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零净距上方开挖下大直径盾构隧道整体安全提升措施研究

Study on Overall Safety Improvement Measures for Large-Diameter Shield Tunnels Subjected to Overlying Excavation with Zero Clearance

  • 摘要: 上方土体开挖不可避免地引发土体卸载效应进而导致下卧盾构隧道变形受力,现有研究多集中于非零土体间距下的常规直径(直径D ≤ 6.6 m)隧道。为研究零净距上方开挖条件下大直径盾构隧道力学响应及保护措施,本文依托津潍高铁盾构隧道项目某段B3线竖井津沽海河隧道管片拆除工程,基于三维数值模拟研究了不同土体开挖方式对隧道受力变形的影响以及不同加固措施的控制效果。研究结果表明,土体一次性、分层和放坡开挖引发隧道拱顶隆起位移均呈现高斯对称分布,隧道纵向受影响范围约为2.5倍开挖宽度;开挖引发隧道拱顶外侧受拉,附加弯矩整体呈现“山”字形分布;提高土体强度比增强结构局部刚度能更有效地控制开挖引发的地层卸荷效应,并使地层影响区域分布由“葫芦形”转变为“杯形”。最终采取端头土体加固与钢格栅加固组合措施能够使与竖井交界处隧道隆起位移低于预警值10 mm,并使竖井外侧隧道最大附加弯矩降低72.6%。现场应用结果表明隧道最大隆起值为3.8 mm,横纵向钢格栅加固技术能够有效控制竖井开挖与隧道拆除阶段邻近隧道的纵向不均匀沉降,提升隧道在漏水漏砂等极端情况下的防连续破坏能力,避免涌水涌砂灾害发生。

     

    Abstract: Excavation of the overlying soil inevitably induces soil unloading effects, which further trigger deformation and internal force responses of the underlying shield tunnels. Most existing studies primarily focus on conventional-diameter tunnels (diameter D ≤ 6.6 m) with a non-zero soil cover clearance. To investigate the mechanical responses and protection measures of large-diameter shield tunnels subjected to overlying excavation with zero clearance, this study takes the segment removal project of the Jingu Haihe Tunnel at the shaft of Line B3 of the Jinan-Weifang High-speed Railway shield tunnel as the engineering background. Three-dimensional numerical simulations are adopted to analyze the influences of different excavation methods on the stress and deformation of the tunnel, as well as the control effects of various reinforcement measures. The results show that the crown heave displacement of the tunnel induced by full-depth excavation, layered excavation and slope excavation all follows a Gaussian symmetric distribution, and the longitudinally affected zone of the tunnel is approximately 2.5 times the excavation width. Excavation leads to tension on the outer side of the tunnel crown, and the distribution of additional bending moment presents an overall mountain-shaped pattern. Enhancing soil strength is more effective than improving the local stiffness of tunnel structures in mitigating the unloading effect of surrounding soil; meanwhile, the influenced region of the stratum changes from a gourd shape to a cup shape. The combined measures of end soil reinforcement and steel grid reinforcement were ultimately adopted. These measures reduced the heave displacement of the tunnel at the shaft junction to below the warning value of 10 mm, and decreased the maximum additional bending moment of the tunnel outside the shaft by 72.6%. Field application results show that the maximum tunnel heave is merely 3.8 mm. The transverse and longitudinal steel grid reinforcement technology can effectively control the longitudinal differential settlement of adjacent tunnels during shaft excavation and tunnel demolition. It also improves the tunnel’s resistance to progressive failure under extreme conditions such as water and sand leakage, thereby preventing water and sand inrush disasters.

     

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