carbonates. The experimental and theoretical results described in this study highlighted the potential use of this
methodology as an efficient method to provide economical,
stable, safe and eco-friendly process for future industrial
application.
The future research work could be extended through
on-site recycling of the produced wastes, where there is no
need for costly transportation at sites. For example, in
cement factories, it will be of immense environmental and
economical achievement if CO 2 is directly sequestered in the
active cement kiln dust waste on-site and the large quantities
of produced carbonates can be utilized in the main cement
production line. For other production sites like in acetylene
and steel factories, different carbonated minerals can be
produced in different morphologies and particle sizes
through controlling carbonation conditions. Very fine and
pure calcium carbonate can be used as filler in plastics and
paper industry. Similarly, it can be utilized in cosmetic,
medical, paint, agricultural and in the construction
industries.
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