The browser you are using is not supported by this website. All versions of Internet Explorer are no longer supported, either by us or Microsoft (read more here: https://www.microsoft.com/en-us/microsoft-365/windows/end-of-ie-support).

Please use a modern browser to fully experience our website, such as the newest versions of Edge, Chrome, Firefox or Safari etc.

Numerical study of localization in soil systems

Author

Summary, in English

A numerical study of the mechanical behavior of heterogeneous soil systems, consisting of a bulk of sand with embedded stiff gravel inclusions or soft clay inclusions, is performed. A solution scheme using parallel computing is employed when analyzing two different categories of problems. First, a homogenization problem is studied, where use of a single representative volume element subjected to plane strain compression offers the possibility to investigate the coupling between the response at a local scale and at a global scale. Second, a plane strain footing problem with different heterogeneous soil systems is analyzed using a traditional finite element formulation. The material model utilized for the soil is a large deformation formulation of non-associated elasto-plasticity with an isotropic hardening law, able to represent dilation. It was found that the shape of the gravel or clay inclusions in the systems had no significant effect on the global responses, whereas the strain localizations in the two different soil systems, sand-gravel and sand-clay, were found to have different character. The effect of the initial density on the response was clearly observed in the localization patterns.

Department/s

Publishing year

2005

Language

English

Pages

600-612

Publication/Series

Computers and Geotechnics

Volume

32

Issue

8

Document type

Journal article

Publisher

Elsevier

Topic

  • Applied Mechanics

Keywords

  • RVE
  • finite
  • homogenization
  • element analysis
  • soil
  • localization
  • elasto-plasticity

Status

Published

ISBN/ISSN/Other

  • ISSN: 0266-352X