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Published in: Computational Mechanics 4/2018

05-12-2017 | Original Paper

uw formulation for dynamic problems in large deformation regime solved through an implicit meshfree scheme

Authors: Pedro Navas, Lorenzo Sanavia, Susana López-Querol, Rena C. Yu

Published in: Computational Mechanics | Issue 4/2018

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Abstract

Solving dynamic problems for fluid saturated porous media at large deformation regime is an interesting but complex issue. An implicit time integration scheme is herein developed within the framework of the uw (solid displacement–relative fluid displacement) formulation for the Biot’s equations. In particular, liquid water saturated porous media is considered and the linearization of the linear momentum equations taking into account all the inertia terms for both solid and fluid phases is for the first time presented. The spatial discretization is carried out through a meshfree method, in which the shape functions are based on the principle of local maximum entropy LME. The current methodology is firstly validated with the dynamic consolidation of a soil column and the plastic shear band formulation of a square domain loaded by a rigid footing. The feasibility of this new numerical approach for solving large deformation dynamic problems is finally demonstrated through the application to an embankment problem subjected to an earthquake.

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Appendix
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Literature
1.
go back to reference Arias-Trujillo J, Blázquez R, López-Querol S (2012) A methodology based on a transfer function criterion to evaluate time integration algorithms. Soil Dyn Earthq Eng 37:1–23CrossRef Arias-Trujillo J, Blázquez R, López-Querol S (2012) A methodology based on a transfer function criterion to evaluate time integration algorithms. Soil Dyn Earthq Eng 37:1–23CrossRef
2.
go back to reference Armero F (1999) Formulation and finite element implementation of a multiplicative model of coupled poro-plasticity at finite strains under fully saturated conditions. Comput Methods Appl Mech Eng 171:205–241MathSciNetCrossRefMATH Armero F (1999) Formulation and finite element implementation of a multiplicative model of coupled poro-plasticity at finite strains under fully saturated conditions. Comput Methods Appl Mech Eng 171:205–241MathSciNetCrossRefMATH
3.
go back to reference Arroyo M, Ortiz M (2006) Local maximum-entropy approximation schemes: a seamless bridge between finite elements and meshfree methods. Int J Numer Meth Eng 65(13):2167–2202MathSciNetCrossRefMATH Arroyo M, Ortiz M (2006) Local maximum-entropy approximation schemes: a seamless bridge between finite elements and meshfree methods. Int J Numer Meth Eng 65(13):2167–2202MathSciNetCrossRefMATH
4.
go back to reference Bandara S, Soga K (2015) Coupling of soil deformation and pore fluid flow using material point method. Comput Geotech 63:199–214CrossRef Bandara S, Soga K (2015) Coupling of soil deformation and pore fluid flow using material point method. Comput Geotech 63:199–214CrossRef
5.
go back to reference Biot MA (1956) Theory of propagation of elastic waves in a fluid-saturated porous solid. I. Low-frequency range. J Acoust Soc Am 28(2):168–178MathSciNetCrossRef Biot MA (1956) Theory of propagation of elastic waves in a fluid-saturated porous solid. I. Low-frequency range. J Acoust Soc Am 28(2):168–178MathSciNetCrossRef
6.
go back to reference Borja R, Alarcón E (1995) A mathematical framework for finite strain elastoplastic consolidation. Part1: balance laws, variational formulation, and linearization. Comput Methods Appl Mech Eng 122:145–171CrossRefMATH Borja R, Alarcón E (1995) A mathematical framework for finite strain elastoplastic consolidation. Part1: balance laws, variational formulation, and linearization. Comput Methods Appl Mech Eng 122:145–171CrossRefMATH
7.
go back to reference Borja R, Tamagnini C, Alarcón E (1998) Elastoplastic consolidation at finite strain. pPart 2: finite element implementation and numerical examples. Comput Methods Appl Mech Eng 159:103–122CrossRefMATH Borja R, Tamagnini C, Alarcón E (1998) Elastoplastic consolidation at finite strain. pPart 2: finite element implementation and numerical examples. Comput Methods Appl Mech Eng 159:103–122CrossRefMATH
