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Simulation of the Micro-physics of Rocks Using LSMearth

机译:用LSMearth模拟岩石的微观物理

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摘要

— The particle-based Lattice Solid Model (LSM) was developed to provide a basis to study the physics of rocks and the nonlinear dynamics of earthquakes (M0ra and Place, 1994; Place and Mora, 1999). A new modular and flexible LSM approach has been developed that allows different micro-physics to be easily included in or removed from the model. The approach provides a virtual laboratory where numerical experiments can easily be set up and all measurable quantities visualised. The proposed approach provides a means to simulate complex phenomena such as fracturing or localisation processes, and enables the effect of different micro-physics on macroscopic behaviour to be studied. The initial 2-D model is extended to allow three-dimensional simulations to be performed and particles of different sizes to be specified. Numerical bi-axial compression experiments under different confining pressure are used to calibrate the model. By tuning the different microscopic parameters (such as coefficient of friction, microscopic strength and distribution of grain sizes), the macroscopic strength of the material and can be adjusted to be in agreement with laboratory experiments, and the orientation of fractures is consistent with the theoretical value predicted based on Mohr-Coulomb diagram. Simulations indicate that 3-D numerical models have different macroscopic properties than in 2-D and, hence, the model must be recalibrated for 3-D simulations. These numerical experiments illustrate that the new approach is capable of simulating typical rock fracture behaviour. The new model provides a basis to investigate nucleation, rupture and slip pulse propagation in complex fault zones without the previous model limitations of a regular low-level surface geometry and being restricted to two-dimensions.
机译:—基于粒子的格子固体模型(LSM)的开发为研究岩石的物理学和地震的非线性动力学提供了基础(M0ra和Place,1994; Place和Mora,1999)。已经开发出一种新的模块化且灵活的LSM方法,该方法可以轻松地将不同的微观物理学包含在模型中或从模型中删除。该方法提供了一个虚拟实验室,可以轻松地建立数值实验并可视化所有可测量的量。所提出的方法提供了一种模拟复杂现象(例如破裂或局部化过程)的方法,并使不同微观物理学对宏观行为的影响得以研究。扩展了最初的二维模型,以允许执行三维模拟并指定不同大小的粒子。使用在不同围压下的数值双轴压缩实验来校准模型。通过调整不同的微观参数(例如摩擦系数,微观强度和晶粒尺寸分布),可以将材料的宏观强度调整为与实验室实验一致,并且断裂的方向与理论一致基于Mohr-Coulomb图预测的值。仿真表明,3-D数值模型与2-D相比具有不同的宏观特性,因此,必须对3-D仿真重新校准模型。这些数值实验表明,该新方法能够模拟典型的岩石断裂行为。该新模型为研究复杂断层带中的成核,破裂和滑移脉冲传播提供了基础,而没有以前的模型所限制的常规低层表面几何形状并且仅限于二维。

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  • 来源
    《Pure and Applied Geophysics》 |2002年第9期|1911-1932|共22页
  • 作者单位

    Queensland University Advanced Centre for Earthquake Studies (QUAKES) Department of Earth Sciences The University of Queensland St. Lucia Brisbane 4072 Qld Australia. www: http://www.quakes.uq.edu.au;

    E-mail: place@quakes.uq.edu.au;

    Queensland University Advanced Centre for Earthquake Studies (QUAKES) Department of Earth Sciences The University of Queensland St. Lucia Brisbane 4072 Qld Australia. www: http://www.quakes.uq.edu.au;

    E-mail: flombard@quakes.uq.edu.au;

    Queensland University Advanced Centre for Earthquake Studies (QUAKES) Department of Earth Sciences The University of Queensland St. Lucia Brisbane 4072 Qld Australia. www: http://www.quakes.uq.edu.au;

    E-mail: mora@quakes.uq.edu.au;

    Queensland University Advanced Centre for Earthquake Studies (QUAKES) Department of Earth Sciences The University of Queensland St. Lucia Brisbane 4072 Qld Australia. www: http://www.quakes.uq.edu.au;

    E-mail: steffen@quakes.uq.edu.au;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Key words: Fracture; shear localisation; earthquake simulation; earthquake dynamics; lattice solid model; particle-based model.;

    机译:关键词:断裂;剪切局部化地震模拟地震动力学;晶格实体模型基于粒子的模型。;

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