地下交通系统土层的实验和数值研究:案例研究

Osamah Alqawas, Md. Rehan Sadique, Zaid Mohammad, Sanan Husain Khan
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摘要

在也门现首都萨那,一个省时、经济的交通系统是多年来克服日益城市化所面临的最大挑战之一。快速交通系统利用隧道结构到达城市最难以到达的地区。鉴于海湾地区的地缘政治动荡不安,这些结构也可用作紧急避难所。因此,本研究在也门萨那进行了一次实验性土壤勘探调查,以确定该市快速交通系统的潜在隧道地点。在也门公共工程与公路部的合作下,对四个地点进行了实地勘探、原位和实验室土壤测试。此外,为了计算隧道设计所需的岩土参数,还使用有限元软件包 ABAQUS 进行了数值分析,并开发了地下隧道结构的二维平面应变数值模型,以便在不同土壤类型和边界条件下进行静态加载参数研究。土层的材料行为已纳入著名的 Mohr-Coulomb 构成模型。实地调查发现,萨那地区土层的岩土特性变化很大。数值研究表明,隧道混凝土衬砌的最大变形出现在隧道顶部。隧道混凝土衬砌的椭圆效应在所有隧道模型中都有体现,据估计,1、2、3 和 4 号地点的最大地面沉降分别约为 4、25、17 和 11 毫米。Doi: 10.28991/CEJ-2024-010-01-03 全文:PDF
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Experimental and Numerical Study of Soil Strata for Underground Transportation System: A Case Study
In the current capital of Yemen, Sana’a, a time-efficient and economical transportation system is one of the greatest challenges to overcome the increasing urbanization for many years. Rapid transport systems use tunnel structures to reach the city's most inaccessible areas. Given the Gulf's geopolitical unrest, these structures could also serve as emergency shelters. Consequently, this research conducted an experimental soil exploration investigation in Sana'a, Yemen, to identify potential tunneling sites for the city's rapid transit system. The field exploration, in-situ, and laboratory soil testing at the four locations were performed with the collaboration of the Ministry of Public Works & Highways, Yemen. Further, to calculate the geotechnical parameters for tunnel design, numerical analysis has been carried out using the finite element package ABAQUS, and two-dimensional plane-strain numerical models of underground tunnel structure have been developed to conduct the parametric study in different soil types and boundary conditions under static loading. The material behavior of soil strata has been incorporated into the well-known Mohr-Coulomb constitutive model. The field investigation found that the geotechnical properties of the soil strata in Sana’a have a lot of variation. The numerical study shows that the maximum deformation in the concrete liner of the tunnel was observed at the crown of the tunnel. The ovalling effect in tunnel concrete liner was also seen in all the tunnel models, and the maximum ground settlement at sites 1, 2, 3, and 4 was estimated to be approximately 4, 25, 17, and 11 mm, respectively. Doi: 10.28991/CEJ-2024-010-01-03 Full Text: PDF
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