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A three-dimensional numerical meso-approach to modeling time- independent deformation and fracturing of brittle rocks

机译:三维数值细观方法模拟脆性岩石随时间变化的变形与破裂

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摘要

A new 3D numerical mesoscale model is proposed to describe the time-independent deformation and fracturing of brittle rocks that accounts for material heterogeneity and local material degradation. The concept of re normalization at the mesoscale was introduced to capture the co-operative interaction of microcracks. The maximum tensile stress criterion and the Drucker-Prager criterion (which considers all three principal stresses) were used to evaluate the damage of specimen-forming elements in tension and shear, respectively. Simulations are presented alongside experimental data to show the capabilities of the model in tackling the failure process of intact rock, with an emphasis on microcrack initiation and propagation. We demonstrate that our model is capable of simulating the initiation and propagation of microcracks in deforming rocks and captures the mechanical behavior, strength, and failure patterns seen in laboratory experiments. Our 3D model therefore emerges as a powerful tool to study the evolution of failure in brittle rocks.
机译:提出了一种新的3D数值中尺度模型来描述脆性岩石随时间变化的变形和破裂,这说明了材料的非均质性和局部材料的降解。引入了中尺度的重新归一化的概念,以捕获微裂纹的合作相互作用。使用最大拉应力准则和考虑所有三个主应力的Drucker-Prager准则分别评估了试样形成元件在拉伸和剪切作用下的损伤。除了实验数据外,还进行了仿真,以显示该模型在处理完整岩石破坏过程中的能力,重点是微裂纹的萌生和传播。我们证明了我们的模型能够模拟变形岩石中微裂纹的萌生和传播,并捕获在实验室实验中看到的机械行为,强度和破坏模式。因此,我们的3D模型成为研究脆性岩石破坏演化的有力工具。

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