• Media type: E-Article
  • Title: Energy Consumption and Greenhouse Gas Emissions of High-Carbon Ferrochrome Production
  • Contributor: Wei, Wenjing; Samuelsson, Peter B.; Jönsson, Pär G.; Gyllenram, Rutger; Glaser, Björn
  • imprint: Springer Science and Business Media LLC, 2023
  • Published in: JOM
  • Language: English
  • DOI: 10.1007/s11837-023-05707-8
  • ISSN: 1047-4838; 1543-1851
  • Keywords: General Engineering ; General Materials Science
  • Origination:
  • Footnote:
  • Description: <jats:title>Abstract</jats:title><jats:p>This work presents a process model developed based on mass and energy conservation to assess high carbon ferrochrome production from cradle to gate through four supply routes: (1) a conventional submerged arc furnace (SAF), (2) a closed submerged arc furnace with preheating (CSAF+PH), (3) a closed submerged arc furnace with 60% prereduction (CSAF+PR60%) and (4) a direct-current arc furnace (DCAF). The energy requirements are between 40 and 59 GJ/t FeCr (74–111 GJ/t Cr), and the greenhouse gas (GHG) emissions range between 1.8 and 5.5 tCO<jats:sub>2</jats:sub>-eq/t FeCr (3.3–10.3 tCO<jats:sub>2</jats:sub>-eq/t Cr). The upgrading of coal-powered SAF process to a closed furnace CSAF+PH and CSAF+PR60% contributes to an emission reduction of 23% and 18%, respectively. Moreover, the use of hydro-powered electricity leads to a further emission reduction of 68% and 47%, respectively. For CSAF+PR process, the GHG emissions can be reduced by 14% when increasing the pre-reduction ratio from 30% to 80% and decreased by 10% when charging hotter feed from 100 °C to 1000 °C. The proposed process model is feasible in generating site-specific inventory data and allowing for parameter studies as well as supporting companies to improve the transparency of the environmental performance in the FeCr value chain.</jats:p>