Issue
Matériaux & Techniques
Volume 109, Number 3-4, 2021
Special Issue on ‘Overview, state of the art, recent developments and future trends regarding Hydrogen route for a green steel making process’, edited by Ismael Matino and Valentina Colla
Article Number 305
Number of page(s) 9
Section Modélisation et simulation : procédés d’élaboration et de traitement / Modelling and simulation: materials processing
DOI https://doi.org/10.1051/mattech/2022002
Published online 18 February 2022
  1. World Steel Association, Steel Statistical Yearbook 2019, World Steel Association, 2019 [Google Scholar]
  2. P. Dahlmann, H.B. Lüngen, M. Sprecher, Steel roadmap for low carbon Europe 2050, in: Technical results, in European steel technology and application days, Düsseldorf, 2019 [Google Scholar]
  3. EUROFER, European steel in figures 2020, EUROFER, 2020 [Google Scholar]
  4. M. Wörtler, F. Schuler, N. Voigt, et al., Steel’s contribution to a low-carbon Europe 2050, The Boston Consulting Group, Steel Instiute VDEh, 2013 [Google Scholar]
  5. European Commission, The European Green Deal, European Commission, Brussels, 2019 [Google Scholar]
  6. A. Ito, A. Lecat, The future of steelmaking − How the European steel industry can achieve carbon neutrality, Roland Berger, 2020 [Google Scholar]
  7. EUROFER, A steel roadmap for a low carbon Europe 2050, EUROFER, 2013 [Google Scholar]
  8. EUROFER, Low carbon roadmap. Pathways to a CO2-neutral European steel industry, EUROFER, Brussels, 2019 [Google Scholar]
  9. M. Draxler, Carbon direct avoidance, in: LowCarbonFuture Final Webinar, 2020 [Google Scholar]
  10. K. Rechberger, A. Spanlang, A. Sasiain Conde, H. Wolfmeir, C. Harris, Green hydrogen-based direct reduction for low carbon steelmaking, Steel Res. Int. 91(11) (2020) [Google Scholar]
  11. V. Vogl, M. Åhman, Assessment of hydrogen direct reduction for fossil-free steelmaking, J. Clean. Prod. 203, 736–745 (2018) [CrossRef] [Google Scholar]
  12. M. Hölling, M. Weng, S. Gellert, Bewertung der Herstellung von Eisenschwamm unter Verwendung von Wasserstoff, Stahl und Eisen, 137, 47–53 (2017) [Google Scholar]
  13. J. Ripke, J. Kopfle, MIDREX H2: ultimate low CO2 ironmaking and its place in the new hydrogen economy, in: Direct from Midrex, 3rd Quarter 2017, Midrex, 2017, pp. 7–12 [Google Scholar]
  14. N. Müller, G. Herz, A. Redenius, V. Hille, E. Reichelt, M. Jahn, Assessment of the transition from coal-based steelmaking to hydrogen-based steelmaking, METEC & 4th ESTAD, Düsseldorf, 2019 [Google Scholar]
  15. A. Zaccara, A. Petrucciani, I. Matino, et al., Renewable hydrogen production processes for the off-gas valorization in integrated steelworks through hydrogen intensified methane and methanol syntheses, Metals 10(11), 1–24 (2020) [Google Scholar]
  16. H2FUTURE Project, https://www.h2future-project.eu/ [Online] [Google Scholar]
  17. M. Weigel, Ganzheitliche Bewertung zukünftig verfügbarer primärer Stahlherstellungsverfahren. Einschätzung der möglichen Rolle von Wasserstoff als Reduktionsmittel, Wuppertal, 2014 [Google Scholar]
  18. N. Pardo, J. Moya, K. Vatopoulos, Prospective scenarios on energy efficiency and CO2 emissions in the EU Iron & Steel Industry, European Commission, 2012 [Google Scholar]
  19. V. Chevrier, Slow road to recovery for DR-grade pellets, in: Direct from Midrex. 4th quarter2019, Midrex, 2019 [Google Scholar]
  20. IEAGHG, Iron and steel CCS study (techno-economics integrated steel mill), IEAGHG, 2013 [Google Scholar]
  21. EUROSTAT, https://appsso.eurostat.ec.europa.eu/nui/show.do?dataset=nrg_pc_205&lang=en [Online] [Google Scholar]
  22. EUROSTAT, https://ec.europa.eu/eurostat/databrowser/bookmark/bed343e6-baa2-4ce6-b2a8-fd3d865715be?lang=en [Online] [Google Scholar]
  23. EEX, https://www.eex.com/en/markets/environmental-markets/emissions-auctions [Online] [Google Scholar]
  24. International Energy Agency, World Energy Outlook 2018, International Energy Agency, 2018 [Google Scholar]
  25. J. Mayer, G. Bachner, K.W. Steininger, Macroeconomic implications of switching to process-emission-free iron and steel production in Europe, J. Clean. Prod. 1517–1533 (2019) [CrossRef] [Google Scholar]
  26. J. Janssen, Hydrogen cost analysis, H2FUTURE, 2019 [Google Scholar]
  27. M. Weeda, WP9 impact & exploitation, in: 7th Steering Committee H2FUTURE, Linz, 2018 [Google Scholar]

Current usage metrics show cumulative count of Article Views (full-text article views including HTML views, PDF and ePub downloads, according to the available data) and Abstracts Views on Vision4Press platform.

Data correspond to usage on the plateform after 2015. The current usage metrics is available 48-96 hours after online publication and is updated daily on week days.

Initial download of the metrics may take a while.