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结合一种强大的嗜热产甲烷菌和具有高持液量的填料,以优化滴流床反应器中的生物甲烷化过程。

Combining a robust thermophilic methanogen and packing material with high liquid hold-up to optimize biological methanation in trickle-bed reactors.

作者信息

Kaul Anja, Böllmann Andrea, Thema Martin, Kalb Larissa, Stöckl Richard, Huber Harald, Sterner Michael, Bellack Annett

机构信息

Research Center on Energy Transmission and Energy Storage, OTH Regensburg, Seybothstraße 2, 93053 Regensburg, Germany.

Institute of Microbiology and Archaea Centre Regensburg, University of Regensburg, Universitaetsstrasse 31, 93053 Regensburg, Germany.

出版信息

Bioresour Technol. 2022 Feb;345:126524. doi: 10.1016/j.biortech.2021.126524. Epub 2021 Dec 9.

Abstract

The hydrogen gas-to-liquid mass transfer is the limiting factor in biological methanation. In trickle-bed reactors, mass transfer can be increased by high flow velocities in the liquid phase, by adding a packing material with high liquid hold-up or by using methanogenic archaea with a high methane productivity. This study developed a polyphasic approach to address all methods at once. Various methanogenic strains and packings were investigated from a microbial and hydrodynamic perspective. Analyzing the ability to produce high-quality methane and to form biofilms, pure cultures of Methanothermobacter performed better than those of the genus Methanothermococcus. Liquid and static hold-up of a packing material and its capability to facilitate attachment was not attributable to a single property. Consequently, it is recommended to carefully match organism and packing for optimized performance of trickle-bed reactors. The ideal combination for the ORBIT-system was identified as Methanothermobacter thermoautotrophicus IM5 and DuraTop®.

摘要

氢气到液体的传质是生物甲烷化的限制因素。在滴流床反应器中,可以通过液相中的高流速、添加具有高持液量的填料或使用具有高甲烷生产率的产甲烷古菌来提高传质。本研究开发了一种多相方法来同时解决所有这些方法。从微生物学和流体动力学角度研究了各种产甲烷菌株和填料。通过分析产生高质量甲烷和形成生物膜的能力,嗜热栖热菌的纯培养物比嗜热栖热球菌属的表现更好。填料的液体持液量和静态持液量及其促进附着的能力并非归因于单一特性。因此,建议仔细匹配生物体和填料,以优化滴流床反应器的性能。ORBIT系统的理想组合被确定为嗜热自养嗜热栖热菌IM5和DuraTop®。

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