2015
DOI: 10.1142/s0217595915500104
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Proactive Scheduling for Steelmaking-Continuous Casting Plant with Uncertain Machine Breakdown Using Distribution-Based Robustness and Decomposed Artificial Neural Network

Abstract: An unpredictable breakdown often occurs and tends to complicate production scheduling in a steelmaking-continuous casting (SCC) plant. Because of particular characteristics and technology constraints of the SCC plant, traditional robust scheduling often provides an excessively conservative solution. This paper proposes an effective proactive scheduling that utilizes robustness adopting a distribution curve of a system performance created as a mix-integer model. The proposed robustness is designed to work effec… Show more

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Cited by 9 publications
(2 citation statements)
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“…Actual operating time deviates from estimated operating time due to random factors such as operator efficiency, environmental parameters, etc. 66) To simplify, any contingency or unforeseen event could be considered as a trigger for a machine stop (in any steel plant area), but reality indicates that sometimes it can simply affect the casting speed 84) or the closure of part of the machine's lines. Some studies already consider the casting time in the machine not only as a decision variable that allows to optimize the process.…”
Section: Contingenciesmentioning
confidence: 99%
“…Actual operating time deviates from estimated operating time due to random factors such as operator efficiency, environmental parameters, etc. 66) To simplify, any contingency or unforeseen event could be considered as a trigger for a machine stop (in any steel plant area), but reality indicates that sometimes it can simply affect the casting speed 84) or the closure of part of the machine's lines. Some studies already consider the casting time in the machine not only as a decision variable that allows to optimize the process.…”
Section: Contingenciesmentioning
confidence: 99%
“…Steel mill production scheduling is considered one of the most complicated problems of production scheduling, as it comprises several stages and multiple restrictions, with increasing demands of product variability [13]. For years, various optimized models have been studied [14,15] and approaches capable of considering limited machine availability [16], different casting speed [17,18] or job cancellations are taken into account.…”
Section: Introductionmentioning
confidence: 99%