首页> 外文期刊>Journal of geophysical research. Solid earth: JGR >Micropolar effect on the cataclastic flow and brittle-ductile transition in high-porosity rocks
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Micropolar effect on the cataclastic flow and brittle-ductile transition in high-porosity rocks

机译:微孔效应对高孔隙度岩石碎裂流和脆韧性转变的影响

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摘要

A micromechanical distinct element method (DEM) model is adopted to analyze the grain-scale mechanism that leads to the brittle-ductile transition in cohesive-frictional materials. The cohesive-frictional materials are idealized as particulate assemblies of circular disks. While the frictional sliding of disks is sensitive to the normal compressive stress exerted on contacts, normal force can be both caused by interpenetration and long-range cohesive bonding between two particles. Our numerical simulations indicate that the proposed DEM model is able to replicate the gradual shift of porosity change from dilation to compaction and failure pattern from localized failures to cataclastic flow upon rising confining pressure in 2-D biaxial tests. More importantly, the micropolar effect is examined by tracking couple stress and microcrack initiation to interpret the transition mechanism. Numerical results indicate that the first invariant of the couple stress remains small for specimen sheared under low confining pressure but increases rapidly when subjected to higher confining pressure. The micropolar responses inferred from DEM simulations reveal that microcracking may occur in a more diffuse and stable manner when the first invariant of the macroscopic couple stress are of higher magnitudes.
机译:采用微机械离散元方法(DEM)模型分析了导致摩擦材料中脆性-韧性转变的晶粒尺度机理。内聚摩擦材料被理想化为圆盘的颗粒组件。虽然磁盘的摩擦滑动对施加在接触上的法向压缩应力敏感,但法向力可能是由两个粒子之间的互穿和长期的内聚键合引起的。我们的数值模拟表明,在二维双轴试验中,随着围压的升高,所提出的DEM模型能够复制孔隙率从扩张到压实的逐步转变,以及从局部破坏到碎裂流动的破坏模式。更重要的是,通过跟踪偶应力和微裂纹引发来解释过渡机制来检验微极性效应。数值结果表明,在低围压下剪切的试件,耦合应力的第一个不变量较小,而在较高围压下,则迅速增加。从DEM模拟推断出的微极响应表明,当宏观耦合应力的第一个不变量较大时,微裂纹可能会以更加分散和稳定的方式发生。

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