Measuring mechanical anisotropy on geogrid reinforced soil using a cubical triaxial apparatus

This work describes the main findings of an experimental program focused on the characterization of the mechanical anisotropy of a reinforced cohesive soil using a cubical triaxial apparatus. Several authors have studied the influence of geometry, type, number and arrangement of reinforcement layers...

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Main Authors: Covassi Pedro A., Rinaldi Víctor A.
Format: Article
Language:English
Published: EDP Sciences 2019-01-01
Series:E3S Web of Conferences
Online Access:https://www.e3s-conferences.org/articles/e3sconf/pdf/2019/18/e3sconf_isg2019_12008.pdf
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spelling doaj-005dc577cece41cd951656a6a24635502021-04-02T11:02:46ZengEDP SciencesE3S Web of Conferences2267-12422019-01-01921200810.1051/e3sconf/20199212008e3sconf_isg2019_12008Measuring mechanical anisotropy on geogrid reinforced soil using a cubical triaxial apparatusCovassi Pedro A.Rinaldi Víctor A.This work describes the main findings of an experimental program focused on the characterization of the mechanical anisotropy of a reinforced cohesive soil using a cubical triaxial apparatus. Several authors have studied the influence of geometry, type, number and arrangement of reinforcement layers on the mechanical behaviour of reinforced soils, mainly dedicated to evaluate the improvement of stiffness and strength. The influence of anisotropy and principal intermediate stress has not been addressed. Conventional triaxial cell (axisymmetric) and pull-out tests are the most common type of devices used in the present studies. The implementation of an experimental program using a cubical triaxial apparatus allows us to consider all the aspects mentioned before, mainly those related to an anisotropic characterization and the principal intermediate stress influence on stress-strain and strength behaviour. Results obtained in this work, show that reinforced soil is a cross-anisotropic material, and its stress-strain and strength behaviour is strongly influenced in sectors I (lode angle between 0° and 60°) and II (lode angle between 60° and 120°) of the octahedral plane. Thus, a complete characterization of geogrid reinforced soil can be made selecting an appropriate set of stress paths in the cubical apparatus.https://www.e3s-conferences.org/articles/e3sconf/pdf/2019/18/e3sconf_isg2019_12008.pdf
collection DOAJ
language English
format Article
sources DOAJ
author Covassi Pedro A.
Rinaldi Víctor A.
spellingShingle Covassi Pedro A.
Rinaldi Víctor A.
Measuring mechanical anisotropy on geogrid reinforced soil using a cubical triaxial apparatus
E3S Web of Conferences
author_facet Covassi Pedro A.
Rinaldi Víctor A.
author_sort Covassi Pedro A.
title Measuring mechanical anisotropy on geogrid reinforced soil using a cubical triaxial apparatus
title_short Measuring mechanical anisotropy on geogrid reinforced soil using a cubical triaxial apparatus
title_full Measuring mechanical anisotropy on geogrid reinforced soil using a cubical triaxial apparatus
title_fullStr Measuring mechanical anisotropy on geogrid reinforced soil using a cubical triaxial apparatus
title_full_unstemmed Measuring mechanical anisotropy on geogrid reinforced soil using a cubical triaxial apparatus
title_sort measuring mechanical anisotropy on geogrid reinforced soil using a cubical triaxial apparatus
publisher EDP Sciences
series E3S Web of Conferences
issn 2267-1242
publishDate 2019-01-01
description This work describes the main findings of an experimental program focused on the characterization of the mechanical anisotropy of a reinforced cohesive soil using a cubical triaxial apparatus. Several authors have studied the influence of geometry, type, number and arrangement of reinforcement layers on the mechanical behaviour of reinforced soils, mainly dedicated to evaluate the improvement of stiffness and strength. The influence of anisotropy and principal intermediate stress has not been addressed. Conventional triaxial cell (axisymmetric) and pull-out tests are the most common type of devices used in the present studies. The implementation of an experimental program using a cubical triaxial apparatus allows us to consider all the aspects mentioned before, mainly those related to an anisotropic characterization and the principal intermediate stress influence on stress-strain and strength behaviour. Results obtained in this work, show that reinforced soil is a cross-anisotropic material, and its stress-strain and strength behaviour is strongly influenced in sectors I (lode angle between 0° and 60°) and II (lode angle between 60° and 120°) of the octahedral plane. Thus, a complete characterization of geogrid reinforced soil can be made selecting an appropriate set of stress paths in the cubical apparatus.
url https://www.e3s-conferences.org/articles/e3sconf/pdf/2019/18/e3sconf_isg2019_12008.pdf
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