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首页> 外文期刊>Biochemical Engineering Journal >Enriching functional microbes with electrode to accelerate the decomposition of complex substrates during anaerobic digestion of municipal sludge
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Enriching functional microbes with electrode to accelerate the decomposition of complex substrates during anaerobic digestion of municipal sludge

机译:用电极富集功能微生物,以加速厌氧消化城市污泥中复杂基质的分解

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摘要

Methane-production microbial electrolysis cells (MECs) have been widely reported as an efficient strategy to enhance anaerobic digestion of waste activated sludge (WAS). However, the primary mechanism for accelerating the decomposition of complex substrates contained in WAS remains unclear as so far. In this study anaerobic sludge digestion operated in a single-chamber methane-production MEC was investigated. It was found that the decomposition rate of proteins and carbohydrates were significantly accelerated in MEC, which resulted in the improvement of methane production as compared with the common anaerobic sludge digester. The energy income from the increased methane production was equivalent to 13.4 times as more as the electric energy supply. Further bacterial community analysis showed that anaerobic fermentative bacteria were largely enriched in MEC especially its anodic biofilm. Together with anodic exoelectrogenic bacteria (mainly Geobacter species) accounting for the dominant part of bacterial community in the anodic biofilm, it was suggested that the potential for syntrophic interaction between anaerobic fermentative bacteria and anodic exoelectrogenic bacteria enriched might be the important reason for accelerating the decomposition of complex substrates contained in WAS, which further resulted in the high-efficiency methane production as well as energy recovery. (C) 2016 Elsevier B.V. All rights reserved.
机译:甲烷生产微生物电解池(MEC)已被广泛报道为一种增强废物活性污泥(WAS)厌氧消化的有效策略。但是,到目前为止,加速WAS中包含的复杂基质分解的主要机制仍不清楚。在这项研究中,对在单室甲烷生产MEC中操作的厌氧污泥消化进行了研究。研究发现,与普通厌氧污泥消化器相比,MEC中蛋白质和碳水化合物的分解速率显着加快,从而提高了甲烷的产生。甲烷产量增加带来的能源收入相当于电能供应的13.4倍。进一步的细菌群落分析表明,厌氧发酵菌在MEC中尤其是其阳极生物膜中大量富集。连同阳极外生电细菌(主要是地球细菌物种)一起构成了阳极生物膜中细菌群落的主导部分,这表明厌氧发酵菌与富集阳极外生电细菌之间的潜在营养相互作用可能是加速分解的重要原因。 WAS中包含的复杂基质的分离,进一步导致了高效甲烷的生产和能量回收。 (C)2016 Elsevier B.V.保留所有权利。

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