Technical Notes
Apr 24, 2017

Stability Analysis of Geocell-Reinforced Slopes Using the Limit Equilibrium Horizontal Slice Method

Publication: International Journal of Geomechanics
Volume 17, Issue 9

Abstract

Given the three-dimensional confinement, the geocell reinforcement can act as a beam that can carry both bending and membrane stresses compared with only the planar membrane effect of planar reinforcement. This study presents an analytical approach to determine the factor of safety (FOS) of geocell-reinforced slope using the horizontal slice method (HSM). The geocell reinforcement composed of geocell and infill soil was modeled as a composite beam filled with soil. The improvement in the FOS of the geocell-reinforced slope was expressed in terms of vertical stress dispersion, vertical frictional resistance, and structural mechanisms provided by geocell reinforcement. The effect of geocell pocket diameter on the soil confinement and FOS of geocell-reinforced slope was considered using hoop tension theory. The results of the proposed analytical model were compared with those determined by numerical modeling using the strength reduction method (SRM). A series of parametric analyses were also performed to evaluate the influence of the placement depth of the geocell layer, the number of geocell layers, the pocket diameter and the height of geocell, and the slope angle and soil shear strength, on the stability of the geocell-reinforced slope. The results indicate that the reinforcing mechanism of geocell reinforcement is considerably related to the geocell thickness. The mobilized flexural strength and vertical frictional resistance magnify as the height of the geocell increases. Compared with planar reinforcement, a smaller quantity of geocell reinforcement is required to achieve an equivalent FOS value. The results predicted from the present analytical approach were found to be in good agreement with SRM results.

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International Journal of Geomechanics
Volume 17Issue 9September 2017

History

Received: Aug 31, 2016
Accepted: Feb 8, 2017
Published online: Apr 24, 2017
Published in print: Sep 1, 2017
Discussion open until: Sep 24, 2017

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Iman Mehdipour, S.M.ASCE [email protected]
Graduate Research Assistant, Dept. of Civil, Architecture, and Environmental Engineering, Missouri Univ. of Science and Technology, Rolla, MO 65409 (corresponding author). E-mail: [email protected]
Mahmoud Ghazavi [email protected]
Professor, Faculty of Civil Engineering, K.N. Toosi Univ. of Technology, Tehran 1969764499, Iran. E-mail: [email protected]
Reza Ziaie Moayed [email protected]
Associate Professor, Faculty of Civil Engineering, Imam Khomeini International Univ., Qazvin 3414916818, Iran. E-mail: [email protected]

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