The intermittent nature of climate forcing causes seasonal groundwater table fluctuations, subjecting slow-moving landslides to cyclic stress changes over long periods. However, the effects of cyclic loading on the landslide kinematics and potential failure remain under-explored. This study integrates a bounding surface modified Cam-Clay model with the sliding–consolidation framework to simulate landslide kinematics under seasonally fluctuating water tables. The results categorise four regimes of landslide motion based on stress state: healing, neutral, stable deterioration and unstable deterioration. It is found that landslides characterised by a representative stress path located on the right side of the critical state exhibit persistent motion, whereas those with stress paths crossing the critical state line, even within the bounding surface, enter an unstable regime and develop cyclic failure after a sufficient number of cycles. This finding shows that whether a landslide will continue to move indefinitely or develop catastrophic acceleration is likely to depend on the competition between shear zone healing and deterioration mechanisms driven by repeated hydrologic cycles. In addition, by defining suitable dimensionless velocity and displacement, the model defines a relationship between the variables that reflects the evolution of the bounding surface size, independent of the mechanical properties and the geometry of the landslide. This finding provides a theoretical basis to define kinematic-based precursors of impending critical state and vanishing safety margins.
Article navigation
3 April 2026
Research Article|
January 29 2026
Discovering multiple regimes of landslide motion with critical state soil mechanics
Pengjia Song
;
Pengjia Song
*Department of Civil and Environmental Engineering,
Northwestern University
, Evanston, USA
Search for other works by this author on:
Giuseppe Buscarnera
†Department of Civil and Environmental Engineering,
Northwestern University
, Evanston, USA
Corresponding author Giuseppe Buscarnera (g-buscarnera@northwestern.edu)
Search for other works by this author on:
Corresponding author Giuseppe Buscarnera (g-buscarnera@northwestern.edu)
Publisher: Emerald Publishing
Received:
October 25 2024
Accepted:
November 05 2025
Online ISSN: 1751-7656
Print ISSN: 0016-8505
Funding
Funding Group:
- Award Group:
- Funder(s): National Aeronautics and Space Administration
- Award Id(s): 80NSSC23K0734
- Funder(s):
- Funding Statement(s): The authors acknowledge the funding supported by the National Aeronautics and Space Administration (grant 80NSSC23K0734).
© 2025 Emerald Publishing Limited
2025
Emerald Publishing Limited
Licensed re-use rights only
Geotechnique (2026) 76 (4): 552–564.
Article history
Received:
October 25 2024
Accepted:
November 05 2025
Citation
Song P, Buscarnera G (2026), "Discovering multiple regimes of landslide motion with critical state soil mechanics". Geotechnique, Vol. 76 No. 4 pp. 552–564, doi: https://doi.org/10.1680/jgeot.24.01341
Download citation file:
444
Views
New and popular articles
Suggested Reading
Unified modelling framework of flowslide triggering and runout
Geotechnique (August,2022)
Sedimentation and self-weight consolidation: constitutive equations and numerical modelling
Geotechnique (December,1999)
A finite strain theory for gassy sludge
Geotechnique (February,2000)
Trends in large-deformation analysis of landslide mass movements with particular emphasis on the material point method
Geotechnique (November,2015)
Sidere: numerical prediction of large-strain consolidation
Geotechnique (November,2002)
Related Chapters
Mathematical model of electro-osmotic consolidation for soft ground improvement
Bio- and Chemo-Mechanical Processes in Geotechnical Engineering: Géotechnique Symposium in Print 2013
Constitutive and numerical modelling
The Essence of Geotechnical Engineering: 60 years of Géotechnique
A constitutive model for partially saturated soils
The Essence of Geotechnical Engineering: 60 years of Géotechnique
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.