8.
go back to reference Cao T, Sanavia L, Schrefler B (2016) A thermo-hydro-mechanical model for multiphase geomaterials in dynamics with application to strain localization simulation. Int J Numer Methods Eng 107:312–337MathSciNetCrossRefMATH Cao T, Sanavia L, Schrefler B (2016) A thermo-hydro-mechanical model for multiphase geomaterials in dynamics with application to strain localization simulation. Int J Numer Methods Eng 107:312–337MathSciNetCrossRefMATH
9.
go back to reference Ceccato F, Simonini P (2016) Numerical study of partially drained penetration and pore pressure dissipation in piezocone test. Acta Geotech 12:195–209CrossRef Ceccato F, Simonini P (2016) Numerical study of partially drained penetration and pore pressure dissipation in piezocone test. Acta Geotech 12:195–209CrossRef
10.
go back to reference Cividini A, Gioda G (2013) On the dynamic analysis of two-phase soils. In: Pietruszczak S, Pande GN (eds.) Proceedings of the third international symposium on computational geomechanics (ComGeo III), pp 452–461 Cividini A, Gioda G (2013) On the dynamic analysis of two-phase soils. In: Pietruszczak S, Pande GN (eds.) Proceedings of the third international symposium on computational geomechanics (ComGeo III), pp 452–461
11.
go back to reference Cuitiño A, Ortiz M (1992) A material-independent method for extending stress update algotithms from small-strain plasticity to finite plasticity with multiplicative kinematics. Eng Comput 9:437–451CrossRef Cuitiño A, Ortiz M (1992) A material-independent method for extending stress update algotithms from small-strain plasticity to finite plasticity with multiplicative kinematics. Eng Comput 9:437–451CrossRef
12.
go back to reference Diebels S, Ehlers W (1996) Dynamic analysis of fully saturated porous medium accounting for geometrical and material non-linearities. Int J Numer Methods Eng 39:81–97CrossRefMATH Diebels S, Ehlers W (1996) Dynamic analysis of fully saturated porous medium accounting for geometrical and material non-linearities. Int J Numer Methods Eng 39:81–97CrossRefMATH
13.
go back to reference Ehlers W, Eipper G (1999) Finite elastic deformations in liquid-saturated and empty porous solids. Transp Porous Media 34:179–191MathSciNetCrossRef Ehlers W, Eipper G (1999) Finite elastic deformations in liquid-saturated and empty porous solids. Transp Porous Media 34:179–191MathSciNetCrossRef
14.
go back to reference Gawin D, Sanavia L, Schrefler B (1998) Cavitation modelling in saturated geomaterials with application to dynamic strain localisation. Int J Numer Methods Fluids 27:109–125CrossRefMATH Gawin D, Sanavia L, Schrefler B (1998) Cavitation modelling in saturated geomaterials with application to dynamic strain localisation. Int J Numer Methods Fluids 27:109–125CrossRefMATH
15.
go back to reference Hughes T, Hilber H (1978) Collocation, dissipation and overshoot for time integration schemes in structural dynamics. Earthq Eng Struct Dyn 6:99–117CrossRef Hughes T, Hilber H (1978) Collocation, dissipation and overshoot for time integration schemes in structural dynamics. Earthq Eng Struct Dyn 6:99–117CrossRef
17.
go back to reference Jeremić B, Cheng Z, Taiebat M, Dafalias Y (2008) Numerical simulation of fully saturated porous materials. Int J Numer Anal Methods Geomech 32:1635–1660CrossRefMATH Jeremić B, Cheng Z, Taiebat M, Dafalias Y (2008) Numerical simulation of fully saturated porous materials. Int J Numer Anal Methods Geomech 32:1635–1660CrossRefMATH
18.
19.
go back to reference Lewis R, Schrefler B (1998) The finite element method in the static and dynamic deformation and consolidation of porous media. Wiley, New YorkMATH Lewis R, Schrefler B (1998) The finite element method in the static and dynamic deformation and consolidation of porous media. Wiley, New YorkMATH
20.
go back to reference Li B, Habbal F, Ortiz M (2010) Optimal transportation meshfree approximation schemes for fluid and plastic flows. Int J Numer Methods Eng 83:1541–1579MathSciNetCrossRefMATH Li B, Habbal F, Ortiz M (2010) Optimal transportation meshfree approximation schemes for fluid and plastic flows. Int J Numer Methods Eng 83:1541–1579MathSciNetCrossRefMATH
21.
22.
go back to reference López-Querol S, Blazquez R (2006) Liquefaction and cyclic mobility model in saturated granular media. Int J Numer Anal Methods Geomech 30:413–439CrossRefMATH López-Querol S, Blazquez R (2006) Liquefaction and cyclic mobility model in saturated granular media. Int J Numer Anal Methods Geomech 30:413–439CrossRefMATH
