Effect of mold rotation on inclusion distribution in bearing steel during electroslag remelting process

To remove the inclusions in the ingots by conventional electroslag remelting (ESR), the bearing steel was prepared using ESR process but with mold rotation in this study. Experimental results show a reduction in amount of large inclusions when the mold rotation rate is 6 r·min-1, and the inclusions...

Full description

Bibliographic Details
Main Authors: Chang Lizhong, Shi Xiaofang, Wang Runxi
Format: Article
Language:English
Published: Foundry Journal Agency 2014-09-01
Series:China Foundry
Subjects:
Online Access:http://foundryworld.com/uploadfile/2014103151922573.pdf
id doaj-a400d0c59b114b7a9288fe37116e0d0e
record_format Article
spelling doaj-a400d0c59b114b7a9288fe37116e0d0e2020-11-25T00:21:57ZengFoundry Journal AgencyChina Foundry1672-64211672-64212014-09-01115452456Effect of mold rotation on inclusion distribution in bearing steel during electroslag remelting processChang Lizhong0Shi Xiaofang1Wang Runxi2School of Metallurgy Engineering, Anhui University of Technology, Ma'anshan 243002, ChinaSchool of Metallurgy Engineering, Anhui University of Technology, Ma'anshan 243002, ChinaSchool of Metallurgy Engineering, Anhui University of Technology, Ma'anshan 243002, ChinaTo remove the inclusions in the ingots by conventional electroslag remelting (ESR), the bearing steel was prepared using ESR process but with mold rotation in this study. Experimental results show a reduction in amount of large inclusions when the mold rotation rate is 6 r·min-1, and the inclusions are uniformly distributed in the ESR ingot. As comparison with the electroslag ingots of conventional ESR (stationary mold), the portion of the Al2O3 inclusions smaller than 1 μm in size increase from 38% to 41.4%, whereas that of the SiO2 inclusions increases from 48% to 74% in the ingots when mold rotation is applied. This phenomenon is caused by the decrease in metal droplet size, resulting in large contact area between the slag pool and metal droplets in ESR process with mold rotation. Moreover, the metal droplets have relatively long movement routes, leading to long metal contact time between the slag pool and metal droplets when a relative motion between the consumable electrodes and mold is present. However, when the mold rotation rate is increased to 45 r·min-1, inclusion removing effect decreases. An excessive rotation rate causes wild motion in the slag pool, which drives the molten metal droplets to move violently, and as a result, the slag is entrapped into the metal pool, decreasing the ability of slag absorbing inclusions.http://foundryworld.com/uploadfile/2014103151922573.pdfelectroslag remelting; mold rotation; inclusion; metal droplet
collection DOAJ
language English
format Article
sources DOAJ
author Chang Lizhong
Shi Xiaofang
Wang Runxi
spellingShingle Chang Lizhong
Shi Xiaofang
Wang Runxi
Effect of mold rotation on inclusion distribution in bearing steel during electroslag remelting process
China Foundry
electroslag remelting; mold rotation; inclusion; metal droplet
author_facet Chang Lizhong
Shi Xiaofang
Wang Runxi
author_sort Chang Lizhong
title Effect of mold rotation on inclusion distribution in bearing steel during electroslag remelting process
title_short Effect of mold rotation on inclusion distribution in bearing steel during electroslag remelting process
title_full Effect of mold rotation on inclusion distribution in bearing steel during electroslag remelting process
title_fullStr Effect of mold rotation on inclusion distribution in bearing steel during electroslag remelting process
title_full_unstemmed Effect of mold rotation on inclusion distribution in bearing steel during electroslag remelting process
title_sort effect of mold rotation on inclusion distribution in bearing steel during electroslag remelting process
publisher Foundry Journal Agency
series China Foundry
issn 1672-6421
1672-6421
publishDate 2014-09-01
description To remove the inclusions in the ingots by conventional electroslag remelting (ESR), the bearing steel was prepared using ESR process but with mold rotation in this study. Experimental results show a reduction in amount of large inclusions when the mold rotation rate is 6 r·min-1, and the inclusions are uniformly distributed in the ESR ingot. As comparison with the electroslag ingots of conventional ESR (stationary mold), the portion of the Al2O3 inclusions smaller than 1 μm in size increase from 38% to 41.4%, whereas that of the SiO2 inclusions increases from 48% to 74% in the ingots when mold rotation is applied. This phenomenon is caused by the decrease in metal droplet size, resulting in large contact area between the slag pool and metal droplets in ESR process with mold rotation. Moreover, the metal droplets have relatively long movement routes, leading to long metal contact time between the slag pool and metal droplets when a relative motion between the consumable electrodes and mold is present. However, when the mold rotation rate is increased to 45 r·min-1, inclusion removing effect decreases. An excessive rotation rate causes wild motion in the slag pool, which drives the molten metal droplets to move violently, and as a result, the slag is entrapped into the metal pool, decreasing the ability of slag absorbing inclusions.
topic electroslag remelting; mold rotation; inclusion; metal droplet
url http://foundryworld.com/uploadfile/2014103151922573.pdf
work_keys_str_mv AT changlizhong effectofmoldrotationoninclusiondistributioninbearingsteelduringelectroslagremeltingprocess
AT shixiaofang effectofmoldrotationoninclusiondistributioninbearingsteelduringelectroslagremeltingprocess
AT wangrunxi effectofmoldrotationoninclusiondistributioninbearingsteelduringelectroslagremeltingprocess
_version_ 1725360410647855104