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In situ behaviour of a stiff layered clay subject to thermal loading: observations and interpretation

机译:刚性分层粘土的原位行为受热量负荷:观察和解释

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The paper presents an interpretation of an in situ heating test carried out on Opalinus clay in the Mont Terri underground laboratory. Opalinus clay is a stiff, strongly bedded, Mesozoic clay of marine origin. When subjected to thermal loading, saturated stiff clays exhibit a strong pore pressure response that significantly affects the hydraulic and mechanical behaviour of the material. The observations gathered in the in situ test have provided an opportunity to examine the integrated thermo-hydro-mechanical (THM) response of this sedimentary clay. Coupled THM numerical analyses have been carried out to provide a structured framework for interpretation, and to enhance understanding of THM clay behaviour. Numerical analyses have been based on a coupled theoretical formulation that incorporates a constitutive law especially developed for this type of material. The law includes degradation of bonding by damage. By performing three-dimensional computations, it has been possible to incorporate anisotropy of material parameters and of in situ stresses. The 3D simulation has proved able to furnish a satisfactory representation of the development of the in situ test and of the main observed patterns of behaviour. A sensitivity analysis has also been carried out to examine the potential effect of various key or uncertain parameters. The critical examination of test observations and the results of the numerical analyses have allowed the classification, by differing degrees of significance, of the various coupled phenomena present in the problem.
机译:本文提出了在蒙特特地下实验室的蛋白质粘土上进行的原位加热试验的解释。蛋白石粘土是一种僵硬,强烈的床位,中生代的海洋起源。当经受热负荷时,饱和刚性粘土表现出强大的孔隙压力响应,显着影响材料的液压和力学行为。在原位测试中聚集的观察结果提供了检查该沉积粘土的集成热水机械(THM)反应的机会。已经进行了耦合的THM数值分析,以提供用于解释的结构化框架,并增强对THM粘土行为的理解。数值分析一直基于耦合的理论制剂,该配方包括特别为此类型的材料开发的本构规律。法律包括通过损伤粘合的降解。通过执行三维计算,已经可以结合材料参数的各向异性和原位应力。 3D仿真证明能够提供令人满意的原位测试的发展和主要观察到的行为模式。还进行了敏感性分析以检查各种关键或不确定参数的潜在效果。对测试观察的临界检查和数值分析的结果允许通过在问题中存在的各种耦合现象的不同意义进行分类。

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