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TiN/Al_2O_3 Composite Material Synthesized by Aluminothermic Reduction Process in Coke Bed

TiN/Al_2O_3 Composite Material Synthesized by Aluminothermic Reduction Process in Coke Bed
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摘要 TiN/Al2O3 composite material was prepared by aluminothermic reduction of TiO2 in coke bed. The phase composition, lattice parameter and microstructure of products treated at 1 300 ℃ , 1 400 ℃, 1 500℃ for 3 h respectively were analyzed by XRD, SEM and TEM. The results showed that TiN/Al2O3 composite material can be prepared in coke bed via aluminothermic reduction method. However, the treatment temperatures affect the evolution of aluminothermic reaction and morphology of the materials obviously. The content, grain size and lattice parameter of TiN in materials in coke bed increased with the increase of treatment temperature. Thermodynamic calculation confirmed that metal Al reacted with O2 in coke bed while it was involved in aluminothermic reduction reaction, causing the lack of Al and surplus rutile in the products. TiN/Al2O3 composite material was prepared by aluminothermic reduction of TiO2 in coke bed. The phase composition, lattice parameter and microstructure of products treated at 1 300 ℃ , 1 400 ℃, 1 500℃ for 3 h respectively were analyzed by XRD, SEM and TEM. The results showed that TiN/Al2O3 composite material can be prepared in coke bed via aluminothermic reduction method. However, the treatment temperatures affect the evolution of aluminothermic reaction and morphology of the materials obviously. The content, grain size and lattice parameter of TiN in materials in coke bed increased with the increase of treatment temperature. Thermodynamic calculation confirmed that metal Al reacted with O2 in coke bed while it was involved in aluminothermic reduction reaction, causing the lack of Al and surplus rutile in the products.
出处 《China's Refractories》 CAS 2009年第1期9-12,共4页 中国耐火材料(英文版)
关键词 Alnminothermic reduction Titanium nitride/Alumina composite material Microstructure Alnminothermic reduction, Titanium nitride/Alumina composite material, Microstructure
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