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首页> 外文期刊>Rock Mechanics and Rock Engineering >A Combined Three-Dimensional Geological-Geostatistical-Numerical Model of Underground Excavations in Rock
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A Combined Three-Dimensional Geological-Geostatistical-Numerical Model of Underground Excavations in Rock

机译:岩石地下开挖的三维地质-地统计学-数值组合模型

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摘要

This paper exploits geological and borehole geotechnical data obtained in the exploratory phase of a tunneling project to investigate in a first place if the kriging interpolation scheme may effectively reproduce the spatial variability of rock mass quality (Rock Mass Rating, RMR) in the vicinity of tunnels. For this purpose a quick solver in Fortran has been developed that performs variography analysis of 3D spatial data, fast kriging estimations of RMR between borehole sampling locations at the centroids of the elements of the numerical model, and model validation. For the purpose of an integrated underground excavation design, a step further is made by incorporating into the 3D mechanical numerical model of the rock mass, the three-dimensional (3D) solid geological model, thus coupling the geology with the ground (geotechnical) model (i.e. each element of the numerical model is assigned a geological material). The mechanical properties of each finite difference cell (or Representative Elementary Volume) of the ground model were then prescribed according to its geological type, the spatial heterogeneity of the rock mass expressed quantitatively with the kriging model, and the upscaling calculations of the mechanical properties of the intact rocks determined in the laboratory, based on the size-effect (strength dependence on size) and Damage Theory. Furthermore, a preliminary numerical simulation of the advance of unsupported tunnels in the model of the heterogeneous rock mass was performed for illustration purposes.
机译:本文利用在隧道项目勘探阶段获得的地质和钻孔岩土数据,首先调查克里格插值方案是否可以有效地再现隧道附近岩体质量的空间变异性(Rock Mass Rating,RMR)。 。为此,已经开发了Fortran快速求解器,可以对3D空间数据进行变异分析,对数值模型元素的质心处的钻孔采样位置之间的RMR进行快速克里格法估计,并进行模型验证。为了进行集成的地下开挖设计,通过将三维(3D)实体地质模型纳入岩体的3D机械数值模型,从而将地质与地面(岩土)模型相结合,进一步迈出了一步(即,数值模型的每个元素都分配有地质材料)。然后,根据地面模型的地质类型,用克林格模型定量表示的岩体空间异质性,以及模型的放大计算,规定了地面模型的每个有限差分单元(或代表基本体积)的力学特性。根据尺寸效应(强度取决于尺寸)和损伤理论在实验室确定的完整岩石。此外,为说明起见,对非均质岩体模型中的无支撑隧道进行了初步的数值模拟。

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