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Research on Factors Affecting and Prediction Model of Silicon Content in Hot Metal of COREX

机译:Corex热金属中硅含量影响和预测模型的研究

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摘要

In practical production process, the average of silicon content in hot metal (HM) of COREX process (the average is 1.58%) is obviously higher than that in blast furnace (the value is below 0.6%), which leads to an increase in the cost of steelmaking. In this work, the factors affecting and impact mechanism of silicon content in HM were investigated by statistical analysis using actual operating data. The analysis indicates that the fuel rate, binary basicity of slag and the temperature of HM are positively correlated with the silicon content, while the sulfur content of HM and binary basicity of burden are negatively correlated with the silicon content. On this basis, a back propagation neural network was developed to predict and control the silicon content in HM. All the findings of this work are useful for guiding and optimizing the COREX operation.
机译:在实际生产过程中,ROSEX工艺(平均为1.58%)的热金属(HM)中硅含量的平均值明显高于高炉(该值低于0.6%),这导致增加炼钢成本。在这项工作中,通过使用实际操作数据通过统计分析研究了影响HM中硅含量的因素和影响机制。分析表明燃料速率,渣的二进制碱度和HM的温度与硅含量呈正相关,而HM的硫含量和负荷的二元碱度与硅含量负相关。在此基础上,开发了反向传播神经网络以预测和控制HM中的硅含量。这项工作的所有调查结果对于指导和优化Corex操作非常有用。

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