Materials Properties and Liquid Flow in the Hearth of the Experimental Blast Furnace

The materials’ properties in the hearth of the blast furnace are very crucial for the hearth conditions. In this study, a number of coke, slag, metal, and aggregate samples were collected from the hearth of the LKAB’s experimental blast furnace (EBF). Subsequently, the coke, slag...

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Main Authors: Xianfeng Hu, Lena Sundqvist Ökvist, Martin Ölund
Format: Article
Language:English
Published: MDPI AG 2019-05-01
Series:Metals
Subjects:
Online Access:https://www.mdpi.com/2075-4701/9/5/572
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spelling doaj-32c270ce00bf4645a7a399e4575d8a902020-11-25T01:17:09ZengMDPI AGMetals2075-47012019-05-019557210.3390/met9050572met9050572Materials Properties and Liquid Flow in the Hearth of the Experimental Blast FurnaceXianfeng Hu0Lena Sundqvist Ökvist1Martin Ölund2Process Metallurgy Department, SWERIM AB, SE-97125 Luleå, SwedenProcess Metallurgy Department, SWERIM AB, SE-97125 Luleå, SwedenProcess Metallurgy Department, SWERIM AB, SE-97125 Luleå, SwedenThe materials’ properties in the hearth of the blast furnace are very crucial for the hearth conditions. In this study, a number of coke, slag, metal, and aggregate samples were collected from the hearth of the LKAB’s experimental blast furnace (EBF). Subsequently, the coke, slag, and metal samples were chemically analyzed by X-ray fluorescence (XRF) or optical emission spectrometer (OES); the aggregate samples were analyzed by scanning electron microscope combined with energy-dispersive X-ray spectroscopy (SEM/EDS). The possible flow field of the liquid in the EBF hearth before quenching is depicted according to Cu tracers in the metal samples. Selected elements in the coke, slag, and metal were mapped for two sampling layers in the hearth, as well as in one cross section of the flow field. The results indicate that there exists an area beneath, and in front of, tuyere 3, where the flow resistance of the liquid was high. The high flow resistance contributed to the formation of a cold zone in the close-to-wall region and at the bottom of the EBF hearth. The temperature distribution in the EBF hearth has significant impacts on the chemical properties of the materials in different positions of the EBF hearth, as well as on the radial and vertical distributions of certain elements/components.https://www.mdpi.com/2075-4701/9/5/572blast furnacehearth conditionsmaterials properties
collection DOAJ
language English
format Article
sources DOAJ
author Xianfeng Hu
Lena Sundqvist Ökvist
Martin Ölund
spellingShingle Xianfeng Hu
Lena Sundqvist Ökvist
Martin Ölund
Materials Properties and Liquid Flow in the Hearth of the Experimental Blast Furnace
Metals
blast furnace
hearth conditions
materials properties
author_facet Xianfeng Hu
Lena Sundqvist Ökvist
Martin Ölund
author_sort Xianfeng Hu
title Materials Properties and Liquid Flow in the Hearth of the Experimental Blast Furnace
title_short Materials Properties and Liquid Flow in the Hearth of the Experimental Blast Furnace
title_full Materials Properties and Liquid Flow in the Hearth of the Experimental Blast Furnace
title_fullStr Materials Properties and Liquid Flow in the Hearth of the Experimental Blast Furnace
title_full_unstemmed Materials Properties and Liquid Flow in the Hearth of the Experimental Blast Furnace
title_sort materials properties and liquid flow in the hearth of the experimental blast furnace
publisher MDPI AG
series Metals
issn 2075-4701
publishDate 2019-05-01
description The materials’ properties in the hearth of the blast furnace are very crucial for the hearth conditions. In this study, a number of coke, slag, metal, and aggregate samples were collected from the hearth of the LKAB’s experimental blast furnace (EBF). Subsequently, the coke, slag, and metal samples were chemically analyzed by X-ray fluorescence (XRF) or optical emission spectrometer (OES); the aggregate samples were analyzed by scanning electron microscope combined with energy-dispersive X-ray spectroscopy (SEM/EDS). The possible flow field of the liquid in the EBF hearth before quenching is depicted according to Cu tracers in the metal samples. Selected elements in the coke, slag, and metal were mapped for two sampling layers in the hearth, as well as in one cross section of the flow field. The results indicate that there exists an area beneath, and in front of, tuyere 3, where the flow resistance of the liquid was high. The high flow resistance contributed to the formation of a cold zone in the close-to-wall region and at the bottom of the EBF hearth. The temperature distribution in the EBF hearth has significant impacts on the chemical properties of the materials in different positions of the EBF hearth, as well as on the radial and vertical distributions of certain elements/components.
topic blast furnace
hearth conditions
materials properties
url https://www.mdpi.com/2075-4701/9/5/572
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AT lenasundqvistokvist materialspropertiesandliquidflowinthehearthoftheexperimentalblastfurnace
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