Reprint

Renewable Energy and Green Metallurgy Technology

Edited by
March 2024
212 pages
  • ISBN978-3-7258-0639-3 (Hardback)
  • ISBN978-3-7258-0640-9 (PDF)

This book is a reprint of the Special Issue Renewable Energy and Green Metallurgy Technology that was published in

Biology & Life Sciences
Chemistry & Materials Science
Computer Science & Mathematics
Engineering
Environmental & Earth Sciences
Summary

The aim of this Special Issue is to immerse the reader in the latest green metallurgy technology. The production process in traditional metallurgical industry uses large amounts of fossil fuels, which consume energy and emit CO2 intensively, facing enormous challenges in energy and the environment. The industry is in urgent need of advanced techniques for replacing fossil fuels with renewable energy, and decreasing energy consumption and CO2 emission. Replacing fossil fuels with renewable energy, energy recovery, and advanced technology will lead to the development of the green metallurgical industry. In addition, the strengthening mechanisms and smelting processes of non-quenched and tempered steel for automobiles and high-nitrogen steel smelting technology will allow us to master the mechanism of green metallurgy production and decrease fossil fuel consumption and carbon dioxide emissions from the metallurgy process. The Special Issue mainly focuses on six selected topics, such as biomass energy and solar energy as replacements for fossil fuels, resource utilization of metallurgical slag, low-carbon smelting technology in steel, CO2 resource utilization, strengthening mechanisms and smelting processes of non-quenched and tempered steel for automobiles, high-nitrogen steel smelting technology, achieving green metallurgy production. The latest green metallurgy technology could provide the next direction for steel and iron production.

Format
  • Hardback
License and Copyright
© 2022 by the authors; CC BY-NC-ND license
Keywords
mixed powder; selective laser melting; high-nitrogen steel; mechanical properties; converter slag; dephosphorization; carbothermal reduction; CO2 emission; ferrophosphorus; titanium industry chain; security system; sustainability; grey correlation analysis; entropy weight-TOPSIS; thermodynamic analysis; heat recovery; steam reforming; bio-oil; steel slag; municipal sludge; dry model; effective diffusion coefficient; activation energy; metallurgical waste heat; YOLOv5; metallurgical saw blade; lightweight; deep learning; defect detecting; green metallurgy; chemical agglomeration; fine particulate dust; CO reduction; magnetite; microwave irradiation; microstructure characterization; kinetics; converter steelmaking; small-particle limestone; decomposition kinetics; carbon dioxide partial pressure; low carbon; high casting speed; solidification heat transfer mathematical model; mushy zone coefficient; solidified shell; thickness; Fe-C-Si alloy; solid decarburization; molecular dynamics; diffusion coefficient; centrifugal fiber; roller wheel; heat transfer; numerical simulation; nonoriented silicon steel; numerical simulation; slag entrapment behavior; slag drawing speed; immersion depth; nozzle angle; n/a