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Micro-mechanical analysis of salt creep tests with a joint-enriched Finite Element model

机译:用联合有限元模型进行盐蠕变试验的微力学分析

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In this study, micro-mechanisms that govern the viscous and damage behavior of salt polycrystal during creep processes are investigated. A Finite Element model is designed with POROFIS, in which surface elements represent salt grains and joint elements represent inter-granular contacts. Microscopic observations of salt thin sections serve as a basis to design the mesh, which includes voids. We compare three strategies to predict microscopic damage in the salt polycrystal: (1) inter-granular damage represented by damage propagation in joint elements; (2) intra-granular damage represented by stiffness degradation in grain surface elements; (3) damage in both surface and joint elements. We simulate creep tests in conditions typical of Compressed Air Energy Storage. The three models capture polycrystal stiffness degradation and the initiation, propagation and coalescence of cracks that originate from geometric incompatibilities and local stress concentrations. The model with damageable joints presents a more ductile behavior and captures a smooth transition between steady state and tertiary state creep. This research is expected to improve the fundamental understanding of viscous damage mechanisms in salt rock for geostorage applications, and bring new insights on numerical modeling of multi-scale damage processes in crystalline materials.
机译:在该研究中,研究了治理蠕动过程中盐多晶的粘性和损伤行为的微机制。有限元模型设计有豪猪,其中表面元件代表盐晶和接合元件代表颗粒状触点。盐薄部分的微观观察用作设计网格的基础,包括空隙。我们比较三种策略来预测盐多晶中的微观损伤:(1)联合元素损伤传播所示的颗粒状损伤; (2)晶粒表面元素刚度降解所示的颗粒状损伤; (3)表面和接合元素损坏。我们在典型的压缩空气储能条件下模拟蠕变试验。三种模型捕获多晶刚度降解和源自几何不相容性和局部应力浓度的裂缝的起始,传播和聚结。具有抑制接头的模型具有更多的延展性行为,并捕获稳态和三级状态蠕变之间的平滑过渡。该研究有望改善对地产镜应用盐岩粘性损伤机制的根本理解,对结晶材料的多尺度损伤过程的数值建模带来了新的见解。

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