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Use of Model Systems for Solving New Technological Problems in Blast-Furnace Production

机译:采用模型系统解决新型技术问题的高炉生产

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摘要

Possibilities are considered for a model-based decision support system developed and put into pilot operation at the Magnitogorsk Metallurgical Combine (MMK) for appraisal of operation and prediction of process situations in blast furnaces. The main model blocks make it possible to calculate material and heat balances; model heat, slag and gas dynamic conditions of blast furnace operations; select burden composition; calculate the viscoplastic iron-ore materials zone; and predict process situations. The model system is implemented as a complex of program modules and integrated into the MMK information system. A module for calculating melting material and heat balances includes both fulfilment of overall generally accepted balances, and calculation for balances of iron, sulfur, manganese, and titanium. A Slag Regime program module makes it possible to determine the most important properties of melted slag for implementation of normal slag conditions of smelting, to find the ratio of iron-ore materials providing slag of required viscosity and viscosity gradient, and to produce cast iron with required sulphur content. A Gas Dynamics of Blast-Furnace Smelting program module accomplishes calculation and visual display of gas dynamic characteristics of a burden layer as well as assessment of the change in pressure drop and degree of burden balancing in separate zones of the furnace in the design period with the change of burden parameters. A program module built into a balanced model of the UrFU-MMK blast-furnace process makes it possible to find iron ore compositions providing preparation of slag of the required properties with respect to viscosity and viscosity gradient, and makes it possible to prepare cast iron of the quality required with respect to sulfur content. A Viscoplastic Iron-Ore Materials Zone of Blast Furnace program module performs model calculation of a set of parameters specifying radial nonuniformity of charge and gas flow distribution in blast furnaces. The module includes calculation of temperature characteristics of iron-ore materials used for smelting, which makes it possible to display the shape and position of the cohesive zone in the profile of the furnace in question. Some results are provided of practical application of the system developed, and recommendations are given for certain aspects of resolving production tasks using the model-based decision support system.
机译:考虑了基于模型的决策支持系统的可能性,并在Magnitogorsk冶金结合(MMK)中进行了试验操作,以进行了高炉过程情况的运行和预测。主模型块可以计算材料和热余额;模型热,炉渣和气体动力学条件的高炉运行;选择负担组成;计算粘胶塑料矿石材料区;并预测过程情况。模型系统实现为程序模块的复合体,并集成到MMK信息系统中。用于计算熔化材料和热平衡的模块包括整体普遍接受的余额,以及铁,硫,锰和钛的平衡计算。炉渣制度程序模块可以确定熔化渣的最重要的特性,以实现熔炼的正常炉渣条件,找到提供所需粘度和粘度梯度的炉渣的铁矿石的比例,并产生铸铁所需的硫含量。高炉冶炼程序模块的气体动力学实现了负荷层的气体动态特性的计算和视觉显示,以及在设计时期的炉子中的单独区域中的压降和负荷变化的变化和衡量的评估改变负担参数。内置于URFU-MMK BLOST-FORMACE工艺平衡模型中的程序模块使得可以找到一种铁矿石组合物,其提供相对于粘度和粘度梯度的所需性能的制备,并使得可以制备铸铁硫含量所需的质量。高炉程序模块的粘胶塑料铁矿石材料区执行了一组参数的模型计算,该参数指定了高炉中的电荷和气体流量分布的径向不均匀性。该模块包括计算用于熔炼的铁矿材料的温度特性,这使得可以在所讨论的炉子的轮廓中显示粘性区域的形状和位置。一些结果是提供了系统开发的实际应用,并且使用基于模型的决策支持系统解决生产任务的某些方面提供了建议。

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