Intensification of the reverse water-gas shift process using a countercurrent chemical looping regenerative reactor

Open access
Date
2023-04-01Type
- Journal Article
Abstract
Chemical reactions have thermodynamic limits on species conversion which can negatively impact process design. Unconverted feedstock often needs to be separated and recycled, increasing energy demand, process complexity and cost. Just as is the case for heat exchangers, countercurrent reactor systems can improve the thermodynamic limits on species exchange and conversion. This work describes and demonstrates a countercurrent redox reactor system, which can be realised in a packed-bed chemical-looping reactor by storing the favourable oxygen chemical potential inclines using the unique properties of non-stoichiometric oxides. The concept is analogous to a regenerative heat exchanger, but for oxygen exchange and storage, and so we use the term regenerative reactor. We apply this approach to the reverse water–gas shift reaction, which is a critical step in the processing of synthetic e-fuels. The concept is modelled and experimentally validated via a lab-scale demonstration performed with CeO₂ at 1073 K, which resulted in a CO₂ -to-CO molar conversion of 88 %, compared to a thermodynamic limit of 58 % for the conventional process at the same conditions. The modelling results indicate that the ideal thermodynamic conversion can be approximately doubled via this method. Furthermore, the CO is formed separately from the H₂ flow, allowing for the syngas composition to be finely tuned for downstream processing. Show more
Permanent link
https://doi.org/10.3929/ethz-b-000598998Publication status
publishedExternal links
Journal / series
Chemical Engineering JournalVolume
Pages / Article No.
Publisher
ElsevierSubject
Solar fuels; Power-to-X; CO2 utilization; chemical looping; REDOX REACTIONS (CHEMICAL REACTIONS); non-stoichiometric; metal oxides; reverse water-gas shift; CO2 conversionOrganisational unit
03530 - Steinfeld, Aldo / Steinfeld, Aldo
Funding
823802 - Solar Facilities for the European Research Area - Third Phase (EC)
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