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Hydro-mechanical Modeling of Tunnel Excavation in Anisotropic Shale with Coupled Damage-Plasticity and Micro-dilatant Regularization

机译:各向异性页岩隧道开挖水流建模,耦合损伤可塑性和微膨胀剂正则化

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摘要

The disposal of highly radioactive spent nuclear fuel in deep geological media will require excavating a large number of galleries in low-permeable rocks, altering initial rock integrity at the repository site. The FE tunnel excavated in Opalinus Clay at the Mont Terri Underground Research Laboratory (Switzerland) is a unique full-scale experiment to study this process. We conducted a numerical study of the excavation of the FE tunnel in a coupled hydro-mechanical finite element framework, employing an anisotropic plasticity coupled with damage constitutive model. A second gradient of dilatancy formulation is employed to avoid spurious mesh-dependent behavior originating from the softening of the coupled damage-plasticity model. The approach is validated by comparing numerical predictions and in situ observations during and after tunnel excavation in terms of displacements, pore water pressure evolution and degradation of elasticity. Mechanical parameters are calibrated using laboratory experiments and values available in the literature. The model well reproduces the coupled hydro-mechanical processes induced by excavation, giving a good agreement between numerical predictions and experimental in situ monitoring data. Furthermore, the evolution of the excavation damaged zone is correctly predicted. Thus, this modeling approach is suitable for the purpose of simulating tunnel excavation in low-permeable anisotropic quasi-brittle shales.
机译:在深层地质媒体中提供高度放射性的核燃料的处置将需要挖掘较低岩石的大量画廊,在储存库中改变初始岩石完整性。在Mont Terri地下研究实验室(瑞士)在Opalinus粘土中挖掘的Fe隧道是研究这个过程的独特全面实验。我们对耦合水力机械有限元框架中Fe隧道的挖掘进行了数值研究,采用与损伤本构模型耦合的各向异性可塑性。使用膨胀制剂的第二梯度以避免源自耦合损伤塑性模型的软化的虚假网格依赖性行为。通过比较在位移,孔隙水压力进化和弹性降解期间通过比较隧道挖掘期间和原位观测来验证该方法。使用实验室实验和文献中可用的值校准机械参数。该模型良好地再现了开挖诱导的耦合水力机械过程,在原位监测数据中具有良好的同意。此外,正确预测挖掘损坏区域的演变。因此,这种建模方法适用于在低可渗透的各向异性准脆性Shales中模拟隧道挖掘。

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