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Dynamic modeling and optimization of an electric arc furnace.

机译:电弧炉的动态建模和优化。

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A dynamic model of the electric arc furnace (EAF) based on fundamental principles has been developed, validated, and optimized. The model includes material and energy balances over three control volumes, an equilibrium chemistry model, and a scrap melting model. The model dynamically predicts the temperature and composition in the liquid steel bath, slag, and off-gas. Furnace operations such as charging, carbon injection, oxygen lancing, oxy-fuel burner operation, and excess stoichiometric burner oxygen addition are inputs to the model and can be varied at will.; Using off-gas and operating data, eight model parameters were adjusted to minimize the sum-squared error between measurements and model predictions. Two different furnace operating practices were matched satisfactorily for off-gas composition using a nonlinear least squares algorithm in Matlab.; Optimization of the two different practices was carried out using iterative dynamic programming (IDP). The optimization performance measure consisted of maximizing chemical energy utilization, maximizing raw material yield, and minimizing process time. The IDP algorithm manipulated carbon injection, oxygen lancing, and excess stoichiometric burner oxygen simultaneously and individually to minimize the performance measure. IDP results show that both unique furnace operations may be dramatically improved by manipulating any or all of the controls. Chemical energy utilization and raw material yield were improved with almost any control combination, but process time improved only for control combinations which provide significant chemical energy.; The modeling and optimization efforts demonstrate the tremendous potential for the improvement of EAF operation through off-line modeling and optimization.
机译:已经开发,验证和优化了基于基本原理的电弧炉(EAF)的动态模型。该模型包括三个控制体积上的物料和能量平衡,平衡化学模型和废料熔化模型。该模型可以动态预测钢水浴,炉渣和废气中的温度和成分。炉子的操作,例如装料,碳喷射,氧气喷枪,氧气燃料燃烧器的操作以及化学计量燃烧器中过量的氧气的添加,都是该模型的输入,可以随意更改。使用废气和运行数据,调整了八个模型参数,以最小化测量值和模型预测之间的平方和误差。使用Matlab中的非线性最小二乘算法,两种不同的熔炉操作实践可以令人满意地匹配废气成分。使用迭代动态编程(IDP)对两种不同的实践进行了优化。优化性能指标包括最大程度地利用化学能源,最大程度地提高原材料产量和最小化工艺时间。 IDP算法同时并单独地操纵了碳喷射,氧气喷枪和化学计量的燃烧器氧气,以最大程度地降低性能指标。 IDP结果表明,通过操作任何或所有控件,可以显着改善两种独特的熔炉操作。几乎所有控制组合都可提高化学能利用率和原料收率,但仅对提供大量化学能的控制组合可缩短处理时间。建模和优化工作证明了通过离线建模和优化改善电炉运行的巨大潜力。

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