Large deformation dynamic analysis of saturated porous media with applications to penetration problems |
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Affiliation: | 1. Department of Civil and Environmental Engineering, National University of Singapore, 117576, Singapore;2. School of Civil Engineering, Chongqing University, No. 83 Shabei Street, Chongqing 400045, China;3. Geotechnical Research Institute, Hohai University, Nanjing, China;4. School of Civil Engineering and Architecture, Wuhan University of Technology, Wuhan, China;1. DICEA – University of Padua, via Ognissanti 39, 35129 Padua, Italy;2. Deltares, Boussinesqweg 1, 2629 HV Delft, The Netherlands;1. School of Aerospace Engineering, Tsinghua University, Beijing 100084, China;2. Department of Mechanical Engineering, The University of Hong Kong, Pokfulam, Hong Kong, China;3. Department of Mechanical Engineering, Northwestern University, Evanston, IL 60208, USA;1. Institute of Geotechnical Engineering, Southeast University, Nanjing 211189, China;2. Jiangsu Key Laboratory of UrbanUnderground Engineering & Environmental Safety, Southeast University, Nanjing 211189, China;3. State Key Laboratory of Geohazard Prevention and Geoenvironment Protection, Chengdu University of Technology, Sichuan 610059, China;1. Universitat Politècnica de Catalunya – BarcelonaTech, Department of Geotechnical Engineering, Campus Nord UPC, Gran Capità s/n, 08034 Barcelona, Spain;2. International Center for Numerical Methods in Engineering (CIMNE), Campus Nord UPC, Gran Capità s/n, 08034 Barcelona, Spain |
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Abstract: | This paper outlines the development as well as implementation of a numerical procedure for coupled finite element analysis of dynamic problems in geomechanics, particularly those involving large deformations and soil-structure interaction. The procedure is based on Biot’s theory for the dynamic behaviour of saturated porous media. The nonlinear behaviour of the solid phase of the soil is represented by either the Mohr Coulomb or Modified Cam Clay material model. The interface between soil and structure is modelled by the so-called node-to-segment contact method. The contact algorithm uses a penalty approach to enforce constraints and to prevent rigid body interpenetration. Moreover, the contact algorithm utilises a smooth discretisation of the contact surfaces to decrease numerical oscillations. An Arbitrary Lagrangian–Eulerian (ALE) scheme preserves the quality and topology of the finite element mesh throughout the numerical simulation. The generalised-α method is used to integrate the governing equations of motion in the time domain. Some aspects of the numerical procedure are validated by solving two benchmark problems. Subsequently, dynamic soil behaviour including the development of excess pore-water pressure due to the fast installation of a single pile and the penetration of a free falling torpedo anchor are studied. The numerical results indicate the robustness and applicability of the proposed method. Typical distributions of the predicted excess pore-water pressures generated due to the dynamic penetration of an object into a saturated soil are presented, revealing higher magnitudes of pore pressure at the face of the penetrometer and lower values along the shaft. A smooth discretisation of the contact interface between soil and structure is found to be a crucial factor to avoid severe oscillations in the predicted dynamic response of the soil. |
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Keywords: | Pile installation Porous media Dynamic coupled analysis Time integration Contact mechanics ALE method Torpedo anchor |
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