Usage of clustering methods for sequence plan optimization in steel production
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Švec, Pavel
Frischerová, Lucie
David, Jiří
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Hrvatsko Metalurško Društvo
Abstract
The paper deals with production scheduling of heat sequences while are steel types casted on continuous casting
device. For production scheduling are used k-means clustering and fuzzy clustering methods. The parameters for
cluster analysis are chemical composition liquids temperature and another values. From these values were selected
parameters, which has been processed by clustering methods. Proposed clustering algorithm for sorting steel
grades on continuous steel casting device is aimed to cast as many single graded smelts as possible, respectively
more steel grades, which has similarities in chemical composition and liquid temperature. These resulting clusters
are used when designing algorithm for smelting sequence scheduling. The goal of the production scheduling is to
make schedule of production tasks, so how to achieve the agreement between order requirements and capabilities
of production in given time scale.
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Metalurgija. 2016, vol. 55, no. 3, p. 485-488.