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Infiltration of Slag Film into the Grooves on a Continuous Casting Mold SCIE SCOPUS

Title
Infiltration of Slag Film into the Grooves on a Continuous Casting Mold
Authors
Cho, JWJeong, HT
Date Issued
2013-02
Publisher
SPRINGER
Abstract
An analytical model is developed to clarify the slag film infiltration into grooves on a copper mold during the continuous casting of steel slabs. A grooved-type casting mold was applied to investigate the infiltration of slag film into the grooves of a pitch of 0.8 mm, width of 0.7 mm, and depth of 0.6 mm at the vicinity of a meniscus. The plant trial tests were carried out at a casting speed of 5.5 m min(-1). The slag film captured at a commercial thin slab casting plant showed that both the overall and the liquid film thickness were decreased exponentially as the distance from the meniscus increases. In contrast, the infiltration of slag film into the grooves had been increased with increasing distance from the meniscus. A theoretic model has been derived based on the measured profile of slag film thickness to calculate the infiltration of slag film into the grooves. It successfully reproduces the empirical observation that infiltration ratio increased sharply along casting direction, about 80 pct at 50 mm and 95 pct at 150 mm below the meniscus. In the model calculation, the infiltration of slag film increases with increasing groove width and/or surface tension of the slag. The effect of groove depth is negligible when the width to depth ratio of the groove is larger than unity. It is expected that the developed model for slag film infiltration in this study will be widely utilized to optimize the design of groove dimensions in continuous casting molds.
Keywords
TRANSITION-METAL OXIDES; RADIATIVE HEAT-TRANSFER; COLD MODEL EXPERIMENT; FLUX FILM; MOLTEN POWDER; STEEL; SOLIDIFICATION; OSCILLATION; SIMULATION; CRYSTALLIZATION
URI
https://oasis.postech.ac.kr/handle/2014.oak/29964
DOI
10.1007/S11663-012-9748-X
ISSN
1073-5615
Article Type
Article
Citation
METALLURGICAL AND MATERIALS TRANSACTIONS B-PROCESS METALLURGY AND MATERIALS PROCESSING SCIENCE, vol. 44, no. 1, page. 146 - 153, 2013-02
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