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Published in: Journal of Engineering Mathematics 1/2016

15-12-2015

A new mixed finite-element approach for the elastoplastic analysis of Mindlin plates

Authors: Akif Kutlu, Günther Meschke, Mehmet Hakkı Omurtag

Published in: Journal of Engineering Mathematics | Issue 1/2016

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Abstract

The objective of this paper is to develop an accurate and efficient solution procedure for elastoplastic problems in structural mechanics in the framework of a two-field mixed variational principle. A novel solution algorithm is proposed and applied to the elastoplastic analysis of Mindlin plates. The Hellinger–Reissner principle is adopted to obtain the global finite-element equations of the problem. Instead of a static condensation, the stress-type field variables are preserved during the solution. According to the proposed approach, the strain increments within a nonlinear solution step are obtained directly at the nodal points from matrix operations instead of gradients of a displacement field. In the present implementation, the von Mises yield criterion with linear hardening is adopted. For the integration of the elastoplastic constitutive rate equations at the nodal points, a 3D fully implicit algorithm is employed. A layered approach is followed to enable the resolution of the plastic strains through the plate thickness. The mixed formulation of the Mindlin plate theory is shear-locking free by construction. The proposed solution strategy is verified by solving several benchmark problems that demonstrate the high accuracy and convergence rate of the presented layered mixed formulation for elastoplastic analyses.

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Literature
1.
go back to reference Zienkiewicz OC, Taylor RL, Fox DD (2014) The finite element method for solid and structural mechanics, 7th edn. Butterworth-Heinemann, OxfordMATH Zienkiewicz OC, Taylor RL, Fox DD (2014) The finite element method for solid and structural mechanics, 7th edn. Butterworth-Heinemann, OxfordMATH
2.
go back to reference Bathe K-J (1996) Finite element procedures. Prentice Hall, Upper Saddle RiverMATH Bathe K-J (1996) Finite element procedures. Prentice Hall, Upper Saddle RiverMATH
3.
go back to reference Doğruoğlu AN, Omurtag MH (2000) Stability analysis of composite-plate foundation interaction by mixed FEM. J Eng Mech ASCE 126:928–936CrossRef Doğruoğlu AN, Omurtag MH (2000) Stability analysis of composite-plate foundation interaction by mixed FEM. J Eng Mech ASCE 126:928–936CrossRef
4.
go back to reference Kutlu A, Omurtag MH (2012) Large deflection bending analysis of elliptic plates on orthotropic elastic foundation with mixed finite element method. Int J Mech Sci 65:64–74CrossRef Kutlu A, Omurtag MH (2012) Large deflection bending analysis of elliptic plates on orthotropic elastic foundation with mixed finite element method. Int J Mech Sci 65:64–74CrossRef
5.
go back to reference Omurtag MH, Aköz AY (1995) Isoparametric mixed finite element formulation of orthotropic cylindrical shells. Comput Struct 55:915–924ADSCrossRefMATH Omurtag MH, Aköz AY (1995) Isoparametric mixed finite element formulation of orthotropic cylindrical shells. Comput Struct 55:915–924ADSCrossRefMATH
6.
go back to reference Putcha NS, Reddy JN (1986) A refined mixed shear flexible finite element for the nonlinear analysis of laminated plates. Comput Struct 22:529–538CrossRefMATH Putcha NS, Reddy JN (1986) A refined mixed shear flexible finite element for the nonlinear analysis of laminated plates. Comput Struct 22:529–538CrossRefMATH
7.
go back to reference Wisniewski K, Turska E (2012) Four-node mixed Hu–Washizu shell element with drilling rotation. Int J Numer Methods Eng 90:506–536MathSciNetCrossRefMATH Wisniewski K, Turska E (2012) Four-node mixed Hu–Washizu shell element with drilling rotation. Int J Numer Methods Eng 90:506–536MathSciNetCrossRefMATH
8.
