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Blast furnace burden softening and melting phenomena: Part III. melt onset and initial microstructural transformations in pellets

机译:高炉炉料软化和熔化现象:第三部分。粒料的熔体开始和初始微观结构转变

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The softening and melting of the ferrous burden in the blast furnace occur in the cohesive zone, affecting the furnace’s performance. This work was designed to better understand these phenomena. In this article, the onset of melting and the evolution of the microstructure before softening were analyzed using a confocal scanning laser microscope (CSLM). Experiments were performed with industrial or synthetic pellets prereduced to wustite, placed over a metallic iron liner, and heated at either 1°C/min or 3°C/min under argon. The samples showed exudation of liquid, which coated the liner at temperatures above 1150°C. The melt onset for FeO-SiO2 synthetic samples occurred at similar temperatures, regardless of the experimental conditions. The melt onset temperature for the basic samples was lower than the acid samples. A sudden increase of the amount of liquid occurred first for the acid samples. A transition in the microstructure of the burden from heterogeneous “as-received” to a partially molten homogeneous structure with wustite particles permeated by an intergranular (slag) phase was observed in the industrial samples. These results suggest that the initial liquid does not directly influence softening; rather, it acts to improve mass transport and to push the system to a semisolid.
机译:高炉中含铁物料的软化和熔化发生在粘结区内,影响了高炉的性能。这项工作旨在更好地理解这些现象。在本文中,使用共聚焦扫描激光显微镜(CSLM)分析了软化之前的熔化开始和微观结构的演变。实验是用工业或合成的球团进行预还原成灰铁矿,放在金属铁衬里上,然后在氩气下以1°C / min或3°C / min的速度加热。样品显示出液体渗出,该液体在高于1150°C的温度下涂覆了衬管。不论实验条件如何,FeO-SiO2 合成样品的熔体开始温度都相似。基本样品的熔融起始温度低于酸样品。首先,对于酸样品,液体量突然增加。在工业样品中,观察到物料的微观结构从异质“原样”过渡到部分熔融的均质结构,其中辉石岩颗粒被晶间(渣)相渗透。这些结果表明,初始液体不会直接影响软化。相反,它可以改善质量运输并将系统推向半固态。

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  • 来源
    《Metallurgical and Materials Transactions B》 |2006年第4期|551-558|共8页
  • 作者单位

    Ferrous Products RampampD Cia. Vale do Rio Doce CVRD 29090-900 Vitoria ES Brazil;

    Center for Iron and Steelmaking Research Department of Materials Science and Engineering Carnegie Mellon University 15213 Pittsburgh PA;

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