FABRICATION, PROPERTIES, AND MODELING OF ENGINEERING CERAMICS REINFORCED WITH NANOPARTICLES OF SILICON-CARBIDE

Citation
Rw. Davidge et al., FABRICATION, PROPERTIES, AND MODELING OF ENGINEERING CERAMICS REINFORCED WITH NANOPARTICLES OF SILICON-CARBIDE, British ceramic transactions, 96(3), 1997, pp. 121-127
Citations number
21
Categorie Soggetti
Material Science, Ceramics
ISSN journal
09679782
Volume
96
Issue
3
Year of publication
1997
Pages
121 - 127
Database
ISI
SICI code
0967-9782(1997)96:3<121:FPAMOE>2.0.ZU;2-O
Abstract
The present paper, prepared by Professor R. W. Davidge, briefly summar ises the results obtained from a multinational project aimed at assess ing nanocomposite ceramics reinforced with fine (similar to 200 nm) pa rticles of SiC. Various fabrication procedures were developed e.g. by attritor milling in a water medium, followed by freeze drying and hot pressing. Matrixes were alumina, silicon nitride, mullite, and cordier ite. Although modest improvements in properties were obtained for all systems, the most interesting effects were observed for alumina. For a given grain size, strength was increased by similar to 70% and toughn ess by similar to 10% in material with 5 vol.-%SiC, and for the range studied was relatively independent of nanophase content and particle s ize (10-400 nm). Based on microscopy observations and estimates of the Al2O3/SiC boundary fracture energy, it is postulated that a key featu re of the nanocomposite effect is associated with a strongly increasin g R curve behaviour over a small number of grain dimensions. The conse quence is that fracture is predominantly transcrystalline, as opposed to intercrystalline for pure material. This gives the nanocomposite a significantly improved wear resistance. The material also showed good strength retention at high temperatures in corrosive atmospheres, and a considerably reduced creep rate.