go back to reference Papachristidis A, Fragiadakis M, Papadrakakis M (2010) A 3D fibre beam-column element with shear modelling for the inelastic analysis of steel structures. Comput Mech 45:553–572CrossRefMATH Papachristidis A, Fragiadakis M, Papadrakakis M (2010) A 3D fibre beam-column element with shear modelling for the inelastic analysis of steel structures. Comput Mech 45:553–572CrossRefMATH
9.
go back to reference Soydas O, Saritas A (2013) An accurate nonlinear 3d Timoshenko beam element based on Hu–Washizu functional. Int J Mech Sci 74:1–14CrossRef Soydas O, Saritas A (2013) An accurate nonlinear 3d Timoshenko beam element based on Hu–Washizu functional. Int J Mech Sci 74:1–14CrossRef
10.
go back to reference Tort C, Hajjar JF (2009) Mixed finite-element modeling of rectangular concrete-filled steel tube members and frames under static and dynamic loads. J Struct Eng 136:654–664CrossRef Tort C, Hajjar JF (2009) Mixed finite-element modeling of rectangular concrete-filled steel tube members and frames under static and dynamic loads. J Struct Eng 136:654–664CrossRef
11.
go back to reference Wackerfuß J, Gruttmann F (2011) A nonlinear Hu–Washizu variational formulation and related finite-element implementation for spatial beams with arbitrary moderate thick cross-sections. Comput Methods Appl Mech Eng 200:1671–1690ADSMathSciNetCrossRefMATH Wackerfuß J, Gruttmann F (2011) A nonlinear Hu–Washizu variational formulation and related finite-element implementation for spatial beams with arbitrary moderate thick cross-sections. Comput Methods Appl Mech Eng 200:1671–1690ADSMathSciNetCrossRefMATH
12.
go back to reference Taylor RL, Filippou FC, Saritas A, Auricchio F (2003) A mixed finite element method for beam and frame problems. Comput Mech 31:192–203CrossRefMATH Taylor RL, Filippou FC, Saritas A, Auricchio F (2003) A mixed finite element method for beam and frame problems. Comput Mech 31:192–203CrossRefMATH
13.
go back to reference Hjelmstad KD, Taciroglu E (2002) Mixed methods and flexibility approaches for nonlinear frame analysis. J Constr Steel Res 58:967–993CrossRef Hjelmstad KD, Taciroglu E (2002) Mixed methods and flexibility approaches for nonlinear frame analysis. J Constr Steel Res 58:967–993CrossRef
14.
go back to reference Saritas A, Soydas O (2012) Variational base and solution strategies for non-linear force-based beam finite elements. Int J Non-Linear Mech 47:54–64CrossRef Saritas A, Soydas O (2012) Variational base and solution strategies for non-linear force-based beam finite elements. Int J Non-Linear Mech 47:54–64CrossRef
15.
go back to reference Nukala PKVV, White DW (2004) Variationally consistent state determination algorithms for nonlinear mixed beam finite elements. Comput Methods Appl Mech Eng 193:3647–3666ADSCrossRefMATH Nukala PKVV, White DW (2004) Variationally consistent state determination algorithms for nonlinear mixed beam finite elements. Comput Methods Appl Mech Eng 193:3647–3666ADSCrossRefMATH
17.
go back to reference Hopkins HG, Wang AJ (1955) Load-carrying capacities for circular plates of perfectly-plastic material with arbitrary yield condition. J Mech Phys Solids 3:117–129ADSMathSciNetCrossRef Hopkins HG, Wang AJ (1955) Load-carrying capacities for circular plates of perfectly-plastic material with arbitrary yield condition. J Mech Phys Solids 3:117–129ADSMathSciNetCrossRef
18.
go back to reference Sobotka Z (2013) Theory of plasticity and limit design of plates. Elsevier, AmsterdamMATH Sobotka Z (2013) Theory of plasticity and limit design of plates. Elsevier, AmsterdamMATH
19.
