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Three dimensional face stability of a tunnel in weak rock masses subjected to seepage forces

机译:弱岩体中渗流作用下隧道的三维面稳定性

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摘要

Reliable prediction of tunnel face stability is a key challenge for tunnel engineering, especially when drilling in highly fractured rock masses under the water table. This work aims to study face stability of a circular tunnel in weak rock masses under the water table based on an advanced three-dimensional (3D) rotational collapse mechanism in the context of the kinematical approach of limit analysis. The fractured rock masses are characterized by the Hoek-Brown failure criterion. A 3D steady-state seepage field obtained numerically is used to interpolate hydraulic heads of the 3D collapse mechanism and seepage force is incorporated into this predicting model by directly considering it as a body force. The results provided by the presented approach are compared with those of numerical calculations, showing a good agreement. The proposed work also provides an improvement with respect to other existing solutions. Thanks to the high computational efficiency of the presented method, four sets of normalized charts are obtained for a tunnel driven in weak rock masses under the water table.
机译:可靠的隧道面稳定性预测是隧道工程的关键挑战,尤其是在地下水位以下的高裂隙岩体中进行钻探时。这项工作旨在基于极限分析的运动学方法,基于先进的三维(3D)旋转坍塌机制,研究地下水位较弱的岩体中圆形隧道的面稳定性。裂隙岩体的特征在于Hoek-Brown破坏准则。通过数值获得的3D稳态渗流场用于对3D塌陷机构的液压头进行插值,并且通过将渗流力直接视为体力将渗流力纳入此预测模型。所提出的方法提供的结果与数值计算的结果进行了比较,显示出很好的一致性。拟议的工作还相对于其他现有解决方案进行了改进。由于所提出方法的高计算效率,对于在地下水位以下的弱岩体中驱动的隧道,获得了四套归一化图表。

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