Electrodeposition of Calcium Carbonate and Magnesium Carbonate from Hard Water on Stainless-Steel Electrode to Prevent Natural Scaling Phenomenon

阴极 电解 阳极 电极 材料科学 碳酸钙 恒流 沉积(地质) 分析化学(期刊) 缩放比例 冶金 无机化学 化学 电流(流体) 电解质 复合材料 色谱法 电气工程 古生物学 几何学 数学 物理化学 沉积物 生物 工程类
作者
Faléstine Souiad,Yasmina Bendaoud-Boulahlib,Ana Sofia Rodrigues,Annabel Fernandes,Lurdes Ciríaco,Maria José Pacheco,Ana Lopes
出处
期刊:Water [Multidisciplinary Digital Publishing Institute]
卷期号:13 (19): 2752-2752 被引量:11
标识
DOI:10.3390/w13192752
摘要

This study focuses on preventing scale formation in hard waters by controlled electrode-position of Ca2+ and Mg2+ on a stainless-steel cathode at constant applied current intensity. The influence of the anode material, BDD or Ti/Pt/PbO2, cathode active area, stirring speed, and applied anodic current intensity on the inorganic carbon (IC), Ca2+, and Mg2+ removal was investigated. Assays were performed with model hard water solutions, simulating Bounouara (Algeria) water. The scaling inhibiting properties of the treated water were followed by measuring IC, calcium, and magnesium concentrations and chronoamperometric characterization of the treated solutions. The influence of the Ca/Mg molar ratio on the inorganic carbon removal by electrolysis was also evaluated, utilizing model solutions with different compositions. It was found that an increase in stirring speed or cathode geometric area favors IC and Ca2+ and Mg2+ removal rates. The applied current intensity was varied from 0.025 to 0.5 A, and the best results were obtained for 0.1 A, either in IC and Ca2+ and Mg2+ removals or by the accelerated scaling tests. However, energy costs increase with applied current. The deposit formed over the cathode does not seem to influence posterior deposition rate, and after eight consecutive assays, the solid deposition rate was kept constant. Ca/Mg ratio influences IC removal rate that increases with it. The results showed that hard-water scaling phenomena can be prevented by solid electrodeposition on the cathode at applied constant current.
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