Project cooperationUpdated on 27 March 2026
Circular Integration of Anaerobic Digestion, Biomethanation and Hydrothermal Gasification for Competitive and Secure Biomethane Value Chains
About
The project will develop and optimize a multi-pathway valorization strategy for organic waste feedstocks. The proposed system integrates the following processes:
· Dark Fermentation (DF) to produce H2, CO2 and DF Effluent (DFE);
· Biological methanation to produce biogas (CH4 and CO2) and digestate from DFE;
· Hydrothermal gasification (HTG) of digestate producing a H₂-rich syngas and carbonaceous solids (hydrochar);
· Circular integration, to develop and couple dark fermentation, biological methanation (two-stage anaerobic digestion-AD), and hydrothermal gasification in a circular system that internally recycles hydrogen-rich syngas and uses hydrochar to enhance anaerobic digestion stability and methane yield.
· Multi-Fuel Valorization: To engineer and optimize two distinct downstream synthesis pathways:
o Shipping Fuel Synthesis: To demonstrate the efficient conversion of mixed gaseous streams (H2, CO, CO2, CH4) into methanol via a trickle bed reactor (TBR) for hydrogenotrophic methanogenesis followed by methanotrophic conversion.
o Aviation Fuel Synthesis: To develop a downstream multi-step purification and catalytic conversion train for DF effluent, to produce synthetic paraffinic kerosene (SPK) from VFAs.
Similar opportunities
Expertise
Tamara Fernández Arévalo
Scientific Researcher at CEIT
Donostia - San Sebastián, Spain
Expertise
Conversion of synthesis gas to hydrocarbons (FT)
Elena Gorostiza
Project Manager at Spanish National Research Council (CSIC)
Madrid, Spain
Expertise
- MATERIALES, TEXTILES AND CHEMICALS
- CIRCULAR ECONOMY IN THE TEXTILE INDUSTRY
Dr. Antje Lieske
Head of Department Polymer Synthesis at Fraunhofer Institute for Applied polymer Research
Potsdam, Germany