Department of Civil and Architectural Engineering, Sultan Qaboos University, P.O. Box 33, Al-Khoud 123, Muscat, Oman.
Department of Civil and Architectural Engineering, Sultan Qaboos University, P.O. Box 33, Al-Khoud 123, Muscat, Oman; Process Engineering Department, International Maritime College, Sohar, Oman.
Environ Res. 2020 Apr;183:109273. doi: 10.1016/j.envres.2020.109273. Epub 2020 Feb 20.
Developing cost-effective technology for treatment of sewage and nitrogen-containing groundwater is one of the crucial challenges of global water industries. Microbial fuel cells (MFCs) oxidize organics from sewage by exoelectrogens on anode to produce electricity while denitrifiers on cathode utilize the generated electricity to reduce nitrogen from contaminated groundwater. As the exoelectrogens are incapable of oxidizing insoluble, polymeric, and complex organics, a novel integration of an anaerobic sequencing batch reactor (ASBR) prior to the MFC simultaneously achieve hydrolytic-acidogenic conversion of complex organics, boost power recovery, and remove Carbon/Nitrogen (C/N) from the sewage and groundwater. The results obtained revealed increases in the fractions of soluble organics and volatile fatty acids in pretreated sewage by 52 ± 19% and 120 ± 40%, respectively. The optimum power and current generation with the pretreated sewage were 7.1 W m and 45.88 A m, respectively, corresponding to 8% and 10% improvements compared to untreated sewage. Moreover, the integration of the ASBR with the biocathode MFC led to 217% higher carbon and 136% higher nitrogen removal efficiencies compared to the similar system without ASBR. The outcomes of the present study represent the promising prospects of using ASBR pretreatment and successive utilization of solubilized organics in denitrifying biocathode MFCs for simultaneous energy recovery and C/N removal from both sewage and nitrate nitrogen-contaminated groundwater.
开发经济高效的污水处理和含氮地下水处理技术是全球水工业的关键挑战之一。微生物燃料电池(MFC)通过阳极上的异化菌氧化污水中的有机物以产生电能,而阴极上的反硝化菌则利用产生的电能从受污染的地下水中还原氮。由于异化菌无法氧化不溶性、聚合性和复杂有机物,因此可以将厌氧序批式反应器(ASBR)与 MFC 进行新颖的集成,从而同时实现复杂有机物的水解酸化转化、提高电能回收效率,并从污水和地下水中去除碳/氮(C/N)。结果表明,预处理污水中可溶性有机物和挥发性脂肪酸的比例分别增加了 52±19%和 120±40%。与未经处理的污水相比,预处理污水的最佳功率和电流分别增加了 8%和 10%,达到 7.1 W m 和 45.88 A m。此外,将 ASBR 与生物阴极 MFC 集成,与没有 ASBR 的类似系统相比,碳去除效率提高了 217%,氮去除效率提高了 136%。本研究的结果表明,使用 ASBR 预处理和连续利用溶解有机物在反硝化生物阴极 MFC 中同时从污水和硝酸盐氮污染的地下水中回收能源和去除 C/N 具有广阔的前景。