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Naslov:Optimization of the rhomboidity of continuously cast billets using linear regression and genetic programming : a real industrial study
Avtorji:ID Kovačič, Miha (Avtor)
ID Župerl, Uroš (Avtor)
ID Brezočnik, Miran (Avtor)
Datoteke:.pdf APEM17-4_469-478.pdf (1,46 MB)
MD5: 5FD1BA565C277EF3921CCF0250F94AF6
 
URL https://apem-journal.org/Archives/2022/APEM17-4_469-478.pdf
 
Jezik:Angleški jezik
Vrsta gradiva:Članek v reviji
Tipologija:1.01 - Izvirni znanstveni članek
Organizacija:FS - Fakulteta za strojništvo
Opis:During the continuous casting of steel billets, several geometrical, inner and surface defects can occur due to the thermomechanical behavior during solidification. One of them is rhombic distortion (i.e. rhomboidity), which can lead to the occurrence of off-corner cracks and twisting of cast billets during further plastic deformation (i.e. rolling). Based on data of 2088 cast batches (64 different hypoeutectoid steel grades), 109,514 billets, produced from January 2022 to September 2022 in Štore Steel Ltd. (Slovenia), chemical composition (content of C, Si, Mn, S, Cr, Mo, Ni and V), casting parameters (average casting temperature, average difference between input and output cooling water, melt level, average cooling water flow and pressure in the first and second zone of secondary cooling) the linear regression and genetic programming were used in order to predict rhomboidity of continuously cast billets. The rhomboidity, in our case defined as relative diagonal difference, was determined using in-house developed computer vision system for measuring of rhomboidity. Based on the modelling results 9 batches (419 billets) of 42CrMos4 were cast in September 2022 with a 10 % higher water pressure in the first zone of secondary cooling (from 2.41 bar to 2.67 bar). The rhomboidity of continuously cast billets improved by 18.18 % (from 1.43 % to 1.21).
Ključne besede:continuous casting of steel, casting defects, rhombic distortion, rhomboidity, machine learning, modelling, optimization, prediction, linear regression, genetic programming
Status publikacije:Objavljeno
Verzija publikacije:Objavljena publikacija
Poslano v recenzijo:15.06.2022
Datum sprejetja članka:22.12.2022
Datum objave:30.12.2022
Založnik:Chair of Production Engineering (CPE), University of Maribor Faculty of Mechanical Engineering
Leto izida:2022
Št. strani:str. 469-478
Številčenje:Vol. 17, no. 4
PID:20.500.12556/DKUM-97197 Novo okno
UDK:669.1:004.43
COBISS.SI-ID:136297219 Novo okno
DOI:10.14743/apem2022.4.449 Novo okno
ISSN pri članku:1854-6250
Avtorske pravice:Content from this work may be used under the terms of the Creative Commons Attribution 4.0 International Licence (CC BY 4.0). Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI.
Datum objave v DKUM:23.02.2026
Število ogledov:173
Število prenosov:2
Metapodatki:XML DC-XML DC-RDF
Področja:Ostalo
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Gradivo je del revije

Naslov:Advances in production engineering & management
Skrajšan naslov:Adv produc engineer manag
Založnik:Fakulteta za strojništvo, Inštitut za proizvodno strojništvo
ISSN:1854-6250
COBISS.SI-ID:229859072 Novo okno

Licence

Licenca:CC BY 4.0, Creative Commons Priznanje avtorstva 4.0 Mednarodna
Povezava:http://creativecommons.org/licenses/by/4.0/deed.sl
Opis:To je standardna licenca Creative Commons, ki daje uporabnikom največ možnosti za nadaljnjo uporabo dela, pri čemer morajo navesti avtorja.

Sekundarni jezik

Jezik:Slovenski jezik
Ključne besede:kontinuirano litje jekla, napake pri litju, rombična distorzija, romboidnost, strojno učenje, modeliranje, optimizacija, napoved, linearna regresija, genetsko programiranje


Zbirka

To gradivo je del naslednjih zbirk del:
  1. Advances in production engineering & management

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