Overview

Methanation converts hydrogen and CO₂ (or CO) into methane. Applications include power-to-gas energy storage, biogas upgrading, and industrial gas conversion. Technology enables the injection of renewable energy into existing natural gas infrastructure.

Power-to-gas facilities use electrolysis to convert excess renewable electricity into hydrogen, then catalytic methanation to combine hydrogen with captured CO₂ to produce synthetic natural gas (SNG). Gas is injected into the natural gas grid to provide long-duration energy storage.

For renewable energy developers, power-to-gas helps address curtailment when generation exceeds grid capacity—energy stores as SNG rather than being wasted.

ALSYS’ Track Record

Methanation catalysts achieve greater than 95% CO₂ conversion to methane under varying operating conditions, operate at 250-400°C, manage exothermic heat release, and handle varying hydrogen and CO₂ feed compositions from different sources.

Systems supplied for power-to-gas demonstration facilities in Europe, industrial methanation for waste CO₂ utilization, and biogas upgrading facilities converting CO₂ to an additional methane product.

Catalyst formulations address the specific challenges of power-to-gas, including load-following operation, startup/shutdown cycling, and integration with intermittent renewable generation.

Overview

Biomass gasification or pyrolysis produces bio-oils and synthesis gas, which require upgrading to meet transportation fuel specifications. Catalytic processing converts these intermediate products into gasoline, diesel, or jet fuel meeting fuel standards.

Applications include fast pyrolysis bio-oil upgrading, gasification syngas conversion to liquid fuels (Fischer-Tropsch), and waste-to-energy facilities producing renewable fuels from municipal solid waste or industrial waste streams.

For biofuel producers, catalyst performance determines yield, product quality, and operating costs. Catalysts must handle biomass-derived feedstocks containing impurities (oxygen, sulfur, nitrogen) not present in petroleum refining.

ALSYS’ Track Record

Catalysts for biofuel upgrading include:

  • Deoxygenation catalysts remove oxygen from bio-oils to meet fuel specifications.
  • Hydrotreatment catalysts remove sulfur and nitrogen contaminants.
  • Custom formulations for specific feedstocks and product requirements

Applications span biofuel facilities processing wood biomass, agricultural residues, and municipal solid waste. Catalyst formulations explicitly developed for biomass-derived feedstocks address the impurities and operating conditions that differ from those in petroleum processing.

For facilities producing renewable diesel or sustainable aviation fuel, catalyst systems enable production meeting specifications.