Achieving simultaneous removal of carbon and nitrogen by an integrated process of anaerobic membrane bioreactor and flow-through biofilm reactor

Xueshen Wu , Chao Wang , Depeng Wang , Ahmed Tawfik , Ronghua Xu , Zhong Yu , Fangang Meng
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Abstract

In this study, a combined system consisting of an anaerobic membrane bioreactor (AnMBR) and flow-through biofilm reactor/CANON (FTBR/CANON) was developed to simultaneously remove carbon and nitrogen from synthetic livestock wastewater. The average removal efficiencies of total nitrogen (TN) were 64.2 and 76.4% with influent ammonium (NH4+-N) concentrations of approximately 200 and 500 mg/L, respectively. The COD removal efficiencies were higher than 98.0% during the entire operation. Mass balance analysis showed that COD and TN were mainly removed by the AnMBR and FTBR/CANON, respectively. The anammox process was the main nitrogen removal pathway in the combined system, with a contribution of over 80%. High functional bacterial activity was observed in the combined system. Particularly, an increase in the NH4+-N concentration considerably improved the anammox activity of the biofilm in the FTBR/CANON. 16S rRNA high-throughput sequencing revealed that Methanosaeta, Candidatus Methanofastidiosum, and Methanobacterium were the dominant methanogens in the AnMBR granular sludge. In the CANON biofilm, Nitrosomonas and Candidatus Kuenenia were identified as aerobic and anaerobic ammonium-oxidizing bacteria, respectively. In summary, this study proposes a combined AnMBR and FTBR/CANON process targeting COD and nitrogen removal, and provides a potential alternative for treating high-strength wastewater.

Abstract Image

通过厌氧膜生物反应器和流动生物膜反应器的综合工艺实现碳和氮的同步去除
本研究开发了一种由厌氧膜法生物反应器(AnMBR)和直流式生物膜反应器/CANON(FTBR/CANON)组成的组合系统,用于同时去除合成畜牧废水中的碳和氮。在进水氨(NH4+-N)浓度分别约为 200 mg/L 和 500 mg/L 的情况下,总氮(TN)的平均去除率分别为 64.2% 和 76.4%。在整个运行过程中,化学需氧量的去除率高于 98.0%。质量平衡分析表明,COD 和 TN 主要分别由 AnMBR 和 FTBR/CANON 去除。氨氧化过程是组合系统中主要的脱氮途径,其贡献率超过 80%。在组合系统中观察到了较高的功能细菌活性。特别是,NH4+-N 浓度的增加大大提高了 FTBR/CANON 生物膜的氨氧化活性。16S rRNA 高通量测序显示,Methanosaeta、Candidatus Methanofastidiosum 和 Methanobacterium 是 AnMBR 颗粒污泥中的主要甲烷菌。在 CANON 生物膜中,亚硝化单胞菌(Nitrosomonas)和念珠菌(Candidatus Kuenenia)分别被鉴定为需氧和厌氧氨氧化细菌。总之,本研究提出了一种以去除 COD 和氮为目标的 AnMBR 和 FTBR/CANON 组合工艺,为处理高强度废水提供了一种潜在的替代方法。
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CiteScore
3.90
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