23.
go back to reference López-Querol S, Fernández-Merodo J, Mira P, Pastor M (2008) Numerical modelling of dynamic consolidation on granular soils. Int J Numer Anal Methods Geomech 32:1431–1457CrossRefMATH López-Querol S, Fernández-Merodo J, Mira P, Pastor M (2008) Numerical modelling of dynamic consolidation on granular soils. Int J Numer Anal Methods Geomech 32:1431–1457CrossRefMATH
24.
go back to reference Marsden J, Hughes TJR (1983) Mathematical foundations of elasticity. Prentice Hall Inc., Upper Saddle RiverMATH Marsden J, Hughes TJR (1983) Mathematical foundations of elasticity. Prentice Hall Inc., Upper Saddle RiverMATH
25.
go back to reference Mokni M, D J (1998) Strain localisation measurements in undrained plane-strain biaxial tests on Hostun RF sand. Mech Cohes Frict Mater 4:419–441CrossRef Mokni M, D J (1998) Strain localisation measurements in undrained plane-strain biaxial tests on Hostun RF sand. Mech Cohes Frict Mater 4:419–441CrossRef
26.
go back to reference Navas P (2017) Meshfree methods applied to dynamic problems in materials in construction and soils. Ph.D. Thesis, University of Castilla-La Mancha Navas P (2017) Meshfree methods applied to dynamic problems in materials in construction and soils. Ph.D. Thesis, University of Castilla-La Mancha
27.
go back to reference Navas P, López-Querol S, Yu R, Li B (2016) B-bar based algorithm applied to meshfree numerical schemes to solve unconfined seepage problems through porous media. Int J Numer Anal Methods Geomech 40:962–984CrossRef Navas P, López-Querol S, Yu R, Li B (2016) B-bar based algorithm applied to meshfree numerical schemes to solve unconfined seepage problems through porous media. Int J Numer Anal Methods Geomech 40:962–984CrossRef
29.
go back to reference Navas P, Yu R, López-Querol S, Li B (2016) Dynamic consolidation problems in saturated soils solved through u–w formulation in a LME meshfree framework. Comput Geotech 79:55–72CrossRef Navas P, Yu R, López-Querol S, Li B (2016) Dynamic consolidation problems in saturated soils solved through u–w formulation in a LME meshfree framework. Comput Geotech 79:55–72CrossRef
30.
go back to reference Nemat-Nasser S (1983) On finite plastic flow of crystalline solids and geomaterials. Trans ASME 50:1114–1126CrossRefMATH Nemat-Nasser S (1983) On finite plastic flow of crystalline solids and geomaterials. Trans ASME 50:1114–1126CrossRefMATH
31.
go back to reference Ortiz A, Puso M, Sukumar N (2004) Construction of polygonal interpolants: a maximum entropy approach. Int J Numer Methods Eng 61(12):2159–2181MathSciNetCrossRefMATH Ortiz A, Puso M, Sukumar N (2004) Construction of polygonal interpolants: a maximum entropy approach. Int J Numer Methods Eng 61(12):2159–2181MathSciNetCrossRefMATH
32.
go back to reference Ravichandran N, Muraleetharan K (2009) Dynamics of unsaturated soils using various finite element formulations. Int J Numer Anal Methods Geomech 33:611–631CrossRefMATH Ravichandran N, Muraleetharan K (2009) Dynamics of unsaturated soils using various finite element formulations. Int J Numer Anal Methods Geomech 33:611–631CrossRefMATH
33.
go back to reference Sanavia L, Schrefler B, Stein E, Steinmann P (2001) Modelling of localisation at finite inelastic strain in fluid saturated porous media. In: Ehlers W (ed) Proceedings of IUTAM symposium on theoretical and numerical methods in continuum me- chanics of porous materials. Kluwer Academic Publishers, pp 239–244 Sanavia L, Schrefler B, Stein E, Steinmann P (2001) Modelling of localisation at finite inelastic strain in fluid saturated porous media. In: Ehlers W (ed) Proceedings of IUTAM symposium on theoretical and numerical methods in continuum me- chanics of porous materials. Kluwer Academic Publishers, pp 239–244
34.
go back to reference Sanavia L, Schrefler B, Steinmann P (2001) A mathematical and numerical model for finite elastoplastic defor- mations in fluid saturated porous media. In: Capriz G, Ghionna V, Giovine P (eds) Modeling and mechanics of granular and porous materials, series of modeling and simulation in science. Engineering and technology, pp 293–340. https://doi.org/10.1007/978-1-4612-0079-6_10 Sanavia L, Schrefler B, Steinmann P (2001) A mathematical and numerical model for finite elastoplastic defor- mations in fluid saturated porous media. In: Capriz G, Ghionna V, Giovine P (eds) Modeling and mechanics of granular and porous materials, series of modeling and simulation in science. Engineering and technology, pp 293–340. https://​doi.​org/​10.​1007/​978-1-4612-0079-6_​10
