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Highlights ► Fine SiC particles occupy the interstitial positions around coarse diamond particles. ► Diamond/SiC/Al composites have higher volume fractions and lower CTEs. ► Turner and Kerner models are not in good agreement with the experimental data. ► DEM model is reliable in designing a composite with two phases different in size.
Abstract The diamond/SiC/Al composites with high volume fractions and a large ratio of diamond to SiC particle size (7.8:1) were fabricated by gas pressure infiltration. The results show that the fine SiC particles occupy efficiently the interstitial positions around coarse diamond particles; the main fracture mechanism of the composite is matrix ductile fracture, and diamond brittle fracture was observed which confirms a high interfacial bonding strength; the diamond/SiC/Al composites with 80% and 66.7% volume fraction of diamond in the reinforcement have the higher volume fraction in the reinforcement and lower coefficient of thermal expansion compared to the diamond/Al composite. Turner and Kerner models are not in good agreement with the experimental data for the composites based on reinforcement with two phases different in shape and component. When the effect of the coating layer considered, differential effective medium (DEM) model is confirmed a reliable model in designing a composite with a given thermal conductivity based on reinforcement with two phases different in size.
Highlights ► Fine SiC particles occupy the interstitial positions around coarse diamond particles. ► Diamond/SiC/Al composites have higher volume fractions and lower CTEs. ► Turner and Kerner models are not in good agreement with the experimental data. ► DEM model is reliable in designing a composite with two phases different in size.
Abstract The diamond/SiC/Al composites with high volume fractions and a large ratio of diamond to SiC particle size (7.8:1) were fabricated by gas pressure infiltration. The results show that the fine SiC particles occupy efficiently the interstitial positions around coarse diamond particles; the main fracture mechanism of the composite is matrix ductile fracture, and diamond brittle fracture was observed which confirms a high interfacial bonding strength; the diamond/SiC/Al composites with 80% and 66.7% volume fraction of diamond in the reinforcement have the higher volume fraction in the reinforcement and lower coefficient of thermal expansion compared to the diamond/Al composite. Turner and Kerner models are not in good agreement with the experimental data for the composites based on reinforcement with two phases different in shape and component. When the effect of the coating layer considered, differential effective medium (DEM) model is confirmed a reliable model in designing a composite with a given thermal conductivity based on reinforcement with two phases different in size.
Thermal properties of diamond/SiC/Al composites with high volume fractions
15.04.2011
5 pages
Aufsatz (Zeitschrift)
Elektronische Ressource
Englisch
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