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首页> 外文期刊>Science of the total environment >Nitrogen removal and microbial community diversity in single-chamber electroactive biofilm reactors with different ratios of the cathode surface area to reactor volume
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Nitrogen removal and microbial community diversity in single-chamber electroactive biofilm reactors with different ratios of the cathode surface area to reactor volume

机译:单室电活性生物膜反应器中的氮气去除和微生物群落多样性,与反应器体积不同的阴极表面积不同比例

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Removal of nitrogen compounds is particularly important domestic wastewater treatment. Our recent study reported the successful removal of nitrogen in single-chamber electroactive biofilm reactors (EBRs) under aeration-free conditions. We hypothesized that the oxygen diffused from the air-cathode is a key factor in the removal of nitrogen in the EBR. If so, the effect of the penetrated oxygen would vary according to the ratio of the air-cathode surface area to the reactor volume (AV ratio) and the hydraulic retention time (HRT). In this study, single-chamber EBRs with three different AV ratios: 125 m~2/m~3 (EBR-125), 250 m~2/m~3 (EBR-250), and 500 m~2/m~3 (EBR-500) were evaluated for the removal of nitrogen under different HRTs of 0.5-6 h. The higher the AV ratio, the greater the increase in nitrification. The total nitrogen (TN) removal efficiency of EBR-125 and EBR-250 decreased as the HRT decreased, while that of EBR-500 increased. EBR-250 showed the highest TN removal (62.0%) with well-balanced nitrification (83.9%) and denitrification (75.1%) at an HRT of 6 h. However, EBR-500 appeared to be superior for practical application because it showed a comparable TN removal (59%) at a substantially short HRT of 1 h. The microbial communities that were involved in the nitrogen cycle varied according to whether the biofilms were located on the anodes, separators, and cathodes but were similar among EBRs with different AV ratios. Nitrifying bacteria were detected in the biofilms that were presented on the cathodes (approximately 7.8% of the total phylotypes), while denitrifying bacteria were mainly found in biofilm that were located on the anodes (approximately 23.3%). Anammox bacteria were also detected on the anode (approximately 3.7%) and in the separator biofilms (approximately 1.9%) of all the EBRs. These results suggest that both the A/V ratio and the HRT could affect the counter diffusion of substrates (NH_4~+ and organic compounds) and oxygen in the biofilms and allow interactions between a diversity of microorganisms for the successful removal of nitrogen in EBRs. These findings are expected to aid in the development of new applications using EBR for energy-saving wastewater treatment
机译:除去氮化合物是尤其重要的国内废水处理。我们最近的研究报告说明在无曝光条件下单室电活性生物膜反应器(EBRS)中的成功除去氮。我们假设从空气阴极扩散的氧是在EBR中除去氮的关键因素。如果是,则穿透氧的效果将根据空气阴极表面积与反应器体积(AV比率)和液压保留时间(HRT)的比率而变化。在本研究中,单室EBRS具有三种不同的AV比率:125 m〜2 / m〜3(EBR-125),250m〜2 / m〜3(EBR-250),500 m〜2 / m〜评价3(EBR-500)以在0.5-6小时的不同HRT下除去氮。 AV比率越高,硝化的增加越大。随着HRT降低,EBR-125和EBR-250的总氮(TN)去除效率降低,而EBR-500的含量增加。 EBR-250显示出最高的TN除去(62.0%),硝化良好的硝化(83.9%),并在6小时的HRT下反硝化(75.1%)。然而,EBR-500似乎优于实际应用,因为它显示出在1小时的大致短的HRT中的比较TN去除(59%)。涉及氮循环的微生物群落根据生物膜是否位于阳极,分离器和阴极上而变化,但在具有不同AV比率的EBR之间类似。在呈现在阴极上的生物膜(约7.8%的总影响)的生物膜中检测到硝化细菌,同时主要发现在阳极上的生物膜(约23.3%)。在阳极(约3.7%)和分离器生物膜(约1.9%)的所有EBRS中也检测到厌氧菌细菌。这些结果表明,A / V比和HRT都可能影响底物(NH_4〜+和有机化合物)和氧气中的反扩散在生物膜中,并允许在EBR中成功去除氮气的多样性之间的相互作用。这些调查结果预计有助于使用EBR开发新应用,以便节能污水处理

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