Consolidation enhancement in spark-plasma sintering: Impact of high heating rates

被引:219
|
作者
Olevsky, Eugene A. [1 ]
Kandukuri, Sastry [2 ]
Froyen, Ludo [2 ]
机构
[1] San Diego State Univ, Dept Mech Engn, San Diego, CA 92182 USA
[2] Katholieke Univ Leuven, Dept Met & Mat Engn, B-3001 Louvain, Belgium
基金
美国国家科学基金会;
关键词
D O I
10.1063/1.2822189
中图分类号
O59 [应用物理学];
学科分类号
摘要
Spark-plasma sintering (SPS) provides accelerated densification and, in many cases, limited grain growth compared to regular hot pressing and sintering. Possible mechanisms of this enhancement of the consolidation in SPS versus conventional techniques of powder processing are identified. The consolidation enhancing factors are categorized with respect to their thermal and nonthermal nature. This paper analyses the influence of a major factor of thermal nature: high heating rates. The interplay of three mechanisms of material transport during SPS is considered: surface diffusion, grain-boundary diffusion, and power-law creep. It is shown that high heating rates reduce the duration of densification-noncontributing surface diffusion, this favors powder systems' sinterability and the densification is intensified by grain-boundary diffusion. Modeling indicates that, besides the acceleration of densification, high heating rates diminish grain growth. The impacts of high heating rates are dependent on particle sizes. Besides SPS, the obtained results are applicable to the broad spectrum of powder consolidation techniques which involve high heating rates. The conducted experiments on SPS of an aluminum alloy powder confirm the model predictions of the impact of heating rates and initial grain sizes on the shrinkage rates during the electric current-assisted consolidation. It is noted, that this study considers only one of many possible mechanisms of the consolidation enhancement during SPS, which should stimulate further efforts on the modeling of field-assisted powder processing. (C) 2007 American Institute of Physics.
引用
收藏
页数:12
相关论文
共 50 条
  • [1] Consolidation enhancement in spark-plasma sintering: Impact of high heating rates
    Olevsky, Eugene A.
    Kandukuri, Sastry
    Froyen, Ludo
    Journal of Applied Physics, 2007, 102 (11):
  • [2] Spark-plasma sintering of molybdenum disilicide
    Kim, JS
    Kim, YD
    Lee, CH
    Choi, PP
    Kwon, YS
    ADVANCED SI-BASED CERAMICS AND COMPOSITES, 2005, 287 : 160 - 165
  • [3] Analysis of mechanisms of Spark-Plasma Sintering
    Olevsky, E.
    Kandukuri, S.
    Froyen, L.
    HIGH-PERFORMANCE CERAMICS V, PTS 1 AND 2, 2008, 368-372 : 1580 - +
  • [4] High-temperature reaction consolidation of TaC-TiB2 ceramic composites by spark-plasma sintering
    Demirskyi, D.
    Sakka, Y.
    JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 2015, 35 (01) : 405 - 410
  • [5] Constitutive modeling of spark-plasma sintering of conductive materials
    Olevsky, Eugene
    Froyen, Ludo
    SCRIPTA MATERIALIA, 2006, 55 (12) : 1175 - 1178
  • [6] TANTALUM OXIDE DIELECTRICS PROCESSED WITH SPARK-PLASMA SINTERING
    Ctibor, Pavel
    Sedlacek, Josef
    Hudec, Tomas
    MATERIALI IN TEHNOLOGIJE, 2020, 54 (02): : 197 - 202
  • [7] Fabrication of Cermets via Spark-Plasma Sintering for Nuclear Applications
    Jonathan A. Webb
    Indrajit Charit
    JOM, 2014, 66 : 943 - 952
  • [8] Properties of tungsten heavy alloys, prepared by spark-plasma sintering
    Ermakova, N. S.
    Yurlova, M. S.
    Grigoryev, E. G.
    10TH INTERNATIONAL SCHOOL-CONFERENCE ON MATERIALS FOR EXTREME ENVIRONMENT: DEVELOPMENT, PRODUCTION AND APPLICATION (MEEDPA10), 2016, 130
  • [9] Rapid production of β-FeSi2 by spark-plasma sintering
    K. Nogi
    T. Kita
    Journal of Materials Science, 2000, 35 : 5845 - 5849
  • [10] Fabrication of Cermets via Spark-Plasma Sintering for Nuclear Applications
    Webb, Jonathan A.
    Charit, Indrajit
    JOM, 2014, 66 (06) : 943 - 952