Recycling CaCO3 in Desalination Post-Treatment and in Water Salinity Reduction by Reacting Rejected Brine Water (RBW) with Both Ca(OH)2 and CO2

نویسندگان

1 Faculty of Sciences, Ibnou Zohr University, B.P.: 8106, Agadir, MOROCCO

2 Faculty of Sciences, Ibnou Zohr University, B.P.: 8106, Agadir, MOROCCO

3 National Office of Electricity and Water, Tantan 82000 B.P: 18, MOROCCO

4 Faculty of Applied Sciences Ait Melloul, Ibnou Zohr University, Agadir, MOROCCO

doi
10.30492/ijcce.2025.2056582.7055
چکیده

Desalination plants have expanded considerably over the last decade, as the need for drinking water increases with population growth. The handling of brine from desalination processes entails serious environmental concerns for many plants and is associated with rising costs. Direct brine discharge has the potential to alter local marine environments, as increased salinity presents a substantial risk to marine ecosystems. It is therefore necessary to develop methods to recover this brine before it is disposed of, to reduce its harmful impact on the environment, and to produce valuable commercial chemical products. Indeed, this study adopts a two-pronged approach. The first focuses on valorizing Rejected Brine Water (RBW) from a desalination plant to produce valuable chemical products such as calcium carbonate (CaCO₃) and sodium carbonate (Na₂CO₃), while also reducing water salinity to help protect aquatic ecosystems. The second approach consists of reusing and recycling the prepared CaCO3 recovered in the first step for osmosis water remineralization (permeate) inside the desalination plant (post-treatment). As a result, our first study shows that valorization of RBW by adding portlandite solid (Ca(OH)2) and carbon dioxide flow gas (CO2) leads to CaCO3 precipitation; the mass of the recovered CaCO3 increases proportionally with that of the added reagents. High CO2 flow rates lead to a remarkable reduction in the salinity of RBW. As an application, the produced salt CaCO3 was charged in a pilot calcite bed at laboratory scale in order to carry out the second step of this study. The obtained results show that remineralization using recovered CaCO3 could correct the calco-carbonic balance of osmosis water, and achieve the drinking water standard; but that is linked to many parameters, such as CO2 flow rate, speed of permeate water, and the thickness of the bed, which have a huge effect on the process.