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Ammonium nitrogen removal from wastewater with a three-dimensional electrochemical oxidation system

机译:三维电化学氧化系统去除废水中的氨氮

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Ammonium-containing wastewater could cause the promotion of eutrophication and a hindrance to the disinfection of water supplies. In this study, the feasibility of removing low-concentration ammonium nitrogen from synthetic and real wastewater by electrochemical oxidation was investigated. Using laboratory-scale electrochemical systems, the effects of chloride concentration, current density, anode materials, cathode materials, electrode gap, initial ammonium concentration and three-dimensional particles on the removal of ammonium nitrogen and current efficiency (CE) were evaluated. Ammonium nitrogen removal was mainly dependent upon anode materials and current density. The performance of two- and three-dimensional electrochemical oxidation systems was comparatively discussed. Both particle electrodes could enhance ammonium nitrogen removal and increase CE. However, the mechanism of the process seemed to be different. Moreover, the interaction of zeolites adsorption and electrochemical oxidation on the anode in a three-dimensional system could favor the regeneration of zeolites. Surface morphology of the used Ru-Ir-Sn/Ti anode revealed its longer working life of electrocatalysis. The result of ammonium degradation for a real wastewater treatment plant effluent showed the degradation rates in a three-dimensional system increased by 1.4 times those in a two-dimensional system.
机译:含铵废水可能引起富营养化,并阻碍供水消毒。在这项研究中,研究了通过电化学氧化从合成废水和实际废水中去除低浓度铵态氮的可行性。使用实验室规模的电化学系统,评估了氯化物浓度,电流密度,阳极材料,阴极材料,电极间隙,初始铵浓度和三维颗粒对铵态氮去除和电流效率(CE)的影响。铵氮的去除主要取决于阳极材料和电流密度。比较地讨论了二维和三维电化学氧化系统的性能。两个粒子电极均可增强铵态氮的去除并增加CE。但是,该过程的机制似乎有所不同。此外,在三维系统中阳极上沸石吸附和电化学氧化的相互作用可以促进沸石的再生。所用Ru-Ir-Sn / Ti阳极的表面形态表明其电催化寿命更长。实际废水处理厂废水中氨的降解结果表明,三维系统的降解速率比二维系统的降解速率提高了1.4倍。

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