Metallurgical Coke Production with Biomass Additives: Study of Biocoke Properties for Blast Furnace and Submerged Arc Furnace Purposes
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in: Materials, Jahrgang 15.2022, Nr. 3, 1147, 01.02.2022.
Publikationen: Beitrag in Fachzeitschrift › Artikel › Forschung › (peer-reviewed)
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TY - JOUR
T1 - Metallurgical Coke Production with Biomass Additives
T2 - Study of Biocoke Properties for Blast Furnace and Submerged Arc Furnace Purposes
AU - Bazaluk, Oleg
AU - Kieush, Lina
AU - Koveria, Andrii
AU - Schenk, Johannes
AU - Pfeiffer, Andreas
AU - Zheng, Heng
AU - Lozynskyi, Vasyl
N1 - Funding Information: Acknowledgments: Support by the scholarship program 'Ernst Mach Grant—worldwide' (ICM-2020-00100), financed by the Federal Ministry of Education, Science and Research of Austria, is gratefully acknowledged. We also wish to acknowledge the Montanuniversität Leoben for the support and staff of the Chair of Ferrous Metallurgy, who assisted throughout the project. Comments by reviewers on a previous version of this paper are also acknowledged. Funding Information: Funding: This study was carried out as part of the project 'Belt and Road Initiative Institute for Chinese–European studies (BRIICES)' and was funded by the Guangdong University of Petrochemical Technology. Publisher Copyright: © 2022 by the authors. Licensee MDPI, Basel, Switzerland.
PY - 2022/2/1
Y1 - 2022/2/1
N2 - Biocoke has the potential to reduce the fossil-based materials in metallurgical processes, along with mitigating anthropogenic CO2- and greenhouse gas (GHG) emissions. Reducing those emissions is possible by using bio-based carbon, which is CO2-neutral, as a partial replacement of fossil carbon. In this paper, the effect of adding 5, 10, 15, 30, and 45 wt.% biomass pellets on the reactivity, the physicomechanical, and electrical properties of biocoke was established to assess the possibility of using it as a fuel and reducing agent for a blast furnace (BF) or as a carbon source in a submerged arc furnace (SAF). Biocoke was obtained under laboratory conditions at final coking temperatures of 950 or 1100 °C. Research results indicate that for BF purposes, 5 wt.% biomass additives are the maximum as the reactivity increases and the strength after reaction with CO2 decreases. On the other hand, biocoke’s physicomechanical and electrical properties, obtained at a carbonization temperature of 950 °C, can be considered a promising option for the SAF.
AB - Biocoke has the potential to reduce the fossil-based materials in metallurgical processes, along with mitigating anthropogenic CO2- and greenhouse gas (GHG) emissions. Reducing those emissions is possible by using bio-based carbon, which is CO2-neutral, as a partial replacement of fossil carbon. In this paper, the effect of adding 5, 10, 15, 30, and 45 wt.% biomass pellets on the reactivity, the physicomechanical, and electrical properties of biocoke was established to assess the possibility of using it as a fuel and reducing agent for a blast furnace (BF) or as a carbon source in a submerged arc furnace (SAF). Biocoke was obtained under laboratory conditions at final coking temperatures of 950 or 1100 °C. Research results indicate that for BF purposes, 5 wt.% biomass additives are the maximum as the reactivity increases and the strength after reaction with CO2 decreases. On the other hand, biocoke’s physicomechanical and electrical properties, obtained at a carbonization temperature of 950 °C, can be considered a promising option for the SAF.
KW - Biocoke
KW - Biomass pellets
KW - Coke
KW - Coke reactivity index
KW - Electrical resistivity
KW - Ferroalloys
UR - http://www.scopus.com/inward/record.url?scp=85123999434&partnerID=8YFLogxK
U2 - 10.3390/ma15031147
DO - 10.3390/ma15031147
M3 - Article
AN - SCOPUS:85123999434
VL - 15.2022
JO - Materials
JF - Materials
SN - 1996-1944
IS - 3
M1 - 1147
ER -