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Mechanical responses of surrounding rock mass and tunnel linings in large-span triple-arch tunnel

机译:大跨度三拱隧道周围岩体和隧道衬里的机械响应

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In this study, based on the construction of a large-span triple-arch tunnel, the authors focus on the surrounding rock mass deformation characteristic, evolution process of rock mass load, and mechanical behaviors of tunnel linings. Numerical modelling is used for rock mass deformation analysis. The leading tunnel excavation would disturb the rock mass of the lagging tunnel and cause its pre-deformation. As the middle tunnel lagged behind the two side tunnels, it showed much larger pre-settlement than the side tunnels. The field monitoring method is used to obtain the rock mass pressure, contact pressure between the tunnel linings, and steel stresses inside the tunnel linings. At the initial phase, the rock mass pressure and contact pressure of the linings rapidly increased; then, the monitored pressures tended to be stable until the rock mass was disturbed by the following excavation steps. Most of the steel stresses within the tunnel linings were compressive stresses and considerably lower than the yield strength, which meant that the tunnel linings were in a safe working state. The middle tunnel excavation is the most significant part of the triple-arch tunneling. It caused a significant increase in the rock mass load of the side tunnels, particularly the lateral load on sidewalls. The secondary lining of side tunnels shared most of the new increased load caused by middle tunnel excavation. Therefore, the lateral load-bearing capacity of the triple-arch tunnel was suggested to be improved. The rock mass load was symmetrically distributed along the central axis, but there was considerable bias load on the top and bottom of the division walls between the middle and side tunnels, which meant that the bending resistance and anti-overturning capacity of the division walls should be strengthened. According to the mechanical responses of the tunnel, some engineering suggestions are proposed for large-span triple-arch tunnelling. The results of this study can provide references for the design and construction of large-span triple-arch tunnels.
机译:本研究基于建设大跨度三拱隧道,作者侧重于周围的岩石质量变形特性,岩石质量荷载的演化过程,以及隧道衬里的机械行为。数值建模用于岩体质量变形分析。领先的隧道挖掘将使滞后隧道的岩石质量扰乱并导致其预变形。由于中间隧道落后于两侧隧道后,它显示出比侧隧道更大的预沉降预沉降。现场监测方法用于获得岩石质量压力,隧道衬里之间的接触压力,隧道衬里内的钢胁迫。在初始阶段,岩石质量压力和衬里的接触压力迅速增加;然后,监测的压力趋于稳定,直到岩体被以下挖掘步骤受到干扰。隧道衬里内的大部分钢应力是压缩应力,显着低于屈服强度,这意味着隧道衬里处于安全工作状态。中间隧道挖掘是三拱隧道最重要的部分。它导致侧隧道的岩石质量负荷显着增加,特别是侧壁上的横向载荷。侧隧道的二次衬砌共享由中间隧道挖掘引起的大部分新的增加负荷。因此,提出了三拱隧道的横向承载能力得到改善。岩石质量负荷沿着中心轴对称地分布,但在中间和侧隧道之间的分割墙壁的顶部和底部存在相当大的偏置载荷,这意味着弯曲的弯曲电阻和分割壁的抗倾覆容量应该加强。根据隧道的机械反应,提出了一些工程建议,用于大跨度三拱隧道。本研究的结果可以为大跨度三拱隧道的设计和构建提供参考。

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