skip to main content
OSTI.GOV title logo U.S. Department of Energy
Office of Scientific and Technical Information

Title: Modelling of Blast Furnace with Respective Chemical Reactions in Coke and Ore Burden Layers

Journal Article · · Metallurgical and Materials Transactions B, Process Metallurgy and Materials Processing Science
;  [1]
  1. University of New South Wales, School of Chemical Engineering (Australia)

The ironmaking blast furnace (BF) is an efficient chemical reactor for producing liquid iron from solid iron ore, where the solids of coke and iron ore are charged in alternative layers and different chemical reactions occur in the two solid layers as they descend. Such respective reacting burden layers have not been considered explicitly in the previous BF models. In this article, a mathematical model based on multi-fluid theory is developed for describing the multiphase reacting flows considering the respective reacting burden layers. Then, this model is applied to a BF, covering the area from the burden surface at the furnace top to the liquid surface above the hearth, to describe the inner states of a BF in terms of the multiphase flows, temperature distribution and reduction process. The results show that some key important features in the layered burden with respective chemical reactions are captured, including fluctuating iso-lines in terms of gas flow and thermochemical behaviours; particularly the latter cannot be well captured in the previous BF models. The temperature difference between gas–solid phases is found to be larger near the raceway, at the cohesive zone and at the furnace top, and the thermal reserved zone can be identified near the shaft. Three chemical reserve zones of hematite, magnetite and wustite can also be observed near the stockline, in the shaft near the wall and near centre, respectively. Inside each reserve zone, the corresponding ferrous oxides stay constantly high in alternative layers; the overall performance indicators including gas utilization efficiency and reduction degree also stay stable in an alternative-layered structure. This model provides a cost-effective tool to investigate the BF in-furnace process and optimize BF operation.

OSTI ID:
22857842
Journal Information:
Metallurgical and Materials Transactions B, Process Metallurgy and Materials Processing Science, Vol. 49, Issue 5; Other Information: Copyright (c) 2018 The Minerals, Metals & Materials Society and ASM International; http://www.springer-ny.com; Country of input: International Atomic Energy Agency (IAEA); ISSN 1073-5615
Country of Publication:
United States
Language:
English

Similar Records

CFD modeling of multiphase reacting flow in blast furnace shaft with layered burden
Journal Article · Thu Feb 13 00:00:00 EST 2014 · Applied Thermal Engineering · OSTI ID:22857842

Model Study of Blast Furnace Operation with Central Coke Charging
Journal Article · Tue Oct 15 00:00:00 EDT 2019 · Metallurgical and Materials Transactions. B, Process Metallurgy and Materials Processing Science · OSTI ID:22857842

Numerical Methods for Simulating the Reduction of Iron Ore in Blast Furnace Shaft
Journal Article · Fri Jan 24 00:00:00 EST 2014 · Journal of Heat Transfer · OSTI ID:22857842