Numerical study on ladle baking process of oxy-fuel combustion

Ladle baking technology is a widely adopted method in the iron and steel industry. For reducing defects such as centre segregation of billet, it is crucial to minimize the heat loss of molten steel; maintaining a high drawing speed and low superheat during the continuous casting process. Nevertheles...

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Main Authors: Qi Fengsheng, Shan Jianbiao, Li Baokuan, Baleta Jakov
Format: Article
Language:English
Published: VINCA Institute of Nuclear Sciences 2020-01-01
Series:Thermal Science
Subjects:
Online Access:http://www.doiserbia.nb.rs/img/doi/0354-9836/2020/0354-98362000272Q.pdf
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spelling doaj-19f7b03860f8466093fdcd8fde61e6702021-02-05T08:41:42ZengVINCA Institute of Nuclear SciencesThermal Science0354-98362334-71632020-01-01246 Part A3511352010.2298/TSCI200318272Q0354-98362000272QNumerical study on ladle baking process of oxy-fuel combustionQi Fengsheng0Shan Jianbiao1Li Baokuan2Baleta Jakov3School of Metallurgy, Northeastern University, Shenyang, ChinaSchool of Metallurgy, Northeastern University, Shenyang, ChinaSchool of Metallurgy, Northeastern University, Shenyang, ChinaDepartment of Energy, Power Engineering and Environment, University of Zagreb, Faculty of Mechanical Engineering and Naval Architecture, Zagreb, CroatiaLadle baking technology is a widely adopted method in the iron and steel industry. For reducing defects such as centre segregation of billet, it is crucial to minimize the heat loss of molten steel; maintaining a high drawing speed and low superheat during the continuous casting process. Nevertheless, it is well known that the traditional air combustion ladle baking technology suffers from high energy consumption and severe pollution problems. On the other hand, the oxy-fuel combustion technology where fuel combustion is supported by pure oxygen offers many attractive advantages, including high theoretical combustion temperature, low flue gas emission, and enhanced heat transfer of gas radiation. Unfortunately, up to date, limited researches have been carried to understand the potential of the technology. In the present study, a 3-D mathematical model has been established considering the details of turbulent combustion behaviour and its coupling effects on the heat transfer phenomenon during ladle baking process. Considering the difference between gas radiation in oxygen-enriched combustion and the traditional air-assisted combustion, a modified weighted sum of gray gases model were introduced and compared with the conventional model. Based on the established mathematical model, the operation efficiency of the oxy-fuel combustion and air combustion technologies were studied in details. Numerical results show that the oxy-fuel combustion is more efficient and achieves a potential fuel savings of 41.6%.http://www.doiserbia.nb.rs/img/doi/0354-9836/2020/0354-98362000272Q.pdfenergy consumptionoxy-fuel combustionladle bakingmathematical modelheat transfer
collection DOAJ
language English
format Article
sources DOAJ
author Qi Fengsheng
Shan Jianbiao
Li Baokuan
Baleta Jakov
spellingShingle Qi Fengsheng
Shan Jianbiao
Li Baokuan
Baleta Jakov
Numerical study on ladle baking process of oxy-fuel combustion
Thermal Science
energy consumption
oxy-fuel combustion
ladle baking
mathematical model
heat transfer
author_facet Qi Fengsheng
Shan Jianbiao
Li Baokuan
Baleta Jakov
author_sort Qi Fengsheng
title Numerical study on ladle baking process of oxy-fuel combustion
title_short Numerical study on ladle baking process of oxy-fuel combustion
title_full Numerical study on ladle baking process of oxy-fuel combustion
title_fullStr Numerical study on ladle baking process of oxy-fuel combustion
title_full_unstemmed Numerical study on ladle baking process of oxy-fuel combustion
title_sort numerical study on ladle baking process of oxy-fuel combustion
publisher VINCA Institute of Nuclear Sciences
series Thermal Science
issn 0354-9836
2334-7163
publishDate 2020-01-01
description Ladle baking technology is a widely adopted method in the iron and steel industry. For reducing defects such as centre segregation of billet, it is crucial to minimize the heat loss of molten steel; maintaining a high drawing speed and low superheat during the continuous casting process. Nevertheless, it is well known that the traditional air combustion ladle baking technology suffers from high energy consumption and severe pollution problems. On the other hand, the oxy-fuel combustion technology where fuel combustion is supported by pure oxygen offers many attractive advantages, including high theoretical combustion temperature, low flue gas emission, and enhanced heat transfer of gas radiation. Unfortunately, up to date, limited researches have been carried to understand the potential of the technology. In the present study, a 3-D mathematical model has been established considering the details of turbulent combustion behaviour and its coupling effects on the heat transfer phenomenon during ladle baking process. Considering the difference between gas radiation in oxygen-enriched combustion and the traditional air-assisted combustion, a modified weighted sum of gray gases model were introduced and compared with the conventional model. Based on the established mathematical model, the operation efficiency of the oxy-fuel combustion and air combustion technologies were studied in details. Numerical results show that the oxy-fuel combustion is more efficient and achieves a potential fuel savings of 41.6%.
topic energy consumption
oxy-fuel combustion
ladle baking
mathematical model
heat transfer
url http://www.doiserbia.nb.rs/img/doi/0354-9836/2020/0354-98362000272Q.pdf
work_keys_str_mv AT qifengsheng numericalstudyonladlebakingprocessofoxyfuelcombustion
AT shanjianbiao numericalstudyonladlebakingprocessofoxyfuelcombustion
AT libaokuan numericalstudyonladlebakingprocessofoxyfuelcombustion
AT baletajakov numericalstudyonladlebakingprocessofoxyfuelcombustion
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