A Three-Dimensional Multiphysics Coupled Model of Melting and Rotation of the Electrode During Electroslag Remelting Process

被引:0
作者
Xuechi Huang
Zhongqiu Liu
Baokuan Li
Fang Wang
Chengjun Liu
机构
[1] Northeastern University,Key Laboratory for Ecological Metallurgy of Multimetallic Ores
[2] Northeastern University,School of Metallurgy
来源
Metallurgical and Materials Transactions B | 2024年 / 55卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
A transient three-dimensional (3D) coupled model is developed to investigate the melting and rotation of the solid electrode during the electroslag remelting (ESR) process. The large eddy simulation (LES) method is utilized to model the multiphase flow. The slag/metal interface is precisely tracked utilizing the volume of fluid (VOF) approach with an adaptive mesh refinement strategy. The model pays specific attention to the shape evolution of the electrode tip, as well as the formation and motion of droplet under different electrode rotating speeds. The accuracy of the model is validated by an additional transparent experiment. As the electrode rotates, the centrifugal force pushes the randomly dispersed faucets underneath the electrode outwards until reaching the periphery. The electrode rotation flattens the electrode tip, reducing the horizontal deviation of its profile by up to 69.9 pct compared to a static electrode. As the electrode rotating speed increases from 0 to 60 rpm, the thickness of liquid metal film decreases from 0.91 to 0.63 mm, while the equivalent diameter of droplets decreases from 12.90 to 11.77 mm. The electrode rotation increases the specific surface area, dramatically improving the removal efficiency of inclusions and harmful elements. Moreover, productivity reached a maximum of 21.56 pct at a rotating speed of 60 rpm without increasing power input.
引用
收藏
页码:667 / 681
页数:14
相关论文
共 139 条
[1]  
Zhang R(2021)undefined Acta Metall. Sin. 57 1215-1228
[2]  
Liu P(2014)undefined Metallurgist 58 677-683
[3]  
Cui CY(2018)undefined Metallurgist 62 738-752
[4]  
Zhang BJ(2007)undefined Ironmak. Steelmak. 34 216-220
[5]  
Du JH(1974)undefined Ironmak. Steelmak. 1 172-179
[6]  
Zhou YZ(2017)undefined Metall. Mater. Trans. B 48B 2649-2663
[7]  
Sun XF(2021)undefined Int. J. Miner. Metall. Mater. 28 18-29
[8]  
Levkov LY(1993)undefined ISIJ Int. 33 1244-1251
[9]  
Shurygin DA(2012)undefined Steel Res. 83 472-486
[10]  
Orlov SV(1980)undefined Iron Steel 15 20-26