Investigation on Coherent Jet Potential Core Length in an Electric Arc Furnace

被引:13
|
作者
Tang, Guangwu [1 ]
Chen, Yuchao [1 ]
Silaen, Armin K. [1 ]
Krotov, Yury [2 ]
Riley, Michael F. [3 ]
Zhou, Chenn Q. [1 ]
机构
[1] Purdue Univ Northwest, Ctr Innovat Visualizat & Simulat CIVS, 2200 169th St, Hammond, IN 46323 USA
[2] Steel Dynam Inc, 4500 Cty Rd 59, Butler, IN 46721 USA
[3] Praxair Inc, Applicat Res & Dev, Indianapolis, IN 46222 USA
关键词
CFD; coherent jet; combustion; electric arc furnace; potential core length; OXY-FUEL COMBUSTION; CORRECTED TURBULENCE MODEL; FLOW-FIELD CHARACTERISTICS; TEMPERATURE; AMBIENT; CFD; SIMULATION; RADIATION; CHEMISTRY;
D O I
10.1002/srin.201800381
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
During the electric arc furnace (EAF) refining stage, coherent jets are used to increase the depth of oxygen jet penetration for better oxygen efficiency and stirring of the liquid steel. A coherent jet is defined when the supersonic jet is shrouded by a flame envelope, which leads to a higher potential core length (the length up to which the axial jet velocity equals the exit velocity at the nozzle). In this paper, a coherent jet computational fluid dynamics (CFD) model is developed with detailed consideration of compressible flow properties and combustion effects. The model is validated by comparing the coherent jet axial velocity profile with experimental measurements. Simulation results show that the combustion reaction mechanism used has a significant effect on prediction of flame temperature, which will affect potential core length. The current model uses a 28-step reaction mechanism to achieve both computational efficiency and model accuracy. Turbulence model modification is necessary for accurately predicting the flow properties. The current proposed modifications are needed for accurate prediction of both compressibility and temperature gradient effects.
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页数:9
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