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Investigation on the Kinetics and Mechanism of Aluminothermic Reduction of Molybdenum Trioxide: Non-isothermal Kinetics

机译:二氧化钼铝热量减少动力学和机制的研究:非等温动力学

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摘要

In this work, effect of milling process and CaO addition on the reaction mechanism and kinetics of aluminothermic reduction of molybdenum trioxide were studied by simultaneous thermal analysis, differential scanning calorimetry, X-ray diffraction analysis and Coats-Redfern method, respectively. For this purpose, molybdenum trioxide was reduced by Al powder under two different conditions of mechanical activation by milling process and as received form mixed by stoichiometric amount of CaO that was required for creation of CaMoO(4)intermediate phase. In the case of using milled molybdenum trioxide, 20 wt% of aluminum oxide was used as heat absorber. The results showed that by using mechanically activated MoO3, the reduction reactions proceeded through the formation of intermediate phases of Al-2(MoO4)(3)and MoO2. In the presence of CaO, the intermediate phase was changed to CaMoO4. In both cases, the reaction temperatures and their activation energies decreased. The kinetic model for the aluminothermic reduction of un-milled and milled molybdenum trioxide was determined as chemical control, where by addition of CaO, mechanism of the reduction reaction was changed to diffusion control.
机译:本文分别采用同步热分析法、差示扫描量热法、X射线衍射法和Coats-Redfern法研究了球磨工艺和CaO添加量对三氧化钼铝热还原反应机理和动力学的影响。为此,三氧化钼在两种不同的条件下通过球磨过程进行机械活化,并以化学计量量的CaO混合的形式通过铝粉还原,这是生成CaMoO(4)中间相所需的。在使用研磨三氧化钼的情况下,20 wt%的氧化铝用作吸热器。结果表明,采用机械活化的MoO3,还原反应通过生成Al-2(MoO4)(3)和MoO2中间相进行。在CaO存在下,中间相转变为CaMoO4。在这两种情况下,反应温度和活化能均降低。将未研磨和研磨的三氧化钼的铝热还原动力学模型确定为化学控制,其中通过添加CaO,还原反应的机理转变为扩散控制。

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