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Study on the Generalized Displacement Boundary and Its Analytical Prediction for Ground Movements Induced by Shield Tunneling

机译:盾构隧道诱导地面运动的广义排量边界及其分析预测研究

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The process of shield tunnel excavation would inevitably cause surrounding ground movement, and excessive displacement in the soil could lead to large deformation and even collapse of the tunnel. The methods estimating convergence deformation around tunnel opening is summarized. Then, a universal pattern of displacement boundary condition around the tunnel cavity is originally introduced, which is solved as the combination of three fundamental deformation modes, namely, uniform convergence, vertical translation, and ovalization. The expression for the above-mentioned displacement boundary condition is derived, by imposing which the analytical solution for ground movements, based on the stress function method, is proposed. The reliability and applicability of this proposed solution are verified by comparing the observed data in terms of surface settlement, underground settlement, and horizontal displacement. Further parametric analyses indicate the following: (1) the maximum settlement increases linearly with the gap parameter and the tunnel radius, while it is negatively related to the tunnel depth; (2) the trough width parameter is independent of the gap parameter and the radius, while it is proportional to the tunnel depth. This study provides a new simple and reliable method for predicting ground movements induced by shield tunneling.
机译:盾构隧道挖掘的过程不可避免地引起围绕地面运动,并且土壤中过度的位移可能导致隧道的大变形甚至塌陷。总结了估计隧道开口周围的收敛变形的方法。然后,最初引入了隧道腔周围的位移边界条件的通用模式,其作为三种基本变形模式的组合,即均匀的收敛,垂直平移和椭圆化。提出了提出基于应力函数方法的地面运动的分析解决方案来推导出上述位移边界条件的表达。通过将观察到的数据与表面沉降,地下沉降和水平位移进行比较来验证该提出的解决方案的可靠性和适用性。进一步的参数分析表明以下:(1)最大沉降与间隙参数和隧道半径线性增加,而与隧道深度负相关; (2)槽宽度参数与间隙参数和半径无关,同时它与隧道深度成比例。该研究提供了一种新的简单可靠的方法,用于预测屏蔽隧道诱导的地面运动。

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