This paper presents a mixed formulation based on the node-based smoothed finite-element method for estimating seismic slope stability. The final form of Hellinger–Reissner is cast as the min–max optimisation problem with conic constraints. Solving the second-order cone programming directly determines both master fields, stress and displacement. It is shown from the numerical results that the stability numbers obtained are almost equal to the exact collapse loads for the relatively flat slopes. Moreover, the effects of the dilation angle on the seismic stability number are studied by incorporating a simple iterative technique in the algorithm cast as max-min programming, arriving at the observation that both the static and the seismic stability numbers are susceptible to the dilation angle. Although the magnitude of the seismic stability number largely depends on the vertical seismic acceleration for a broad range of typical slope angles, the seismic stability number for the relatively flat slopes in cohesive-frictional soils is likely independent of the seismic acceleration in the vertical direction.
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March 2023
Research Article|
March 14 2023
A mixed formulation of limit analysis for seismic slope stability Available to Purchase
H. C. Nguyen
H. C. Nguyen
*Department of Civil and Environmental Engineering, Imperial College London, London, UK.
†Department of Civil Engineering and Industrial Design, University of Liverpool, Liverpool, UK.
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Publisher: Emerald Publishing
Received:
August 01 2022
Accepted:
November 18 2022
ICE Publishing: all rights reserved
2023
Geotechnique Letters (2023) 13 (1): 54–64.
Article history
Received:
August 01 2022
Accepted:
November 18 2022
Citation
Nguyen HC (2023), "A mixed formulation of limit analysis for seismic slope stability". Geotechnique Letters, Vol. 13 No. 1 pp. 54–64, doi: https://doi.org/10.1680/jgele.22.00087
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