Modelling polycrystalline solidification using phase field theory

被引:138
作者
Gránásy, L
Pusztai, T
Warren, JA
机构
[1] Res Inst Solid State Phys & Opt, H-1525 Budapest, Hungary
[2] NIST, Div Met, Gaithersburg, MD 20899 USA
关键词
D O I
10.1088/0953-8984/16/41/R01
中图分类号
O469 [凝聚态物理学];
学科分类号
070205 ;
摘要
We review recent advances made in the phase field modelling of polycrystalline solidification. Areas covered include the development of theory from early approaches that allow for only a few crystal orientations, to the latest models relying on a continuous orientation field and a free energy functional that is invariant to the rotation of the laboratory frame. We discuss a variety of phenomena, including homogeneous nucleation and competitive growth of crystalline particles having different crystal orientations, the kinetics of crystallization, grain boundary dynamics, and the formation of complex polycrystalline growth morphologies including disordered ('dizzy') dendrites, spherulites., fractal-like polycrystalline aggregates, etc. Finally, we extend the approach by incorporating walls, and explore phenomena such as heterogeneous nucleation, particle-front interaction, and solidification in confined geometries (in channels or porous media).
引用
收藏
页码:R1205 / R1235
页数:31
相关论文
共 126 条
[1]   Semisharp phase field method for quantitative phase change simulations [J].
Amberg, G .
PHYSICAL REVIEW LETTERS, 2003, 91 (26)
[2]   2D and 3D phase-field simulations of lamella and fibrous eutectic growth [J].
Apel, M ;
Boettger, B ;
Diepers, HJ ;
Steinbach, I .
JOURNAL OF CRYSTAL GROWTH, 2002, 237 :154-158
[3]   Three-dimensional phase field model and simulation of martensitic transformation in multilayer systems under applied stresses [J].
Artemev, A ;
Wang, Y ;
Khachaturyan, AG .
ACTA MATERIALIA, 2000, 48 (10) :2503-2518
[4]   Suppression of crystal nucleation in polydisperse colloids due to increase of the surface free energy [J].
Auer, S ;
Frenkel, D .
NATURE, 2001, 413 (6857) :711-713
[5]   Prediction of absolute crystal-nucleation rate in hard-sphere colloids [J].
Auer, S ;
Frenkel, D .
NATURE, 2001, 409 (6823) :1020-1023
[6]   THE KINETICS OF CRYSTAL-GROWTH AND DISSOLUTION FROM THE MELT IN LENNARD-JONES SYSTEMS [J].
BAEZ, LA ;
CLANCY, P .
JOURNAL OF CHEMICAL PHYSICS, 1995, 102 (20) :8138-8148
[7]   FORMATION OF A DENSE BRANCHING MORPHOLOGY IN INTERFACIAL GROWTH [J].
BENJACOB, E ;
DEUTSCHER, G ;
GARIK, P ;
GOLDENFELD, ND ;
LAREAH, Y .
PHYSICAL REVIEW LETTERS, 1986, 57 (15) :1903-1906
[8]   Growing range of correlated motion in a polymer melt on cooling towards the glass transition [J].
Bennemann, C ;
Donati, C ;
Baschnagel, J ;
Glotzer, SC .
NATURE, 1999, 399 (6733) :246-249
[9]   Faceting and wetting transitions of anisotropic interfaces and grain boundaries [J].
Blendell, JE ;
Carter, WC ;
Handwerker, CA .
JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 1999, 82 (07) :1889-1900
[10]   Phase-field simulation of solidification [J].
Boettinger, WJ ;
Warren, JA ;
Beckermann, C ;
Karma, A .
ANNUAL REVIEW OF MATERIALS RESEARCH, 2002, 32 :163-194