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Updated: May 6, 2026

Continuously-stirred Anaerobic Digester to Convert Organic Wastes into Biogas: System Setup and Basic Operation
Published on: July 13, 2012
Scaling up biological methanation in trickle bed reactor: performance and techno-economic feasibility analysis
Alexandros Chatzis1, Aikaterini Xirostylidou1, Konstantinos N Kontogiannopoulos2
1Laboratory of Chemical and Environmental Technology, Department of Chemistry, Aristotle University of Thessaloniki, Thessaloniki 54124, Greece; Soil and Water Resources Institute, Hellenic Agricultural Organisation Dimitra, Thermi-Thessaloniki 57001, Greece.
Abstract:
Biological methanation in trickle bed reactors (TBRs) offers a sustainable pathway for converting carbon dioxide (CO2) and hydrogen (H2) into low-carbon methane (CH4). This study bridges the gap between lab- and industrial-scale deployments by scaling a microbial consortium-optimized TBR system 100-fold (from 1 L to 100 L). Operating under thermophilic conditions (55οC) for 364 days of continuous pilot-scale operation, the pilot system achieved a CH4 purity of greater than 95% at gas retention times (GRTs) as low as 1 h, with peak methane concentration (99.7% CH4) at a 3-hour GRT. Key challenges included metabolic water dilution and low H2 conversion, mitigated by adjusting hydraulic loading rates and nutrient replenishment. Trace metal analysis confirmed the sufficiency of Fe/Ni/Co, although dilution effects emerged at high water production rates. Techno-economic evaluation of the assessed PtM system revealed a baseline production cost of 2.47 €/kg LNG, with performance strongly governed by electricity price and electrolyser efficiency. Under low-cost renewable electricity, bio-LNG cost could fall to ∼ 1.7 €/kg, underscoring the competitiveness of biological methanation.
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