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High Rate Biomethanation of Carbon Monoxide-Rich Gasesvia a Thermophilic Synthetic Coculture

机译:富一氧化碳气体的高速率生物甲烷化通过嗜热合成共培养

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摘要

Carbon monoxide-fermenting microorganisms can be used for the production of a wide range of commodity chemicals and fuels from syngas (generated by gasification of, e.g., wastes or biomass) or industrial off-gases (e.g., from steel industry). Microorganisms are normally more resistant to contaminants in the gas (e.g., hydrogen sulfide) than chemical catalysts, less expensive and self-regenerating. However, some carboxydotrophs are sensitive to high concentrations of CO, resulting in low growth rates and productivities. We hypothesize that cultivation of synthetic cocultures can be used to improve overall rates of CO bioconversion. As a case study, a thermophilic microbial coculture, consisting of Carboxydothermus hydrogenoformans and Methanothermobacter thermoautotrophicus was constructed to study the effect of cocultivation on conversion of CO-rich gases to methane. In contrast to the methanogenic monoculture, the coculture was able to efficiently utilize CO or mixtures of H2/CO/CO2 to produce methane at high efficiency and high rates. In CSTR-bioreactors operated in continuous mode, the coculture converted artificial syngas (66.6% H2:33.3% CO) to an outflow gas with a methane content of 72%, approaching the 75% theoretical maximum.CO conversion efficiencies of 93% and volumetric production ratesof 4 m3methane/m3liquid/day were achieved. This case shows that microbial cocultivationcan result in a significant improvement of gas-fermentation of CO-richgases.
机译:一氧化碳发酵微生物可用于从合成气(通过气化例如废物或生物质产生)或工业废气(例如从钢铁工业中)生产多种商品化学品和燃料。与化学催化剂相比,微生物通常对气体中的污染物(例如,硫化氢)具有更强的抵抗力,且价格便宜且可自我再生。但是,一些羧基营养盐对高浓度的CO敏感,导致较低的生长速率和生产率。我们假设合成的共培养物的培养可用于提高CO生物转化的整体速率。作为案例研究,构建了一种由嗜热羧甲基甲烷菌和嗜热甲烷甲烷杆菌组成的嗜热微生物共培养物,以研究共培养对富CO气体转化为甲烷的影响。与产甲烷单培养相反,共培养能够高效利用CO或H2 / CO / CO2的混合物高效高效地生产甲烷。在以连续模式运行的CSTR生物反应器中,共培养将人造合成气(66.6%H2:33.3%CO)转化为甲烷含量为72%的流出气体,接近理论最大值的75%。一氧化碳转化效率为93%,批量生产率为每天达到4 m 3 甲烷/ m 3 液体。这个案例表明微生物共培养可以显着改善富含CO的气体发酵气体。

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