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Fundamentals and applications on in situ spinel formation mechanisms in Al_2O_3-MgO refractory castables

机译:Al_2O_3-MgO耐火浇注料原位尖晶石形成机理的基本原理和应用

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Although the physical expansion associated with the in situ formation of magnesium-aluminate spinel (MgAl_2O_4) is well-reported, some questions related to this behavior, such as the different volume change values experimentally attained when compared to theoretical one and the pore generation after the reaction, remain open. Thus, the main objective of this work is to shed some light on these questions by evaluating a cement-bonded alumina-magnesia castables, designed using dead-burnt magnesia of different particle size ranges. Microstructural observations suggested that the faster Mg~(2+) migration during the spinel formation led to vacancy accumulation and, consequently, to pore generation, as a direct result of the Kirkendall effect. Additionally, the overall expansion of alumina-magnesia castables seemed to be ruled by two main factors: its sintering efficiency and the different possibilities of the Al_2O_3 and MgO interactions in the mixture. Those consequences, however, do not usually affect the castable corrosion behavior in industrial applications, due to the benefits imposed by the structural constraint.
机译:尽管与铝酸镁尖晶石(MgAl_2O_4)的原位形成相关的物理膨胀得到了很好的报道,但是与该行为有关的一些问题,例如与理论值相比实验获得的不同的体积变化值以及在之后的孔生成。反应,保持开放。因此,这项工作的主要目的是通过评估水泥粘结的氧化铝-镁质浇注料来阐明这些问题,该浇注料是使用不同粒度范围的死燃烧氧化镁设计的。显微组织观察表明,尖晶石形成过程中较快的Mg〜(2+)迁移导致空位积累,从而导致孔的生成,这是Kirkendall效应的直接结果。此外,氧化铝-镁质浇注料的整体膨胀似乎由两个主要因素决定:其烧结效率以及混合物中Al_2O_3和MgO相互作用的不同可能性。但是,由于结构约束带来的好处,这些后果通常不会影响工业应用中的可铸腐蚀行为。

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