Circular Steel for Fast Decarbonization: Thermodynamics, Kinetics, and Microstructure Behind Upcycling Scrap into High-Performance Sheet Steel

Циркулярная сталь для ускоренной декарбонизации: термодинамика, кинетика и микроструктура переработки лома в высокопрочную рулонную сталь
Alisson Kwiatkowski da Silva, Dirk Ponge, Dierk Raabe, Hauke Springer, Isnaldi Rodrigues de Souza Filho, A. Nicholas Grundy, Matic Jovičević‐Klug, Alexander Gramlich, Yan Ma
2024-04-29

scrap impuritiesscrap-based steel productionsecondary steelmakingsteel decarbonizationthermodynamics and kinetics of steel recycling
Steel production accounts for approximately 8% of all global CO 2 emissions, with the primary steelmaking route using iron ores contributing approximately 80% of those emissions, mainly due to the use of fossil-based reductants and fuel. Hydrogen-based reduction of iron oxide is an alternative for primary synthesis. However, to counteract global warming, decarbonization of the steel sector must proceed much faster than the ongoing transition kinetics in primary steelmaking. Insufficient supply of green hydrogen is a particular bottleneck. Realizing a higher fraction of secondary steelmaking is thus gaining momentum as a sustainable alternative to primary production. Steel production from scrap is well established for long products (rails, bars, wire), but there are two main challenges. First, there is not sufficient scrap available to satisfy market needs. Today, only one-third of global steel demand can be met by secondary metallurgy using scrap since many steel products have a lifetime of several decades. However, scrap availability will increase to about two-thirds of total demand by 2050 such that this sector will grow massively in the next decades. Second, scrap is often too contaminated to produce high-performance sheet steels. This is a serious obstacle because advanced products demand explicit low-tolerance specifications for safety-critical and high-strength steels, such as for electric vehicles, energy conversion and grids, high-speed trains, sustainable buildings, and infrastructure. Therefore, we review the metallurgical and microstructural challenges and opportunities for producing high-performance sheet steels via secondary synthesis. Focus is placed on the thermodynamic, kinetic, chemical, and microstructural fundamentals as well as the effects of scrap-related impurities on steel properties.
1
Hydrogen-based iron oxide reduction is a viable alternative for primary steelmaking but decarbonization via this route is limited by slow transition kinetics and insufficient green hydrogen supply.
2
Increasing secondary steelmaking from scrap is a promising, faster decarbonization pathway, with scrap supply projected to grow from one-third today to about two-thirds of demand by 2050.
3
Steelmaking produces ~8% of global CO2, with primary iron-ore-based routes responsible for ~80% of those emissions due to fossil reductants and fuel.
4
The paper reviews thermodynamic, kinetic, chemical, and microstructural fundamentals and analyzes how scrap-related impurities affect the ability to produce advanced sheet steels via secondary synthesis.
5
Two main obstacles hinder producing high-performance sheet steels from scrap: (1) current insufficient scrap availability and (2) scrap contamination that prevents meeting low-tolerance specifications for safety-critical, high-strength applications.

Production of high-performance sheet steel via secondary (scrap-based) steelmaking

Thermodynamic, kinetic, chemical, and microstructural factors and the effects of scrap-related impurities on the ability to upcycle scrap into high-performance sheet steel

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2024-04-29
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Alisson Kwiatkowski da Silva
Dirk Ponge
Dierk Raabe
Hauke Springer
Isnaldi Rodrigues de Souza Filho
A. Nicholas Grundy
Matic Jovičević‐Klug
Alexander Gramlich
Yan Ma
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