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首页> 外文期刊>RSC Advances >Deciphering the electron transfer mechanisms for biogas upgrading to biomethane within a mixed culture biocathode
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Deciphering the electron transfer mechanisms for biogas upgrading to biomethane within a mixed culture biocathode

机译:解密用于在混合培养生物探测中升高到生物甲烷的沼气的电子转移机制

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Biogas upgrading is an expanding field dealing with the increase in methane content of the biogas to produce biomethane. Biomethane has a high calorific content and can be used as a vehicle fuel or directly injected into the gas grid. Bioelectrochemical systems (BES) could become an alternative for biogas upgrading, by which the yield of the process in terms of carbon utilisation could be increased. The simulated effluent from a water scrubbing-like unit was used to feed a BES. The BES was operated with the biocathode poised at ?800 mV vs. SHE to drive the reduction of the CO _(2) fraction of the biogas into methane. The BES was operated in batch mode to characterise methane production and under continuous flow to demonstrate its long-term viability. The maximum methane production rate obtained during batch tests was 5.12 ± 0.16 mmol m ~(?2) per day with a coulombic efficiency (CE) of 75.3 ± 5.2%. The production rate increased to 15.35 mmol m ~(?2) per day (CE of 68.9 ± 0.8%) during the continuous operation. Microbial community analyses and cyclic voltammograms showed that the main mechanism for methane production in the biocathode was hydrogenotrophic methanogenesis by Methanobacterium sp., and that electromethanogenesis occurred to a minor extent. The presence of other microorganisms in the biocathode, such as Methylocystis sp. revealed the presence of side reactions, such as oxygen diffusion from the anode compartment, which decreased the efficiency of the BES. The results of the present work offer the first experimental report on the application of BES in the field of biogas upgrading processes.
机译:沼气升级是一种扩展现场,处理沼气的甲烷含量增加以产生生物甲烷。生物甲烷具有高热量的含量,可以用作车辆燃料或直接注入气体栅格。生物电化学系统(BES)可以成为沼气升级的替代方案,通过该替代品可以增加碳利用率的过程的产量。使用来自水洗涤的单元的模拟流出物用于饲料A BES。 BES与生物疗法进行处理,在α800mV与她达到800 mV与她达到沼气中的CO _(2)分数。 BES以批量模式运行,以表征甲烷生产,并在连续流动下展示其长期活力。每天在批量试验期间获得的最大甲烷生产率为每天5.12±0.16mmol m〜(β2),库仑效率为75.3±5.2%。在连续运行期间,每天产量增加至每天15.35mmol m〜(?2)(CE为68.9±0.8%)。微生物群落分析和循环伏安图表明,生物液中甲烷产量的主要机制是通过甲基杆菌的氢脱氢型甲烷化。,电塞米发生在轻微的程度上发生。生物病变中的其他微生物存在,例如甲基甲基。揭示了副反应的存在,例如来自阳极隔室的氧气扩散,这降低了BES的效率。本工作的结果提供了关于BES在沼气升级过程领域的第一个实验报告。

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