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A dual-scale approach to model time-dependent deformation, creep and fracturing of brittle rocks

机译:用双尺度方法对随时间变化的脆性岩石的变形,蠕变和断裂进行建模

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摘要

A physically-motivated dual-scale modeling approach is proposed to model the time-dependent damage, deformation and fracturing behavior of heterogeneous brittle rocks during creep. The proposed model uses a microcrack-based damage constitutive law established at the elemental scale, in which the time-dependent degradation of elastic stiffness and damage-induced anisotropy are directly linked to microcrack growth. The evolution of mechanical heterogeneity is based on a Weibull distribution that captures the transition from distributed damage to localized failure. The key feature of the proposed model is to establish an adequate prediction of macroscopic creep behavior based on the microscopic kinetics of microcrack growth rather than the phenomenological material degradation laws adopted in previously-developed statistical models. The general capabilities of the proposed model are illustrated with numerical simulations of biaxial creep tests. The influences of differential stresses, heterogeneities and microscopic element sizes on creep behavior in brittle rocks are also examined. Results from such analyses indicate that the proposed model not only accurately replicates the trimodal phases of creep deformation and the associated temporal evolution of acoustic emission but also follows the progressive evolution of fracture modes and morphology commonly observed. Thus, subject to suitable calibration, this model provides an attractive virtual experimental tool to probe process-based understanding of complex long-term problems related to structures on an in geologic media.
机译:提出了一种物理双尺度建模方法,对异质脆性岩石在蠕变过程中随时间的损伤,变形和断裂行为进行建模。所提出的模型使用在元素尺度上建立的基于微裂纹的损伤本构定律,其中弹性刚度和损伤引起的各向异性随时间的下降与微裂纹的生长直接相关。机械异质性的演变基于威布尔分布,该分布捕获了从分布破坏到局部破坏的过渡。提出的模型的关键特征是基于微裂纹生长的微观动力学而不是先前开发的统计模型采用的现象学材料降解定律,建立对宏观蠕变行为的充分预测。通过双轴蠕变试验的数值模拟说明了所提出模型的一般能力。还研究了应力差,异质性和微观元素尺寸对脆性岩石蠕变行为的影响。这些分析的结果表明,所提出的模型不仅准确地复制了蠕变变形的三峰相和相关的声发射时间演化,而且还遵循了通常观察到的断裂模式和形态的逐步演化。因此,经过适当的校准,该模型提供了一种有吸引力的虚拟实验工具,以探索基于过程的对与地质介质中结构有关的复杂长期问题的理解。

著录项

  • 来源
    《Computers and Geotechnics》 |2014年第7期|61-76|共16页
  • 作者单位

    State Key Laboratory for Geomechanics and Deep Underground Engineering, China University of Mining and Technology, Xuzhou, Jiangsu 221116, People's Republic of China;

    EMS Energy Institute, G3 Center and Energy and Mineral Engineering, Pennsylvania State University, University Park, PA 16802, USA;

    State Key Laboratory for Geomechanics and Deep Underground Engineering, China University of Mining and Technology, Xuzhou, Jiangsu 221116, People's Republic of China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Creep; Fracturing; Damage evolution; Microcracks; Subcritical propagation; Heterogeneity; Finite element method;

    机译:蠕变;压裂;损害演变;微裂纹;亚临界传播;异质性有限元法;

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