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首页> 外文期刊>Rock Mechanics and Rock Engineering >Hollow Cylinder Tests on Boom Clay: Modelling of Strain Localization in the Anisotropic Excavation Damaged Zone
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Hollow Cylinder Tests on Boom Clay: Modelling of Strain Localization in the Anisotropic Excavation Damaged Zone

机译:动臂粘土上的空心圆柱试验:各向异性开挖损伤区中应变局部化的建模

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Boom Clay is extensively studied as a potential candidate to host underground nuclear waste disposal in Belgium. To guarantee the safety of such a disposal, the mechanical behaviour of the clay during gallery excavation must be properly predicted. In that purpose, a hollow cylinder experiment on Boom Clay has been designed to reproduce, in a small-scale test, the Excavation Damaged Zone (EDZ) as experienced during the excavation of a disposal gallery in the underground. In this article, the focus is made on the hydro-mechanical constitutive interpretation of the displacement (experimentally obtained by medium resolution X-ray tomography scanning). The coupled hydro-mechanical response of Boom Clay in this experiment is addressed through finite element computations with a constitutive model including strain hardening/softening, elastic and plastic cross-anisotropy and a regularization method for the modelling of strain localization processes. The obtained results evidence the directional dependency of the mechanical response of the clay. The softening behaviour induces transient strain localization processes, addressed through a hydro-mechanical second grade model. The shape of the obtained damaged zone is clearly affected by the anisotropy of the materials, evidencing an eye-shaped EDZ. The modelling results agree with experiments not only qualitatively (in terms of the shape of the induced damaged zone), but also quantitatively (for the obtained displacement in three particular radial directions).
机译:动臂粘土被广泛研究作为在比利时举办地下核废料处置的潜在候选人。为了保证这种处置的安全性,必须正确预测通道开挖期间粘土的机械性能。为此,我们设计了一种在动臂粘土上进行中空圆柱体实验的方法,目的是在小规模测试中复制挖掘地下处置通道时所经历的挖掘破坏区(EDZ)。在本文中,重点是位移的液压机械本构解释(通过中分辨率X射线断层扫描通过实验获得)。通过本构模型(包括应变硬化/软化,弹性和塑性交叉各向异性)以及用于应变局部化过程建模的正则化方法,通过有限元计算解决了该实验中动臂黏土的水力耦合响应问题。获得的结果证明了粘土的机械响应的方向依赖性。软化行为引起瞬态应变局部化过程,通过液压机械二级模型解决。所获得的损坏区域的形状显然受到材料各向异性的影响,从而证明了眼睛形状的EDZ。建模结果不仅在质量上(就诱发损坏区域的形状而言)与实验相吻合,而且在数量上(对于在三个特定径向方向上获得的位移)也与实验吻合。

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