, Breakthrough Ironmaking Technology) Brochure. Available online, p.28, 2020.
, , p.28, 2020.
Salzgitter Mannesmann Forschung GmbH, p.28, 2020. ,
Hydrogen-Based Steelmaking to Begin in Hamburg, p.28, 2020. ,
, The Hydrogen Council, Hydrogen Scaling Up, p.28, 2020.
, Energy Efficiency and CO 2 Reduction in the Iron and Steel Industry, p.28, 2020.
Modeling and simulation of hydrogen injection into a blast furnace to reduce carbon dioxide emissions, J. Clean, vol.154, pp.488-501, 2017. ,
Assessment of hydrogen direct reduction for fossil-free steelmaking, J. Clean. Prod, vol.203, pp.736-745, 2018. ,
, Molten Oxide Electrolysis. Boston Metals. Available online, p.28, 2020.
Development of New Methodologies for Industrial CO 2 -Free Steel Production by Electrowinning, p.28, 2020. ,
Present needs, recent progress and future trends of energy-efficient Ultra-Low Carbon Dioxide (CO 2 ) Steelmaking (ULCOS) program, Renew. Sustain. Energy Rev, vol.55, pp.537-549, 2016. ,
Fluidized-bed technology for the production of iron products for steelmaking, J. S. Afr. Inst. Min. Metall, vol.108, pp.121-128, 2009. ,
Circored fine ore direct reduction-the future of modern electric steelmaking, vol.126, pp.47-51, 2006. ,
Society, materials, and the environment: The case of steel, Metals 2020, vol.10 ,
Etude Expérimentale et Modélisation de la Réduction du Minerai de fer par L'Hydrogène, p.28, 2008. ,
Modeling of counter current moving bed gas-solid reactor used in direct reduction of iron ore, Chem. Eng. J, vol.104, pp.35-43, 2004. ,
Numerical investigation of nonisothermal reduction of haematite using syngas: The shaft scale study, Model. Simul. Mater. Sci. Eng, vol.15, pp.487-507, 2007. ,
Modeling and Simulation of the MIDREX Shaft Furnace: Reduction, Transition and Cooling Zones, JOM, vol.67, pp.2681-2689, 2015. ,
Detailed Modeling of the Direct Reduction of Iron Ore in a Shaft Furnace, Materials, vol.11, 1865. ,
URL : https://hal.archives-ouvertes.fr/hal-02158114
Modelling a new, low CO 2 emissions, hydrogen steelmaking process, J. Clean. Prod, vol.46, pp.27-35, 2013. ,
URL : https://hal.archives-ouvertes.fr/hal-00943356
, Phénomène de Collage et Modélisation, p.28, 2011.
A Review on the Modeling of Gaseous Reduction of Iron Oxide Pellets, Steel Res. Int, vol.91, 2020. ,
Defluidization of iron ore during reduction by hydrogen in a fluidized bed, Chem. Eng. Progress Symp. Ser, vol.66, pp.208-214, 1970. ,
The law of additive reaction times in fluid-solid reactions, Metall. Trans, vol.9, pp.89-96, 1978. ,
Reduction kinetics of commercial low-silica hematite pellets with CO-H 2 mixtures over temperatures range 600-1234 ? C, Ironmak. Steelmak, vol.6, pp.237-249, 1981. ,
Kinetic analysis of the iron oxide reduction using hydrogen-carbon monoxide mixtures as reducing agent, ISIJ Int, vol.45, pp.155-1260, 2005. ,
Modélisation Mathématique Détaillée du Procédé de Réduction Directe du Minerai de fer, p.28, 2017. ,
, This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license, © 2020 by the authors. Licensee MDPI