A Simulation Study on the Flow Behavior of Liquid Steel in Tundish with Annular Argon Blowing in the Upper Nozzle

A three-dimensional mathematical model of gas−liquid two-phase flow has been established to study the flow behavior of liquid steel in the tundish. The effect of the argon flow rate and casting speed on the flow behavior of liquid steel, as well as the migration behavior of argon bubbles,...

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Main Authors: Xufeng Qin, Changgui Cheng, Yang Li, Chunming Zhang, Jinlei Zhang, Yan Jin
Format: Article
Language:English
Published: MDPI AG 2019-02-01
Series:Metals
Subjects:
Online Access:https://www.mdpi.com/2075-4701/9/2/225
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spelling doaj-1e866b18192e4b35819907bb177f6fbf2020-11-25T00:04:05ZengMDPI AGMetals2075-47012019-02-019222510.3390/met9020225met9020225A Simulation Study on the Flow Behavior of Liquid Steel in Tundish with Annular Argon Blowing in the Upper NozzleXufeng Qin0Changgui Cheng1Yang Li2Chunming Zhang3Jinlei Zhang4Yan Jin5The State Key Laboratory of Refractories and Metallurgy, Wuhan University of Science and Technology, Wuhan 430081, ChinaThe State Key Laboratory of Refractories and Metallurgy, Wuhan University of Science and Technology, Wuhan 430081, ChinaThe State Key Laboratory of Refractories and Metallurgy, Wuhan University of Science and Technology, Wuhan 430081, ChinaThe State Key Laboratory of Refractories and Metallurgy, Wuhan University of Science and Technology, Wuhan 430081, ChinaThe State Key Laboratory of Refractories and Metallurgy, Wuhan University of Science and Technology, Wuhan 430081, ChinaThe State Key Laboratory of Refractories and Metallurgy, Wuhan University of Science and Technology, Wuhan 430081, ChinaA three-dimensional mathematical model of gas&#8722;liquid two-phase flow has been established to study the flow behavior of liquid steel in the tundish. The effect of the argon flow rate and casting speed on the flow behavior of liquid steel, as well as the migration behavior of argon bubbles, was investigated. The results from the mathematical model were found to be consistent with those from the tundish water model. There were some swirl flows around the stopper when the annular argon blowing process was adopted; the flow of liquid steel near the liquid surface was active around the stopper. With increased argon flow rate, the vortex range and intensity around the stopper gradually increased, and the vertical flow velocity of the liquid steel in the vicinity of the stopper increased; the argon volume flow in the tundish and mold all increased. With increased casting speed, the vortex range and intensity around the stopper gradually decreased, the peak value of vertical flow velocity of liquid steel at the vicinity of the stopper decreased, and the distribution and ratio of argon volume flow between the tundish and the mold decreased. To avoid slag entrapment and purify the liquid steel, the argon flow rate should not be more than 3 L&#183;min<sup>&#8722;1</sup>. These results provide a theoretical basis to optimize the parameters of the annular argon blowing at the upper nozzle and improve the slab quality.https://www.mdpi.com/2075-4701/9/2/225annular argon blowingupper nozzleflow behaviorargon gas distributiontundish
collection DOAJ
language English
format Article
sources DOAJ
author Xufeng Qin
Changgui Cheng
Yang Li
Chunming Zhang
Jinlei Zhang
Yan Jin
spellingShingle Xufeng Qin
Changgui Cheng
Yang Li
Chunming Zhang
Jinlei Zhang
Yan Jin
A Simulation Study on the Flow Behavior of Liquid Steel in Tundish with Annular Argon Blowing in the Upper Nozzle
Metals
annular argon blowing
upper nozzle
flow behavior
argon gas distribution
tundish
author_facet Xufeng Qin
Changgui Cheng
Yang Li
Chunming Zhang
Jinlei Zhang
Yan Jin
author_sort Xufeng Qin
title A Simulation Study on the Flow Behavior of Liquid Steel in Tundish with Annular Argon Blowing in the Upper Nozzle
title_short A Simulation Study on the Flow Behavior of Liquid Steel in Tundish with Annular Argon Blowing in the Upper Nozzle
title_full A Simulation Study on the Flow Behavior of Liquid Steel in Tundish with Annular Argon Blowing in the Upper Nozzle
title_fullStr A Simulation Study on the Flow Behavior of Liquid Steel in Tundish with Annular Argon Blowing in the Upper Nozzle
title_full_unstemmed A Simulation Study on the Flow Behavior of Liquid Steel in Tundish with Annular Argon Blowing in the Upper Nozzle
title_sort simulation study on the flow behavior of liquid steel in tundish with annular argon blowing in the upper nozzle
publisher MDPI AG
series Metals
issn 2075-4701
publishDate 2019-02-01
description A three-dimensional mathematical model of gas&#8722;liquid two-phase flow has been established to study the flow behavior of liquid steel in the tundish. The effect of the argon flow rate and casting speed on the flow behavior of liquid steel, as well as the migration behavior of argon bubbles, was investigated. The results from the mathematical model were found to be consistent with those from the tundish water model. There were some swirl flows around the stopper when the annular argon blowing process was adopted; the flow of liquid steel near the liquid surface was active around the stopper. With increased argon flow rate, the vortex range and intensity around the stopper gradually increased, and the vertical flow velocity of the liquid steel in the vicinity of the stopper increased; the argon volume flow in the tundish and mold all increased. With increased casting speed, the vortex range and intensity around the stopper gradually decreased, the peak value of vertical flow velocity of liquid steel at the vicinity of the stopper decreased, and the distribution and ratio of argon volume flow between the tundish and the mold decreased. To avoid slag entrapment and purify the liquid steel, the argon flow rate should not be more than 3 L&#183;min<sup>&#8722;1</sup>. These results provide a theoretical basis to optimize the parameters of the annular argon blowing at the upper nozzle and improve the slab quality.
topic annular argon blowing
upper nozzle
flow behavior
argon gas distribution
tundish
url https://www.mdpi.com/2075-4701/9/2/225
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