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

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®.

Keywords: Liquid hold-up maximization; Methane production; Methanothermobacter; Methanothermococcus; Optimized packing-organism combination.

MeSH terms

  • Bioreactors*
  • Euryarchaeota*
  • Hydrogen
  • Methane
  • Methanobacteriaceae

Substances

  • Hydrogen
  • Methane