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Stress-wave induced Fracture in Rock due to Explosive Action.

机译:爆炸引起的应力波在岩石中的破裂。

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摘要

Blasting is a complex phenomenon and many parameters affect the outcome of a blast. The process of rock fragmentation by blasting is not well understood yet. Therefore, as a first step, blast-induced dynamic fractures must be studied under highly controlled conditions. The whole cycle of conducting a series of laboratory-scale blast, analyzing the results, and using them to test the validity of an advanced numerical code is reported in this thesis.;Explosively driven fractures in a blast are controlled by rock and explosive properties, coupling media and coupling ratio. Sample geometries, types of explosives and coupling media used in the experiments are explored in the next step. In order to isolate the effect of shock energy from the gas energy in explosively driven fractures, copper liners were installed in the blast holes to prevent gas penetration into the shock induced cracks. The aim of the experiments was to study exclusively the nature of shock-driven fractures, and to contain the dynamic fractures within the samples and avoid sample fragmentation. At the same time and in order to investigate the stress field as a function of distance from the borehole, pressure gauges were installed in the samples. The measured pressures were used in a numerical-experimental procedure to estimate the attenuation properties of the rocks. Blasted samples were cut and impregnated with a mix of epoxy and fluorescent dye. Next, dynamic fracture patterns were highlighted using a strong ultraviolet source. After taking photographs, fracture patterns were manually mapped and crack densities were calculated at different depths and distances from the boreholes. The parameters that affect the development of dynamic fracture patterns are also discussed and relation between crack densities and pressures applied by explosives are investigated.;Finally, the dynamic fracture patterns and measured pressures will be used for calibrating the selected equation of state, strength and failure models implemented in AUTODYN. Governing equations, the procedure for obtaining the model constants, applicability of the selected model for predicting the blast experiments and its limitations are discussed in detail.;Initially, the respective contributions by both shock energy and gas energy fractions in an explosive in the blasting process are explained. Then, microstructural, physical and mechanical properties of Laurentian and Barre granites as the selected rock types are investigated.
机译:爆破是一种复杂的现象,许多参数都会影响爆破的结果。爆破岩石碎裂的过程还不是很清楚。因此,作为第一步,必须在高度受控的条件下研究爆炸引起的动态裂缝。本文报道了进行一系列实验室规模爆破,分析结果并用其检验先进数值代码的整个周期。;爆炸中的爆炸驱动骨折受岩石和爆炸特性控制,耦合介质和耦合比。下一步将探索实验中使用的样品几何形状,炸药类型和耦合介质。为了将冲击能量与爆炸驱动裂缝中的气体能量隔离开来,在爆破孔中安装了铜衬里,以防止气体渗透到冲击裂缝中。实验的目的是专门研究冲击驱动裂缝的性质,并将动态裂缝包含在样品中并避免样品破碎。同时,为了研究应力场与距井眼距离的函数关系,在样品中安装了压力计。测得的压力用于数值实验程序中,以估算岩石的衰减特性。切割经喷砂处理的样品,并用环氧树脂和荧光染料的混合物浸渍。接下来,使用强紫外线源突出显示动态断裂模式。拍照后,手动绘制裂缝模式,并在距井眼的不同深度和距离处计算裂缝密度。讨论了影响动态断裂模式发展的参数,并研究了裂纹密度与炸药施加压力之间的关系。最后,将动态断裂模式和测得的压力用于校准选定的状态,强度和破坏方程。在AUTODYN中实现的模型。详细讨论了控制方程,获得模型常数的过程,所选模型在预测爆炸实验中的适用性及其局限性;首先,在爆炸过程中,爆炸能中冲击能量和气体能量分数的各自贡献解释。然后,研究了Laurentian和Barre花岗岩作为选定岩石类型的微观结构,物理和力学性能。

著录项

  • 作者单位

    University of Toronto (Canada).;

  • 授予单位 University of Toronto (Canada).;
  • 学科 Geotechnology.;Engineering Civil.;Engineering Mining.;Engineering Computer.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 285 p.
  • 总页数 285
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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