This article presents a novel model of the compaction of loose sand, or other granular material, incorporating two dilatancy terms. One is negative, reflecting the general tendency of an assembly to collapse under a combination of shear stress and pressure. The other develops during shear straining and, at the critical state, is sufficiently large and positive to counter the negative contribution. The existence of a term producing negative dilatancy, however, suggests the concept of ‘self-cancelling shear deformation’. These shears contribute to the shear–volume coupling, producing densification, but not to the macroscopic shear deformation. They only occur when there is a small amount of damage. This produces pressure-induced densification by granule rearrangement, resulting in a model where compaction is possible under a hydrostatic load but the model can still simulate cyclic deformation and critical state behaviour.
Article navigation
21 December 2012
Research Article|
October 23 2012
Simulating pressure-induced compaction by grain rearrangement
C. M. Sands;
C. M. Sands
*
School of Engineering, University of Aberdeen, Aberdeen, UK
Search for other works by this author on:
H. W. Chandler
H. W. Chandler
*
School of Engineering, University of Aberdeen, Aberdeen, UK
Search for other works by this author on:
Publisher: Emerald Publishing
Received:
May 14 2012
Revision Received:
June 14 2012
Accepted:
August 21 2012
Online ISSN: 2045-2543
ICE Publishing: all rights reserved
2012
Geotechnique Letters (2012) 2 (4): 187–192.
Article history
Received:
May 14 2012
Revision Received:
June 14 2012
Accepted:
August 21 2012
Citation
Sands CM, Chandler HW (2012), "Simulating pressure-induced compaction by grain rearrangement". Geotechnique Letters, Vol. 2 No. 4 pp. 187–192, doi: https://doi.org/10.1680/geolett.12.00034
Download citation file:
New and popular articles
Suggested Reading
Nor-Sand: a simle critical state model for sand
Geotechnique (March,1993)
Micro- and macro-mechanical behaviour of DEM crushable materials
Geotechnique (August,2008)
Modelling the cyclic ratcheting of sands through memory-enhanced bounding surface plasticity
Geotechnique (November,2018)
Analysis of the shaft resistance of non-displacement piles in sand
Geotechnique (April,2008)
Energy dissipation in soil samples during drained triaxial shearing
Geotechnique (August,2017)
Related Chapters
A constitutive model for partially saturated soils
The Essence of Geotechnical Engineering: 60 years of Géotechnique
Laboratory investigation of efficiency of conical-based pounders for dynamic compaction
Ground and Soil Improvement
A constitutive model for soft clayey rocks that includes weathering effects
Stiff Sedimentary Clays: Genesis and Engineering Behaviour: Géotechnique Symposium in Print 2007
Recommended for you
These recommendations are informed by your reading behaviors and indicated interests.
