Coarsening in Sintering: Grain Shape Distribution, Grain Size Distribution, and Grain Growth Kinetics in Solid-Pore Systems

被引:272
作者
German, Randall M. [1 ]
机构
[1] San Diego State Univ, San Diego, CA 92182 USA
关键词
Sintering; grain growth; Ostwald Ripening; porosity; pore size; pore growth; densification; grain size distribution; grain shape distribution; TUNGSTEN HEAVY ALLOYS; LIQUID-PHASE; VOLUME FRACTION; COMPUTER-SIMULATION; INTERMEDIATE-STAGE; PARTICLE GROWTH; ZINC-OXIDE; TIC-NI; MICROSTRUCTURAL DEVELOPMENT; DENSIFICATION BEHAVIOR;
D O I
10.1080/10408436.2010.525197
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Sintering occurs when packed particles are heated to a temperature where there is sufficient atomic motion to grow bonds between the particles. The conditions that induce sintering depend on the material, its melting temperature, particle size, and a host of processing variables. It is common for sintering to produce a dimensional change, typically shrinkage, where the powder compact densifies, leading to significant strengthening. Microstructure coarsening is inherent to sintering, most evident as grain growth, but it is common for pore growth to occur as density increases. During coarsening, the grain structure converges to a self-similar character seen in both the grain shape distribution and grain size distribution. Coarsening behavior during sintering conforms to classic grain growth kinetics, modified to reflect the evolving microstructure. These modifications involve the grain boundary coverage due to pores, liquid films, or second phases and the altered grain boundary mobility due to these phases. The mass transport rates associated with each of these interfaces are different, with different temperature and composition dependencies. Hence, the coarsening rate during sintering is not constant, but changes with the evolving microstructure. Core aspects treated in this review include models for coarsening, grain shape, grain size distribution, and how pores, liquids, dispersoids, and other phases determine microstructure coarsening during sintering.
引用
收藏
页码:263 / 305
页数:43
相关论文
共 314 条
[1]   COARSENING OF ELASTICALLY INTERACTING COHERENT PARTICLES .2. SIMULATIONS OF PREFERENTIAL COARSENING AND PARTICLE MIGRATIONS [J].
ABINANDANAN, TA ;
JOHNSON, WC .
ACTA METALLURGICA ET MATERIALIA, 1993, 41 (01) :27-39
[2]  
Aboav D. A., 1972, Metallography, V5, P251, DOI 10.1016/0026-0800(72)90004-3
[3]  
Aboav D. A., 1973, Metallography, V6, P9, DOI 10.1016/0026-0800(73)90013-X
[4]  
Aboav D. A., 1970, Metallography, V3, P383, DOI 10.1016/0026-0800(70)90038-8
[5]  
Aboav D. A., 1969, Metallography, V1, P333, DOI 10.1016/0026-0800(69)90042-1
[6]  
Aboav D. A., 1969, Metallography, V2, P171, DOI 10.1016/0026-0800(69)90081-0
[7]   THE ARRANGEMENT OF CELLS IN A NET .2. [J].
ABOAV, DA .
METALLOGRAPHY, 1983, 16 (03) :265-273
[8]   ARRANGEMENT OF CELLS IN A NET [J].
ABOAV, DA .
METALLOGRAPHY, 1980, 13 (01) :43-58
[9]   WC grain growth during the early stages of sintering [J].
Adorjan, A ;
Schubert, WD ;
Schön, A ;
Bock, A ;
Zeiler, B .
INTERNATIONAL JOURNAL OF REFRACTORY METALS & HARD MATERIALS, 2006, 24 (05) :365-373
[10]   Effect of the liquid-forming additive content on the kinetics of abnormal grain growth in alumina [J].
Ahn, JH ;
Lee, JH ;
Hong, SH ;
Hwang, NM ;
Kim, DY .
JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 2003, 86 (08) :1421-1423