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Analytical prediction of tunneling-induced ground movements and liner deformation in saturated soils considering influences of shield air pressure

机译:考虑盾构空气压力影响的饱和土中隧洞引起的地层运动和衬砌变形的分析预测

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Complex underground constructions in urban areas require strict predictions for ground movements and liner deformation induced by shield-driven tunneling, in which the complex interaction mechanics between ground and liner play a substantial role. Previous studies, however, provided little information on the ground-liner interaction and less attention to the effects of groundwater and compressed air during the shield operation. This paper presents a closed-form analytical solution for predicting long- and short-term ground deformation and liner internal forces induced by tunneling in saturated soils in which shield excavation effects with and without air pressure are both considered. The oval-shaped convergence deformation pattern is incorporated as the boundary condition of displacements around the tunnel section. This paper also investigates the difference between uniform radial and oval-shaped convergence deformation patterns on the ground and tunnel responses. Generally, the predicted ground movements by the oval-shaped deformation pattern aligns well with measured data of actual tunnels with and without considering the shield air pressure. It is comparatively observed that the shield excavation under air pressure obtains larger ground deformation than the non-pressure condition, and the long-term ground settlements induced by tunneling in saturated soils are confidently larger than the short-term. Moreover, the effects of sensitive parameters, including the shield air pressure, the long- and short-term effects on the tunneling-induced ground movements are assessed based on the oval-shaped deformation pattern. Furthermore, parametric analyses are conducted to measure the influences of concerned tunneling coefficients on the liner displacements and internal forces, namely, soil Young's modulus, soil unit weight, coefficient of lateral soil pressure, tunnel radius, tunnel buried depth and gap parameter. In summary, the analytical approach proposed in this research provides an effective insight into the ground-liner interaction mechanics related with the shield air pressure, which can serve as an alternative approach in the preliminary design for conservatively estimating the excavation influences caused by tunneling in saturated soils. (C) 2019 Elsevier Inc. All rights reserved.
机译:城市地区复杂的地下建筑需要对由盾构驱动的隧道引起的地面运动和衬砌变形进行严格的预测,其中,地面与衬砌之间的复杂相互作用机制起着至关重要的作用。然而,先前的研究提供了很少的关于地衬相互作用的信息,也很少关注盾构运行期间地下水和压缩空气的影响。本文提出了一种封闭形式的解析解决方案,用于预测在饱和土中隧洞引起的长期和短期地面变形和衬砌内力,其中考虑了有和没有气压时的盾构开挖效果。椭圆形的会聚变形模式被纳入隧道部分周围位移的边界条件。本文还研究了均匀的径向和椭圆形收敛变形模式在地面和隧道响应之间的差异。通常,在有或没有考虑防护空气压力的情况下,由椭圆形变形模式预测的地面运动与实际隧道的测量数据非常吻合。可以比较地观察到,在空气压力下进行盾构开挖比在非压力条件下获得更大的地面变形,而在饱和土壤中隧穿引起的长期地面沉降肯定比短期更大。此外,基于椭圆形变形模式,评估了敏感参数的影响,包括屏蔽空气压力,对隧道引起的地面运动的长期和短期影响。此外,进行了参数分析,以测量有关隧穿系数对衬砌位移和内力的影响,即土壤杨氏模量,土壤单位重量,侧向土压力系数,隧道半径,隧道埋深和间隙参数。综上所述,本研究提出的分析方法可以有效地了解与盾构空气压力有关的地衬相互作用机理,可以作为初步设计中的另一种方法,用于保守估计饱和地层中隧道的开挖影响。土壤。 (C)2019 Elsevier Inc.保留所有权利。

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