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Mesoscale Modeling of Quartzite and Sandstone under Shock Loading: Influence of Porosity and Pressure-Dependent Quartz Stiffness on Macroscopic Behavior

机译:抗冲击下石英岩和砂岩的Messcale建模:孔隙度和压力依赖性石英刚度对宏观行为的影响

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In this paper, quartzite and sandstone are numerically investigated under planar shock loading. Those geologic materials consist of cemented quartz grains. Quartzite has a compact structure whereas sandstone has a porosity of typically around 20 %. A mesoscale (grain scale) model is developed in order to catch inter-granular interactions and porosity crushing under shock loading. For this purpose, quartz grains are explicitly resolved in a Finite-Element model such that their shape and orientation are represented. The quartz grains are modeled as elastic crystals with a pressure-dependent, anisotropic stiffness matrix. Using parameter variations, we study the effect of porosity and pressure-dependency of the quartz stiffness on the macroscopic behavior of quartzite and sandstone. Descriptors of the macroscopic behavior are macroscopic longitudinal stress and shock wave speed. These quantities are determined via a homogenization methodology.
机译:在本文中,在平面冲击载荷下进行了数值研究了石英岩和砂岩。那些地质材料由胶水石英谷物组成。石英岩具有紧凑的结构,而砂岩的孔隙率通常约为20%。开发了一种Messcle(晶粒量表)模型,以便在冲击载荷下捕获粒状相互作用和孔隙度粉碎。为此目的,在有限元模型中明确地解析了石英晶粒,使得它们的形状和方向表示。石英晶粒子被建模为具有压力依赖性各向异性刚度基质的弹性晶体。使用参数变化,我们研究了石英刚度对石英岩和砂岩宏观行为的孔隙度和压力依赖性的影响。宏观行为的描述是宏观纵向应力和冲击波速度。这些量通过均质化方法确定。

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