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Designing an innovative support system in loess tunnel

机译:在黄土隧道中设计创新支持系统

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The sufficient early strength of primary support is crucial for stabilizing the surroundings, especially for the tunnels constructed in soil. This paper introduces the Steel-Concrete Composite Support System (SCCS), a new support with high bearing capacity and flexible, rapid construction. The bearing characteristics and construction performance of SCCS were systematically studied using a three-dimensional numerical model. A sensitivity analysis was also performed. It was found that the stress of a n-shaped steel arch decreased with an increase in the thickness of the wall, and increased linearly with an increase in the rate of stress release. In the horizontal direction of the arch section, the nodal stresses of the crown and the shoulder gradually increased in longitudinally, and in the vertical direction, the nodal stresses gradually decreased from top to bottom. The stress distribution at the waist, however, was opposite to that at the crown and the shoulder. By analyzing the stress of the arch section under different installation gaps, the sectional stress evolution was found to have a step-growth trend at the crown and shoulder. The stress evolution at the waist is more likely to have a two-stage growth trend: a slow growth stage and a fast growth stage. The maximum tensile and compressive stresses of the secondary lining supported by SCCS were reduced on average by 38.0% and 49.0%, respectively, compared with the traditional support. The findings can provide a reference for the supporting technology in tunnels driven in loess.
机译:初级载体的足够早期强度对于稳定周围环境至关重要,特别是对于在土壤中构建的隧道。本文介绍了钢混凝土复合材料支撑系统(SCCS),具有高承载能力和柔韧,施工快速施工的新支撑。使用三维数值模型系统地研究了SCCS的轴承特性和施工性能。还进行了敏感性分析。结果发现,N形钢拱的应力随着壁厚的增加而降低,并随着应力释放速率而导致线性增加。在拱形部分的水平方向上,冠的节点应力和肩部纵向逐渐增加,并且在垂直方向上,节点应力从上到下逐渐减小。然而,腰部的应力分布与胎冠和肩部相反。通过在不同安装间隙下分析拱形部分的应力,发现凸冠和肩部的剖面应力进化。腰部的压力演化更有可能具有两阶段的增长趋势:增长速度缓慢,增长阶段快。与传统载体相比,SCCS支撑的二次衬里的最大拉伸和压缩应力分别降低了38.0%和49.0%。该研究结果可以为黄土推出驱动的隧道中的支持技术提供参考。

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