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Numerical modeling of umbrella arch technique to reduce tunnelling induced ground movements

机译:伞拱技术的数值模拟,以减少隧道引起的地面运动

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One of the most important aspects of tunnelling in soft grounds is to reduce any possible adverse environmental impact. That is, pre-supporting techniques are found to boost tunnelling advance speed whilst, at the same time, keeping the environmental consequences due to tunnelling process appreciably low. The umbrella arch method is one of the most common ground pre-supporting techniques used in tunnelling. The interactions between the ground and umbrella arches are very complex. There are also several parameters affecting the performance of the umbrella arch technique. Sophisticated numerical modeling is, therefore, required to gain a proper understanding of the mechanism of ground movement based on the umbrella arch method. In this paper, the role of the pipe roofing and face bolting on the stabilization of the northern portal of Sabzkooh tunnel is assessed using three-dimensional (3D) numerical method. Furthermore, the effects of design parameters such as the pipes installation angle, the pipes diameter and the transverse spacing of pipes on the performance of umbrella arch system are investigated through numerical modeling. The vertical displacements of the tunnel crown and the internal forces induced in the initial support system are extracted from the numerical modeling and are carefully assessed to identify the role of thepre-supporting methods. The outcomes of the numerical modeling demonstrate that when pipe roofing and face bolts are utilized, the tunnel convergence decreases and the induced axial forces in the initial support system tend to increase. These clearly highlight the role of pre-supporting technique on stabilizing the tunnel and transferring ground loads to the support measure. Results also show that reduction in the installation angle and transverse spacing of pipes and increasing the diameter of pipes can all considerably reduce the tunnel crown displacement while they increase the maximum induced axial forces in the initial support system. Stability analysis using bearing capacity diagrams also indicates that the initial support system with different configurations of pipe roofing and face bolts at different cross sections along the tunnel alignment is fairly sturdy and robust against the applied loads.
机译:在软土地基中进行隧道施工的最重要方面之一是减少任何可能的不利环境影响。即,发现预支撑技术提高了隧道掘进的速度,同时,由于隧道掘进过程而对环境的影响明显降低。伞拱法是隧道施工中最常用的地面预支撑技术之一。地面和伞形拱之间的相互作用非常复杂。还有几个参数会影响伞形弓技术的性能。因此,需要使用复杂的数值模型来正确理解基于伞形拱法的地面运动机理。在本文中,使用三维(3D)数值方法评估了管棚和锚杆在Sabzkooh隧道北部门户稳定中的作用。此外,通过数值模拟研究了设计参数,如管的安装角度,管的直径和管的横向间距对伞拱系统性能的影响。从数值模型中提取了隧道顶冠的竖向位移和初始支撑系统中引起的内力,并对其进行了仔细的评估,以确定预支撑方法的作用。数值模拟的结果表明,当使用管棚和面板螺栓时,隧道会聚减少,初始支撑系统中的轴向力趋于增加。这些明确突出了预支护技术在稳定隧道和将地面荷载转移到支护措施中的作用。结果还表明,减小安装角度和管道的横向间距以及增加管道的直径,都可以显着减少隧道拱顶位移,同时增加初始支撑系统中的最大感应轴向力。使用承载力图的稳定性分析还表明,在沿隧道路线的不同横截面处,具有不同配置的管棚和端面螺栓的初始支撑系统相当坚固,并且能够抵抗所施加的载荷。

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