go back to reference Bleyer J, Van Le C, de Buhan P (2015) Locking-free discontinuous finite elements for the upper bound yield design of thick plates. Int J Numer Methods Eng. doi:10.1002/nme.4912 Bleyer J, Van Le C, de Buhan P (2015) Locking-free discontinuous finite elements for the upper bound yield design of thick plates. Int J Numer Methods Eng. doi:10.​1002/​nme.​4912
20.
go back to reference Eggers H, Kröplin B (1978) Yielding of plates with hardening and large deformations. Int J Numer Methods Eng 12:739–750CrossRefMATH Eggers H, Kröplin B (1978) Yielding of plates with hardening and large deformations. Int J Numer Methods Eng 12:739–750CrossRefMATH
21.
go back to reference Dinis LMS, Owen DRJ (1978) Elastic–viscoplastic analysis of plates by the finite element method. Comput Struct 8:207–215CrossRefMATH Dinis LMS, Owen DRJ (1978) Elastic–viscoplastic analysis of plates by the finite element method. Comput Struct 8:207–215CrossRefMATH
22.
go back to reference Owen DRJ, Hinton E (1980) Finite elements in plasticity: theory and practice. Pineridge Press, SwanseaMATH Owen DRJ, Hinton E (1980) Finite elements in plasticity: theory and practice. Pineridge Press, SwanseaMATH
23.
go back to reference Bathe K, Bolourchi S (1980) A geometric and material nonlinear plate and shell element. Comput Struct 11:23–48CrossRefMATH Bathe K, Bolourchi S (1980) A geometric and material nonlinear plate and shell element. Comput Struct 11:23–48CrossRefMATH
24.
go back to reference Dinis LMS, Owen DRJ (1982) Elasto-viscoplastic and elasto-plastic large deformation analysis of thin plates and shells. Int J Numer Methods Eng 18:591–607CrossRefMATH Dinis LMS, Owen DRJ (1982) Elasto-viscoplastic and elasto-plastic large deformation analysis of thin plates and shells. Int J Numer Methods Eng 18:591–607CrossRefMATH
25.
go back to reference Reddy BD, Mitchell GP (1983) The analysis of elastic–plastic plates: a quadratic programming problem and its solution by finite elements. Comput Methods Appl Mech Eng 41:237–248ADSCrossRefMATH Reddy BD, Mitchell GP (1983) The analysis of elastic–plastic plates: a quadratic programming problem and its solution by finite elements. Comput Methods Appl Mech Eng 41:237–248ADSCrossRefMATH
26.
go back to reference Wempner G, Chao-Meng H (1984) A simple model of elastic–plastic plates. Int J Solids Struct 20:77–80CrossRef Wempner G, Chao-Meng H (1984) A simple model of elastic–plastic plates. Int J Solids Struct 20:77–80CrossRef
28.
go back to reference Daye MA, Toridis TG (1991) Elasto-plastic algorithms for plates and shells under static and dynamic loads. Comput Struct 39:195–205CrossRefMATH Daye MA, Toridis TG (1991) Elasto-plastic algorithms for plates and shells under static and dynamic loads. Comput Struct 39:195–205CrossRefMATH
29.
go back to reference Papadopoulos P, Taylor RL (1991) An analysis of inelastic Reissner–Mindlin plates. Finite Element Anal Des 10:221–233CrossRefMATH Papadopoulos P, Taylor RL (1991) An analysis of inelastic Reissner–Mindlin plates. Finite Element Anal Des 10:221–233CrossRefMATH
30.
go back to reference Ibrahimbegović A, Frey F (1993) An efficient implementation of stress resultant plasticity in analysis of Reissner–Mindlin plates. Int J Numer Methods Eng 36:303–320CrossRefMATH Ibrahimbegović A, Frey F (1993) An efficient implementation of stress resultant plasticity in analysis of Reissner–Mindlin plates. Int J Numer Methods Eng 36:303–320CrossRefMATH
31.
go back to reference Auricchio F, Taylor RL (1994) A generalized elastoplastic plate theory and its algorithmic implementation. Int J Numer Methods Eng 37:2583–2608CrossRefMATH Auricchio F, Taylor RL (1994) A generalized elastoplastic plate theory and its algorithmic implementation. Int J Numer Methods Eng 37:2583–2608CrossRefMATH
32.
