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The effect of tensile strength on the stability of rock slopes.

机译:抗张强度对岩石边坡稳定性的影响。

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摘要

The stability of a rock slope is generally considered a function of the shear strength of the rupture surface. In natural slopes the rupture surfaces are often discontinuous and may be composed of fractures and joints separated by blocks of massive rock. In those situations the strength of the rupture surface is composed of three strength components: tensile strength, cohesion and friction. While the effect of the shear strength components, cohesion and friction, on slope stability are well understood, little research has been carried out on the role of tensile strength in rock slope stability.The results from this research show that the tensile strength of the intact blocks that separate fractures is a key parameter in the development of the rupture surface. For toppling slopes, friction and cohesion of the intact rock play a minor role, while the tensile strength play a major role in controlling the stability of the slope. A comparison of conventional discrete element modeling with the modeling methodology developed for this research at all scales investigated shows that the measured deformation patterns, and location of the rupture surface were in better agreement with the simulation results from the proposed methodology. The results indicate that the long-term stability of toppling slopes is likely controlled by the degradation of the tensile strength.The main goal of this thesis is to examine the effect of tensile strength and tensile fracturing on rock slope toppling. Toppling of rock slopes is defined by thin slabs of rock displacing out of the slope, eventually forming a rupture surface. This toppling process involves slip between the thin slabs and tensile rupture across the slabs. A numerical modeling methodology based on a discrete element framework was developed and used to investigate the effect of each strength component (tensile, cohesion, friction) on toppling stability. The methodology, which includes internal flaws in the intact rock, was first evaluated using the results from direct shear tests of discontinuous fractures. The procedure was then applied to centrifuge model tests of a toppling slope. Two case studies of large-scale slopes were also evaluated using the developed modeling methodology.
机译:通常认为岩石边坡的稳定性是破裂面抗剪强度的函数。在自然斜坡上,破裂面通常是不连续的,可能由被块状岩石块隔开的裂缝和节理组成。在那些情况下,破裂表面的强度由三个强度分量组成:拉伸强度,内聚力和摩擦力。尽管人们已经充分了解了剪切强度分量,内聚力和摩擦力对边坡稳定性的影响,但是关于抗拉强度在岩石边坡稳定性中的作用的研究很少,这项研究的结果表明完整的抗拉强度分开裂缝的块体是破裂面发展的关键参数。对于倾斜的斜坡,完整岩石的摩擦和内聚力起着较小的作用,而抗拉强度在控制斜坡的稳定性中起主要作用。在所有调查规模上,将常规离散元素建模与为此研究开发的建模方法进行的比较表明,测得的变形模式和破裂表面的位置与拟议方法的模拟结果更好地吻合。结果表明,倾倒坡的长期稳定性很可能受抗拉强度下降的控制。本论文的主要目的是研究抗拉强度和拉伸断裂对岩质倾倒的影响。岩石斜坡的倾覆是由从斜坡中移出并最终形成破裂面的薄岩片定义的。倾覆过程涉及薄板之间的滑动以及整个板的拉伸断裂。开发了基于离散元素框架的数值建模方法,并用于研究每个强度分量(拉伸,内聚,摩擦)对倾覆稳定性的影响。首先使用不连续裂缝的直接剪切试验的结果对包括完整岩石内部缺陷在内的方法进行了评估。然后将该程序应用于倾倒坡度的离心机模型测试。还使用开发的建模方法评估了两个大型斜坡的案例研究。

著录项

  • 作者

    Alzo'ubi, Abdelkareem M.;

  • 作者单位

    University of Alberta (Canada).;

  • 授予单位 University of Alberta (Canada).;
  • 学科 Engineering Geological.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 205 p.
  • 总页数 205
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 老年病学;
  • 关键词

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