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Three-dimensional rock-fall analysis with impact fragmentation and fly-rock modeling.

机译:具有冲击破碎和飞石建模的三维落石分析。

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摘要

The dissertation details work aimed toward the development and implementation of a 3-D impact fragmentation module to perform rock fall analysis by taking into account impact fragmentation. This fragmentation module is based on a database of a large set of impact simulations using a fully calibrated discrete element model (DEM), and is employed to predict impact fragmentation processes in rockfall analysis by either training a neural network model or linearly interpolating the database.;A DEM was employed to model impact fragmentation in the study. A DEM code was developed from scratch. The model was first calibrated and verified with experimental results to demonstrate the capability of modeling both quasi-static and dynamic material behavior. Algorithms to calibrate the model's micro-parameters against triaxial tests on rocks were presented. Sensitivity analyses were used to identify the deformability micro-parameters by obtaining relationships between microscopic and macroscopic deformability properties. The strength model parameters were identified by a global optimization process aimed at minimizing the difference between computed and experimental failure envelopes. When applied to the experimental results of tested granite, this calibration process produced a good agreement between simulated and experimental results for both deformability and strength properties.;Dynamic compression and SHPB tests were performed to verify the dynamic model. A strain-rate-dependent dynamic strength was observed in the experimental results. This strain-rate-dependent dynamic strength was also confirmed by the numerical results. No rate-dependent constitutive model was used in the DEM to simulate dynamic behavior. This simulated rate-dependent dynamic strength can be attributed to material inertia because the inertia inhibits crack growth.;Some fundamental mechanisms of impact fragmentation associated with rockfalls were then numerically investigated. The developed DEM code was coupled with a simplified impact model inspired by the theory of dynamic foundations. It has been shown that the magnitude of impact velocity, the angle of the incidence, the ground condition all play very important roles in impact fragmentation.;Several case studies were performed to validate the developed impact fragmentation module in rock fall analysis. It has been demonstrated that the developed fragmentation module can reasonably predict impact fragmentation and perform some risk analysis in rock fall analysis.
机译:论文详细介绍了旨在开发和实现3-D冲击破碎模块的工作,该模块通过考虑冲击破碎来进行岩石跌落分析。该碎片化模块基于使用完全校准的离散元素模型(DEM)的大量碰撞模拟数据库,并通过训练神经网络模型或线性内插数据库,用于预测落石分析中的碰撞碎片化过程。 ;在研究中采用DEM建模冲击碎片。 DEM代码是从头开始开发的。该模型首先进行了校准,并通过实验结果进行了验证,以证明能够对准静态和动态材料行为进行建模。提出了针对岩石三轴试验校准模型微参数的算法。通过获得微观和宏观可变形性之间的关系,使用灵敏度分析来识别可变形性微参数。通过全局优化过程来确定强度模型参数,该过程旨在最大程度地减少计算出的和实验失效范围之间的差异。当应用于测试花岗岩的实验结果时,该校准过程在模拟结果和实验结果之间在变形性和强度特性方面取得了良好的一致性。;进行了动态压缩和SHPB测试以验证动力学模型。在实验结果中观察到应变率相关的动态强度。数值结果也证实了这种应变率相关的动态强度。 DEM中没有使用依赖于速率的本构模型来模拟动态行为。这种模拟的速率相关的动态强度可以归因于材料的惯性,因为该惯性抑制了裂纹的扩展。;然后,对与落石有关的冲击破碎的一些基本机理进行了数值研究。所开发的DEM代码结合了受动态基础理论启发的简化的影响模型。结果表明,撞击速度的大小,入射角,地面条件在撞击破碎中都起着非常重要的作用。进行了多个案例研究,以验证所开发的撞击破碎模块在落石分析中的有效性。已经证明,开发的破碎模块可以合理地预测冲击破碎并在落石分析中执行一些风险分析。

著录项

  • 作者

    Wang, Yuannian.;

  • 作者单位

    The University of Texas at Austin.;

  • 授予单位 The University of Texas at Austin.;
  • 学科 Engineering Geological.;Engineering Civil.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 225 p.
  • 总页数 225
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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