Key Laboratory of Urban Pollutant Conversion, Institute of Urban Environment, Chinese Academy of Sciences, Xiamen, People's Republic of China.
College of Resources and Environment, University of Chinese Academy of Sciences, Beijing, People's Republic of China.
Environ Technol. 2020 May;41(12):1535-1545. doi: 10.1080/09593330.2018.1540664. Epub 2018 Nov 5.
In this study, the performances of a conventional anaerobic baffled reactor (ABR) and an ABR combined with microbial electrolysis cells (MECs) for enhancing degradation of volatile fatty acids (VFAs) were evaluated in 55°C. The ABR-MECs system achieved a total chemical oxygen demand (COD) removal rate of 97.2% and a methane yield of 236 ± 5 mL g COD at organic loading rate (OLR) of 6.9 kg COD m d, which were higher than those of the ABR with 77.6% and 207 ± 5 mL g COD, respectively, at OLR of 5.1 kg COD m d. The pyrosequencing analysis confirmed that the introduction of MECs into ABR was conducive to establishing stable functional communities of syntrophic fatty acids oxidizing bacteria (SFOB), exoelectrogens and hydrogenotrophic methanogens, such as (5.4%), (2.0%), (43.8%), (20.4%). The content of unclassified bacteria increased from 12.4% in the ABR system to 52.3% in the ABR-MECs system. In contrast, the proportion of aceticlastic methanogens decreased from 50.1% in the ABR to 24.5% in the ABR-MECs system. The improved performance of the thermophilic ABR-MECs system resulted from phase separation, wide ecological niche and intensification of methanogenesis process via functional microbes, which significantly enhanced the degradation of propionic acid and acetic acid.
在这项研究中,评估了在 55°C 下常规厌氧折流板反应器 (ABR) 和与微生物电解池 (MECs) 结合的 ABR 对强化挥发性脂肪酸 (VFAs) 降解的性能。ABR-MECs 系统在有机负荷率 (OLR) 为 6.9 kg COD m-3 d 时,实现了总化学需氧量 (COD) 去除率 97.2%和甲烷产率 236±5 mL g COD,高于 ABR 在 OLR 为 5.1 kg COD m-3 d 时的 77.6%和 207±5 mL g COD。焦磷酸测序分析证实,将 MECs 引入 ABR 有利于建立稳定的功能群落,如硫杆菌属(5.4%)、地杆菌属(2.0%)、产甲烷菌属(43.8%)和甲烷杆菌属(20.4%)。未分类细菌的含量从 ABR 系统中的 12.4%增加到 ABR-MECs 系统中的 52.3%。相比之下,乙酸营养型产甲烷菌的比例从 ABR 中的 50.1%下降到 ABR-MECs 中的 24.5%。由于功能微生物的相分离、宽生态位和产甲烷过程的强化,提高了高温 ABR-MECs 系统的性能,从而显著增强了丙酸和乙酸的降解。