LAPSE:2023.2046
Published Article
LAPSE:2023.2046
Comparison of Different Approaches to the Creation of a Mathematical Model of Melt Temperature in an LD Converter
February 21, 2023
Abstract
In the steel production process in the LD converter, it is important to have information about the melt temperature. The temperature and chemical composition of the steel are important parameters in this process in terms of its completion. During the process, continuous measurement of the melt temperature and thus also information about the end of the process are missing. This paper describes three approaches to creating a mathematical model of melt temperature. The first approach is a regression model, which predicts an immeasurable melt temperature based on other directly measured process variables. The second approach to creating a mathematical model is based on the machine learning method. Simple and efficient learning algorithms characterize the machine learning methods. We used support vector regression (SVR) method and the adaptive neuro-fuzzy inference system (ANFIS) to create a mathematical model of the melt temperature. The third approach is the deterministic approach, which is based on the decomposition of the process and its heat balance. The mathematical models that were compiled based on the mentioned approaches were verified and compared to real process data.
Keywords
LD converter, machine learning methods, mathematical model, steelmaking process, temperature
Suggested Citation
Laciak M, Kačur J, Terpák J, Durdán M, Flegner P. Comparison of Different Approaches to the Creation of a Mathematical Model of Melt Temperature in an LD Converter. (2023). LAPSE:2023.2046
Author Affiliations
Laciak M: Institute of Control and Informatization of Production Processes, Faculty BERG, Technical University of Košice, Němcovej 3, 042-00 Košice, Slovakia [ORCID]
Kačur J: Institute of Control and Informatization of Production Processes, Faculty BERG, Technical University of Košice, Němcovej 3, 042-00 Košice, Slovakia [ORCID]
Terpák J: Institute of Control and Informatization of Production Processes, Faculty BERG, Technical University of Košice, Němcovej 3, 042-00 Košice, Slovakia [ORCID]
Durdán M: Institute of Control and Informatization of Production Processes, Faculty BERG, Technical University of Košice, Němcovej 3, 042-00 Košice, Slovakia [ORCID]
Flegner P: Institute of Control and Informatization of Production Processes, Faculty BERG, Technical University of Košice, Němcovej 3, 042-00 Košice, Slovakia [ORCID]
Journal Name
Processes
Volume
10
Issue
7
First Page
1378
Year
2022
Publication Date
2022-07-14
ISSN
2227-9717
Version Comments
Original Submission
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PII: pr10071378, Publication Type: Journal Article
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LAPSE:2023.2046
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https://doi.org/10.3390/pr10071378
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