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Methane production via syngas fermentation within the bio-CCS concept: A techno-economic assessment

Michailos, Stavros; Emenike, Oluchi; Ingham, D.; Hughes, Kevin J.; Pourkashanian, Mohamed

Authors

Oluchi Emenike

D. Ingham

Kevin J. Hughes

Mohamed Pourkashanian



Abstract

The study provides a comprehensive approach on assessing the feasibility of a novel process configuration that couples synthetic natural gas (SNG) production via syngas fermentation with carbon capture and storage (CCS). The present research constitutes the first endeavour to examine the techno-economic performance of this sophisticated hybrid SNG+CCS infrastructure. For this purpose, a flowsheet analysis within the Aspen Plus environment served to quantify the material and energy flows and then based on the simulations technical and economic indicators were estimated. A plant processing 6.25 dt/h of virgin biomass yields 1.32 t/h of SNG, achieves 51.2% energy efficiency and stores 2.97 t/h of CO2. The threshold SNG price (NPV=0) for the project to become economically viable is 92.14 £/MWh. A combination of existing policy schemes and the establishment of new instruments that will reward negative emissions has the potential to generate profits. A thorough cost breakdown along with a sensitivity analysis revealed that the process is CAPEX and feedstock intensive while larger plants can reduce the SNG price by about 15%. A stochastic Monte Carlo analysis indicated that even if the project shows promising techno-economic potential without the establishment of a consistent and robust legislation framework there is no realistic prospect for the proposed bio-CCS plant to compete with fossil natural gas.

Citation

Michailos, S., Emenike, O., Ingham, D., Hughes, K. J., & Pourkashanian, M. (2019). Methane production via syngas fermentation within the bio-CCS concept: A techno-economic assessment. Biochemical Engineering Journal, 150, Article 107290. https://doi.org/10.1016/j.bej.2019.107290

Journal Article Type Article
Acceptance Date Jul 1, 2019
Online Publication Date Jul 2, 2019
Publication Date Oct 15, 2019
Deposit Date Dec 5, 2022
Journal Biochemical Engineering Journal
Print ISSN 1369-703X
Electronic ISSN 1873-295X
Publisher Elsevier
Peer Reviewed Peer Reviewed
Volume 150
Article Number 107290
DOI https://doi.org/10.1016/j.bej.2019.107290
Public URL https://hull-repository.worktribe.com/output/4130928