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Behavior of Magnesium in the Desulfurization Process of Molten Iron with Magnesium Vapor Produced In-situ by Aluminothermic Reduction of Magnesium Oxide

机译:铝热还原氧化镁原位产生的镁蒸气在铁水脱硫过程中镁的行为

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The behavior of magnesium in the desulfurization process of molten iron with magnesium vapor produced in-situ by the aluminothermic reduction of magnesium oxide has been investigated. The magnesium concentration first increased rapidly, reaching the maximum, and then decreased gradually to a very low level. The magnesium concentration of the molten iron was mainly that of the dissolved magnesium and the following decrease in the magnesium concentration was due to the evaporation from the melt surface and the mass transfer of the dissolved magnesium to the bubble surface. Under the present experimental conditions, the magnesium concentration increased with increasing temperature, pellet mass, carrier gas flow rate and decreasing initial sulfur concentration. Decreasing the pellet mass and increasing initial sulfur concentration made the desulfurization efficiency higher and decreased the amounts of magnesium dissolving into the melt and leaving the melt. The equilibrium relation between [ppmMg] and [ppmS] did not conflict with the present experimental results at temperatures from 1553 to 1673 K. A mathematical model for analyzing the behavior of magnesium in the present desulfurization process has been developed. The calculated magnesium and sulfur concentrations are well consistent with the experimental results. The calculated results demonstrate that the existence of the peak of magnesium concentration is reasonable. The present mathematical model can also explain the effects of pellet mass and initial sulfur concentration on the behavior of magnesium injected into the melt.
机译:已经研究了镁在铁水与铝热还原氧化镁原位生成的镁蒸气的脱硫过程中的行为。镁浓度首先迅速增加,达到最大值,然后逐渐降低至非常低的水平。铁水中的镁浓度主要是溶解的镁的浓度,随后镁浓度的降低归因于从熔体表面的蒸发和溶解的镁向气泡表面的传质。在目前的实验条件下,镁浓度随温度,颗粒质量,载气流速和初始硫浓度的降低而增加。丸粒质量的降低和初始硫浓度的增加使脱硫效率更高,并减少了溶解于熔体中并离开熔体的镁量。 [ppmMg]和[ppmS]之间的平衡关系与1553至1673 K的温度下的当前实验结果没有冲突。已经建立了用于分析当前脱硫过程中镁行为的数学模型。计算出的镁和硫的浓度与实验结果完全一致。计算结果表明存在镁浓度峰是合理的。本数学模型还可解释丸粒质量和初始硫浓度对注入熔体中镁行为的影响。

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