Finite-strain formulation and FE implementation of a constitutive model for powder compaction

被引:9
|
作者
Stupkiewicz, S. [1 ,2 ]
Piccolroaz, A. [2 ]
Bigoni, D. [2 ]
机构
[1] Inst Fundamental Technol Res, IPPT, PL-02106 Warsaw, Poland
[2] Univ Trento, I-38123 Trento, Italy
关键词
Plasticity; Elastoplastic coupling; Finite element method; Automatic differentiation; MECHANICAL DENSIFICATION; ELASTOPLASTIC FRAMEWORK; FRICTIONAL MATERIALS; COUPLED PROBLEMS; PART II; PLASTICITY; SOLIDS; ALGORITHMS; ELEMENT; DESIGN;
D O I
10.1016/j.cma.2014.09.027
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
A finite-strain formulation is developed, implemented and tested for a constitutive model capable of describing the transition from granular to fully dense state during cold forming of ceramic powder. This constitutive model (as well as many others employed for geomaterials) embodies a number of features, such as pressure-sensitive yielding, complex hardening rules and elastoplastic coupling, posing considerable problems in a finite-strain formulation and numerical implementation. A number of strategies are proposed to overcome the related problems, in particular, a neo-Hookean type of modification to the elastic potential and the adoption of the second Piola-Kirchhoff stress referred to the intermediate configuration to describe yielding. An incremental scheme compatible with the formulation for elastoplastic coupling at finite strain is also developed, and the corresponding constitutive update problem is solved by applying a return mapping algorithm. (C) 2014 Elsevier B.V. All rights reserved.
引用
收藏
页码:856 / 880
页数:25
相关论文
共 50 条
  • [1] A micromechanics finite-strain constitutive model of fibrous tissue
    Chen, Huan
    Liu, Yi
    Zhao, Xuefeng
    Lanir, Yoram
    Kassab, Ghassan S.
    JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 2011, 59 (09) : 1823 - 1837
  • [2] A finite-strain constitutive model for anisotropic shape memory alloys
    Damanpack, A. R.
    Bodaghi, M.
    Liao, W. H.
    MECHANICS OF MATERIALS, 2017, 112 : 129 - 142
  • [3] Determination of constitutive model parameters and 3-D finite element formulation for powder compaction
    Huang, L.
    Puri, V.M.
    Particulate Science and Technology, 1997, 15 (02):
  • [4] Dislocation based multiple-slip crystalline constitutive formulation for finite-strain plasticity
    Zikry, MA
    Kao, M
    SCRIPTA MATERIALIA, 1996, 34 (07) : 1115 - 1121
  • [5] Material formulation of finite-strain thermoelasticity and applications
    Maugin, GA
    Berezovski, A
    JOURNAL OF THERMAL STRESSES, 1999, 22 (4-5) : 421 - 449
  • [6] Finite-element implementation of a finite-strain Cam-clay model
    Callari, C
    Auricchio, F
    Sacco, E
    COMPUTATIONAL PLASTICITY: FUNDAMENTALS AND APPLICATIONS, PTS 1 AND 2, 1997, : 1649 - 1656
  • [7] Constitutive model for powder compaction
    Cristescu, ND
    RECENT DEVELOPMENTS IN COMPUTER MODELING OF POWDER METALLURGY PROCESSES, 2001, 176 : 3 - 16
  • [8] Duality in constitutive formulation of finite-strain elastoplasticity based on F=FeFp and F=FpFe decompositions
    Lubarda, VA
    INTERNATIONAL JOURNAL OF PLASTICITY, 1999, 15 (12) : 1277 - 1290
  • [9] Material formulation of finite-strain thermoelasticity and applications
    Univ. Pierre et Marie Curie, Lab. de Modelisation en Mecanique, Paris Cedex, France
    不详
    J Therm Stresses, 4 (421-449):
  • [10] A finite-strain constitutive model for magnetorheological elastomers: Magnetic torques and fiber rotations
    Galipeau, Evan
    Castaneda, Pedro Ponte
    JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 2013, 61 (04) : 1065 - 1090