Traditional geotechnical analyses for landslides involve failure prediction (i.e. onset of failure) and the design of structures that can safely withstand the applied loads. The analyses provide limited information on the post-failure behaviour. Modern numerical methods are able to simulate large mass movements and there is an opportunity to utilise such methods to evaluate the risks of catastrophic damage if a landslide occurs. In this paper, various large-deformation analysis methods are introduced and their applicability for solving landslide problems is discussed. Since catastrophic landslides often involve seepage forces, consideration of the coupled behaviour of soil and pore fluid is essential. Two approaches to model soil–pore fluid coupling in large-deformation analysis using the material point method (MPM) are introduced. An example simulation is presented for each approach; one on a model levee failure and the other on a natural cut slope failure (the Selborne experiment conducted by Cooper and co-workers in 1998). In the levee failure case, MPM simulation was able to capture a complex failure mechanism including the development of successive shear bands. The simulation was also able to predict excess pore pressure generation during the failure propagation and the subsequent consolidation stage. The simulations demonstrated the importance of the dilation characteristics of soil as well as changes in geometry for the post-failure behaviour. In the Selborne case, MPM was able to simulate the progressive failure of brittle, overconsolidated clay. The evolution of shear stresses along the failure surface was also captured by the MPM. The changes in the pore pressure and the actual shape of the failure surface were simulated by the MPM. The importance of accurately modelling the shear band within the MPM framework is highlighted.
Article navigation
March 2016
Research Article|
November 20 2015
Trends in large-deformation analysis of landslide mass movements with particular emphasis on the material point method
K. Soga;
K. Soga
*Department of Engineering, University of Cambridge, Cambridge, UK.
Search for other works by this author on:
E. Alonso;
E. Alonso
†Polytechnic University of Catalonia, Barcelona, Spain.
Search for other works by this author on:
A. Yerro;
A. Yerro
†Polytechnic University of Catalonia, Barcelona, Spain.
Search for other works by this author on:
K. Kumar;
K. Kumar
*Department of Engineering, University of Cambridge, Cambridge, UK.
Search for other works by this author on:
S. Bandara
S. Bandara
*Department of Engineering, University of Cambridge, Cambridge, UK.
Search for other works by this author on:
Publisher: Emerald Publishing
Received:
March 11 2015
Accepted:
August 26 2015
Online ISSN: 1751-7656
Print ISSN: 0016-8505
© 2015 Thomas Telford Ltd
2015
Geotechnique (2016) 66 (3): 248–273.
Article history
Received:
March 11 2015
Accepted:
August 26 2015
Citation
Soga K, Alonso E, Yerro A, Kumar K, Bandara S (2016), "Trends in large-deformation analysis of landslide mass movements with particular emphasis on the material point method". Geotechnique, Vol. 66 No. 3 pp. 248–273, doi: https://doi.org/10.1680/jgeot.15.LM.005
Download citation file:
New and popular articles
Suggested Reading
Influence of solid–fluid interaction on impact dynamics against rigid barrier: CFD–DEM modelling
Geotechnique (March,2021)
A simple method to reduce mesh dependency in modelling landslides involving brittle soils
Geotechnique Letters (July,2022)
Analysis of a landslide in sensitive clays using the material point method
Geotechnical Research (February,2023)
Modelling of falling rock protection barriers
International Journal of Physical Modelling in Geotechnics (December,2011)
Effects of granular collisions on the rapid coarse-grained materials flow
Geotechnique Letters (April,2019)
Related Chapters
Probabilistic assessment of stability of a cut slope in residual soil
Risk and Variability in Geotechnical Engineering
Realistic assessment of slope reliability for effective landslide hazard management
Risk and Variability in Geotechnical Engineering
Chapter 7 Floods, Landslides, and Adapting to Climate Change in Nepal: What Role for Climate Change Models?
Climate Change Modeling For Local Adaptation In The Hindu Kush-Himalayan Region
Recommended for you
These recommendations are informed by your reading behaviors and indicated interests.
Recommended for you
These recommendations are informed by your reading behaviors and indicated interests.
