Aqueous mineral carbonation of three different industrial steel slags: Absorption capacities and product characterization
Journal article, 2024

Heavy carbon industries produce solid side stream materials that contain inorganic chemicals like Ca, Na, or Mg, and other metals such as Fe or Al. These inorganic compounds usually react efficiently with CO2 to form stable carbonates. Therefore, using these side streams instead of virgin chemicals to capture CO2 is an appealing approach to reduce CO2 emissions. Herein, we performed an experimental study of the mineral carbonation potential of three industrial steel slags via aqueous, direct carbonation. To this end, we studied the absorption capacities, reaction yields, and physicochemical characteristics of the carbonated samples. The absorption capacities and the reaction yields were analyzed through experiments carried out in a reactor specifically designed to work without external stirring. As for the physicochemical characterization, we used solid-state Fourier Transform Infrared Spectroscopy (FTIR), X-ray diffraction (XRD), and scanning electron microscope (SEM). Using this reactor, the absorption capacities were between 5.8 and 35.3 g/L and reaction yields were in the range of 81–211 kg CO2/ton of slag. The physicochemical characterization of the solid products with solid FTIR, XRD and SEM indicated the presence of CaCO3. This suggests that there is potential to use the carbonated products in commercial applications.

Transport and storage

Side stream utilization

Carbon capture

Steel slag

Absorption capacity

Author

Emmanouela Leventaki

Chalmers, Chemistry and Chemical Engineering, Chemical Technology

Eduarda Couto Queiroz

Chalmers, Chemistry and Chemical Engineering, Chemical Technology

Shyam Krishnan Pisharody

Student at Chalmers

Amit Kumar Siva Kumar

Student at Chalmers

Hoang Phuoc Ho

Chalmers, Chemistry and Chemical Engineering, Chemical Technology

Michael Andersson-Sarning

Chalmers, Chemistry and Chemical Engineering, Chemical Technology

Björn Haase

Höganäs

Francisco Baena-Moreno

Chalmers, Chemistry and Chemical Engineering, Chemical Technology

Alexandre Cuin

Federal University of Juiz de Fora

Diana Bernin

Chalmers, Chemistry and Chemical Engineering, Chemical Technology

Environmental Research

0013-9351 (ISSN) 1096-0953 (eISSN)

Vol. 252 118903

Industriellt anpassad koldioxidfångst baserad på flexibel karbonatkemi (DECREASE)

Swedish Energy Agency (P2021-00009), 2021-10-01 -- 2025-09-30.

Subject Categories

Inorganic Chemistry

Chemical Process Engineering

Metallurgy and Metallic Materials

Driving Forces

Sustainable development

DOI

10.1016/j.envres.2024.118903

PubMed

38609070

More information

Latest update

7/3/2024 9