go back to reference Croce LD, Venini P, Nascimbene R (2003) Numerical simulation of an elastoplastic plate via mixed finite elements. J Eng Math 46:69–86MathSciNetCrossRefMATH Croce LD, Venini P, Nascimbene R (2003) Numerical simulation of an elastoplastic plate via mixed finite elements. J Eng Math 46:69–86MathSciNetCrossRefMATH
33.
go back to reference Rabczuk T, Areias PMA, Belytschko T (2007) A meshfree thin shell method for non-linear dynamic fracture. Int J Numer Methods Eng 72:524–548MathSciNetCrossRefMATH Rabczuk T, Areias PMA, Belytschko T (2007) A meshfree thin shell method for non-linear dynamic fracture. Int J Numer Methods Eng 72:524–548MathSciNetCrossRefMATH
34.
go back to reference Areias P, Rabczuk T (2013) Finite strain fracture of plates and shells with configurational forces and edge rotations. Int J Numer Methods Eng 94:1099–1122MathSciNetCrossRef Areias P, Rabczuk T (2013) Finite strain fracture of plates and shells with configurational forces and edge rotations. Int J Numer Methods Eng 94:1099–1122MathSciNetCrossRef
35.
go back to reference Areias P, Rabczuk T, César de Sá JM, Garção JE (2015) Finite strain quadrilateral shell using least-squares fit of relative Lagrangian in-plane strains. Finite Elem Anal Des 98:26–40MathSciNetCrossRef Areias P, Rabczuk T, César de Sá JM, Garção JE (2015) Finite strain quadrilateral shell using least-squares fit of relative Lagrangian in-plane strains. Finite Elem Anal Des 98:26–40MathSciNetCrossRef
36.
go back to reference Liu GR, Nguyen-Thoi T, Lam KY (2008) A novel alpha finite element method (\(\alpha \)FEM) for exact solution to mechanics problems using triangular and tetrahedral elements. Comput Methods Appl Mech Eng 197:3883–3897ADSMathSciNetCrossRefMATH Liu GR, Nguyen-Thoi T, Lam KY (2008) A novel alpha finite element method (\(\alpha \)FEM) for exact solution to mechanics problems using triangular and tetrahedral elements. Comput Methods Appl Mech Eng 197:3883–3897ADSMathSciNetCrossRefMATH
37.
go back to reference Thai-Hoang C, Nguyen-Thanh N, Nguyen-Xuan H, Rabczuk T (2011) An alternative alpha finite element method with discrete shear gap technique for analysis of laminated composite plates. Appl Math Comput 217:7324–7348MathSciNetCrossRefMATH Thai-Hoang C, Nguyen-Thanh N, Nguyen-Xuan H, Rabczuk T (2011) An alternative alpha finite element method with discrete shear gap technique for analysis of laminated composite plates. Appl Math Comput 217:7324–7348MathSciNetCrossRefMATH
38.
go back to reference Thai CH, Ferreira AJM, Bordas SPA, Rabczuk T, Nguyen-Xuan H (2014) Isogeometric analysis of laminated composite and sandwich plates using a new inverse trigonometric shear deformation theory. Eur J Mech A Solids 43:89–108CrossRef Thai CH, Ferreira AJM, Bordas SPA, Rabczuk T, Nguyen-Xuan H (2014) Isogeometric analysis of laminated composite and sandwich plates using a new inverse trigonometric shear deformation theory. Eur J Mech A Solids 43:89–108CrossRef
39.
go back to reference Omurtag MH, Aköz AY (1993) A compatible cylindrical shell element for stiffened cylindrical shells in a mixed finite element formulation. Comput Struct 49:363–370CrossRefMATH Omurtag MH, Aköz AY (1993) A compatible cylindrical shell element for stiffened cylindrical shells in a mixed finite element formulation. Comput Struct 49:363–370CrossRefMATH
40.
