Spectral methods for full-field micromechanical modelling of polycrystalline materials

被引:71
作者
Lebensohn, Ricardo A. [1 ]
Rollett, Anthony D. [2 ]
机构
[1] Los Alamos Natl Lab, Theoret Div, Los Alamos, NM 87545 USA
[2] Carnegie Mellon Univ, Dept Mat Sci & Engn, Pittsburgh, PA 15213 USA
关键词
Micromechanics; Polycrystals; Spectral methods; Fast Fourier transform; Crystal mechanics; FAST FOURIER-TRANSFORMS; ENERGY DIFFRACTION MICROSCOPY; CRYSTAL PLASTICITY SIMULATIONS; FFT-BASED HOMOGENIZATION; MECHANICAL RESPONSE; NONLINEAR COMPOSITES; NUMERICAL-METHOD; X-RAY; TEXTURE EVOLUTION; GRAIN-BOUNDARIES;
D O I
10.1016/j.commatsci.2019.109336
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Modelling the mechanical behavior of polycrystalline materials based on their evolving microstructure and the anisotropic properties of their constituent single crystal grains is nowadays an indispensable tool to establish physically-based relationships between processing, structure and properties of this ubiquitous type of materials. These models have found multiple applications in Material Science, Mechanics of Materials, and Earth Sciences. This article reviews the specialization to polycrystalline materials of a spectral formulation developed in the last two decades to efficiently solve the micromechanical behavior of heterogeneous materials. This review provides a consolidated account, using a unified notation, of the various numerical implementations of the spectral formulation for polycrystalline materials deforming in different constitutive regimes, each of which requires specific numerical strategies. Examples are given that illustrate these implementations for each constitutive behavior, as well as comparisons with other models, and applications to different materials, including the use of experimental data for input of the calculations and validation of the model predictions.
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页数:25
相关论文
共 138 条
[1]   Validation of a numerical method based on Fast Fourier Transforms for heterogeneous thermoelastic materials by comparison with analytical solutions [J].
Anglin, B. S. ;
Lebensohn, R. A. ;
Rollett, A. D. .
COMPUTATIONAL MATERIALS SCIENCE, 2014, 87 :209-217
[2]  
[Anonymous], 2018, FFTW USER MANUAL
[3]   Intergranular and intragranular behavior of polycrystalline aggregates. Part 1: FE model [J].
Barbe, F ;
Decker, L ;
Jeulin, D ;
Cailletaud, G .
INTERNATIONAL JOURNAL OF PLASTICITY, 2001, 17 (04) :513-536
[4]   ANALYSIS OF TEXTURE EVOLUTION IN CHANNEL DIE COMPRESSION .1. EFFECTS OF GRAIN INTERACTION [J].
BECKER, R .
ACTA METALLURGICA ET MATERIALIA, 1991, 39 (06) :1211-1230
[5]   Plastic potentials for anisotropic porous solids [J].
Benzerga, AA ;
Besson, J .
EUROPEAN JOURNAL OF MECHANICS A-SOLIDS, 2001, 20 (03) :397-434
[6]   A numerical spectral approach for solving elasto-static field dislocation and g-disclination mechanics [J].
Berbenni, Stephane ;
Taupin, Vincent ;
Djaka, Komlan Senam ;
Fressengeas, Claude .
INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2014, 51 (23-24) :4157-4175
[7]   Far-field high-energy diffraction microscopy: a tool for intergranular orientation and strain analysis [J].
Bernier, J. V. ;
Barton, N. R. ;
Lienert, U. ;
Miller, M. P. .
JOURNAL OF STRAIN ANALYSIS FOR ENGINEERING DESIGN, 2011, 46 (07) :527-547
[8]   A FFT-based formulation for discrete dislocation dynamics in heterogeneous media [J].
Bertin, N. ;
Capolungo, L. .
JOURNAL OF COMPUTATIONAL PHYSICS, 2018, 355 :366-384
[9]   A FFT-based formulation for efficient mechanical fields computation in isotropic and anisotropic periodic discrete dislocation dynamics [J].
Bertin, N. ;
Upadhyay, M. V. ;
Pradalier, C. ;
Capolungo, L. .
MODELLING AND SIMULATION IN MATERIALS SCIENCE AND ENGINEERING, 2015, 23 (06)
[10]   Effect of a nonuniform distribution of voids on the plastic response of voided materials: a computational and statistical analysis [J].
Bilger, N ;
Auslender, F ;
Bornert, M ;
Michel, JC ;
Moulinec, H ;
Suquet, P ;
Zaoui, A .
INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2005, 42 (02) :517-538