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Pilot-scale experimental work on carbon dioxide sequestration using steelmaking slag

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  • Said, Arshe
  • Laukkanen, Timo
  • Järvinen, Mika

Abstract

The production of precipitated calcium carbonate (PCC) from steel slag has been proposed as a potential method of simultaneously reducing the CO2 emissions from the steelmaking process and turning its waste stream into a valuable product. On average the production of one ton of steel results in two tons of CO2 emissions and 600kg of slag. Globally, more than 400Mt of steel slag are produced annually. If all the slag were used for the production of PCC, 64Mt CO2 could be utilized and 145Mt of calcium carbonate would be produced. In 2014 the research group Energy Engineering and Environmental Protection at Aalto University in Finland has designed, constructed and tested the world’s first mineral carbonation pilot plant test facility that converts steel slag and CO2 into PCC. In batch mode the pilot plant can handle up to 20kg of solid steel slag and 190L of liquid solvent, and it can produce about 10kg of calcium carbonate. The solvent can be regenerated and reused in the calcium extraction stage, which makes the process economically more feasible. Almost 80% of the calcium in the slag was extracted, while more than 70% of the CO2 was utilized and converted into PCC. In high temperature carbonation tests, ammonia gas was detected from the flue gases. At 60°C more than 2vol.% of NH3 was detected in the flue gas, and at 50°C it was 0.65vol.%, while at 45°C the NH3 concentration in the flue gas was only 0.11vol.%. To avoid ammonia evaporation, aragonite PCC can be produced at 45°C by optimizing the CO2 flow rate.

Suggested Citation

  • Said, Arshe & Laukkanen, Timo & Järvinen, Mika, 2016. "Pilot-scale experimental work on carbon dioxide sequestration using steelmaking slag," Applied Energy, Elsevier, vol. 177(C), pages 602-611.
  • Handle: RePEc:eee:appene:v:177:y:2016:i:c:p:602-611
    DOI: 10.1016/j.apenergy.2016.05.136
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    References listed on IDEAS

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    1. Sanna, Aimaro & Dri, Marco & Hall, Matthew R. & Maroto-Valer, Mercedes, 2012. "Waste materials for carbon capture and storage by mineralisation (CCSM) – A UK perspective," Applied Energy, Elsevier, vol. 99(C), pages 545-554.
    2. Han, Sang-Jun & Im, Hye Jin & Wee, Jung-Ho, 2015. "Leaching and indirect mineral carbonation performance of coal fly ash-water solution system," Applied Energy, Elsevier, vol. 142(C), pages 274-282.
    3. Fagerlund, Johan & Nduagu, Experience & Romão, Inês & Zevenhoven, Ron, 2012. "CO2 fixation using magnesium silicate minerals part 1: Process description and performance," Energy, Elsevier, vol. 41(1), pages 184-191.
    4. Hosseini, Tahereh & Haque, Nawshad & Selomulya, Cordelia & Zhang, Lian, 2016. "Mineral carbonation of Victorian brown coal fly ash using regenerative ammonium chloride – Process simulation and techno-economic analysis," Applied Energy, Elsevier, vol. 175(C), pages 54-68.
    5. Wee, Jung-Ho, 2013. "A review on carbon dioxide capture and storage technology using coal fly ash," Applied Energy, Elsevier, vol. 106(C), pages 143-151.
    6. Romão, Inês & Nduagu, Experience & Fagerlund, Johan & Gando-Ferreira, Licínio M. & Zevenhoven, Ron, 2012. "CO2 fixation using magnesium silicate minerals. Part 2: Energy efficiency and integration with iron-and steelmaking," Energy, Elsevier, vol. 41(1), pages 203-211.
    7. Sanni Eloneva & Pekka Mannisto & Arshe Said & Carl‐Johan Fogelholm & Ron Zevenhoven, 2011. "Ammonium salt‐based steelmaking slag carbonation: Precipitation of CaCO 3 and ammonia losses assessment," Greenhouse Gases: Science and Technology, Blackwell Publishing, vol. 1(4), pages 305-311, December.
    8. Said, Arshe & Mattila, Hannu-Petteri & Järvinen, Mika & Zevenhoven, Ron, 2013. "Production of precipitated calcium carbonate (PCC) from steelmaking slag for fixation of CO2," Applied Energy, Elsevier, vol. 112(C), pages 765-771.
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