Advancement of Tooling for Spark Plasma Sintering

被引:35
作者
Giuntini, Diletta [1 ]
Raethel, Jan [2 ]
Herrmann, Mathias [2 ]
Michaelis, Alexander [2 ]
Olevsky, Eugene A. [1 ]
机构
[1] San Diego State Univ, San Diego, CA 92182 USA
[2] Fraunhofer Inst Ceram Technol & Syst IKTS, D-01277 Dresden, Germany
关键词
TEMPERATURE DISTRIBUTION; ELECTRIC-FIELD; BORON-NITRIDE; CONSOLIDATION; CERAMICS; OPTIMIZATION; MECHANISMS;
D O I
10.1111/jace.13528
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
A combined experimental and numerical study is conducted to investigate temperature nonhomogeneities within a Spark Plasma Sintering tooling setup. Radial thermal gradients through a powder compact are encountered, a cause of microstructural nonuniformities in sintered specimens, which tend to become more significant when increasing the setup's characteristic size. In the insulating silicon nitride powder compact employed for the experimental procedures, a double pyrometer arrangement detects a strong temperature disparity between the overheated die and the area adjacent to the tooling's axis. A previous finite-element simulations campaign had individuated a possible solution in a novel punch design, consisting in the drilling of three concentric ring-shaped holes according to a specific geometrical pattern, whose efficacy is here experimentally verified. Further punch optimization strategies are drawn, involving a refinement of the three-rings geometry by linearly varying the drilled holes characteristic dimensions along the radial direction, or the selective coating and consequent insulation of the punch cross section with a thin layer of hexagonal boron nitride. Ideal configurations are identified, consisting in a concentration of the graphite punch's mass at its center by means of a tailored holes pattern, or in the coating of a portion of the conventionally shaped punch with boron nitride.
引用
收藏
页码:3529 / 3537
页数:9
相关论文
共 44 条
[1]  
[Anonymous], HIP 6 0 BACKGROUND R
[2]   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
[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]   Spark plasma sintering: A powerful tool to develop new silicon nitride-based materials [J].
Belmonte, M. ;
Gonzalez-Julian, J. ;
Miranzo, P. ;
Osendi, M. I. .
JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 2010, 30 (14) :2937-2946
[5]   THE ELECTRICAL-RESISTIVITY OF BORON-NITRIDE OVER THE TEMPERATURE-RANGE 700-DEGREES-C TO 1400-DEGREES-C [J].
CARPENTER, LG ;
KIRBY, PJ .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 1982, 15 (07) :1143-1151
[6]   Optimizing mechanical properties of spark plasma sintered ZTA using neural network and genetic algorithm [J].
Chakravarty, Dibyendu ;
Gokhale, Hina ;
Sundararajan, G. .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2011, 529 :492-496
[7]   Temperature, Current, and Heat Loss Distributions in Reduced Electrothermal Loss Spark Plasma Sintering [J].
Chennoufi, N. ;
Majkic, G. ;
Chen, Y. C. ;
Salama, K. .
METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2009, 40A (10) :2401-2409
[8]   Modeling of SPS apparatus:: Temperature, current and strain distribution with no powders [J].
Cincotti, A. ;
Locci, A. M. ;
Orru, R. ;
Cao, G. .
AICHE JOURNAL, 2007, 53 (03) :703-719
[9]   Spark plasma sintering of ceramics: understanding temperature distribution enables more realistic comparison with conventional processing [J].
Dobedoe, RS ;
West, GD ;
Lewis, MH .
ADVANCES IN APPLIED CERAMICS, 2005, 104 (03) :110-116
[10]  
Engler M, 2007, CFI-CERAM FORUM INT, V84, pE49