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Genetic algorithms based multi-objective optimization of an iron making rotary kiln

机译:基于遗传算法的炼铁回转窑多目标优化

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Industrial rotary kilns used in iron making are complex reactors having several functions. Raw materials, like iron ore and non-coking coal, are continuously fed whilst product sponge iron is continuously discharged from the downstream end, while the waste gases in counter current flow, exit through the uphill end. The outputs exhibit conflicting trends at the production level - an increase in daily production results in a decrease in the product's metallic iron content and vice versa. The optimization of the operation is thus a typical case of multi-objective optimization within constraints. The relationship between the various inputs and the above outputs, being very complex, is established by Artificial Neural Networks (ANN). As the search spaces for the inputs are not very well defined for the acceptable ranges of each of the outputs, the optimization task was carried out using multi-objective genetic algorithms and the resulting Pareto fronts are further analyzed. The results conform to the existing trends and also suggest some possible improvements.
机译:用于炼铁的工业回转窑是具有多种功能的复杂反应器。原料(如铁矿石和未炼焦煤)连续供入,而海绵铁不断地从下游端排出,而逆流的废气则从上端排出。在生产水平上,产出显示出相互矛盾的趋势-每日产量的增加导致产品中金属铁含量的下降,反之亦然。因此,操作的优化是约束内多目标优化的典型情况。各种输入与上述输出之间的关系非常复杂,是通过人工神经网络(ANN)建立的。由于针对每个输出的可接受范围的输入搜索空间的定义不是很好,因此使用多目标遗传算法执行了优化任务,并对得到的Pareto前沿进行了进一步分析。结果符合现有趋势,并提出了一些可能的改进。

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