Continuous velocity fields for collapse and blowout of a pressurized tunnel face in purely cohesive soil |
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Authors: | Guilhem Mollon Daniel Dias Abdul‐Hamid Soubra |
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Institution: | 1. 3SR, Grenoble‐INP, UJF‐Grenoble 1, CNRS UMR 5521, , Grenoble, France;2. LGCIE Equipe Géotechnique, Bat. J.C.A. Coulomb, Domaine scientifique de la Doua, INSA Lyon, , Villeurbanne cedex, France;3. University of Nantes, Civil Engineering Department, , Saint‐Nazaire cedex, France |
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Abstract: | Face stability analysis of tunnels excavated under pressurized shields is a major issue in real tunnelling projects. Most of the failure mechanisms used for the stability analysis of tunnels in purely cohesive soils were derived from rigid block failure mechanisms that were developed for frictional soils, by imposing a null friction angle. For a purely cohesive soil, this kind of mechanism is quite far from the actual velocity field. This paper aims at proposing two new continuous velocity fields for both collapse and blowout of an air‐pressurized tunnel face. These velocity fields are much more consistent with the actual failures observed in undrained clays. They are based on the normality condition, which states that any plastic deformation in a purely cohesive soil develops without any volume change. The numerical results have shown that the proposed velocity fields significantly improve the best existing bounds for collapse pressures and that their results compare reasonably well with the collapse and blowout pressures provided by a commercial finite difference software, for a much smaller computational cost. A design chart is provided for practical use in geotechnical engineering. Copyright © 2012 John Wiley & Sons, Ltd. |
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Keywords: | limit analysis tunnel face stability purely cohesive soils continuous velocity field face collapse |
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