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A discrete element model for the development of compaction localization in granular rock

机译:粒状岩石压实定位发展的分立元素模型

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A discrete element model was developed to simulate the micromechanics of compaction localization in a granular rock. The rock was modeled as a bonded assembly of circular disks, and seven different distributions of radius were considered. To simulate grain crushing and pore collapse, an intragranular damage mechanism was introduced that allows for the shrinkage of a disk if one of its normal contact stresses attains a critical value. The model captures key attributes of failure mode and damage evolution associated with the brittle-ductile transition in porous sandstones. Our simulations indicate that the development of discrete compaction bands is promoted in a relatively homogeneous granular aggregate, while diffuse band growth and distributed cataclastic flow are preferred modes of compaction in a more heterogeneous system. To interpret the former result an Eshelby inclusion model was proposed to estimate analytically the local stress perturbations due to pore collapse in a homogeneous aggregate.
机译:开发了一种离散元件模型,以模拟粒状岩石中压实定位的微机械。岩石被建模为圆盘的粘合组件,并考虑了七种不同的半径分布。为了模拟晶粒破碎和孔隙塌陷,引入了一种局部损伤机制,如果其正常接触应力之一达到临界值,则允许盘的收缩。该模型捕获失效模式的关键属性和多孔砂岩中脆性韧性过渡的损伤进化。我们的模拟表明,在相对均匀的粒状聚集体中促进了离散压实带的发展,而漫射带生长和分布式痉挛流动是更异构体系中的优选压实模式。为了解释前一种结果,提出了eShelby包含模型,以分析估计由于均匀骨料的孔隙塌陷引起的局部应激扰动。

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