35.
go back to reference Sanavia L, Schrefler B, Steinmann P (2002) A formulation for an unsaturated porous medium undergoing large inelastic strains. Comput Mech 28:137–151CrossRefMATH Sanavia L, Schrefler B, Steinmann P (2002) A formulation for an unsaturated porous medium undergoing large inelastic strains. Comput Mech 28:137–151CrossRefMATH
36.
go back to reference Schrefler B, Sanavia L, Majorana C (1996) A multiphase medium model for localisation and postlocalisation simulation in geomaterials. Mech Cohes Frict Mater 1:95–114CrossRef Schrefler B, Sanavia L, Majorana C (1996) A multiphase medium model for localisation and postlocalisation simulation in geomaterials. Mech Cohes Frict Mater 1:95–114CrossRef
37.
go back to reference Simo J (1998) Numerical analysis and simulation of plasticity. In: Ciarlet PG, Lions JL (eds) Numerical methods for solids (part 3), handbook of numerical analysis, vol 6. North-Holland, Amsterdam Simo J (1998) Numerical analysis and simulation of plasticity. In: Ciarlet PG, Lions JL (eds) Numerical methods for solids (part 3), handbook of numerical analysis, vol 6. North-Holland, Amsterdam
38.
go back to reference Terzaghi KV (1925) Principles of soil mechanics. Eng News Record 95:19–27 Terzaghi KV (1925) Principles of soil mechanics. Eng News Record 95:19–27
39.
go back to reference Uzuoka R, Borja R (2012) Dynamics of unsaturated poroelastic solids at finite strain. Int J Numer Anal Methods Geomech 36:1535–1573CrossRef Uzuoka R, Borja R (2012) Dynamics of unsaturated poroelastic solids at finite strain. Int J Numer Anal Methods Geomech 36:1535–1573CrossRef
40.
go back to reference Wriggers P (2008) Nonlinear finite element methods. Springer, BerlinMATH Wriggers P (2008) Nonlinear finite element methods. Springer, BerlinMATH
41.
go back to reference Ye F, Goh S, Lee F (2010) A method to solve Biot’s u-U formulation for soil dynamic applications using the ABAQUS/explicit platform. In: Benz T, Nordal S (eds) Numerical methods in geotechnical engineering. CRC Press, London, pp 417–422 Ye F, Goh S, Lee F (2010) A method to solve Biot’s u-U formulation for soil dynamic applications using the ABAQUS/explicit platform. In: Benz T, Nordal S (eds) Numerical methods in geotechnical engineering. CRC Press, London, pp 417–422
42.
go back to reference Zhang H, Sanavia L, Schrefler B (1999) An internal length scale in strain localisation of multiphase porous media. Mech Cohes Frict Mater 4:433–460CrossRef Zhang H, Sanavia L, Schrefler B (1999) An internal length scale in strain localisation of multiphase porous media. Mech Cohes Frict Mater 4:433–460CrossRef
43.
go back to reference Zienkiewicz O, Chan A, Pastor M, Schrefler B, Shiomi T (1999) Computational Geomechanics with Special Reference to Earthquake Engineering. Wiley, New YorkMATH Zienkiewicz O, Chan A, Pastor M, Schrefler B, Shiomi T (1999) Computational Geomechanics with Special Reference to Earthquake Engineering. Wiley, New YorkMATH
44.
go back to reference Zienkiewicz O, Chang C, Bettes P (1980) Drained, undrained, consolidating and dynamic behaviour assumptions in soils. Géotechnique 30(4):385–395CrossRef Zienkiewicz O, Chang C, Bettes P (1980) Drained, undrained, consolidating and dynamic behaviour assumptions in soils. Géotechnique 30(4):385–395CrossRef
45.
go back to reference Zienkiewicz O, Shiomi T (1984) Dynamic behaviour of saturated porous media: the generalized biot formulation and its numerical solution. Int J Numer Anal Geomech 8:71–96CrossRefMATH Zienkiewicz O, Shiomi T (1984) Dynamic behaviour of saturated porous media: the generalized biot formulation and its numerical solution. Int J Numer Anal Geomech 8:71–96CrossRefMATH
Metadata
Title
u–w formulation for dynamic problems in large deformation regime solved through an implicit meshfree scheme
Authors
Pedro Navas
Lorenzo Sanavia
Susana López-Querol
Rena C. Yu
Publication date
05-12-2017
Publisher
Springer Berlin Heidelberg
Published in
Computational Mechanics / Issue 4/2018
Print ISSN: 0178-7675
Electronic ISSN: 1432-0924
DOI
https://doi.org/10.1007/s00466-017-1524-y

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