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富氢营养型产甲烷菌的生物强化作用及其在滴滤床反应器中对 H/CO 转化的影响。

Bioaugmentation by enriched hydrogenotrophic methanogens into trickle bed reactors for H/CO conversion.

机构信息

Norwegian Institute of Bioeconomy Research (NIBIO), P.O. Box 115, 1431 Ås, Norway.

Faculty of Chemistry, Biotechnology, and Food Science, Norwegian University of Life Sciences (NMBU), P.O. Box 5003, 1432 Ås, Norway.

出版信息

Bioresour Technol. 2024 Sep;408:131225. doi: 10.1016/j.biortech.2024.131225. Epub 2024 Aug 5.

Abstract

Biomethanation represents a promising approach for biomethane production, with biofilm-based processes like trickle bed reactors (TBRs) being among the most efficient solutions. However, maintaining stable performance can be challenging, and both pure and mixed culture approaches have been applied to address this. In this study, inocula enriched with hydrogenotrophic methanogens were introduced to to TBRs as bioaugmentation strategy to assess their impacts on the process performance and microbial community dynamics. Metagenomic analysis revealed a metagenome-assembled genome belonging to the hydrogenotrophic genus Methanobacterium, which became dominant during enrichment and successfully colonized the TBR biofilm after bioaugmentation. The TBRs achieved a biogas production with > 96 % methane. The bioaugmented reactor consumed additional H This may be due to microbial species utilizing CO and H via various CO reduction pathways. Overall, implementing bioaugmentation in TBRs showed potential for establishing targeted species, although challenges remain in managing H consumption and optimizing microbial interactions.

摘要

生物甲烷化代表了一种有前途的生物甲烷生产方法,基于生物膜的工艺,如滴流床反应器(TBR)是最有效的解决方案之一。然而,保持稳定的性能可能具有挑战性,已经应用了纯培养和混合培养方法来解决这个问题。在这项研究中,引入了富含氢营养型产甲烷菌的接种物作为 TBR 的生物强化策略,以评估它们对工艺性能和微生物群落动态的影响。宏基因组分析揭示了一个属于氢营养型甲烷杆菌属的宏基因组组装基因组,该属在富集过程中占优势,并在生物强化后成功定殖于 TBR 生物膜。TBR 实现了生物气产率>96%的甲烷。生物强化后的反应器消耗了额外的 H2,这可能是由于微生物物种通过各种 CO 还原途径利用 CO 和 H2。总的来说,在 TBR 中实施生物强化显示出了建立目标物种的潜力,尽管在管理 H2 消耗和优化微生物相互作用方面仍存在挑战。

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