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首页> 外文期刊>Engineering Geology >On the shear failure of incipient rock discontinuities under CNL and CNS boundary conditions: Insights from DEM modelling
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On the shear failure of incipient rock discontinuities under CNL and CNS boundary conditions: Insights from DEM modelling

机译:关于CNL和CNS边界条件下初期岩石不连续性的剪切失效:从DEM建模中的见解

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This paper presents a numerical investigation of the effects of boundary conditions, i.e., constant normal load (CNL) and constant normal stiffness (CNS), on the failure mechanism of incipient rock discontinuities in direct shear. A series of numerical simulations were performed using the particle-based discrete element method (DEM), in which rock matrix and rock bridges (on incipient joint planes) were modeled as an assembly of rigid particles that were bonded together at their contacts. Smooth-joint model was assigned to particles of the persistent portions of incipient rock joints. Input micro-parameters of particles, bonds and smooth-joint were calibrated against a series of laboratory experiments. The study reveals that CNL and CNS boundary conditions significantly affect shear characteristics of incipient rock discontinuities. Peak shear stress increased significantly (up to three times) in the CNS direct shear in comparison with that measured in the CNL direct shear under the same initially applied normal stresses. The significant increase of shear stress in the CNS direct shear tests conducted in this study was related to the opening of newly created micro-cracks and creation of the rupture zones within the rock bridges, leading to a dramatic increase in the normal stresses. In the meanwhile, yield behavior was observed in the CNS direct shear while brittle failure was noticed in the CNL direct shear. It is also found that micro-cracks initiated at the vicinity of rock bridges in both CNL and CNS shear tests, while they propagated differently due to the gradual increase of normal stress under CNS boundary conditions.
机译:本文提出了对边界条件,即恒定正常载荷(CNL)和恒定正常刚度(CNS)的影响的数值研究,对直接剪切初期岩石不连续性的失效机制。使用基于颗粒的离散元件(DEM)进行的一系列数值模拟,其中岩石基质和摇滚桥(在初期的关节平面上)被建模为刚性颗粒的组件,它们在其触点处粘合在一起。平滑接头模型被分配给初期岩石关节持续部分的颗粒。对一系列实验室实验进行校准颗粒,粘合和光滑接头的输入微观参数。该研究表明,CNL和CNS边界条件显着影响初期岩石不连续性的剪切特征。与在同一最初施加的正常应力下的CNL直接剪切中测量的CNS直接剪切相比,CNS直接剪切中的峰值剪切应力显着增加(最多三次)。本研究进行的CNS直接剪切试验中的剪切应力的显着增加与新产生的微裂纹的开放有关,并且在岩石桥梁内的破裂区域的产生,导致正常应力的显着增加。同时,在CNS直接剪切中观察到产量行为,而在CNL直接剪切中识别出脆性衰竭。还发现,在CNL和CNS剪切试验中,在岩石桥附近发起的微裂纹,而它们由于CNS边界条件下的正常应力逐渐增加而传播。

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