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Sökning: id:"swepub:oai:DiVA.org:ltu-85021" > Effect of varied ox...

Effect of varied oxygen levels on the oxidation of a magnetite pellet bed during pot furnace induration

Eriksson, Anna, 1985- (författare)
Luleå tekniska universitet,Mineralteknik och metallurgi
Andersson, Charlotte (författare)
Luleå tekniska universitet,Mineralteknik och metallurgi
Ahmed, Hesham (författare)
Luleå tekniska universitet,Mineralteknik och metallurgi
visa fler...
Dahlin, Anders (författare)
Luossavaara-Kiirunavaara Aktiebolag (LKAB), Sweden
Kumar, Telkicherla Kamesh Sandeep (författare)
Luossavaara-Kiirunavaara Aktiebolag (LKAB), Sweden
Semberg, Per (författare)
Luossavaara-Kiirunavaara Aktiebolag (LKAB), Sweden
visa färre...
 (creator_code:org_t)
Iron and Steel Institute of Japan, 2021
2021
Engelska.
Ingår i: ISIJ International. - : Iron and Steel Institute of Japan. - 0915-1559 .- 1347-5460. ; 61:5, s. 1439-1449
  • Tidskriftsartikel (refereegranskat)
Abstract Ämnesord
Stäng  
  • An excess amount of oxygen originating from hydrogen production is likely to be available as part of the HYBRIT (Hydrogen Breakthrough Ironmaking Technology) initiative, aimed at producing fossil-free steel by replacing coking coal with hydrogen. Oxygen enrichment during magnetite pellet induration can lead to reduced fuel amounts and increased productivity. Induration of magnetite iron ore pellets liberates considerable amounts of heat when magnetite is oxidised to hematite. Elevated oxygen levels in the process gas are expected to promote the oxidation reaction, resulting in increased process efficiency. However, more information is required to enable the transition towards a higher oxygen level process and improved production rate, while maintaining the metallurgical properties of the pellet bed. In this study, interrupted pot furnace experiments were conducted on a magnetite pellet bed (approximately 100 kg) at Luossavaara-Kiirunavaara Aktiebolag to investigate the effect of oxygen levels at approximately 6%, 13%, and 30% O2. Temperature profiles are measured and pellet properties (compression strength, porosity, oxidation degree, microstructures) are analysed at different bed heights. The higher oxygen level (approximately 30% O2) intensifies the oxidation reaction, resulting in increased temperature, oxidation rate and compression strength across the vertical bed height. Three different pellet oxidation profiles are identified, namely, homogenous oxidation across the pellet, complete oxidation of the pellet shell and an unreacted core with a sharp/distinct interface, and partial oxidation of the pellet shell and an unreacted core. A higher oxygen level results in an increased oxidation rate, while the temperature controls the pellet oxidation profile. © 2021 Iron and Steel Institute of Japan. All rights reserved.

Ämnesord

TEKNIK OCH TEKNOLOGIER  -- Materialteknik -- Metallurgi och metalliska material (hsv//swe)
ENGINEERING AND TECHNOLOGY  -- Materials Engineering -- Metallurgy and Metallic Materials (hsv//eng)

Nyckelord

Coal industry
Coking
Compressive strength
Hematite
Hydrogen production
Iron ore pellets
Iron ores
Magnetite
Oxygen
Pelletizing
Temperature control
Compression strength
Increased productivity
Increased temperature
Ironmaking technology
Metallurgical properties
Oxidation reactions
Process efficiency
Temperature profiles
Oxidation
Process Metallurgy
Processmetallurgi

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