Multiphase Model for the Prediction of Shrinkage Cavity, Inclusion and Macrosegregation in a 36-Ton Steel Ingot
A five-phase model consisting of a liquid phase, columnar dendrites, equiaxed grains, air, and inclusion (discrete phase) is developed to predict the shrinkage cavity, inclusion distribution and macrosegregation simultaneously during solidification of a 36-ton steel ingot. The air phase is introduce...
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Frontiers Media S.A.
2020-11-01
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Online Access: | https://www.frontiersin.org/articles/10.3389/fmats.2020.577290/full |
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doaj-468da7400fe5477ca9f4d6f7a91c19452020-11-25T04:12:28ZengFrontiers Media S.A.Frontiers in Materials2296-80162020-11-01710.3389/fmats.2020.577290577290Multiphase Model for the Prediction of Shrinkage Cavity, Inclusion and Macrosegregation in a 36-Ton Steel IngotMengye XieHoufa ShenA five-phase model consisting of a liquid phase, columnar dendrites, equiaxed grains, air, and inclusion (discrete phase) is developed to predict the shrinkage cavity, inclusion distribution and macrosegregation simultaneously during solidification of a 36-ton steel ingot. The air phase is introduced to feed the shrinkage cavity and no mass or species exchange with other phases occurs. The transport and entrapment of inclusions are simulated using a Lagrangian approach. The predicted results agree well with the experimental results. The characteristics of inclusion distribution are better understood. A thin layer of inclusions tends to form close to the mold wall, and more inclusions reside in the last solidified segregation channels. The inclusion is easy to aggregate near the riser neck, and it is dragged by the solidification shrinkage. The influence of the inclusion on macrosegregation is comparatively small, while the solidification shrinkage affects the formation of macrosegregation significantly and makes the simulation result more accurate.https://www.frontiersin.org/articles/10.3389/fmats.2020.577290/fullmacrosegregationinclusionsolidification shrinkagenumerical simulationmultiphase model |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Mengye Xie Houfa Shen |
spellingShingle |
Mengye Xie Houfa Shen Multiphase Model for the Prediction of Shrinkage Cavity, Inclusion and Macrosegregation in a 36-Ton Steel Ingot Frontiers in Materials macrosegregation inclusion solidification shrinkage numerical simulation multiphase model |
author_facet |
Mengye Xie Houfa Shen |
author_sort |
Mengye Xie |
title |
Multiphase Model for the Prediction of Shrinkage Cavity, Inclusion and Macrosegregation in a 36-Ton Steel Ingot |
title_short |
Multiphase Model for the Prediction of Shrinkage Cavity, Inclusion and Macrosegregation in a 36-Ton Steel Ingot |
title_full |
Multiphase Model for the Prediction of Shrinkage Cavity, Inclusion and Macrosegregation in a 36-Ton Steel Ingot |
title_fullStr |
Multiphase Model for the Prediction of Shrinkage Cavity, Inclusion and Macrosegregation in a 36-Ton Steel Ingot |
title_full_unstemmed |
Multiphase Model for the Prediction of Shrinkage Cavity, Inclusion and Macrosegregation in a 36-Ton Steel Ingot |
title_sort |
multiphase model for the prediction of shrinkage cavity, inclusion and macrosegregation in a 36-ton steel ingot |
publisher |
Frontiers Media S.A. |
series |
Frontiers in Materials |
issn |
2296-8016 |
publishDate |
2020-11-01 |
description |
A five-phase model consisting of a liquid phase, columnar dendrites, equiaxed grains, air, and inclusion (discrete phase) is developed to predict the shrinkage cavity, inclusion distribution and macrosegregation simultaneously during solidification of a 36-ton steel ingot. The air phase is introduced to feed the shrinkage cavity and no mass or species exchange with other phases occurs. The transport and entrapment of inclusions are simulated using a Lagrangian approach. The predicted results agree well with the experimental results. The characteristics of inclusion distribution are better understood. A thin layer of inclusions tends to form close to the mold wall, and more inclusions reside in the last solidified segregation channels. The inclusion is easy to aggregate near the riser neck, and it is dragged by the solidification shrinkage. The influence of the inclusion on macrosegregation is comparatively small, while the solidification shrinkage affects the formation of macrosegregation significantly and makes the simulation result more accurate. |
topic |
macrosegregation inclusion solidification shrinkage numerical simulation multiphase model |
url |
https://www.frontiersin.org/articles/10.3389/fmats.2020.577290/full |
work_keys_str_mv |
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