Electric Current Distribution During Electromagnetic Braking in Continuous Casting

被引:1
作者
Alexander Vakhrushev
Abdellah Kharicha
Zhongqiu Liu
Menghuai Wu
Andreas Ludwig
Gerald Nitzl
Yong Tang
Gernot Hackl
Josef Watzinger
机构
[1] Montantuniversität Leoben,Christian
[2] Northeastern University,Doppler Laboratory for Metallurgical Applications of Magnetohydrodynamics
[3] Chair of Simulation and Modeling of Metallurgical Processes,School of Metallurgy
[4] Montantuniversität,undefined
[5] RHI Magnesita GmbH,undefined
[6] RHI Magnesita Technology Center,undefined
[7] Primetals Technologies Austria GmbH,undefined
来源
Metallurgical and Materials Transactions B | 2020年 / 51卷
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摘要
The electromagnetic brake (EMBr) is a well-known and widely applied technology for controlling the melt flow in the continuous casting (CC) of the steel. The effect of a steady (DC) magnetic field (0.31 T) in a CC mold is numerically studied based on the GaInSn experiment. The electrical boundary conditions are varied by considering a perfectly insulating/conductive mold or the presence of a conductive solid shell, which is experimentally modeled by 0.5 mm brass plates. An intense current density (up to 350 kA/m2) is induced by the EMBr magnetic field in the form of loops. The electric current loop tends to close either inside the liquid bulk or through the conductive solid. Based on the character of the induced current loop closures, the turbulent flow is affected as follows: (i) it becomes unstable in the insulated mold, forming 2D self-inducing vortex structures aligned with the magnetic field; (ii) it is strongly damped for the conductive mold; and (iii) it exhibits transitional behavior with the presence of a solid shell. The application of the obtained results for the real CC process is discussed and validated.
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页码:2811 / 2828
页数:17
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