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Tunnelling-induced deformation and damage on historical masonry structures

机译:隧道引起的历史砌体结构变形和破坏

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The analysis of deformation and damage mechanisms induced by shallow tunnelling on masonry structures is carried out using an integrated, geotechnical and structural, numerical approach based on two-dimensional finite-element analyses. The masonry construction, schematised as a block structure with periodic texture, is regarded at a macroscopic scale as a homogenised anisotropic medium. The overall mechanical properties display anisotropy and singularities in the yield surface, arising from the discrete nature of the block structure and the geometrical arrangement of the blocks. The soil is modelled by means of a linear elastic-perfectly plastic model. The numerical analyses are performed assuming plane strain and plane stress conditions for the soil and the masonry structure, respectively. A displacement-controlled technique is adopted to simulate the tunnel construction, which produces settlement troughs in agreement with the empirical Gaussian predictions at different volume losses under free-field conditions. In order to test the numerical approach, a preliminary set of parametric analyses is carried out considering a simple masonry wall, characterised by different geometrical and mechanical properties, founded on a clayey deposit. Then, the case study of the Felice aqueduct in Rome (Italy), undercrossed by two tunnels of a new metro line, is considered. Significant differences are observed between the uncoupled analysis, where displacements predicted under free-field conditions are simply applied at the foundation level of the structure, and the interaction-based one, the latter being characterised by a reduced amount of tensile plastic strain. Numerical results in terms of vertical displacements at the ground level and on the structure are found to be in good agreement with monitoring data, thus validating the numerical model for this class of soil-structure interaction problems.
机译:利用基于二维有限元分析的综合岩土和结构数值方法,对浅埋砌筑结构引起的变形和破坏机理进行了分析。被构造为具有周期性纹理的块状结构的砌体结构在宏观上被视为均质的各向异性介质。整体机械性能在屈服面上表现出各向异性和奇异性,这是由于块结构的离散性质和块的几何排列引起的。通过线性弹性完美塑性模型对土壤进行建模。分别在假定土壤和砖石结构的平面应变和平面应力条件下进行了数值分析。采用位移控制技术来模拟隧道施工,在自由场条件下,在不同的体积损失下,该隧道产生的沉降槽与高斯经验预测相符。为了测试数值方法,在黏土矿床上考虑了简单的砌体墙,进行了一组初步的参数分析,其特征是具有不同的几何和机械性能。然后,考虑了罗马(意大利)费利斯渡槽的案例研究,该渡槽被一条新地铁线的两条隧道穿越。在非耦合分析中观察到了显着差异,在非耦合分析中,在自由场条件下预测的位移仅简单地应用于结构的基础层,而基于相互作用的分析则以减小的拉伸塑性应变为特征。发现在地面和结构上的垂直位移方面的数值结果与监测数据非常吻合,从而验证了这类土-结构相互作用问题的数值模型。

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