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Internal erosion of chemically reinforced granular materials: a mathematical modeling approach
Author(s) -
Khalil Tony,
Saiyouri Nadia,
Muresan Bogdan,
Hicher PierreYves
Publication year - 2011
Publication title -
international journal for numerical and analytical methods in geomechanics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.419
H-Index - 91
eISSN - 1096-9853
pISSN - 0363-9061
DOI - 10.1002/nag.1108
Subject(s) - instability , permeability (electromagnetism) , porosity , erosion , materials science , geotechnical engineering , granular material , nonlinear system , mathematical model , mechanics , geology , chemistry , mathematics , physics , paleontology , biochemistry , membrane , quantum mechanics , statistics
SUMMARY Internal erosion (IE) affects the stability of natural and reinforced materials by causing instability within their granular structure. The dislodgement and transport of eroded particles affect both the particulate concentration of eroding fluid and the pore network of eroded material. In this study, we examined these modifications using a transport model with a finite element code. First, IE tests on chemically reinforced sand columns were performed to obtain information about eroded material loss of mass, particulate concentration of effluent, porosity and permeability modifications, and existing IE stages. Second, based on experimental results, a mathematical one‐dimensional model has been formulated to monitor the evolution and spatial distribution of erodible solids, fluidized particles, porosity, permeability, and seepage stresses. The model consists of a set of coupled nonlinear differential equations solved in sequence. It provides valuable information about the extent and the dynamics of structural changes, which can be used to estimate an IE time for the hydraulic work to reach failure. Copyright © 2011 John Wiley & Sons, Ltd.

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