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Effect of surface loading on the hydro-mechanical response of a tunnel in saturated ground

机译:地表荷载对饱和地下隧道水力响应的影响

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The design of underground spaces in urban areas must account not only for the current overburden load but also for future surface loads, such as from construction of high-rise buildings above underground structures. In saturated ground, the surface load will generate an additional mechanical response through stress changes and ground displacement, as well as a hydraulic response through pore pressure changes. These hydro-mechanical (H-M) changes can severely influence tunnel stability. This paper examines the effect of surface loading on the H-M response of a typical horseshoe-shaped tunnel in saturated ground. Two tunnel models were created in the computer code Fast Lagrangian Analysis of Continua (FLAC). One model represented weak and low permeability ground (stiff clay), and the other represented strong and high permeability ground (weathered granite). Each of the models was run under two liner permeabilities: permeable and impermeable. Two main cases were compared. In Case 1, the surface load was applied 10years after tunnel construction. In Case 2, the surface load was applied after the steady state pore pressure condition was achieved. The simulation results show that tunnels with impermeable liners experienced the most severe influence from the surface loading, with high pore pressures, large inward displacement around the tunnels, and high bending moments in the liner. In addition, the severity of the response increased toward steady state. This induced H-M response was worse for tunnels in clay than for those in granite. Furthermore, the long-term liner stabilities in Case 1 and Case 2 were similar, indicating that the influence of the length of time between when the tunnel was completed and when the surface load was applied was negligible. These findings suggest that under surface loading, in addition to the ground strength, tunnel stability in saturated ground is largely influenced by liner permeability and the long-term H-M response of the ground.
机译:市区地下空间的设计不仅必须考虑当前的超载负荷,而且还必须考虑未来的地面负荷,例如来自地下结构上方的高层建筑的建造。在饱和地面中,表面载荷将通过应力变化和地面位移产生附加的机械响应,并通过孔隙压力变化产生液压响应。这些水力(H-M)变化会严重影响隧道的稳定性。本文研究了表面荷载对饱和地面中典型马蹄形隧道的H-M响应的影响。在计算机代码连续性快速拉格朗日分析(FLAC)中创建了两个隧道模型。一种模型代表弱渗透性和低渗透性的地面(硬粘土),另一种代表强渗透性和高渗透性的地面(风化花岗岩)。每个模型都在两种衬管渗透率下运行:可渗透和不可渗透。比较了两个主要案例。在案例1中,在隧道施工10年后施加了表面荷载。在情况2中,在达到稳态孔隙压力条件后施加表面载荷。仿真结果表明,具有不可渗透衬砌的隧道受表面载荷的影响最大,孔隙压力高,隧道周围向内位移大,衬砌弯矩高。另外,反应的严重性向稳态增加。这种诱导的H-M响应对于粘土中的隧道比花岗岩中的隧道要差。此外,案例1和案例2的长期衬砌稳定性相似,表明隧道完工与施加表面载荷之间的时间长度的影响可以忽略。这些发现表明,在地面载荷下,除了地面强度外,饱和地面中的隧道稳定性在很大程度上受衬砌渗透性和地面的长期H-M响应影响。

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