Optimization of flow control devices in a ten-strand billet caster tundish

The physical model of a ten-strand billet caster tundish was established to study the effects of various flow control devices on the melt flow. Before and after the optimization of the melt flow, the inclusion removal in the tundish was evaluated by plant trials. The physical modeling results show t...

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Main Authors: Shu-guo Zheng, Miao-yong Zhu
Format: Article
Language:English
Published: Foundry Journal Agency 2016-11-01
Series:China Foundry
Subjects:
Online Access:http://ff.foundryworld.com/uploadfile/2016121238789937.pdf
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spelling doaj-9b977eb74b694303ad03165db1cc35c12020-11-24T21:30:51ZengFoundry Journal AgencyChina Foundry1672-64211672-64212016-11-0113641442110.1007/s41230-016-6082-yOptimization of flow control devices in a ten-strand billet caster tundishShu-guo Zheng0Miao-yong Zhu1School of Metallurgy, Northeastern University, Shenyang 110819, ChinaSchool of Metallurgy, Northeastern University, Shenyang 110819, ChinaThe physical model of a ten-strand billet caster tundish was established to study the effects of various flow control devices on the melt flow. Before and after the optimization of the melt flow, the inclusion removal in the tundish was evaluated by plant trials. The physical modeling results show that when combined with a baffle, the turbulence inhibitor, instead of the impact pad, can significantly improve the melt flow. A turbulence inhibitor with a longer length of inner cavity and without an extending lip at the top of the sidewall seems to be efficient in the improvement of the melt flow. Various types and designs of baffles all influence the flow characteristics significantly. The “V” type baffles are better than the straight baffles for flow control. The “V” type baffle with four inclined holes at the sidewall away from the stopper rods is better in melt flow control than the one with one inclined hole at each sidewall. The combination of a well-designed turbulence inhibitor and an appropriate baffle shows high efficiency on improving the melt flow and an optimal proposal was presented. Plant trials indicate that, compared with the original tundish configuration in prototype, the inclusions reduce by 42% and the inclusion distribution of individual strands is more similar with the optimal one. The optimal tundish configuration effectively improves the melt flow in the ten-strand billet caster tundish.http://ff.foundryworld.com/uploadfile/2016121238789937.pdfbillet continuous casting; ten-strand caster tundish; flow control device; physical modeling; plant trials
collection DOAJ
language English
format Article
sources DOAJ
author Shu-guo Zheng
Miao-yong Zhu
spellingShingle Shu-guo Zheng
Miao-yong Zhu
Optimization of flow control devices in a ten-strand billet caster tundish
China Foundry
billet continuous casting; ten-strand caster tundish; flow control device; physical modeling; plant trials
author_facet Shu-guo Zheng
Miao-yong Zhu
author_sort Shu-guo Zheng
title Optimization of flow control devices in a ten-strand billet caster tundish
title_short Optimization of flow control devices in a ten-strand billet caster tundish
title_full Optimization of flow control devices in a ten-strand billet caster tundish
title_fullStr Optimization of flow control devices in a ten-strand billet caster tundish
title_full_unstemmed Optimization of flow control devices in a ten-strand billet caster tundish
title_sort optimization of flow control devices in a ten-strand billet caster tundish
publisher Foundry Journal Agency
series China Foundry
issn 1672-6421
1672-6421
publishDate 2016-11-01
description The physical model of a ten-strand billet caster tundish was established to study the effects of various flow control devices on the melt flow. Before and after the optimization of the melt flow, the inclusion removal in the tundish was evaluated by plant trials. The physical modeling results show that when combined with a baffle, the turbulence inhibitor, instead of the impact pad, can significantly improve the melt flow. A turbulence inhibitor with a longer length of inner cavity and without an extending lip at the top of the sidewall seems to be efficient in the improvement of the melt flow. Various types and designs of baffles all influence the flow characteristics significantly. The “V” type baffles are better than the straight baffles for flow control. The “V” type baffle with four inclined holes at the sidewall away from the stopper rods is better in melt flow control than the one with one inclined hole at each sidewall. The combination of a well-designed turbulence inhibitor and an appropriate baffle shows high efficiency on improving the melt flow and an optimal proposal was presented. Plant trials indicate that, compared with the original tundish configuration in prototype, the inclusions reduce by 42% and the inclusion distribution of individual strands is more similar with the optimal one. The optimal tundish configuration effectively improves the melt flow in the ten-strand billet caster tundish.
topic billet continuous casting; ten-strand caster tundish; flow control device; physical modeling; plant trials
url http://ff.foundryworld.com/uploadfile/2016121238789937.pdf
work_keys_str_mv AT shuguozheng optimizationofflowcontroldevicesinatenstrandbilletcastertundish
AT miaoyongzhu optimizationofflowcontroldevicesinatenstrandbilletcastertundish
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