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The development of a thermodynamic model for Al_2O_3-MgO refractory castable corrosion by secondary metallurgy steel ladle slags

机译:二次冶金钢包渣对Al_2O_3-MgO难熔浇铸腐蚀热力学模型的建立

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Alumina magnesia in situ spinel castables are used as ladle refractory lining in the steel industry. In contact with slag, they suffer degradations which limits their performance. The purpose of this article is to predict the thermochemical attack of a slag on alumina magnesia refractory using Factsage~R thermodynamic modeling. To evaluate the reliability of the thermodynamic results, a validation step was carried out, which supported that the database was well adapted to the alumina magnesia spinel system. The corrosion phenomenon was then computed for a simple to a complete system to understand the mechanism and the inluence of specific oxides. The model was also compared to corroded microstructures from a steel ladle to evaluate the contribution of each constituent in the castable. The aggregates of alumina react with slag to produce monomineral layers of lime aluminates (CA6 and CA2), while complex spinels (Mg, Fe, Mn)O (Fe_2, A1_2)O_3 are formed from the reaction of the slag with the matrix of the castable. Several oxides (MnO, FeO, Fe_2O_3) from the slag contribute to the formation of the spinel structures. The microstructures of refractories used in steel ladles confirm the main conclusions and the thermodynamic approach.
机译:氧化铝镁原位尖晶石浇注料在钢铁工业中用作钢包耐火衬里。与炉渣接触时,它们遭受降解,从而限制了其性能。本文的目的是使用Factsage〜R热力学模型预测炉渣对氧化铝镁质耐火材料的热化学侵蚀。为了评估热力学结果的可靠性,执行了一个验证步骤,该步骤支持该数据库很好地适用于氧化铝氧化镁尖晶石系统。然后针对一个简单到完整的系统计算腐蚀现象,以了解特定氧化物的机理和影响。还将该模型与钢包中腐蚀的微观结构进行了比较,以评估浇铸物中每种成分的贡献。氧化铝的聚集体与炉渣反应生成单矿层的铝酸钙(CA6和CA2),而复杂的尖晶石(Mg,Fe,Mn)O(Fe_2,Al_2)O_3是由炉渣与硅酸盐基质的反应形成的。铸造炉渣中的几种氧化物(MnO,FeO,Fe_2O_3)有助于尖晶石结构的形成。钢包中使用的耐火材料的显微组织证实了主要结论和热力学方法。

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