Sublimation Behavior of Industrial Grade Molybdenum Trioxide

被引:0
作者
Lu Wang
Meng-Chao Li
Zheng-Liang Xue
Guo-Hua Zhang
Ao Huang
机构
[1] Wuhan University of Science and Technology,The State Key Laboratory of Refractories and Metallurgy
[2] Wuhan University of Science and Technology,Key Laboratory for Ferrous Metallurgy and Resources Utilization of Ministry of Education
[3] Foshan (Southern China) Institute for New Materials,State Key Laboratory of Advanced Metallurgy
[4] University of Science and Technology Beijing,undefined
来源
Transactions of the Indian Institute of Metals | 2021年 / 74卷
关键词
Molybdenum trioxide; Sublimation; Kinetics; Mechanism;
D O I
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中图分类号
学科分类号
摘要
Volatilization loss of molybdenum trioxide (MoO3) always takes place during the synthesis of Mo-containing alloying steel in the steelmaking process. In this work, the sublimation kinetics and mechanism of MoO3 in the range of 1273 to 1373 K were analyzed, in which the methods of model fitting, FE-SEM, EDS, and thermodynamic calculation were adopted. The results showed that sublimation of high-purity MoO3 (defined as the case III) and industrial grade MoO3 with the thickness of 3 mm (defined as the case II) were mainly controlled by the chemical reaction on the surface; increasing the thickness of industrial grade MoO3 to 7 mm (defined as the case I), the diffusion model was obeyed, instead. Activation energies of the three cases were extracted to be 127.489 (case III), 197.418 (case II), and 89.76 kJ/mol (case I), respectively. With the adoption of lever principle, the weight ratio of melting (from solid to liquid) to vaporization (from liquid to gas) during the whole volatilization process was estimated, i.e., 2.52:1 for case III, 0.84:1 for case II, and 5.89:1 for case I. The possible sublimation mechanism of industrial grade MoO3 was also proposed.
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页码:1469 / 1477
页数:8
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