Journal of the American Ceramic Society · 2008 · 34 citations · 28 references
EngineeringMechanical EngineeringRaw Materials ScienceSilicon CarbideCeramic PowdersSolidificationCeramic TechnologyMaterials ScienceMaterials EngineeringDensification CurvePowder MetallurgyLiquid PhaseAffect DensificationMicrostructureSinteringHigh Temperature MaterialsApplied PhysicsCeramics MaterialsMetal-ceramic SystemsActivation EnergyMechanics Of MaterialsCarbide
The combined‐stage sintering model was used to determine the activation energy, Q , of sintering for selected SiC‐based materials. SiC densified with a liquid (1.65 wt% Al) had an activation energy of 842±79 kJ/mol, a value between those for a silicon carbide densified with 1 wt% C and 0.25 wt% B 4 C ( Q =643±37 kJ/mol) and one densified with 2.5 wt% AlN ( Q =1022±122 kJ/mol), compositions which have no liquid phase below 1850°C. The SiC with Al additive began densification by 1500°C and the densification curve was offset by approximately 100°C compared with the other two materials below 1850°C. The choice and amount of additives not only affect densification and activation energy, but also influence microstructure and fracture mode, allowing engineering of mechanical properties.
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<i>In Situ</i> ‐Toughened Silicon Carbide
Nitin P. Padture · Journal of the American Ceramic Society · 1994 · 465 citations
Combined‐Stage Sintering Model
James D. Hansen, Richard P. Rusin, Mao‐Hua Teng et al. · Journal of the American Ceramic Society · 1992 · 282 citations
Mamoru Omori, Humihiko Takei · Journal of the American Ceramic Society · 1982 · 250 citations