go back to reference De Souza RM (2000) Force-based finite element for large displacement inelastic analysis of frames. Doctoral Dissertation, University of California, Berkeley De Souza RM (2000) Force-based finite element for large displacement inelastic analysis of frames. Doctoral Dissertation, University of California, Berkeley
41.
go back to reference Ugural AC, Fenster SK (2003) Advanced strength and applied elasticity. Prentice Hall, Upper Saddle RiverMATH Ugural AC, Fenster SK (2003) Advanced strength and applied elasticity. Prentice Hall, Upper Saddle RiverMATH
42.
go back to reference Voyiadjis GZ, Woelke P (2008) Elasto-plastic and damage analysis of plates and shells. Springer, BerlinMATH Voyiadjis GZ, Woelke P (2008) Elasto-plastic and damage analysis of plates and shells. Springer, BerlinMATH
43.
go back to reference Ortiz M, Popov EP (1985) Accuracy and stability of integration algorithms for elastoplastic constitutive relations. Int J Numer Methods Eng 21:1561–1576MathSciNetCrossRefMATH Ortiz M, Popov EP (1985) Accuracy and stability of integration algorithms for elastoplastic constitutive relations. Int J Numer Methods Eng 21:1561–1576MathSciNetCrossRefMATH
44.
go back to reference Simo JC, Hughes TJR (1998) Computational inelasticity. Springer, New YorkMATH Simo JC, Hughes TJR (1998) Computational inelasticity. Springer, New YorkMATH
45.
go back to reference Meschke G (2011) Finite element method for nonlinear analysis of inelastic materials and structures. Lecture Notes. Institute for Structural Mechanics—Ruhr-University Bochum, Bochum Meschke G (2011) Finite element method for nonlinear analysis of inelastic materials and structures. Lecture Notes. Institute for Structural Mechanics—Ruhr-University Bochum, Bochum
46.
go back to reference Reddy JN (2006) Theory and analysis of elastic plates and shells. CRC Press, Boca Raton Reddy JN (2006) Theory and analysis of elastic plates and shells. CRC Press, Boca Raton
47.
go back to reference Belinha J, Dinis LMJS (2006) Elasto-plastic analysis of plates by the element free Galerkin method. Eng Comput 23:525–551CrossRefMATH Belinha J, Dinis LMJS (2006) Elasto-plastic analysis of plates by the element free Galerkin method. Eng Comput 23:525–551CrossRefMATH
48.
go back to reference Hughes TJR, Cohen M (1978) The “heterosis” finite element for plate bending. Comput Struct 9:445–450CrossRefMATH Hughes TJR, Cohen M (1978) The “heterosis” finite element for plate bending. Comput Struct 9:445–450CrossRefMATH
49.
go back to reference Nguyen-Xuan H, Rabczuk T, Bordas S, Debongnie JF (2008) A smoothed finite element method for plate analysis. Comput Methods Appl Mech Eng 197:1184–1203ADSCrossRefMATH Nguyen-Xuan H, Rabczuk T, Bordas S, Debongnie JF (2008) A smoothed finite element method for plate analysis. Comput Methods Appl Mech Eng 197:1184–1203ADSCrossRefMATH
50.
go back to reference Bathe K, Dvorkin EN (1985) A four-node plate bending element based on Mindlin/Reissner plate theory and a mixed interpolation. Int J Numer Methods Eng 21:367–383CrossRefMATH Bathe K, Dvorkin EN (1985) A four-node plate bending element based on Mindlin/Reissner plate theory and a mixed interpolation. Int J Numer Methods Eng 21:367–383CrossRefMATH
Metadata
Title
A new mixed finite-element approach for the elastoplastic analysis of Mindlin plates
Authors
Akif Kutlu
Günther Meschke
Mehmet Hakkı Omurtag
Publication date
15-12-2015
Publisher
Springer Netherlands
Published in
Journal of Engineering Mathematics / Issue 1/2016
Print ISSN: 0022-0833
Electronic ISSN: 1573-2703
DOI
https://doi.org/10.1007/s10665-015-9825-7

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