Technical Papers
Jun 17, 2021

Noncircular Deterministic and Stochastic Slope Stability Analyses and Design of Simple Geosynthetic-Reinforced Soil Slopes

Publication: International Journal of Geomechanics
Volume 21, Issue 9

Abstract

The purpose of this study is to examine the behavior of simple soil slopes reinforced with geosynthetics using deterministic and stochastic as well as circular and noncircular limit equilibrium method (LEM) of slope stability analyses. Two particular types of stochastic analyses, namely single random variable analyses and spatial variability analyses based on the random limit equilibrium method (RLEM), are performed in order to render probability of failure (Pf). Bishop’s method is used as the circular LEM approach, and the GLE/Morgenstern-Price method together with a global metaheuristic optimization method (Cuckoo search) and a local optimization technique (surface altering optimization) are then used as the noncircular RLEM. Three different failure mechanisms (external, internal, and transitional) are defined in this study. The threshold values of the reinforcement length and tensile strength are presented for both the external and internal failure mechanisms. Contour plots are drawn with noncircular slip surface assumption for different deterministic FS values corresponding to the external, transitional, and internal failure mechanisms as introduced by previous researchers. This investigation evaluates, for the first time, the stochastic FS values for the geosynthetic-reinforced slopes with the noncircular slip surface assumption using LEM, with and without spatial variability. Finally, relevant stochastic design charts for a wide range of the deterministic (mean) FS and internal friction angles are presented for the external and internal failure mechanisms.

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Go to International Journal of Geomechanics
International Journal of Geomechanics
Volume 21Issue 9September 2021

History

Received: Jan 14, 2021
Accepted: Apr 15, 2021
Published online: Jun 17, 2021
Published in print: Sep 1, 2021
Discussion open until: Nov 17, 2021

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Pooya Dastpak [email protected]
M.Sc. Graduate, Dept. of Civil Engineering, Faculty of Engineering, Ferdowsi Univ. of Mashhad, Mashhad, Iran. Email: [email protected]
Research Assistant, Dept. of Civil Engineering, Royal Military College of Canada, Kingston, ON, Canada (corresponding author). ORCID: https://orcid.org/0000-0002-7950-322X. Email: [email protected]
Brigid Cami [email protected]
Geotechnical Software Developer, Rocscience Inc., 54 St. Patrick St., Toronto, ON M5T 1V1, Canada. Email: [email protected]
Sina Javankhoshdel, A.M.ASCE [email protected]
Geomechanics Specialist, Rocscience Inc., 54 St. Patrick St., Toronto, ON M5T 1V1, Canada. Email: [email protected]

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Cited by

  • Probabilistic Analysis of a Nailed Wall Considering Excavation Stages, Geo-Risk 2023, 10.1061/9780784484975.035, (331-339), (2023).
  • Reliability assessment of reinforced slopes with unknown probability distribution, Geosynthetics International, 10.1680/jgein.21.00106, (1-13), (2022).
  • Deterministic Seismic Stability Analysis of Reinforced Slopes using Pseudo-Static Approach, Iranian Journal of Science and Technology, Transactions of Civil Engineering, 10.1007/s40996-022-00970-2, (2022).
  • A comprehensive investigation on bearing capacity of shallow foundations on unsaturated fly ash slopes adopting finite element limit analysis, European Journal of Environmental and Civil Engineering, 10.1080/19648189.2021.1967200, 26, 14, (6914-6940), (2021).
  • Probabilistic stability analysis of geosynthetic-reinforced slopes under pseudo-static and modified pseudo-dynamic conditions, Geotextiles and Geomembranes, 10.1016/j.geotexmem.2021.07.005, 49, 6, (1565-1584), (2021).

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