Strength envelope of granular soil stabilized by multi-axial geogrid in large triaxial tests

Author:

Lees A.S.1,Clausen J.2

Affiliation:

1. Tensar International, Nicosia, Cyprus.

2. Aalborg University, Aalborg, Denmark.

Abstract

Conventional methods of characterizing the mechanical properties of soil and geogrid separately are not suited to multi-axial stabilizing geogrid that depends critically on the interaction between soil particles and geogrid. This has been overcome by testing the soil and geogrid product together as one composite material in large specimen triaxial compression tests and fitting a nonlinear failure envelope to the peak failure states. As such, the performance of stabilizing, multi-axial geogrid can be characterized in a measurable way. The failure envelope was adopted in a linear elastic – perfectly plastic constitutive model and implemented into finite element analysis, incorporating a linear variation of enhanced strength with distance from the geogrid plane. This was shown to produce reasonably accurate simulations of triaxial compression tests of both stabilized and nonstabilized specimens at all the confining stresses tested with one set of input parameters for the failure envelope and its variation with distance from the geogrid plane.

Publisher

Canadian Science Publishing

Subject

Civil and Structural Engineering,Geotechnical Engineering and Engineering Geology

Reference10 articles.

1. Brinkgreve, R.B.J., Kumarswamy, S., Swolfs, W.M., and Foria, F. 2018. Plaxis 2018. Plaxis bv, Delft, The Netherlands.

2. BSI. 2002. BS 1377-4:1990 methods of test for soils for civil engineering purposes–part 4: compaction-related tests. British Standards Institution, London, UK.

3. Multi-scale analysis of cone penetration test (CPT) in a virtual calibration chamber

4. Development and verification of a numerical model for the analysis of geosynthetic-reinforced soil segmental walls under working stress conditions

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