Published April 7, 2011 | Version v1

Hybrid Method for Analysis and Design of Slope Stabilizing Piles

  • 1. National Technical University, Athens, Greece

Description

iles are extensively used as a means of slope stabilization. Despite the rapid advances in computing and software power, the design of such piles may still include a high degree of conservatism stemming from the use of simplified easy to apply methodologies. This paper develops a hybrid method for designing slope stabilizing piles, combining the accuracy of rigorous 3D finite element (FE) simulation with the simplicity of widely accepted analytical techniques. It comprises two steps : (a) evaluation of the lateral resisting force RF needed to increase the safety factor of the precarious slope to the desired value, and (b) estimation of the optimum pile configuration offering the required RF for a prescribed deformation level. The first step utilizes the results of conventional slope stability analysis. A novel approach is proposed for the second step. This consists of the decoupling of the slope geometry from the computation of pile lateral capacity, which allows numerical simulation of only a limited region of soil around the piles. A comprehensive validation is presented against published experimental, field, and theoretical results from fully coupled 3D non‐linear FE analyses. It is shown that the proposed method provides a useful computationally efficient tool for parametric analyses and design of slope stabilizing piles

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Funding

European Commission
DARE - Soil Foundation Structure Systems Beyond Conventional Seismic Failure Thresholds: Application to New or Existing Structures and Monuments 228254