MODELING OF DIRECTIONAL SOLIDIFICATION - FROM SCHEIL TO DETAILED NUMERICAL-SIMULATION

被引:75
作者
BROWN, RA [1 ]
KIM, DH [1 ]
机构
[1] MIT,CTR MAT PROC,CAMBRIDGE,MA 02139
基金
美国国家航空航天局;
关键词
D O I
10.1016/0022-0248(91)90157-Z
中图分类号
O7 [晶体学];
学科分类号
0702 ; 070205 ; 0703 ; 080501 ;
摘要
Solute segregation in crystals grown by variations on the directional solidification method has long been correlated by the simple idea of a well mixed melt and a uniform stagnant film adjacent to the interface. All the details of convection in the melt are hidden in the single parameter, the diffusion layer thickness delta. Although extremely useful as a qualitative measure of convection, this description potentially oversimplifies the complex interactions of the furnace geometry, heat transfer and buoyancy driven convection in setting the flow pattern and solute segregation. Today, detailed numerical simulations of directional solidification are feasible that include all of the complexity introduced by the presence of the melt/crystal interface, convection in the melt and heat transfer throughout the system. This paper reports results of simulations of directional solidification of dilute alloys in a prototypical vertical Bridgman system. The predictions of these calculations are compared directly with the stagnant film model of segregation. It is demonstrated that although the diffusion layer thickness can be used to correlate the transition between intense convection in the melt and diffusion-controlled growth, it does not necessarily correspond to a physical picture of the solute transport in the bulk and does not predict the dependence of the radial uniformity of the composition on the flow. Direct comparison between the calculations and growth experiments for gallium-doped germanium demonstrate the accuracy of the numerical simulations for predicting the behavior of real systems.
引用
收藏
页码:50 / 65
页数:16
相关论文
共 19 条
[1]   CONVECTION AND SEGREGATION IN DIRECTIONAL SOLIDIFICATION OF DILUTE AND NON-DILUTE BINARY-ALLOYS - EFFECTS OF AMPOULE AND FURNACE DESIGN [J].
ADORNATO, PM ;
BROWN, RA .
JOURNAL OF CRYSTAL GROWTH, 1987, 80 (01) :155-190
[2]   Certain physical properties of single crystals of tungsten, antimony, bismuth, tellurium, cadmium, zinc, and tin. [J].
Bridgman, PW .
PROCEEDINGS OF THE AMERICAN ACADEMY OF ARTS AND SCIENCES, 1925, 60 (1/14) :305-383
[3]  
BROWN RA, 1988, AICHE J, V34, P81
[4]   THE DISTRIBUTION OF SOLUTE IN CRYSTALS GROWN FROM THE MELT .1. THEORETICAL [J].
BURTON, JA ;
PRIM, RC ;
SLICHTER, WP .
JOURNAL OF CHEMICAL PHYSICS, 1953, 21 (11) :1987-1991
[5]   DISTRIBUTION OF SOLUTE IN CRYSTALS GROWN FROM THE MELT .2. EXPERIMENTAL [J].
BURTON, JA ;
KOLB, ED ;
SLICHTER, WP ;
STRUTHERS, JD .
JOURNAL OF CHEMICAL PHYSICS, 1953, 21 (11) :1991-1996
[6]   RADIAL SEGREGATION INDUCED BY NATURAL-CONVECTION AND MELT SOLID INTERFACE SHAPE IN VERTICAL BRIDGMAN GROWTH [J].
CHANG, CJ ;
BROWN, RA .
JOURNAL OF CRYSTAL GROWTH, 1983, 63 (02) :343-364
[7]   RATE CHANGE TRANSIENTS IN BRIDGMAN-STOCKBARGER GROWTH [J].
FU, TW ;
WILCOX, WR .
JOURNAL OF CRYSTAL GROWTH, 1981, 51 (03) :557-567
[8]   STEADY SOLUTE FIELDS INDUCED BY DIFFERENTIAL ROTATION IN A SMALL FLOATING ZONE [J].
HARRIOTT, GM ;
BROWN, RA .
JOURNAL OF CRYSTAL GROWTH, 1984, 69 (2-3) :589-604
[9]   EFFECT OF VERTICAL MAGNETIC-FIELD ON CONVECTION AND SEGREGATION IN VERTICAL BRIDGMAN CRYSTAL-GROWTH [J].
KIM, DH ;
ADORNATO, PM ;
BROWN, RA .
JOURNAL OF CRYSTAL GROWTH, 1988, 89 (2-3) :339-356
[10]   TRANSIENT SIMULATIONS OF CONVECTION AND SOLUTE SEGREGATION OF GAAS GROWTH IN GRADIENT FREEZE FURNACE [J].
KIM, DH ;
BROWN, RA .
JOURNAL OF CRYSTAL GROWTH, 1991, 109 (1-4) :66-74