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Mechanical strength of wet particle agglomerates.

Authors :
Vo, Thanh-Trung
Mutabaruka, Patrick
Nezamabadi, Saeid
Delenne, Jean-Yves
Izard, Edouard
Pellenq, Roland
Radjai, Farhang
Source :
Mechanics Research Communications. Sep2018, Vol. 92, p1-7. 7p.
Publication Year :
2018

Abstract

Highlights • Agglomerates of wet particles undergo plastic deformation before breaking. • The plastic strength is proportional to the characteristic capillary stress. • The effect of particle size span is mainly included in the characteristic stress. • The amount of liquid affects the strength through the wet coordination number. Abstract Using particle dynamics simulations, we investigate the strength and microstructure of agglomerates of wet frictional particles subjected to axial compression. The numerical model accounts for the cohesive and viscous effects of the binding liquid up to a debonding distance with the liquid assumed to be distributed homogeneously inside the agglomerate. We show that wet agglomerates undergo plastic deformation due to the rearrangements of primary particles during compression. The compressive strength is thus characterized by the plastic threshold before the onset of failure by the irreversible loss of wet contacts between primary particles. We find that the agglomerate plastic threshold is proportional to the characteristic cohesive stress defined from the liquid-vapor surface tension and the mean diameter of primary particles, with a prefactor that is a nearly linear function of the debonding distance and increases with size span. We analyze the agglomerate microstructure and, considering only the cohesive capillary forces at all bonds between primary particles, we propose an expression of the plastic strength as a function of the texture parameters such as the wet coordination number and packing fraction. This expression is shown to be consistent with our simulations up to a multiplicative factor reflecting the distribution of the capillary bridges. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00936413
Volume :
92
Database :
Academic Search Index
Journal :
Mechanics Research Communications
Publication Type :
Academic Journal
Accession number :
131660825
Full Text :
https://doi.org/10.1016/j.mechrescom.2018.07.003