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Stability analysis and optimization of excavation method of double-arch tunnel with an extra-large span based on numerical investigation

机译:基于数值调查的超大跨度双拱隧道挖掘方法的稳定性分析与优化

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摘要

The Xiamen Haicang double-arch tunnel has a maximum span of 45.73 m and a minimum burial depth of 5.8 m. A larger deformation or collapse of the tunnel is readily encountered during tunnel excavation. It is therefore necessary to select a construction approach that is suitable for double-arch tunnel projects with an extra-large span. In this study, three construction methods for double-arch tunnels with extra-large spans were numerically simulated. Subsequently, the deformation behavior and stress characteristics of the surrounding rock were obtained and compared. The results showed that the double-side-drift method with temporary vertical support achieves better adaptability in the construction of such tunnels, which can be observed from both the numerical results and in situ monitoring data. In addition, the improved temporary support plays a critical role in controlling the surrounding rock deformation. In addition, the disturbance resulting from the excavation of adjacent drifts was obvious, particularly the disturbance of the surrounding rock caused by the excavation of the middle drift. The present findings can serve as the initial guidelines for the construction of ultra-shallowly buried double-arch tunnels with extra-large spans.
机译:厦门海刚双拱隧道最大跨度为45.73米,最小埋藏深度为5.8米。在隧道开挖期间,容易遇到隧道的较大变形或塌陷。因此,有必要选择适用于具有超大跨度的双拱隧道项目的施工方法。在这项研究中,数值模拟了具有超大跨度的双拱隧道的三种施工方法。随后,获得并比较周围岩石的变形行为和应力特性。结果表明,具有临时垂直支撑的双面漂移方法在这种隧道的构造中实现了更好的适应性,这可以从数值结果和原位监测数据中观察到这两种隧道。此外,改进的临时支持在控制周围的岩石变形方面发挥着关键作用。此外,由于相邻漂移的挖掘产生的干扰是显而易见的,特别是由中间漂移的挖掘引起的周围岩石的干扰。本研究结果可作为建造具有超大跨度超浅埋双拱隧道的初步准则。

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