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Frontiers in Energy Research | 2016

Performance of separation Processes for Precipitated calcium carbonate Produced with an innovative Method from steelmaking slag and carbon Dioxide

Sebastian Teir; Toni Auvinen; Arshe Said; Tuukka Kotiranta; Heljä Peltola

In this work, experiments were performed to determine the filterability of calcium carbonate produced with an alternative calcium carbonate production concept. The concept uses steelmaking slag as raw material and has potential to fix CO2 emissions and utilize steelmaking slag, simultaneously. As calcium carbonate is precipitated in a solution containing ammonium chloride, calcium chloride and ammonia, the product needs to be washed and hence filtered. In this work different separation processes, including washing, filtering and drying, were tested on two calcium carbonate slurries produced from steel converter slag and CO2 by a laboratory-scale pilot facility, with the aim of obtaining a solid product with a low chloride content using a minimum amount of washing water. The order of maximum filtration rates achievable of the calcium carbonate slurries was determined by experimental work. The tests included pressure filtration and vacuum filtration and the test series contained altogether 21 different filtration cycles with varying combinations of filtering, washing, and drying steps. The filtered cakes were analyzed by their residual moisture content, chloride content and conductivity, and the filtrates by their residual solids content, chloride content and conductivity. Pressure filtration gave a high capacity (400-460 kg/m2h) and a low cake residual moisture content (12-14 wt-%). Vacuum filtration gave slightly higher filtration rates (500-610 kg/m2h at the lowest residual chloride contents of the cakes), but the cake residual moisture also stayed higher (25-26 wt-%). As the vacuum filtration tests used a filter cloth with higher permeability than that of the pressure filtration tests, a slightly higher filtration rate was expected. However, both filtration technologies seem suitable for filtering and washing calcium carbonate prepared with the studied method as a residual chloride content as low as 10 ppm of the filtered solids can be achieved with quite a small amount of washing water and the filtration rate is fast.


Applied Energy | 2012

Preliminary assessment of a method utilizing carbon dioxide and steelmaking slags to produce precipitated calcium carbonate

Sanni Eloneva; Arshe Said; Carl-Johan Fogelholm; Ron Zevenhoven


Applied Energy | 2013

Production of precipitated calcium carbonate (PCC) from steelmaking slag for fixation of CO2

Arshe Said; Hannu Petteri Mattila; Mika Järvinen; Ron Zevenhoven


Greenhouse Gases-Science and Technology | 2011

Ammonium salt-based steelmaking slag carbonation: Precipitation of CaCO3 and ammonia losses assessment†

Sanni Eloneva; Pekka Mannisto; Arshe Said; Carl-Johan Fogelholm; Ron Zevenhoven


Chemical Engineering and Processing | 2015

Enhancement of calcium dissolution from steel slag by ultrasound

Arshe Said; Olli Mattila; Sanni Eloneva; Mika Järvinen


Applied Energy | 2016

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

Arshe Said; Timo Laukkanen; Mika Järvinen


Energy Procedia | 2011

Integrated carbon capture and storage for an oxyfuel combustion process by using carbonation of Mg(OH)2 produced from serpentinite rock

Arshe Said; Sanni Eloneva; Carl-Johan Fogelholm; Johan Fagerlund; Experience Nduagu; Ron Zevenhoven


Archive | 2010

Feasibility Study of a Method Utilizing Carbon Dioxide and Steelmaking Slags to Produce Precipitated Calcium Carbonate (PCC)

Sanni Eloneva; Arshe Said; Carl-Johan Fogelholm; Ron Zevenhoven


Archive | 2015

Demonstration pilot plant for the production of precipitated calcium carbonate (PCC) from steelmaking slag and carbon dioxide

Arshe Said; Mika Järvinen


Archive | 2012

Effect of Steelmaking Slag Properties to the Extraction of Calcium by Using Ammonium Salts

Arshe Said; Hannu Petteri Mattila; Carl-Johan Fogelholm; Ron Zevenhoven

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Sanni Eloneva

Helsinki University of Technology

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Sebastian Teir

VTT Technical Research Centre of Finland

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