利用数字技术改进高炉生产

A. N. Dmitriev, M. Zolotykh, G. Y. Vit’kina
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摘要

数学模型在改进高炉冶炼技术中的作用显而易见。例如,俄罗斯科学院乌拉尔分院冶金研究所在高炉生产数字模型领域的新发展,特别是高炉各区域热状态的二维和三维数学模型,包括使用复合数学模型分析和预测高炉内气体动力学、热交换、回收等现象;使用热过程三维数学模型监测耐火衬状态和炉膛填充情况;基于神经网络技术预测铸铁和炉渣中的硅含量和其他元素;优化铁矿石团块和焦炭的成分并改善其冶金特性,以提高高炉熔炼效率,并根据焦炭最低消耗量的计算分析高炉效率。这些模型基于对高炉中发生的物理、化学和热现象的考虑,同时考虑到问题陈述中隐含的二维性质。已开发的复合模型包括平衡(均衡)模型、气体动力学模型、热交换模型、还原模型、粘合区模型。在分析和控制高炉不同区域的热物理和物理化学现象领域的新发展,使高炉熔炼技术和方法从根本上提高到一个新水平,从而节省了燃料和能源资源。通过企业的高炉部门管理系统,可以使用数字模型与使用传感器读数的过程同步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improvement of blast furnace production using digital technology
The role of mathematical models in the improvement of the blast furnace smelting technology is shown. Examples include the new developments of the Institute of Metallurgy of the Ural Branch of the Russian Academy of Sciences in the field of digital models of blast furnace production, in particular, two-dimensional and three-dimensional mathematical models of the thermal state of various zones of the blast furnace, including analysis and forecast of phe-nomena of gas dynamics, heat exchange, recovery in blast furnace using a complex of mathematical models; monitoring of refractory lining state and hearth filling using three-dimensional mathematical model of thermal processes; forecast of silicon content and other elements in cast iron and slag based on neural network technologies; optimization of the composition and improvement of metallurgical characteristics of iron ore agglomerate and coke in order to increase the efficiency of blast furnace melting and analysis of the efficiency of blast furnaces based on the calculation of the minimum consumption of coke. These models are based on the consideration of physical, chemical and thermal phenomena occurring in the blast furnace, taking into account their two-dimensional nature implicit in the problem statement. The developed complex of models includes balance (equilibrium) model, models of gas dynamics, heat exchange, reduction, cohesion zone. New developments in the field of analysis and control of thermophysical and physicochemical phenomena occurring in different zones of the blast furnace allow to raise the technology and methods of blast furnace melting to a fundamentally new level, which saves fuel and energy resources. The possibility of using a digital model in tempo with a process using sensor readings through the blast furnace department management system of the enterprise is shown.
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