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Constitutive Model for Numerical Modelling of Highly Stressed Heterogeneous Massive Rocks at Excavation Boundaries

机译:基坑边界高应力非均质岩体数值模拟的本构模型

摘要

A numerical modelling approach was developed to explicitly simulate geomechanical characteristics of intact rock: mineralogy, grain size and fabric. The approach involved creating a representative constitutive model for each of three common rock-forming minerals: mica, quartz and feldspar. The constitutive models developed are valid within the low confinement realm of excavation boundaries, where tensile fracture processes dominate. The mineral types were assigned to numerical elements, which were associated with each other through an algorithm created in a finite difference model, FLAC 2D (Itasca 2007a), to simulate real crystal geometries and orientations. The numerical models were used in a parametric investigation of the geomechanical characteristics and compared with published observations of the rock yielding process in laboratory testing. This approach has allowed the explicit grain-scale investigation of the impact of geomechanical characteristics on rock yielding at low confinement, leading to an improved mechanistic understanding of excavation-scale rock yielding processes at excavationboundaries.
机译:开发了一种数值建模方法来显式模拟完整岩石的地质力学特征:矿物学,粒度和织物。该方法涉及为三种常见的岩石形成矿物(云母,石英和长石)中的每一种创建代表性的本构模型。建立的本构模型在开挖边界的低约束范围内有效,在该范围内拉伸断裂过程占主导地位。将矿物类型分配给数值元素,这些元素通过在有限差分模型FLAC 2D(Itasca 2007a)中创建的算法相互关联,以模拟真实的晶体几何形状和方向。数值模型用于地质力学特征的参数研究,并与已发表的实验室测试中岩石屈服过程的观测结果进行了比较。这种方法可以对低限度内的岩土力学特征对岩石屈服的影响进行精确的粒度调查,从而提高了对开挖边界处的开挖规模岩石屈服过程的机械理解。

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