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Mechanical behavior of rock-like jointed blocks with multi-non-persistent joints under uniaxial loading: A particle mechanics approach

机译:单轴载荷下具有多非持久节理的岩石状块体的力学行为:一种粒子力学方法

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By selecting appropriate micro-mechanical parameter values through a trial and error procedure, the computer code PFC3D was used to study the macro-mechanical behavior of jointed blocks having multi-non-persistent joints with high joint density under uniaxial loading. The focus was to study the effect of joint orientation, size and joint mechanical properties on jointed block strength, deformability, stress-strain relation and failure modes at the jointed block level. Both the uniaxial compressive strength of the block, UCSB, and block deformability modulus, DMB, were found to depend heavily on the joint dip angle, beta, and joint continuity factor, k. The joint particle stiffness was found to play a minor to a significant role on UCSB depending on and k values. The joint particle stiffness was found to play a negligible to a moderate role on DMB depending on beta and k values. The jointed blocks produced three types of stress-strain curves labeled as Type I through Type III. A relation seems to exist as explained in Section 4 of the paper between the types of curves and beta and It values. The dominance of tensile failures over the shear failures was observed for all three types of curves based on the micromechanical parameter values used in the paper. The UCSB, rate of bond failures and the number of bond breakages were found to decrease as the curve type moves from Type I to Type III through Type II. The jointed blocks resulted in 4 failure modes as follows: (1) splitting failure; (2) plane failure; (3) stepped path and (4) intact material failure. The main features of each failure mode and possible relations between the failure modes, UCSB and beta and k values are given in Section 5 of the paper. (C) 2015 Elsevier B.V. All rights reserved.
机译:通过反复试验来选择合适的微机械参数值,使用计算机代码PFC3D研究了在单轴载荷下具有高密度的多非持久节理的节理砌块的宏观力学行为。重点是研究节理取向,尺寸和节理力学性能对节理砌块水平的节理块强度,变形性,应力-应变关系和破坏模式的影响。发现块的单轴抗压强度UCSB和块的可变形模量DMB都很大程度上取决于接头的倾角β和接头的连续性系数k。已发现关节颗粒刚度在UCSB上起着次要或重要的作用,具体取决于和k值。发现根据β和k值,关节颗粒刚度对DMB的影响微不足道。节理块产生了三种类型的应力-应变曲线,分别标记为I型至III型。如本文第4节所述,曲线类型与beta和It值之间似乎存在一种关系。基于本文中使用的微机械参数值,对所有三种类型的曲线均观察到了拉伸破坏相对于剪切破坏的优势。随着曲线类型从类型I到类型III到类型II的变化,发现UCSB,粘合失败率和粘合断裂数减少了。节理块导致了4种破坏模式,如下:(1)分裂破坏; (2)飞机故障; (3)阶梯状路径和(4)完整的材料故障。每种故障模式的主要特征以及故障模式之间的可能关系,UCSB以及beta和k值在本文的第5节中给出。 (C)2015 Elsevier B.V.保留所有权利。

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