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Assessment of damage zone thickness and wall convergence for tunnels excavated in strain-softening rock masses

机译:渗透岩体隧道隧道损伤区厚度和墙壁收敛评估

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摘要

There are two fundamental issues in all underground excavations, which are safety and economy. To ensure safety and expedite excavations, level of tunnel wall convergences and damage zone thickness should be predicted before the excavation starts, should be determined accurately, and monitored during the excavation by the tunnel designer. However, accurate prediction of these two parameters is difficult unless in-situ stress and deformation measurement tools are used. In this study, damage zone thickness and tunnel wall convergence relation was investigated for horseshoe-shaped highway tunnels by using empirical methods. For this aim two-dimensional plane strain finite element models were used. Totally 9 tunnel sections were selected for the empirical analysis from 5 different ongoing tunnel excavations, which are excavated in weak and fair quality rock masses and show strain softening post-failure behavior. With the help of data gathered through in-situ convergence measurements and predicted convergences and rock mass geotechnical properties an empirical analysis was conducted. Engineering characteristics of the tunnel routes were determined by means of geological mapping, drillings and laboratory studies. Tunnel wall convergences were measured by optical measurement devices in three-dimensional space. Then, numerical models have been created for each of the tunnel sections studied. For evaluation of damaged zone thickness; yielded elements, volumetric strain, and principal stress concentrations have been used. Damage zone thickness and convergences were estimated from the numerical models and the whole data were compared with the real convergence results. Findings have been compared with previous researchers' convergence predictions and plastic zone calculation approaches. The results are in agreement both with the field measurements and previous empirical approaches. In this way, an empirical relation has been obtained for tunnel wall convergences and damage zone thicknesses. Besides, through an analysis of the relations of convergences at each query points in plane strain finite element model, a new empirical relation has also been put forth that gives "Convergence Constant" for modelled cross-section. This constant can be used as an auxiliary tool for prediction of next section convergences, on the condition that excavation has similar geological, geotechnical properties and topography.
机译:所有地下挖掘都有两个基本问题,这是安全和经济。为确保安全性和加快挖掘,应在挖掘开始之前预测隧道壁收敛水平和损坏区域厚度,应准确地确定隧道设计师在挖掘过程中监控。然而,除非使用原位应力和变形测量工具,否则困难对这两个参数的精确预测。在本研究中,使用经验方法研究了马蹄形公路隧道的损伤区厚度和隧道壁收敛关系。对于此,使用二维平面应变有限元模型。选择了9个隧道部分,用于从5种不同的持续隧道挖掘的实证分析,这些隧道挖掘出现在弱且公平的岩体肿块中挖掘,并显示出突变失败后行为的应变软化。借助通过原位收敛测量和预测的收敛和岩石大规模岩土性质收集的数据的帮助,进行了实证分析。隧道路线的工程特征是通过地质测绘,钻探和实验室研究确定的。通过三维空间中的光学测量装置测量隧道壁收敛。然后,已经为研究的每个隧道部分创建了数值模型。评估受损区厚度;已经使用了元素,体积菌株和主应力浓度。从数值模型估计损伤区厚度和收敛,并将整个数据与真实的收敛结果进行比较。与先前的研究人员的融合预测和塑料区计算方法进行了比较。结果与现场测量和以前的经验方法一致。以这种方式,已经获得了隧道壁收敛和损伤区厚度的经验关系。此外,通过分析平面应变有限元模型中每个查询点的收敛关系,还提出了一种新的经验关系,为所建模的横截面提供“收敛常数”。这种常数可以用作辅助工具,用于预测下一节收敛,就挖掘具有类似地质,岩土性特性和地形的条件。

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