Practical considerations for the electrochemical denitrification of real wastewater†
Abstract
High concentrations of nitrate (NO3β) in water is a serious threat to the environment and human health. Therefore, there is an urgent to explore and develop real wastewater treatment methods. In this study, the electrochemical reduction of NO3β using brass as the cathode and IrO2βRuO2/Ti as the anode was studied, and the influence of various conditions, including the current density, conductivity, initial pH, Clβ concentration and, coexisting matter (PO43β, CO32β, Ca2+, and organics), were systematically investigated. The optimized method was verified for the reduction of NO3β in simulated wastewater and real wastewater. It was found that in the presence of 500 mg Lβ1 Clβ, a reduction rate above 80% could be readily achievable for 50 mg Lβ1 NO3ββN in 100 min electrolytic treatment at a current density of 10 mA cmβ2. The presence of CO32β and Ca2+ had no significant effect on NO3β reduction, but the presence of PO43β could substantially decrease the reduction rate of NO3ββN due to the competitive adsorption of HPO42β and H2PO4β on the brass electrode. The interference from PO43β could be largely alleviated by the addition of Ca2+ to the sample solution. The presence of organic matters also adversely influenced the reduction rate of NO3ββN, whereby the reduction rate of NO3ββN decreased to 71.1% in a solution with 200 mg Lβ1 COD. As the organic matter could be degraded in prolonged electrolytic treatment, our method showed good adaptability for real water treatment. The results obtained in the present study demonstrated that the electrolytic method with brass as the cathode and IrO2βRuO2/Ti as the anode not only had a satisfactory efficiency for NO3ββN removal but also exhibited good durability in real water treatment.

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