Thermo-hydraulic numerical modelling of in-soil conditions in reinforced soil walls

Author:

Moncada A.1ORCID,Damians I. P.23ORCID,Olivella S.4ORCID,Bathurst R. J.5ORCID

Affiliation:

1. PhD Candidate, Department of Civil and Environmental Engineering (DECA), and International Centre for Numerical Methods in Engineering (CIMNE), Universitat Politècnica de Catalunya·BarcelonaTech (UPC), Barcelona, Spain,

2. Associate Research Professor, Department of Civil and Environmental Engineering (DECA), and International Centre for Numerical Methods in Engineering (CIMNE), Universitat Politècnica de Catalunya·BarcelonaTech (UPC), Barcelona, Spain

3. VSoL® R&D Responsible, VSL International Ltd, Barcelona, Spain,

4. Professor, Department of Civil and Environmental Engineering (DECA), and International Centre for Numerical Methods in Engineering (CIMNE), Universitat Politècnica de Catalunya·BarcelonaTech (UPC), Barcelona, Spain,

5. Professor and Research Director, Department of Civil Engineering, GeoEngineering Centre at Queens's-RMC, Royal Military College of Canada, Kingston, Ontario 7K7 7B4, Canada,(corresponding author)

Abstract

The role of temperature and relative humidity in long-term mechanical and chemical degradation of polyester fibres due to hydrolysis and creep is well documented. This study presents the results of a thermo-hydraulic 2D finite-element model used to estimate the magnitude and distribution of in situ temperature, relative humidity, and degree of saturation in the backfill of reinforced soil walls (RSWs) due to changes in atmospheric boundary conditions. Boundary conditions for in-air temperature, relative humidity and daily precipitation were taken from weather databases for continental, Mediterranean, desert, and tropical climates. Scenarios with different water tables, and permeable or impermeable zones around the reinforced soil zone were analyzed. Numerical outcomes show that mean in-soil temperature values can be related to the mean annual atmospheric value for each geographical location, with relevant fluctuations limited to the first 3 m of distance from the vertical and horizontal boundaries. In-soil relative humidity values depended on the climate dataset and the permeability of the zones adjacent to the reinforced soil. The results of this study and lessons learned are a valuable precursor for future studies of coupled thermo-hydro-mechanical modelling of polyester geosynthetic RSWs under in situ operational conditions.

Publisher

Thomas Telford Ltd.

Subject

Geotechnical Engineering and Engineering Geology,Civil and Structural Engineering

Reference45 articles.

1. Numerical analysis of soil volumetric water content and temperature variations in an embankment due to soil-atmosphere interaction

2. Effects of temperature and relative humidity on a clay embankment: centrifuge modelling

3. Berg, R. R., Christopher, B. R. & Samtani, N. C. (2009). Design of Mechanically Stabilized Earth Walls and Reinforced Slopes, No. FHWA-NHI-10-024 Vol I and NHI-10-025 Vol II. Federal Highway Administration, Washington, DC, USA.

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