Force transmission in cohesive granular media

被引:13
作者
Radjai, Farhang [1 ,2 ]
Topin, Vincent [1 ,2 ]
Richefeu, Vincent [3 ]
Voivret, Charles [4 ]
Delenne, Jean-Yves [1 ,2 ]
Azema, Emilien [1 ]
El Youssoufi, Said [1 ]
机构
[1] Univ Montpellier 2, CNRS, Lab Mecan & Genie Civil, UMR 5508, Case 048,Pl E Bataillon, F-34095 Montpellier 5, France
[2] IRSN DPAM CNRS, Lab Micromecan & Integrite Struct, F-34095 Montpellier 5, France
[3] Univ Grenoble 1, Lab Sols Solides Struct Risques, F-38041 Grenoble 9, France
[4] CNRS, UMR 125, Lab Surface Verre & Interfaces, F-93303 Aubervilliers, France
来源
IUTAM-ISIMM SYMPOSIUM ON MATHEMATICAL MODELING AND PHYSICAL INSTANCES OF GRANULAR FLOWS | 2010年 / 1227卷
关键词
granular media; force chain; granular disorder; cohesion; discrete element method; lattice element method; capillary bond; binding matrix; STRESS TRANSMISSION; CAPILLARY COHESION; SPHERICAL BODIES; MODEL; SIMULATIONS; PARTICLES; STRENGTH; FRICTION; BRIDGES;
D O I
10.1063/1.3435395
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
We use numerical simulations to investigate force and stress transmission in cohesive granular media covering a wide class of materials encountered in nature and industrial processing. The cohesion results either from capillary bridges between particles or from the presence of a solid binding matrix filling fully or partially the interstitial space. The liquid bonding is treated by implementing a capillary force law within a debonding distance between particles and simulated by the discrete element method. The solid binding matrix is treated by means of the Lattice Element Method (LEM) based on a lattice-type discretization of the particles and matrix. Our data indicate that the exponential fall-off of strong compressive forces is a generic feature of both cohesive and noncohesive granular media both for liquid and solid bonding. The tensile forces exhibit a similar decreasing exponential distribution, suggesting that this form basically reflects granular disorder. This is consistent with the finding that not only the contact forces but also the stress components in the bulk of the particles and matrix, accessible from LEM simulations in the case of solid bonding, show an exponential fall-off. We also find that the distribution of weak compressive forces is sensitive to packing anisotropy, particle shape and particle size distribution. In the case of wet packings, we analyze the self-equilibrated forces induced by liquid bonds and show that the positive and negative particle pressures form a bi-percolating structure.
引用
收藏
页码:240 / +
页数:3
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