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Article

Analysis of Technological Pathways and Development Suggestions for Blast Furnace Low-Carbon Ironmaking

1
Key Laboratory for Ecological Metallurgy of Multimetallic Mineral (Ministry of Education), Northeastern University, Shenyang 110819, China
2
School of Metallurgy, Northeastern University, Shenyang 110819, China
*
Author to whom correspondence should be addressed.
Metals 2024, 14(11), 1276; https://doi.org/10.3390/met14111276
Submission received: 15 October 2024 / Revised: 5 November 2024 / Accepted: 8 November 2024 / Published: 9 November 2024

Abstract

Under the global dual-carbon background, heightened public awareness of climate change and strengthened carbon taxation policies are increasing pressure on the steel industry to transition. Given the urgent need for carbon reduction, the exploration of low-carbon pathways in a blast furnace (BF) metallurgy emerges as crucial. Evaluating both asset retention and technological maturity, the development of low-carbon technologies for BFs represents the most direct and effective technical approach. This article introduces global advancements in low-carbon metallurgical technologies for BFs, showcasing international progress encompassing hydrogen enrichment, oxygen enrichment, carbon cycling technologies, biomass utilization, and carbon capture, utilization, and storage (CCUS) technologies. Hydrogen enrichment is identified as the primary technological upgrade currently, although its carbon emission reduction potential is limited to 10% to 30%, insufficient to fundamentally address high carbon emissions from BFs. Therefore, this article innovatively proposes a comprehensive low-carbon metallurgical process concept with the substitution of carbon-neutral biomass fuels at the source stage—intensification of hydrogen enrichment in the process stage—fixation of CCUS at the end stage (SS-IP-FE). This process integrates the cleanliness of biomass, the high-efficiency of hydrogen enrichment, and the thoroughness of carbon fixation through CCUS, synergistically enhancing overall effectiveness. This integrated strategy holds promise for achieving a 50% reduction in carbon emissions from BFs in the long processes. Critical elements of these core technologies are analyzed, assessing their cost-effectiveness and emission reduction potential, underscoring comprehensive low-carbon metallurgy as a pivotal direction for future steel industry development with high technological feasibility and emission reduction efficacy. The article also proposes a series of targeted recommendations, suggesting short-term focus on technological optimization, the medium-term enhancement of technology research and application, and the long-term establishment of a comprehensive low-carbon metallurgical system.
Keywords: dual-carbon goals; blast furnace; substitution of biomass at the source stage; intensification of hydrogen enrichment in the process stage; fixation of CCUS at the end stage dual-carbon goals; blast furnace; substitution of biomass at the source stage; intensification of hydrogen enrichment in the process stage; fixation of CCUS at the end stage

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MDPI and ACS Style

Li, H.; Zhao, Y.; Guo, C.; Li, J. Analysis of Technological Pathways and Development Suggestions for Blast Furnace Low-Carbon Ironmaking. Metals 2024, 14, 1276. https://doi.org/10.3390/met14111276

AMA Style

Li H, Zhao Y, Guo C, Li J. Analysis of Technological Pathways and Development Suggestions for Blast Furnace Low-Carbon Ironmaking. Metals. 2024; 14(11):1276. https://doi.org/10.3390/met14111276

Chicago/Turabian Style

Li, Haifeng, Yan Zhao, Chengqian Guo, and Junqi Li. 2024. "Analysis of Technological Pathways and Development Suggestions for Blast Furnace Low-Carbon Ironmaking" Metals 14, no. 11: 1276. https://doi.org/10.3390/met14111276

APA Style

Li, H., Zhao, Y., Guo, C., & Li, J. (2024). Analysis of Technological Pathways and Development Suggestions for Blast Furnace Low-Carbon Ironmaking. Metals, 14(11), 1276. https://doi.org/10.3390/met14111276

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