunnel interaction. However, most of previous studies have simplified the complex interaction as a plane strain problem and often they have overlooked effects of stress path and strain dependency on soil stiffness. In this study, three-dimensional numerical parametric study is conducted to explore the complex interaction in dry sand by using an advanced hypoplastic soil model. The validity of the soil model and soil parameters is calibrated and verified by centrifuge test results. Parameters considered on tunnel responses by overlying basement excavation include excavation geometry, sand density, tunnel stiffness and joint stiffness. It is found that the basement-tunnel interaction at basement centre reaches a plane strain condition when excavation length along the longitudinal tunnel direction is longer than 9 H_e (final excavation depth). Both heave and transverse tensile strain of tunnel exceed the allowable movement limit and cracking strain when excavation length is longer than 5 H_e and excavation width is wider than 2 H_e. At a given excavation area on plan, the longer side of basement should be perpendicular to the longitudinal tunnel direction to reduce excavation induced adverse effects on existing tunnel. Because a looser soil has smaller stiffness around the tunnel, tunnel heave and tensile strain at basement centre are increased by up to 90% and 80%, respectively, when relative sand density decreases from 90% to 30%. By increasing tunnel stiffness 100 times, induced maximum tunnel heave and tensile strain are reduced by up to 75% and 85%, respectively. This means that stiffening a tunnel can be an effective way to alleviate excavation induced adverse effects on existing tunnel. Induced tunnel heave and tensile strain at basement centre are insensitive to the presence of tunnel joint unless the joint stiffness is less than 30% of the lining stiffness.
机译:为了购物者和用户的方便,对在现有隧道附近建造地下室的需求不断增加。为了确保现有隧道的安全性和可服务性,已经进行了许多数值分析来研究地下室-隧道的相互作用。但是,大多数先前的研究已将复杂的相互作用简化为平面应变问题,并且常常忽略了应力路径和应变对土壤刚度的影响。在这项研究中,进行了三维数值参数研究,以通过使用高级的增生土壤模型探索干砂中的复杂相互作用。通过离心测试结果对土壤模型和土壤参数的有效性进行了校准和验证。上覆地下室开挖对隧道响应的影响参数包括开挖几何形状,砂密度,隧道刚度和节理刚度。研究发现,当沿纵向隧道方向的开挖长度大于9 H_e(最终开挖深度)时,地下室中心处的地下隧道相互作用达到了平面应变条件。当开挖长度大于5 H_e且开挖宽度大于2 H_e时,隧道的隆起和横向拉伸应变均超过允许的运动极限和开裂应变。在计划中的给定开挖区域,地下室的较长边应垂直于纵向隧道方向,以减少开挖对现有隧道的不利影响。由于较疏松的土壤在隧道周围具有较小的刚度,因此,当相对沙子密度从90%降低到30%时,地下室中心的隧道隆起和拉伸应变分别增加了90%和80%。通过将隧道刚度提高100倍,可将诱导的最大隧道起伏和拉伸应变分别降低多达75%和85%。这意味着对隧道进行加固可能是减轻开挖对现有隧道的不利影响的有效方法。除非接头刚度小于衬砌刚度的30%,否则在地下室中心处引起的隧道隆起和拉伸应变对隧道接头的存在不敏感。

著录项

  • 来源
    《Computers and Geotechnics》 |2015年第1期|146-158|共13页
  • 作者单位

    Department of Civil and Environmental Engineering, The Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong;

    Department of Civil and Environmental Engineering, The Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong,Key Laboratory of Geomechanics and Embankment Engineering of the Ministry of Education, Geotechnical Research Institute, Hohai University, 1 Xikang Road, Nanjing 210098, China;

    Department of Civil and Environmental Engineering, The Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong,Key Laboratory of Geomechanics and Embankment Engineering of the Ministry of Education, Geotechnical Research Institute, Hohai University, 1 Xikang Road, Nanjing 210098, China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Three-dimensional; Numerical parametric study; Excavation geometry; Sand density; Tunnel stiffness; Joint stiffness;

    机译:三维;数值参数研究;开挖几何砂密度隧道刚度;关节刚度;

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