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Corrosion mechanism and protection of BOF refractory for high silicon hot metal steelmaking process

机译:高硅热金属炼钢工艺对BOF耐火材料的腐蚀机理及保护

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Corex process can produce hot metal without using coke and has some advantages in reducing pollution. However, the silicon content of hot metal produced by Corex furnace is 0.6–1.5 mass%, which results in the serious corrosion of lining. In order to study the mechanism of lining corrosion, the sample of corrosion lining was taken, and the morphology of the corrosion region was analyzed by SEM. The optimum composition of slag for splashing was determined through a combination of plant experiments and theoretical calculation. The results show that the chemical reaction and the dissolution of (MgO) lead to the lining corrosion of BOF. Concentration gradient of Mg and Fe were found between slag and refractory brick, which promote the mass exchange and reaction between slag and refractory brick. The low basicity of slag leads to low melting point and less formation of solid phase at the same temperature, which result in the scouring down of slag at early stage of steelmaking in BOF. In addition, the low basicity lead to high saturated solubility of (MgO), which is beneficial to the dissolution of (MgO) of refractory lining. The constant reaction and dissolution of (MgO) between lining and slag lead to the lining corrosion. The basicity of slag should be 1.0–1.2. The content of (FeO) should be controlled less than 5 mass%, and the content of (MgO) should be 5–7 mass%.
机译:Corex工艺可以在不使用焦炭的情况下产生热金属,并且在减少污染方面具有一些优点。然而,由Corex炉生产的热金属的硅含量为0.6-1.5质量%,这导致衬里的严重腐蚀。为了研究衬里腐蚀的机制,采取了腐蚀衬里的样品,通过SEM分析了腐蚀区域的形态。通过植物实验和理论计算的组合测定用于溅起的最佳组合物。结果表明,化学反应和(MgO)的溶解导致BOF的衬里腐蚀。在炉渣和耐火砖之间发现Mg和Fe的浓度梯度,这促进了炉渣和耐火砖之间的配方和反应。炉渣的低碱度导致低熔点和在相同温度下的固相形成较少,这导致在BOF炼钢的早期级渣中的熔化。此外,低碱度导致(MgO)的高饱和溶解度,这对耐火衬里的(MgO)的溶解有益。衬里和炉渣之间的恒定反应和溶解导致衬里腐蚀。渣的碱度应为1.0-1.2。 (FEO)的含量应控制小于5质量%,(MgO)的含量应为5-7质量%。

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