Practical Use of Modified Hoek–Brown Criterion for Soil Slope Stability Analysis

被引:0
|
作者
Daniel R. VandenBerge
Michael P. McGuire
机构
[1] Tennessee Technological University,
[2] Lafayette College,undefined
关键词
Hoek Brown; Nonlinear; Shear strength reduction; Slope stability; Finite element; Finite difference;
D O I
暂无
中图分类号
学科分类号
摘要
Many slopes are comprised of soils that exhibit a nonlinear shear strength or failure envelope, and multiple mathematical relationships have been developed to account for this nonlinearity. At the same time, the numerical shear strength reduction (SSR) method has become a common method for analyzing the stability of slopes. Despite these developments, a practical, commercially available method to include nonlinear shear strength in numerical analysis has not been established for soil. The Generalized Hoek–Brown (GHB) model provides a nonlinear failure criterion, but is formulated for use with rock. This paper proposes a Modified Hoek–Brown (MHB) criterion to make the model applicable to soil and leverage the GHB criterion present in many numerical analysis packages. Past applications of SSR to the GHB are discussed and a numerical method for reduction of the parameters in the context of soil slopes is proposed. A simple wedge analysis validates the MHB method for a linear envelope. Three examples of increasing complexity compare results of limit equilibrium with both finite element and finite difference SSR analyses. In general, the different numerical methods yield very similar results. The SSR method using MHB predicts critical strength reduction factors 2–5% lower than the limit equilibrium factors of safety. The approach presented in this paper allows practitioners to model nonlinear shear strength in finite element strength reduction analysis for cases where this nonlinearity is judged to be an important factor.
引用
收藏
页码:5441 / 5455
页数:14
相关论文
共 50 条
  • [31] A New Discrete Form of Hoek-Brown Criterion and Its Application to Limit Equilibrium Analysis of Rock Slope Stability
    Lee, Youn-Kyou
    Pietruszczak, S.
    SUSTAINABILITY, 2022, 14 (19)
  • [32] Back analysis of rock slope GSI magnitude under Hoek-Brown criterion
    Sun, Z. (sunzbcs@126.com), 2013, Central South University of Technology (44):
  • [33] MODIFIED STABILITY CHARTS FOR ROCK SLOPES BASED ON THE HOEK-BROWN FAILURE CRITERION
    Nekouei, Mahdi
    Ahangari, Kaveh
    ARCHIVES OF MINING SCIENCES, 2013, 58 (03) : 747 - 766
  • [34] Dynamic Stability Analysis of Rock Slope Supported by Double-Row Piles Based on Hoek-Brown Criterion
    Yun, Liu
    Jie, Lai
    ELECTRONIC JOURNAL OF GEOTECHNICAL ENGINEERING, 2016, 21 (17): : 5859 - 5869
  • [35] Estimation of rock mass mechanical parameters of an open-pit mine slope based on the Hoek-Brown criterion and analysis of slope stability
    Lian Baoqin
    Wang Xingang
    PROCEEDINGS OF THE 2016 5TH INTERNATIONAL CONFERENCE ON CIVIL, ARCHITECTURAL AND HYDRAULIC ENGINEERING (ICCAHE 2016), 2016, 95 : 399 - 403
  • [36] Probabilistic Slope Stability Assessment Under Seismic Conditions Based on the Generalized Hoek-Brown Criterion
    K. Kang
    O. V. Zerkal
    A. A. Ponomarev
    I. K. Fomenko
    Soil Mechanics and Foundation Engineering, 2021, 58 : 223 - 229
  • [37] Rock slope stability assessment based on the critical failure state curve for the generalized Hoek‒Brown criterion
    Wenlian Zhang
    Xiaoyun Sun
    Wei Yuan
    Ting Liu
    Shenyi Jin
    Environmental Earth Sciences, 2024, 83
  • [38] Probabilistic Slope Stability Assessment Under Seismic Conditions Based on the Generalized Hoek-Brown Criterion
    Kang, K.
    Zerkal, O. V.
    Ponomarev, A. A.
    Fomenko, I. K.
    SOIL MECHANICS AND FOUNDATION ENGINEERING, 2021, 58 (03) : 223 - 229
  • [39] Slope Stability Analysis using Equivalent Mohr–Coulomb and Hoek–Brown criteria
    Hossein Rafiei Renani
    C. Derek Martin
    Rock Mechanics and Rock Engineering, 2020, 53 : 13 - 21
  • [40] Wellbore Stability Analysis of Coal Seam Based on Hoek-Brown Criterion
    Yang, Heng-lin
    Tian, Zhong-lan
    Zhang, Li-song
    Yan, Xiang-zhen
    MANUFACTURING SCIENCE AND TECHNOLOGY, PTS 1-8, 2012, 383-390 : 3882 - +