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In situ integration of microbial electrochemical systems into anaerobic digestion to improve methane fermentation at different substrate concentrations

机译:将微生物电化学系统原位整合到厌氧消化中以改善不同底物浓度下的甲烷发酵

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摘要

Microbial electrochemical system (MES) was integrated into anaerobic digestion (AD) to improve the overall process efficiency by enhancing methane (CH4) production. CH4 fermentation at various glucose concentrations (2, 4, 8 and 10 g/1) was evaluated along with corresponding control (without electrodes) operations. The maximum CH4 yield of 0.34 1-CH4/g COD was obtained with both 2 and 4 g/1 glucose concentrations (MES), which was about 1.4 and 2.4 times, respectively, higher than the values obtained with corresponding control operations. However, at 10 similar performance (similar to 0.07 1- CH4/g COD) was observed with both control and MES operations, which might be due to pH drop occurred by volatile fatty acids (VFAs) buildup in the process. Substrate removal was amplified in the presence of MES with faster degradation of VFAs at all substrate concentrations except 10 g/1. This enhanced utilization of VFAs in the MES process is an important aspect to recover from initial pH drops, especially at higher substrate concentration to maintain the optimum pH for methane fermentation. The current generation and cyclic voltammetric profiles suggest that the enhanced CH4 production in MES was attributed to the bio-electrochemical reactions on the electrodes. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:将微生物电化学系统(MES)集成到厌氧消化(AD)中,以通过提高甲烷(CH4)的生产量来提高整体工艺效率。评估了在各种葡萄糖浓度(2、4、8和10 g / 1)下的CH4发酵以及相应的对照操作(无电极)。在2和4 g / 1葡萄糖浓度(MES)的情况下,获得的最大CH4产量为0.34 1-CH4 / g COD,分别比通过相应的控制操作获得的值高约1.4和2.4倍。但是,在对照和MES操作下,在10时都观察到了相似的性能(类似于0.07-1-CH4 / g COD),这可能是由于过程中挥发性脂肪酸(VFA)的积累导致pH下降。在MES存在下,除10 g / 1以外的所有底物浓度下,VFA降解更快,底物去除被放大。 MES过程中VFA利用率的提高是从初始pH下降中恢复的重要方面,尤其是在较高的底物浓度下,以保持甲烷发酵的最佳pH。当前的一代和循环伏安曲线表明,MES中CH4产生的增加归因于电极上的生物电化学反应。 (C)2018氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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