2014Journal of University of Science and Technology BeijingRequires access

Effect of ladle change process on the surface cleanliness of IF steel continuous casting slabs

Xiaoxuan Deng

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Abstract

The effect of ladle change process( the 4th heat to the 5th heat) on the surface cleanliness of IF steel continuous casting slabs was investigated by total oxygen measurement and automatic feature analysis equipped on ASPEX. A comparison of surface cleanliness was performed between transition slabs( cast during ladle change process) and normal slabs( cast under normal condition). It is found that inclusions larger than 20 μm are classified into three types:( 1) cluster alumina( including bubble + cluster alumina inclusions);( 2) cluster TiOx-Al2O3inclusions; and( 3) mold powder inclusions. In terms of surface inclusions in normal slabs,most of the inclusions detected in the scanning area are cluster alumina,and no mold powder inclusions are found. While for transition slabs,the total oxygen content increases from 14 × 10- 6to 17 × 10- 6,and the number density of Type 2 inclusions goes up since the cast start of the 5th heat,indicating re-oxidation of the steel melt during ladle change process. Furthermore,level fluctuation in the mold is also severe since the cast start of the 5th heat,leading to mold powder entrapments. The affected length of cast slabs during ladle change process is about 11 m under the present casting condition.

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What this paper is about

The effect of ladle change process( the 4th heat to the 5th heat) on the surface cleanliness of IF steel continuous casting slabs was investigated by total oxygen measurement and automatic feature analysis equipped on ASPEX. A comparison of surface cleanliness was performed between transition slabs( cast during ladle change process) and normal slabs( cast under normal condition). It is found that inclusions larger than 20 μm are classified into three types:( 1) cluster alumina( including bubble + cluster alumina inclusions);( 2) cluster TiOx-Al2O3inclusions; and( 3) mold powder inclusions. In terms of surface inclusions in normal slabs,most of the inclusions detected in the scanning area are cluster alumina,and no mold powder inclusions are found. While for transition slabs,the total oxygen content increases from 14 × 10- 6to 17 × 10- 6,and the number density of Type 2 inclusions goes up since the cast start of the 5th heat,indicating re-oxidation of the steel melt during ladle change process. Furthermore,level fluctuation in the mold is also severe since the cast start of the 5th heat,leading to mold powder entrapments. The affected length of cast slabs during ladle change process is about 11 m under the present casting condition.

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Available abstract

The effect of ladle change process( the 4th heat to the 5th heat) on the surface cleanliness of IF steel continuous casting slabs was investigated by total oxygen measurement and automatic feature analysis equipped on ASPEX. A comparison of surface cleanliness was performed between transition slabs( cast during ladle change process) and normal slabs( cast under normal condition). It is found that inclusions larger than 20 μm are classified into three types:( 1) cluster alumina( including bubble + cluster alumina inclusions);( 2) cluster TiOx-Al2O3inclusions; and( 3) mold powder inclusions. In terms of surface inclusions in normal slabs,most of the inclusions detected in the scanning area are cluster alumina,and no mold powder inclusions are found. While for transition slabs,the total oxygen content increases from 14 × 10- 6to 17 × 10- 6,and the number density of Type 2 inclusions goes up since the cast start of the 5th heat,indicating re-oxidation of the steel melt during ladle change process. Furthermore,level fluctuation in the mold is also severe since the cast start of the 5th heat,leading to mold powder entrapments. The affected length of cast slabs during ladle change process is about 11 m under the present casting condition.

Key concepts: Mold, Ladle, Materials science, Casting, Metallurgy, Continuous casting, Composite material, Shrinkage

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