Numerical simulation of BF ironmaking process with consideration of silica reduction
ID:38 View Protection:ATTENDEE Updated Time:2024-04-09 22:05:49 Hits:565 Oral Presentation

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Abstract
In an ironmaking blast furnace (BF), ferrous materials melt into liquid in cohesive zone (CZ) and penetrates through coke bed to hearth while interacting with gas and solid flow. The liquid behavior can significantly affect the bed permeability, gas and liquid distributions and associated heat and mass transfer in the lower part of BF, especially when smelting different ore types. It largely determines BF process stability. Because of harsh operating conditions, effective tools are still lacking to quantify the liquid flow and its influence on BF performance. Our study aimed to solve this problem by further developing the liquid flow model based on our recent CFD process model. Particularly, the silicon reduction and carburization occurring in BF lower part are explicitly modelled in this work. The effects of blast temperature and silica content in coke ash are investigated to validate the model applicability. Additionally, different burden distributions are tested to lower the silicon content in HM. The proposed work can provide an extended applicability to describe the silicon transfer in the BF lower part to guide practical production.
Keywords
blast furnace,liquid flow,silicon transfer,CFD process model
Speaker
刘彦聪
monash university

Submission Author
刘彦聪 monash university
匡世波 monash university
焦璐璐 东南大学
余艾冰 monash university
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Important Date
  • Conference Date

    May 31

    2024

    to

    Jun 03

    2024

  • Jun 03 2024

    Abstract Submission Deadline

  • Jun 03 2024

    Draft paper submission deadline

  • Jun 03 2024

    Registration deadline

Sponsored By
Panel of Computational Mechanics on Granular Materials
Working Party of Computational Mechanics
Chinese Society of Theoretical and Applied Mechanics
Organized By
Hohai University
Dalian University of Technology
Chinese Society of Particuology
Jiangsu Society of Theoretical and Applied Mechanics
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