Partition of the contact force network obtained in discrete element simulations of element tests
File(s)10.1007%2Fs40571-015-0095-y.pdf (2.09 MB)
Published version
Author(s)
Huang, Xin
O'Sullivan, Catherine
Hanley, Kevin J
Kwok, Chung-Yee
Type
Journal Article
Abstract
The transmission of stress within a granular material composed of rigid spheres is explored using the discrete element method. The contribution of contacts to both deviatoric stress and structural anisotropy is investigated. The influences of five factors are considered: inter-particle friction coefficient, loading regime, packing density, contact model, and boundary conditions. The data generated indicate that using the above-average normal contact force criterion to decompose the contact force network into two subsets with distinct contributions to stress transmission and structural anisotropy is not robust. The characteristic normal contact forces marking the transition from negative to positive contribution to the overall deviatoric stress and structural anisotropy are not unique values but vary during shearing. Once the critical state is attained (i.e., once shearing continues at a constant deviator stress and solid fraction), the characteristic normal contact force remains approximately constant and this critical state characteristic normal force is observed to decrease with increasing inter-particle friction. The characteristic normal contact force considering the contribution to deviatoric stress has a power-law relationship with the mean effective stress at the critical state.
Date Issued
2016-01-07
Date Acceptance
2015-12-14
Citation
Computational Particle Mechanics, 2016, 4 (2), pp.145-152
ISSN
2196-4378
Publisher
Springer Verlag
Start Page
145
End Page
152
Journal / Book Title
Computational Particle Mechanics
Volume
4
Issue
2
Copyright Statement
© The Author(s) 2016. This article is published with open access at Springerlink.com
License URL
Subjects
Discrete element method
Force network
Element tests
Stress tensor
Fabric tensor
GRANULAR ASSEMBLIES
INDUCED ANISOTROPY
Publication Status
Published