Temperature and stress fields evolution during spark plasma sintering processes

被引:78
作者
Munoz, S. [1 ,2 ]
Anselmi-Tamburini, U. [2 ]
机构
[1] Univ Seville, Escuela Super Ingn, Dept Mech & Mat Engn, Seville 41092, Spain
[2] Univ Pavia, Dept Phys Chem, I-27100 Pavia, Italy
关键词
ELECTRIC-FIELD; CONSOLIDATION;
D O I
10.1007/s10853-010-4742-7
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Numerical modelling of Spark Plasma Sintering (SPS) processes is essential to evaluate temperature and stress distributions that can result in sample inhomogeneities. Most of the available literature, however, produced analysis in static conditions. In this work, we focused our attention on the time evolution of current density, temperature and stress distribution during a SPS process using a new approach that includes a PID control in the algorithm, allowing a realistic simulation of experiments performed using a temperature controller. Controlled temperature experiments have been simulated and discussed, with special interest focused on the time evolution of the process. The results showed that stress gradients inside the samples (similar to 40%) are much greater than the temperature gradients (similar to 2%), suggesting that heterogeneities in the microstructure can also be caused by the stress gradient. During the evolution of the process, a peak in stresses is experienced by the alumina sample at the beginning of the cooling stage, caused by differences in contraction between the sample and the die. It has been proved that, using a controlled cooling stage, these peaks in the stresses can be easily eliminated.
引用
收藏
页码:6528 / 6539
页数:12
相关论文
共 18 条
[1]   Fundamental investigations on the spark plasma sintering/synthesis process - II. Modeling of current and temperature distributions [J].
Anselmi-Tamburini, U ;
Gennari, S ;
Garay, JE ;
Munir, ZA .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2005, 394 (1-2) :139-148
[2]   Fast low-temperature consolidation of bulk nanometric ceramic materials [J].
Anselmi-Tamburini, U ;
Garay, JE ;
Munir, ZA .
SCRIPTA MATERIALIA, 2006, 54 (05) :823-828
[3]   Spark plasma sintering of zirconium carbide and oxycarbide: Finite element modeling of current density, temperature, and stress distributions [J].
Antou, Guy ;
Mathieu, Gendre ;
Trolliard, Gilles ;
Maitre, Alexandre .
JOURNAL OF MATERIALS RESEARCH, 2009, 24 (02) :404-412
[4]  
Astrom K.J., 1995, INSTRUMENT SOC AM
[5]  
GROZA JR, 1998, ASM HDB, V7, P583
[6]  
Khoei A., 2005, Computational Plasticity in Powder Forming Processes, V1st
[7]   Temperature distribution at steady state under constant current discharge in spark sintering process of Ti and A1203 powders (vol 134, pg 225, 2003) [J].
Matsugi, K ;
Kuramoto, H ;
Hatayama, I ;
Yanagisawa, O .
JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2004, 146 (02) :273-281
[8]   The modeling of electric-current-assisted sintering to produce bulk nanocrystalline tungsten [J].
McWilliams, B ;
Zavaliangos, A ;
Cho, KC ;
Dowding, RJ .
JOM, 2006, 58 (04) :67-71
[9]   Multi-phenomena simulation of electric field assisted sintering [J].
McWilliams, Brandon ;
Zavaliangos, Antonios .
JOURNAL OF MATERIALS SCIENCE, 2008, 43 (14) :5031-5035
[10]   The effect of electric field and pressure on the synthesis and consolidation of materials: A review of the spark plasma sintering method [J].
Munir, ZA ;
Anselmi-Tamburini, U ;
Ohyanagi, M .
JOURNAL OF MATERIALS SCIENCE, 2006, 41 (03) :763-777