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VAKHRUSHEV, A. KARIMI-SIBAKI, E. BOHÁČEK, J. WU, M. LUDWIG, A. TANG, Y. HACKL, G. NITZL, G. WATZINGER, J. KHARICHA, A.
Original Title
Impact of Submerged Entry Nozzle (SEN) Immersion Depth on Meniscus Flow in Continuous Casting Mold under Electromagnetic Brake (EMBr)
Type
journal article in Web of Science
Language
English
Original Abstract
Complex multi-phase phenomena, including turbulent flow, solidification, and magnetohydrodynamics (MHD) forces, occur during the continuous casting (CC) under the applied electromagnetic brake (EMBr). The results of the small-scale experiment of the liquid metal model for continuous casting (mini-LIMMCAST) at the Helmholtz-Zentrum Dresden-Rossendorf (HZDR), investigating MHD flow with a deep immersion depth of 100 mm, are supplemented by newly presented numerical studies with the shallow position of the submerged entry nozzle (SEN) at 50 mm below the meniscus. Herein, the focus is on the MHD effects at the meniscus level considering (i) a fully insulating domain boundary, (ii) a perfectly conductive mold, or (iii) the presence of the solid shell. The volume-of-fluid (VOF) approach is utilized to model a Galinstan flow, including free surface behavior. A multiphase solver is developed using conservative MHD formulations in the framework of the open-source computational fluid dynamics (CFD) package OpenFOAM®. The wall-adapting local eddy-viscosity (WALE) subgrid-scale (SGS) model is employed to model the turbulent effects on the free surface flow. We found that, for the deep immersion depth, the meniscus remains calm under the EMBr for the conductive and semi-conductive domain. For the insulated mold disregarding the SEN position, the self-inducing MHD vortices, aligned with the magnetic field, cause strong waving of the meniscus and air bubble entrapment for shallow immersion depth. Secondary MHD structures can form close to the meniscus under specific conditions. The influence of the EMBr and immersion depth on the flow energy characteristics is analyzed using power spectral density (PSD).
Keywords
magnetohydrodynamics (MHD); turbulence; meniscus flow; volume-of-fluid (VOF); electromagnetic brake (EMBr); continuous casting mold; OpenFOAM
Authors
VAKHRUSHEV, A.; KARIMI-SIBAKI, E.; BOHÁČEK, J.; WU, M.; LUDWIG, A.; TANG, Y.; HACKL, G.; NITZL, G.; WATZINGER, J.; KHARICHA, A.
Released
21. 2. 2023
Publisher
MDPI
ISBN
2075-4701
Periodical
Metals
Year of study
13
Number
3
State
Swiss Confederation
Pages from
1
Pages to
23
Pages count
URL
https://www.mdpi.com/2075-4701/13/3/444
Full text in the Digital Library
http://hdl.handle.net/11012/213569
BibTex
@article{BUT182947, author="Alexander {Vakhrushev} and Ebrahim {Karimi-Sibaki} and Jan {Boháček} and Menghuai {Wu} and Andreas {Ludwig} and Yong {Tang} and Gernot {Hackl} and Gerald {Nitzl} and Josef {Watzinger} and Abdellah {Kharicha}", title="Impact of Submerged Entry Nozzle (SEN) Immersion Depth on Meniscus Flow in Continuous Casting Mold under Electromagnetic Brake (EMBr)", journal="Metals", year="2023", volume="13", number="3", pages="1--23", doi="10.3390/met13030444", issn="2075-4701", url="https://www.mdpi.com/2075-4701/13/3/444" }