The greening of steel: Modifying a novel open bath furnace (OBF) slag for use in cement

dc.contributor.authorKalenga, Moise Mahmoud
dc.contributor.supervisorKleynhans, Ernst
dc.contributor.supervisorGaylard, Jeremy
dc.contributor.supervisorden Hoed, Paul
dc.contributor.supervisorKanjee, Janina
dc.date.accessioned2026-08-04T15:09:32Z
dc.date.issued2025-03
dc.departmentChemical Engineering
dc.descriptionA dissertation submitted in fulfilment of the requirements for the degree Master of Science in Engineering, to the Faculty of Engineering and the Built Environment, School of Chemical and Metallurgical Engineering, University of the Witwatersrand, Johannesburg, 2025
dc.description.abstractIn response to the need for lower CO₂ emissions in ironmaking, steelmakers explored alternatives to traditional blast furnace (BF) technology. One such alternative was the Direct Reduced Iron Open Bath Furnace (DRI-OBF). As with BF slag, which has been widely used as a clinker substitute in cement, this study evaluated the potential of DRI-OBF slag for cementitious applications. OBF slag was produced in a 1 MW prototype furnace, chemically adjusted during smelting, and water-quenched to form a glassy slag comparable to ground granulated blast furnace slag (GGBFS). Two composite OBF slag samples were prepared and compared with BF slags from ArcelorMittal (South Africa) and Thyssenkrupp (Germany), with fineness levels standardized around 275–296 m²/kg. Mortar and paste mixes were tested for workability, strength development, drying shrinkage, chemical reactivity, and hydration phase evolution. Cementitious performance was influenced by slag fineness, chemical composition, glass content, and substitution ratio. With similar composition and glass content across samples, performance differences were primarily attributed to fineness. Increased fineness enhanced early strength gain but raised water demand and reduced workability. Slag reactivity—governed by fineness and composition—influenced heat evolution and strength development at later stages of curing. The hydration phases in slag–cement blends were similar for both BF and OBF slags, forming C-S-H, C-H, and C-A-S-H. Due to its lower sulphur content, OBF slag formed hydrotalcite or hydrogarnet rather than ettringite. Mortar specimens containing OBF slag exhibited a reduced greening effect, consistent with the lower sulphur levels. Environmentally, OBF slag demonstrated strong potential as a clinker replacement. Its production route via electric smelting offered CO₂ reductions of up to 50% with natural gas, or up to 90% when green hydrogen was used. In cement applications, OBF slag reduced emissions by up to 60% per ton and lowered energy demand associated with clinker production. It also allowed broader use of lower-grade iron ores and aligned with emerging low-carbon steel routes such as DRI–OBF and DRI/Scrap–EAF. As the availability of fly ash and GGBFS declines, OBF slag and calcined clays were identified as promising supplementary cementitious materials (SCMs). For optimal performance, the slag was recommended to meet key criteria: ≥95% glass content, ≥300 m²/kg fineness, 80% of particles < 40 μm, and <5% impurities. To improve refractory lifespan, a second-generation slag (OBF Gen2) was proposed, produced in a slag valorisation furnace (SVF). This MgO-saturated slag was less corrosive and was expected to deliver improved cementitious performance, though further testing was required. A techno-economic comparison between DRI-OBF and DRI-OBF-SVF routes was also suggested. In summary, OBF slag proved to be a sustainable SCM with potential benefits for both the steel and cement industries. Continued research was recommended to optimize its chemistry and performance as a viable replacement for conventional GGBFS.
dc.description.sponsorshipMetix (Pty) Ltd (SMS Group)
dc.description.submitterMMM2026
dc.facultyFaculty of Engineering and the Built Environment
dc.identifier0009-0008-3084-8252
dc.identifier.citationKalenga, Moise Mahmoud. (2025). The greening of steel: Modifying a novel open bath furnace (OBF) slag for use in cement. [Master's dissertation, University of the Witwatersrand, Johannesburg]. WIReDSpace. https://hdl.handle.net/10539/49733
dc.identifier.urihttps://hdl.handle.net/10539/49733
dc.language.isoen
dc.publisherUniversity of the Witwatersrand, Johannesburg
dc.rights©2025 University of the Witwatersrand, Johannesburg. All rights reserved. The copyright in this work vests in the University of the Witwatersrand, Johannesburg. No part of this work may be reproduced or transmitted in any form or by any means, without the prior written permission of University of the Witwatersrand, Johannesburg.
dc.rights.holderUniversity of the Witwatersrand, Johannesburg
dc.schoolSchool of Chemical and Metallurgical Engineering
dc.subjectIron and steelmaking
dc.subjectLow CO2 cement
dc.subjectOpen bath mace slag
dc.subjectBlast fumace slag
dc.subjectSupplementary cementitious material
dc.subjectSlag valorisation
dc.subjectCO2 emission reduction
dc.subjectGreen ironmaking
dc.subjectUCTD
dc.subject.primarysdgSDG-9: Industry, innovation and infrastructure
dc.subject.secondarysdgSDG-13: Climate action
dc.titleThe greening of steel: Modifying a novel open bath furnace (OBF) slag for use in cement
dc.typeDissertation

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